Nutraceutical, Dietary, and Lifestyle Options for Prevention and Treatment of Ventricular Hypertrophy and Heart Failure
Abstract
1. Sketch of the Pathogenesis of Ventricular Hypertrophy and Heart Failure
2. Attenuating Oxidative Stress
3. Inhibiting ER Stress
4. Supporting NO/cGMP Production
5. Optimizing Omega-3 Status
6. Ancillary Supplements—Mg, Orotate, Carnitine, Taurine, Glycine, and Copper
7. Protective Diet and Lifestyle Measures
8. Summing Up
Funding
Conflicts of Interest
References
- Bai, H.; Wu, L.L.; Xing, D.Q.; Liu, J.; Zhao, Y.L. Angiotensin II induced upregulation of G alpha q/11, phospholipase C beta 3 and extracellular signal-regulated kinase 1/2 via angiotensin II type 1 receptor. Chin. Med. J. 2004, 117, 88–93. [Google Scholar]
- Onohara, N.; Nishida, M.; Inoue, R.; Kobayashi, H.; Sumimoto, H.; Sato, Y.; Mori, Y.; Nagao, T.; Kurose, H. TRPC3 and TRPC6 are essential for angiotensin II-induced cardiac hypertrophy. EMBO J. 2006, 25, 5305–5316. [Google Scholar] [CrossRef] [PubMed]
- Gómez, A.M.; Ruiz-Hurtado, G.; Benitah, J.-P.; Domínguez-Rodríguez, A. Ca(2+) fluxes involvement in gene expression during cardiac hypertrophy. Curr. Vasc. Pharmacol. 2013, 11, 497–506. [Google Scholar] [CrossRef] [PubMed]
- Fujita, T.; Toya, Y.; Iwatsubo, K.; Onda, T.; Kimura, K.; Umemura, S.; Ishikawa, Y. Accumulation of molecules involved in α1-adrenergic signal within caveolae: Caveolin expression and the development of cardiac hypertrophy. Cardiovasc. Res. 2001, 51, 709–716. [Google Scholar] [CrossRef]
- Lamers, J.M.; De Jonge, H.W.; Panagia, V.; Van Heugten, H.A. Receptor-mediated signalling pathways acting through hy-drolysis of membrane phospholipids in cardiomyocytes. Cardioscience 1993, 4, 121–131. [Google Scholar]
- Ruwhof, C.; van Wamel, J.T.; Noordzij, L.A.; Aydin, S.; Harper, J.C.; van der Laarse, A. Mechanical stress stimulates phos-pholipase C activity and intracellular calcium ion levels in neonatal rat cardiomyocytes. Cell Calcium 2001, 29, 73–83. [Google Scholar] [CrossRef]
- Schiekel, J.; Lindner, M.; Hetzel, A. The inhibition of the potassium channel TASK-1 in rat cardiac muscle by endo-thelin-1 is mediated by phospholipase C. Cardiovasc. Res. 2013, 97, 97–105. [Google Scholar] [CrossRef]
- Grabner, A.; Amaral, A.P.; Schramm, K.; Singh, S.; Sloan, A.; Yanucil, C.; Li, J.; Shehadeh, L.A.; Hare, J.M.; David, V.; et al. Activation of Cardiac Fibroblast Growth Factor Receptor 4 Causes Left Ventricular Hypertrophy. Cell Metab. 2015, 22, 1020–1032. [Google Scholar] [CrossRef]
- Fu, Q.; Chen, X.; Xiang, Y.K. Compartmentalization of beta-adrenergic signals in cardiomyocytes. Trends Cardiovasc. Med. 2013, 23, 250–256. [Google Scholar] [CrossRef] [PubMed][Green Version]
- Nishida, M.; Sato, Y.; Uemura, A. P2Y6 receptor-Galpha12/13 signalling in cardiomyocytes triggers pressure over-load-induced cardiac fibrosis. EMBO J. 2008, 27, 3104–3115. [Google Scholar] [CrossRef] [PubMed]
- Yamamoto, S.; Ichishima, K.; Ehara, T. Regulation of Extracellular UTP-Activated Cl− Current by P2Y-PLC-PKC Signaling and ATP Hydrolysis in Mouse Ventricular Myocytes. J. Physiol. Sci. 2007, 57, 85–94. [Google Scholar] [CrossRef] [PubMed]
- D’Angelo, D.D.; Sakata, Y.; Lorenz, J.N.; Boivin, G.P.; Walsh, R.A.; Liggett, S.B.; Dorn, G.W. Transgenic G q overexpression induces cardiac contractile failure in mice. Proc. Natl. Acad. Sci. USA 1997, 94, 8121–8126. [Google Scholar] [CrossRef]
- Niizeki, T.; Takeishi, Y.; Kitahara, T. Diacylglycerol kinase-epsilon restores cardiac dysfunction under chronic pressure overload: A new specific regulator of Galpha(q) signaling cascade. Am. J. Physiol. Heart Circ. Physiol. 2008, 295, H245–H255. [Google Scholar] [CrossRef] [PubMed]
- Hofmann, T.; Obukhov, A.G.; Schaefer, M.; Harteneck, C.; Gudermann, T.; Schultz, G. Direct activation of human TRPC6 and TRPC3 channels by diacylglycerol. Nat. Cell Biol. 1999, 397, 259–263. [Google Scholar] [CrossRef]
- Makarewich, C.A.; Zhang, H.; Davis, J.; Correll, R.N.; Trappanese, D.M.; Hoffman, N.E.; Troupes, C.D.; Berretta, R.M.; Kubo, H.; Madesh, M.; et al. Transient Receptor Potential Channels Contribute to Pathological Structural and Functional Remodeling after Myocardial Infarction. Circ. Res. 2014, 115, 567–580. [Google Scholar] [CrossRef]
- Gao, H.; Wang, F.; Wang, W.; Makarewich, C.A.; Zhang, H.; Kubo, H.; Berretta, R.M.; Barr, L.A.; Molkentin, J.D.; Houser, S.R. Ca2+ influx through L-type Ca2+ channels and transient receptor potential channels activates pathological hypertrophy signaling. J. Mol. Cell. Cardiol. 2012, 53, 657–667. [Google Scholar] [CrossRef] [PubMed]
- Wu, X.; Eder, P.; Chang, B.; Molkentin, J.D. TRPC channels are necessary mediators of pathologic cardiac hypertrophy. Proc. Natl. Acad. Sci. USA 2010, 107, 7000–7005. [Google Scholar] [CrossRef]
- Eder, P. Cardiac Remodeling and Disease: SOCE and TRPC Signaling in Cardiac Pathology. Adv. Exp. Med. Biol. 2017, 993, 505–521. [Google Scholar] [PubMed]
- Nichols, C.B.; Rossow, C.F.; Navedo, M.F.; Westenbroek, R.E.; Catterall, W.A.; Santana, L.F.; McKnight, G.S. Sympathetic Stimulation of Adult Cardiomyocytes Requires Association of AKAP5 With a Subpopulation of L-Type Calcium Channels. Circ. Res. 2010, 107, 747–756. [Google Scholar] [CrossRef]
- Kuriyama, M.; Matsushita, M.; Tateishi, A.; Moriwaki, A.; Tomizawa, K.; Ishino, K.; Sano, S.; Matsui, H. A Cell-permeable NFAT Inhibitor Peptide Prevents Pressure-Overload Cardiac Hypertrophy. Chem. Biol. Drug Des. 2006, 67, 238–243. [Google Scholar] [CrossRef]
- Kuwahara, K.; Wang, Y.; McAnally, J. TRPC6 fulfills a calcineurin signaling circuit during pathologic cardiac re-modeling. J. Clin. Investig. 2006, 116, 3114–3126. [Google Scholar] [CrossRef] [PubMed]
- Pereira, L.; Cheng, H.; Lao, D.H. Epac2 mediates cardiac beta1-adrenergic-dependent sarcoplasmic reticulum Ca2+ leak and arrhythmia. Circulation 2013, 127, 913–922. [Google Scholar] [CrossRef] [PubMed]
- Bobin, P.; Varin, A.; Lefebvre, F.; Fischmeister, R.; Vandecasteele, G.; Leroy, J. Calmodulin kinase II inhibition limits the pro-arrhythmic Ca2+ waves induced by cAMP-phosphodiesterase inhibitors. Cardiovasc. Res. 2016, 110, 151–161. [Google Scholar] [CrossRef]
- Erickson, J.R.; Joiner, M.L.; Guan, X. A dynamic pathway for calcium-independent activation of CaMKII by methionine oxidation. Cell 2008, 133, 462–474. [Google Scholar] [CrossRef]
- Purohit, A.; Rokita, A.G.; Guan, X.; Chen, B.; Koval, O.M.; Voigt, N.; Neef, S.; Sowa, T.; Gao, Z.; Luczak, E.D.; et al. Oxidized Ca2+/Calmodulin-Dependent Protein Kinase II Triggers Atrial Fibrillation. Circulation 2013, 128, 1748–1757. [Google Scholar] [CrossRef]
- Anderson, M.E. Oxidant stress promotes disease by activating CaMKII. J. Mol. Cell. Cardiol. 2015, 89, 160–167. [Google Scholar] [CrossRef] [PubMed]
- Backs, J.; Song, K.; Bezprozvannaya, S.; Chang, S.; Olson, E.N. CaM kinase II selectively signals to histone deacetylase 4 during cardiomyocyte hypertrophy. J. Clin. Investig. 2006, 116, 1853–1864. [Google Scholar] [CrossRef] [PubMed]
- Bossuyt, J.; Helmstadter, K.; Wu, X. Ca2+/calmodulin-dependent protein kinase IIdelta and protein kinase D over-expression reinforce the histone deacetylase 5 redistribution in heart failure. Circ. Res. 2008, 102, 695–702. [Google Scholar] [CrossRef]
- Backs, J.; Backs, T.; Neef, S. The delta isoform of CaM kinase II is required for pathological cardiac hypertrophy and remodeling after pressure overload. Proc. Natl. Acad. Sci. USA 2009, 106, 2342–2347. [Google Scholar] [CrossRef]
- Ai, X.; Curran, J.W.; Shannon, T.R.; Bers, D.M.; Pogwizd, S.M. Ca2+/Calmodulin–Dependent Protein Kinase Modulates Cardiac Ryanodine Receptor Phosphorylation and Sarcoplasmic Reticulum Ca2+ Leak in Heart Failure. Circ. Res. 2005, 97, 1314–1322. [Google Scholar] [CrossRef] [PubMed]
- Fischer, T.H.; Eiringhaus, J.; Dybkova, N. Ca(2+) /calmodulin-dependent protein kinase II equally induces sarco-plasmic reticulum Ca(2+) leak in human ischaemic and dilated cardiomyopathy. Eur. J. Heart Fail. 2014, 16, 1292–1300. [Google Scholar] [CrossRef]
- Westenbrink, B.D.; Ling, H.; Divakaruni, A.S. Mitochondrial reprogramming induced by CaMKIIdelta mediates hy-pertrophy decompensation. Circ. Res. 2015, 116, e28–e39. [Google Scholar] [CrossRef] [PubMed]
- Joiner, M.-L.A.; Koval, O.M.; Li, J.; He, B.J.; Allamargot, C.; Gao, Z.; Luczak, E.D.; Hall, D.D.; Fink, B.D.; Chen, B.; et al. CaMKII determines mitochondrial stress responses in heart. Nat. Cell Biol. 2012, 491, 269–273. [Google Scholar] [CrossRef] [PubMed]
- Fieni, F.; Johnson, D.E.; Hudmon, A.; Kirichok, Y. Mitochondrial Ca2+ uniporter and CaMKII in heart. Nat. Cell Biol. 2014, 513, E1–E2. [Google Scholar] [CrossRef] [PubMed]
- Charnet, P.; Lory, P.; Bourinet, E.; Collin, T.; Nargeot, J. cAMP-dependent phosphorylation of the cardiac L-type Ca channel: A missing link? Biochimie 1995, 77, 957–962. [Google Scholar] [CrossRef]
- Kamp, T.J.; Hell, J.W. Regulation of Cardiac L-Type Calcium Channels by Protein Kinase A and Protein Kinase C. Circ. Res. 2000, 87, 1095–1102. [Google Scholar] [CrossRef]
- Zhou, P.; Zhao, Y.T.; Guo, Y.B. Beta-adrenergic signaling accelerates and synchronizes cardiac ryanodine receptor response to a single L-type Ca2+ channel. Proc. Natl. Acad. Sci. USA 2009, 106, 18028–18033. [Google Scholar] [CrossRef]
- Shan, J.; Kushnir, A.; Betzenhauser, M.J.; Reiken, S.; Li, J.; Lehnart, S.E.; Lindegger, N.; Mongillo, M.; Mohler, P.J.; Marks, A.R. Phosphorylation of the ryanodine receptor mediates the cardiac fight or flight response in mice. J. Clin. Investig. 2010, 120, 4388–4398. [Google Scholar] [CrossRef]
- Colyer, J. Phosphorylation states of phospholamban. Ann. N. Y. Acad. Sci. 1998, 853, 79–91. [Google Scholar] [CrossRef]
- Hagemann, D.; Xiao, R.P. Dual site phospholamban phosphorylation and its physiological relevance in the heart. Trends Cardiovasc. Med. 2002, 12, 51–56. [Google Scholar] [CrossRef]
- Dolmatova, E.; Spagnol, G.; Boassa, D. Cardiomyocyte ATP release through pannexin 1 aids in early fibroblast ac-tivation. Am. J. Physiol. Heart Circ. Physiol. 2012, 303, H1208–H1218. [Google Scholar] [CrossRef]
- Phrommintikul, A.; Tran, L.; Kompa, A. Effects of a Rho kinase inhibitor on pressure overload induced cardiac hy-pertrophy and associated diastolic dysfunction. Am. J. Physiol. Heart Circ. Physiol. 2008, 294, H1804–H1814. [Google Scholar] [CrossRef]
- Shimizu, T.; Liao, J.K. Rho Kinases and Cardiac Remodeling. Circ. J. 2016, 80, 1491–1498. [Google Scholar] [CrossRef]
- He, Z.; Yang, Y.; Wen, Z. CYP2J2 metabolites, epoxyeicosatrienoic acids, attenuate Ang II-induced cardiac fibrotic response by targeting Galpha12/13. J. Lipid Res. 2017, 58, 1338–1353. [Google Scholar] [CrossRef]
- Cucoranu, I.; Clempus, R.; Dikalova, A. NAD(P)H oxidase 4 mediates transforming growth factor-beta1-induced differentiation of cardiac fibroblasts into myofibroblasts. Circ. Res. 2005, 97, 900–907. [Google Scholar] [CrossRef]
- Yeh, Y.H.; Kuo, C.T.; Chang, G.J.; Qi, X.Y.; Nattel, S.; Chen, W.J. Nicotinamide adenine dinucleotide phosphate oxidase 4 me-diates the differential responsiveness of atrial versus ventricular fibroblasts to transforming growth factor-beta. Circ. Arrhythm. Electrophysiol. 2013, 6, 790–798. [Google Scholar] [CrossRef] [PubMed]
- Masuyama, H.; Tsuruda, T.; Sekita, Y.; Hatakeyama, K.; Imamura, T.; Kato, J.; Asada, Y.; Stasch, J.-P.; Kitamura, K. Pressure-independent effects of pharmacological stimulation of soluble guanylate cyclase on fibrosis in pressure-overloaded rat heart. Hypertens. Res. 2009, 32, 597–603. [Google Scholar] [CrossRef] [PubMed]
- Li, P.; Wang, D.; Lucas, J. Atrial natriuretic peptide inhibits transforming growth factor beta-induced Smad signaling and myofibroblast transformation in mouse cardiac fibroblasts. Circ. Res. 2008, 102, 185–192. [Google Scholar] [CrossRef] [PubMed]
- Sawada, N.; Itoh, H.; Yamashita, J. cGMP-dependent protein kinase phosphorylates and inactivates RhoA. Biochem. Biophys. Res. Commun. 2001, 280, 798–805. [Google Scholar] [CrossRef] [PubMed]
- Chau, V.Q.; Salloum, F.N.; Hoke, N.N.; Abbate, A.; Kukreja, R.C. Mitigation of the progression of heart failure with sildenafil involves inhibition of RhoA/Rho-kinase pathway. Am. J. Physiol. Heart Circ. Physiol. 2011, 300, H2272–H2279. [Google Scholar] [CrossRef]
- Matsuzaki, S.; Hiratsuka, T.; Taniguchi, M.; Shingaki, K.; Kubo, T.; Kiya, K.; Fujiwara, T.; Kanazawa, S.; Kanematsu, R.; Maeda, T.; et al. Physiological ER Stress Mediates the Differentiation of Fibroblasts. PLoS ONE 2015, 10, e0123578. [Google Scholar] [CrossRef] [PubMed]
- Heindryckx, F.; Binet, F.; Ponticos, M. Endoplasmic reticulum stress enhances fibrosis through IRE1alpha-mediated degradation of miR-150 and XBP-1 splicing. EMBO Mol. Med. 2016, 8, 729–744. [Google Scholar] [CrossRef] [PubMed]
- Ayala, P.; Montenegro, J.; Vivar, R.; Letelier, A.; Urroz, P.A.; Copaja, M.; Pivet, D.; Humeres, C.; Troncoso, R.; Vicencio, J.M.; et al. Attenuation of endoplasmic reticulum stress using the chemical chaperone 4-phenylbutyric acid prevents cardiac fibrosis induced by isoproterenol. Exp. Mol. Pathol. 2012, 92, 97–104. [Google Scholar] [CrossRef] [PubMed]
- Luo, T.; Chen, B.; Wang, X. 4-PBA prevents pressure overload-induced myocardial hypertrophy and interstitial fibrosis by attenuating endoplasmic reticulum stress. Chem. Biol. Interact. 2015, 242, 99–106. [Google Scholar] [CrossRef] [PubMed]
- Shiojima, I.; Sato, K.; Izumiya, Y.; Schiekofer, S.; Ito, M.; Liao, R.; Colucci, W.S.; Walsh, K. Disruption of coordinated cardiac hypertrophy and angiogenesis contributes to the transition to heart failure. J. Clin. Investig. 2005, 115, 2108–2118. [Google Scholar] [CrossRef]
- Jiang, Y.; Reynolds, C.; Xiao, C.; Feng, W.; Zhou, Z.; Rodriguez, W.; Tyagi, S.C.; Eaton, J.W.; Saari, J.T.; Kang, Y.J. Dietary copper supplementation reverses hypertrophic cardiomyopathy induced by chronic pressure overload in mice. J. Exp. Med. 2007, 204, 657–666. [Google Scholar] [CrossRef]
- Silberman, G.A.; Fan, T.H.; Liu, H. Uncoupled cardiac nitric oxide synthase mediates diastolic dysfunction. Circulation 2010, 121, 519–528. [Google Scholar] [CrossRef]
- Alkaitis, M.S.; Crabtree, M.J. Recoupling the Cardiac Nitric Oxide Synthases: Tetrahydrobiopterin Synthesis and Recycling. Curr. Heart Fail. Rep. 2012, 9, 200–210. [Google Scholar] [CrossRef]
- Tang, L.; Wang, H.; Ziolo, M.T. Targeting NOS as a therapeutic approach for heart failure. Pharmacol. Ther. 2014, 142, 306–315. [Google Scholar] [CrossRef]
- Umar, S.; van der Laarse, A. Nitric oxide and nitric oxide synthase isoforms in the normal, hypertrophic, and failing heart. Mol. Cell Biochem. 2010, 333, 191–201. [Google Scholar] [CrossRef]
- Gong, W.; Duan, Q.; Cai, Z. Chronic inhibition of cGMP-specific phosphodiesterase 5 suppresses endoplasmic reticulum stress in heart failure. Br. J. Pharmacol. 2013, 170, 1396–1409. [Google Scholar] [CrossRef]
- Kruger, M.; Kotter, S.; Grutzner, A. Protein kinase G modulates human myocardial passive stiffness by phosphorylation of the titin springs. Circ. Res. 2009, 104, 87–94. [Google Scholar] [CrossRef] [PubMed]
- Kötter, S.; Gout, L.; Von Frieling-Salewsky, M.; Müller, A.E.; Helling, S.; Marcus, K.; Dos Remedios, C.; Linke, W.A.; Krüger, M. Differential changes in titin domain phosphorylation increase myofilament stiffness in failing human hearts. Cardiovasc. Res. 2013, 99, 648–656. [Google Scholar] [CrossRef] [PubMed]
- Jin, C.Z.; Jang, J.H.; Kim, H.J.; Wang, Y.; Hwang, I.-C.; Sadayappan, S.; Park, B.M.; Kim, S.H.; Jin, Z.H.; Seo, E.Y.; et al. Myofilament Ca2+ desensitization mediates positive lusitropic effect of neuronal nitric oxide synthase in left ventricular myocytes from murine hypertensive heart. J. Mol. Cell. Cardiol. 2013, 60, 107–115. [Google Scholar] [CrossRef] [PubMed]
- Takahashi, S.; Lin, H.; Geshi, N. Nitric oxide-cGMP-protein kinase G pathway negatively regulates vascular transient receptor potential channel TRPC6. J. Physiol. 2008, 586, 4209–4223. [Google Scholar] [CrossRef]
- Koitabashi, N.; Aiba, T.; Hesketh, G.G. Cyclic GMP/PKG-dependent inhibition of TRPC6 channel activity and expression negatively regulates cardiomyocyte NFAT activation Novel mechanism of cardiac stress modulation by PDE5 inhibition. J. Mol. Cell. Cardiol. 2010, 48, 713–724. [Google Scholar] [CrossRef] [PubMed]
- Nishida, M.; Watanabe, K.; Sato, Y.; Nakaya, M.; Kitajima, N.; Ide, T.; Inoue, R.; Kurose, H. Phosphorylation of TRPC6 Channels at Thr69 Is Required for Anti-hypertrophic Effects of Phosphodiesterase 5 Inhibition. J. Biol. Chem. 2010, 285, 13244–13253. [Google Scholar] [CrossRef] [PubMed]
- Kilic, A.; Velic, A.; De Windt, L.J.; Fabritz, L.; Voss, M.; Mitko, D.; Zwiener, M.; Baba, H.A.; Van Eickels, M.; Schlatter, E.; et al. Enhanced Activity of the Myocardial Na+/H+ Exchanger NHE-1 Contributes to Cardiac Remodeling in Atrial Natriuretic Peptide Receptor–Deficient Mice. Circulation 2005, 112, 2307–2317. [Google Scholar] [CrossRef] [PubMed][Green Version]
- Kovacs, A.; Alogna, A.; Post, H.; Hamdani, N. Is enhancing cGMP-PKG signalling a promising therapeutic target for heart failure with preserved ejection fraction? Neth. Heart J. 2016, 24, 268–274. [Google Scholar] [CrossRef] [PubMed]
- Yoshioka, K.; Otani, H.; Shimazu, T.; Fujita, M.; Iwasaka, T.; Shiojima, I. Sepiapterin prevents left ventricular hypertrophy and dilatory remodeling induced by pressure overload in rats. Am. J. Physiol. Circ. Physiol. 2015, 309, H1782–H1791. [Google Scholar] [CrossRef]
- Kazakov, A.; Müller, P.; Jagoda, P.; Semenov, A.; Böhm, M.; Laufs, U. Endothelial nitric oxide synthase of the bone marrow regulates myocardial hypertrophy, fibrosis, and angiogenesis. Cardiovasc. Res. 2011, 93, 397–405. [Google Scholar] [CrossRef]
- Yazawa, H.; Miyachi, M.; Furukawa, M.; Takahashi, K.; Takatsu, M.; Tsuboi, K.; Ohtake, M.; Murase, T.; Hattori, T.; Kato, Y.; et al. Angiotensin-Converting Enzyme Inhibition Promotes Coronary Angiogenesis in the Failing Heart of Dahl Salt-Sensitive Hypertensive Rats. J. Card. Fail. 2011, 17, 1041–1050. [Google Scholar] [CrossRef]
- Hambrecht, R.; Fiehn, E.; Weigl, C. Regular physical exercise corrects endothelial dysfunction and improves exercise capacity in patients with chronic heart failure. Circulation 1998, 98, 2709–2715. [Google Scholar] [CrossRef]
- Devaux, C.; Iglarz, M.; Richard, V.; Mulder, P.; Henrion, D.; Renet, S.; Henry, J.; Thuillez, C. Chronic decrease in flow contributes to heart failure-induced endothelial dysfunction in rats. Clin. Exp. Pharmacol. Physiol. 2004, 31, 302–305. [Google Scholar] [CrossRef] [PubMed]
- Ohori, T.; Nozawa, T.; Ihori, H.; Shida, T.; Sobajima, M.; Matsuki, A.; Yasumura, S.; Inoue, H. Effect of Repeated Sauna Treatment on Exercise Tolerance and Endothelial Function in Patients with Chronic Heart Failure. Am. J. Cardiol. 2012, 109, 100–104. [Google Scholar] [CrossRef] [PubMed]
- Polhemus, D.J.; Calvert, J.W.; Butler, J.; Lefer, D.J. The Cardioprotective Actions of Hydrogen Sulfide in Acute Myocardial Infarction and Heart Failure. Science 2014, 2014, 1–8. [Google Scholar] [CrossRef] [PubMed]
- Shao, M.; Zhuo, C.; Jiang, R.; Chen, G.; Shan, J.; Ping, J.; Tian, H.; Wang, L.; Lin, C.; Hu, L. Protective effect of hydrogen sulphide against myocardial hypertrophy in mice. Oncotarget 2017, 8, 22344–22352. [Google Scholar] [CrossRef] [PubMed]
- Zhang, S.; Pan, C.; Zhou, F.; Yuan, Z.; Wang, H.; Cui, W.; Zhang, G. Hydrogen Sulfide as a Potential Therapeutic Target in Fibrosis. Oxidative Med. Cell. Longev. 2015, 2015, 593407. [Google Scholar] [CrossRef] [PubMed]
- Meng, G.; Zhu, J.; Xiao, Y.; Huang, Z.; Zhang, Y.; Tang, X.; Xie, L.; Chen, Y.; Shao, Y.; Ferro, A.; et al. Hydrogen Sulfide Donor GYY4137 Protects against Myocardial Fibrosis. Oxidative Med. Cell. Longev. 2015, 2015, 691070. [Google Scholar] [CrossRef]
- Polhemus, D.J.; Kondo, K.; Bhushan, S.; Bir, S.C.; Kevil, C.G.; Murohara, T.; Lefer, D.J.; Calvert, J.W. Hydrogen Sulfide Attenuates Cardiac Dysfunction after Heart Failure Via Induction of Angiogenesis. Circ. Heart Fail. 2013, 6, 1077–1086. [Google Scholar] [CrossRef]
- Kondo, K.; Bhushan, S.; King, A.L.; Prabhu, S.D.; Hamid, T.; Koenig, S.; Murohara, T.; Predmore, B.L.; Gojon, G.; Wang, R.; et al. H2S Protects against Pressure Overload–Induced Heart Failure via Upregulation of Endothelial Nitric Oxide Synthase. Circulation 2013, 127, 1116–1127. [Google Scholar] [CrossRef]
- Jung, K.-A.; Kwak, M.-K. The Nrf2 System as a Potential Target for the Development of Indirect Antioxidants. Molecules 2010, 15, 7266–7291. [Google Scholar] [CrossRef]
- Salazar, M.; Rojo, A.I.; Velasco, D.; de Sagarra, R.M.; Cuadrado, A. Glycogen synthase kinase-3beta inhibits the xenobiotic and antioxidant cell response by direct phosphorylation and nuclear exclusion of the transcription factor Nrf2. J. Biol. Chem. 2006, 281, 14841–14851. [Google Scholar] [CrossRef]
- Fujio, Y.; Nguyen, T.; Wencker, D.; Kitsis, R.N.; Walsh, K. Akt Promotes Survival of Cardiomyocytes in Vitro and Protects against Ischemia-Reperfusion Injury in Mouse Heart. Circulation 2000, 101, 660–667. [Google Scholar] [CrossRef]
- Funder, J.W. Eplerenone: Hypertension, heart failure and the importance of mineralocorticoid receptor blockade. Future Cardiol. 2006, 2, 535–541. [Google Scholar] [CrossRef] [PubMed]
- Johar, S.; Cave, A.C.; Narayanapanicker, A.; Grieve, D.J.; Shah, A.M. Aldosterone mediates angiotensin II-induced interstitial cardiac fibrosis via a Nox2-containing NADPH oxidase. FASEB J. 2006, 20, 1546–1548. [Google Scholar] [CrossRef] [PubMed]
- Hayashi, H.; Kobara, M.; Abe, M.; Tanaka, N.; Gouda, E.; Toba, H.; Yamada, H.; Tatsumi, T.; Nakata, T.; Matsubara, H. Aldosterone Nongenomically Produces NADPH Oxidase−Dependent Reactive Oxygen Species and Induces Myocyte Apoptosis. Hypertens. Res. 2008, 31, 363–375. [Google Scholar] [CrossRef] [PubMed]
- Lo, C.M.; Carroll, K.S. The redox biochemistry of protein sulfenylation and sulfinylation. J. Biol. Chem. 2013, 288, 26480–26488. [Google Scholar]
- Levine, R.L.; Mosoni, L.; Berlett, B.S.; Stadtman, E.R. Methionine residues as endogenous antioxidants in proteins. Proc. Natl. Acad. Sci. USA 1996, 93, 15036–15040. [Google Scholar] [CrossRef]
- Suzuki, Y.J.; Cleemann, L.; Abernethy, D.R.; Morad, M. Glutathione is a Cofactor for H2O2-Mediated Stimulation of Ca2+-Induced Ca2+ Release in Cardiac Myocytes. Free Radic. Biol. Med. 1998, 24, 318–325. [Google Scholar] [CrossRef]
- Anzai, K.; Ogawa, K.; Ozawa, T.; Yamamoto, H. Oxidative Modification of Ion Channel Activity of Ryanodine Receptor. Antioxid. Redox Signal. 2000, 2, 35–40. [Google Scholar] [CrossRef] [PubMed]
- Oda, T.; Yang, Y.; Uchinoumi, H.; Thomas, D.D.; Chen-Izu, Y.; Kato, T.; Yamamoto, T.; Yano, M.; Cornea, R.L.; Bers, D.M. Oxidation of ryanodine receptor (RyR) and calmodulin enhance Ca release and pathologically alter, RyR structure and calmodulin affinity. J. Mol. Cell. Cardiol. 2015, 85, 240–248. [Google Scholar] [CrossRef] [PubMed]
- Kuster, G.M.; Lancel, S.; Zhang, J.; Communal, C.; Trucillo, M.P.; Lim, C.C.; Pfister, O.; Weinberg, E.O.; Cohen, R.A.; Liao, R. Redox-mediated reciprocal regulation of SERCA and Na+–Ca2+ exchanger contributes to sarcoplasmic reticulum Ca2+ depletion in cardiac myocytes. Free Radic. Biol. Med. 2010, 48, 1182–1187. [Google Scholar] [CrossRef] [PubMed]
- Qin, F.; Siwik, D.A.; Lancel, S.; Zhang, J.; Kuster, G.M.; Luptak, I.; Wang, L.; Tong, X.; Kang, Y.J.; Cohen, R.A.; et al. Hydrogen Peroxide–Mediated SERCA Cysteine 674 Oxidation Contributes to Impaired Cardiac Myocyte Relaxation in Senescent Mouse Heart. J. Am. Heart Assoc. 2013, 2, e000184. [Google Scholar] [CrossRef] [PubMed]
- Qin, F.; Siwik, D.A.; Pimentel, D.R.; Morgan, R.J.; Biolo, A.; Tu, V.H.; Kang, Y.J.; Cohen, R.A.; Colucci, W.S. Cytosolic H2O2 mediates hypertrophy, apoptosis, and decreased SERCA activity in mice with chronic hemodynamic overload. Am. J. Physiol. Circ. Physiol. 2014, 306, H1453–H1463. [Google Scholar] [CrossRef][Green Version]
- Graham, S.; Ding, M.; Ding, Y.; Sours-Brothers, S.; Luchowski, R.; Gryczynski, Z.; Yorio, T.; Ma, H.; Ma, R. Canonical Transient Receptor Potential 6 (TRPC6), a Redox-regulated Cation Channel. J. Biol. Chem. 2010, 285, 23466–23476. [Google Scholar] [CrossRef]
- Ding, Y.; Winters, A.; Ding, M.; Graham, S.; Akopova, I.; Muallem, S.; Wang, Y.; Hong, J.H.; Gryczynski, Z.; Yang, S.-H.; et al. Reactive Oxygen Species-mediated TRPC6 Protein Activation in Vascular Myocytes, a Mechanism for Vasoconstrictor-regulated Vascular Tone*. J. Biol. Chem. 2011, 286, 31799–31809. [Google Scholar] [CrossRef]
- Chen, C.-A.; Wang, T.-Y.; Varadharaj, S.; Reyes, L.A.; Hemann, C.; Talukder, M.A.H.; Chen, Y.-R.; Druhan, L.J.; Zweier, J.L. S-glutathionylation uncouples eNOS and regulates its cellular and vascular function. Nat. Cell Biol. 2010, 468, 1115–1118. [Google Scholar] [CrossRef]
- Wu, F.; Szczepaniak, W.S.; Shiva, S.; Liu, H.; Wang, Y.; Wang, L.; Wang, Y.; Kelley, E.E.; Chen, A.F.; Gladwin, M.T.; et al. Nox2-dependent glutathionylation of endothelial NOS leads to uncoupled superoxide production and endothelial barrier dysfunction in acute lung injury. Am. J. Physiol. Cell. Mol. Physiol. 2014, 307, L987–L997. [Google Scholar] [CrossRef]
- Milstien, S.; Katusic, Z. Oxidation of Tetrahydrobiopterin by Peroxynitrite: Implications for Vascular Endothelial Function. Biochem. Biophys. Res. Commun. 1999, 263, 681–684. [Google Scholar] [CrossRef]
- Kuzkaya, N.; Weissmann, N.; Harrison, D.G.; Dikalov, S. Interactions of peroxynitrite, tetrahydrobiopterin, ascorbic acid, and thiols: Implications for uncoupling endothelial nitric-oxide synthase. J. Biol. Chem. 2003, 278, 22546–22554. [Google Scholar] [CrossRef] [PubMed]
- Fritz, B.G.; Hu, X.; Brailey, J.L.; Berry, R.E.; Walker, F.A.; Montfort, W.R. Oxidation and Loss of Heme in Soluble Guanylyl Cyclase fromManduca sexta. Biochemistry 2011, 50, 5813–5815. [Google Scholar] [CrossRef] [PubMed]
- Pope, A.J.; Druhan, L.; Guzman, J.E.; Forbes, S.P.; Murugesan, V.; Lu, D.; Xia, Y.; Chicoine, L.G.; Parinandi, N.L.; Cardounel, A.J. Role of DDAH-1 in lipid peroxidation product-mediated inhibition of endothelial NO generation. Am. J. Physiol. Physiol. 2007, 293, C1679–C1686. [Google Scholar] [CrossRef]
- Forbes, S.P.; Druhan, L.J.; Guzman, J.E.; Parinandi, N.; Zhang, L.; Green-Church, K.B.; Cardounel, A.J. Mechanism of 4-HNE Mediated Inhibition of hDDAH-1: Implications in No Regulation. Biochemistry 2008, 47, 1819–1826. [Google Scholar] [CrossRef] [PubMed]
- Fan, N.-C.; Tsai, C.-M.; Hsu, C.-N.; Huang, L.-T.; Tain, Y.-L. N-Acetylcysteine Prevents Hypertension via Regulation of the ADMA-DDAH Pathway in Young Spontaneously Hypertensive Rats. BioMed Res. Int. 2013, 2013, 696317. [Google Scholar] [CrossRef] [PubMed]
- Bartesaghi, S.; Radi, R. Fundamentals on the biochemistry of peroxynitrite and protein tyrosine nitration. Redox Biol. 2018, 14, 618–625. [Google Scholar] [CrossRef]
- Qin, F.; Lennon-Edwards, S.; Lancel, S. Cardiac-specific overexpression of catalase identifies hydrogen peroxide-dependent and -independent phases of myocardial remodeling and prevents the progression to overt heart failure in G(alpha)q-overexpressing transgenic mice. Circ. Heart Fail. 2010, 3, 306–313. [Google Scholar] [CrossRef]
- De Jong, J.W.; Schoemaker, R.G.; de Jonge, R. Enhanced expression and activity of xanthine oxidoreductase in the failing heart. J. Mol. Cell. Cardiol. 2000, 32, 2083–2089. [Google Scholar] [CrossRef]
- Cappola, T.P.; Kass, D.A.; Nelson, G.S. Allopurinol improves myocardial efficiency in patients with idiopathic dilated car-diomyopathy. Circulation 2001, 104, 2407–2411. [Google Scholar] [CrossRef] [PubMed]
- Reyes, A.J.; Leary, W.P. Allopurinol or Oxypurinol in Heart Failure Therapy—A Promising New Development or End of Story? Cardiovasc. Drugs Ther. 2005, 19, 311–313. [Google Scholar] [CrossRef]
- Adam-Vizi, V.; Starkov, A.A. Calcium and Mitochondrial Reactive Oxygen Species Generation: How to Read the Facts. J. Alzheimer’s Dis. 2010, 20, S413–S426. [Google Scholar] [CrossRef]
- Zhang, M.; Perino, A.; Ghigo, A.; Hirsch, E.; Shah, A.M. NADPH Oxidases in Heart Failure: Poachers or Gamekeepers? Antioxid. Redox Signal. 2013, 18, 1024–1041. [Google Scholar] [CrossRef]
- Liu, Y.; Huang, H.; Xia, W.; Tang, Y.; Li, H.; Huang, C. NADPH oxidase inhibition ameliorates cardiac dysfunction in rabbits with heart failure. Mol. Cell. Biochem. 2010, 343, 143–153. [Google Scholar] [CrossRef]
- Liu, Y.; Huang, H.; Tang, Y.H.; Li, H.T.; Wang, X.; Huang, C.X. Effects of NADPH oxidase inhibition on cardiac function and my-ocardial calcium regulatory proteins in rabbits with heart failure. Zhonghua Xin Xue Guan Bing Za Zhi 2009, 37, 883–886. [Google Scholar]
- Matsushima, S.; Kinugawa, S.; Yokota, T. Increased myocardial NAD(P)H oxidase-derived superoxide causes the exacerba-tion of postinfarct heart failure in type 2 diabetes. Am. J. Physiol. Heart Circ. Physiol. 2009, 297, H409–H416. [Google Scholar] [CrossRef]
- Zhang, P.; Hou, M.; Li, Y.; Xu, X.; Barsoum, M.; Chen, Y.; Bache, R.J. NADPH oxidase contributes to coronary endothelial dysfunction in the failing heart. Am. J. Physiol. Circ. Physiol. 2009, 296, H840–H846. [Google Scholar] [CrossRef] [PubMed]
- Qin, F.; Simeone, M.; Patel, R. Inhibition of NADPH oxidase reduces myocardial oxidative stress and apoptosis and improves cardiac function in heart failure after myocardial infarction. Free Radic. Biol. Med. 2007, 43, 271–281. [Google Scholar] [CrossRef] [PubMed]
- Qin, F.; Patel, R.; Yan, C.; Liu, W. NADPH oxidase is involved in angiotensin II-induced apoptosis in H9C2 cardiac muscle cells: Effects of apocynin. Free Radic. Biol. Med. 2006, 40, 236–246. [Google Scholar] [CrossRef]
- Takayama, T.; Wada, A.; Tsutamoto, T. Contribution of vascular NAD(P)H oxidase to endothelial dysfunction in heart failure and the therapeutic effects of HMG-CoA reductase inhibitor. Circ. J. 2004, 68, 1067–1075. [Google Scholar] [CrossRef][Green Version]
- Saleem, N.; Prasad, A.; Goswami, S.K. Apocynin prevents isoproterenol-induced cardiac hypertrophy in rat. Mol. Cell. Biochem. 2018, 445, 79–88. [Google Scholar] [CrossRef] [PubMed]
- Ishiyama, T.; Morita, Y.; Toyama, S.; Yamagami, T.; Tsukamoto, N.; Wada, N.; Ohkubo, M.; Yamamura, Y. A Clinical Study of the Effect of Coenzyme Q on Congestive Heart Failure. Jpn. Heart J. 1976, 17, 32–42. [Google Scholar] [CrossRef] [PubMed]
- Mortensen, S.A.; Vadhanavikit, S.; Baandrup, U.; Folkers, K. Long-term coenzyme Q10 therapy: A major advance in the management of resistant myocardial failure. Drugs Exp. Clin. Res. 1985, 11, 581–593. [Google Scholar]
- Mortensen, S.A.; Vadhanavikit, S.; Muratsu, K.; Folkers, K. Coenzyme Q10: Clinical benefits with biochemical correlates sug-gesting a scientific breakthrough in the management of chronic heart failure. Int. J. Tissue React. 1990, 12, 155–162. [Google Scholar] [PubMed]
- Folkers, K.; Langsjoen, P.; Langsjoen, P.H. Therapy with coenzyme Q10 of patients in heart failure who are eligible or ineligible for a transplant. Biochem. Biophys. Res. Commun. 1992, 182, 247–253. [Google Scholar] [CrossRef]
- Lei, L.; Liu, Y. Efficacy of coenzyme Q10 in patients with cardiac failure: A meta-analysis of clinical trials. BMC Cardiovasc. Disord. 2017, 17, 196. [Google Scholar] [CrossRef]
- Hosoe, K.; Kitano, M.; Kishida, H.; Kubo, H.; Fujii, K.; Kitahara, M. Study on safety and bioavailability of ubiquinol (Kaneka QH™) after single and 4-week multiple oral administration to healthy volunteers. Regul. Toxicol. Pharmacol. 2007, 47, 19–28. [Google Scholar] [CrossRef] [PubMed]
- Bhagavan, H.N.; Chopra, R.K.; Craft, N.E.; Chitchumroonchokchai, C.; Failla, M.L. Assessment of coenzyme Q10 absorption using an in vitro digestion-Caco-2 cell model. Int. J. Pharm. 2007, 333, 112–117. [Google Scholar] [CrossRef] [PubMed]
- Langsjoen, P.H.; Langsjoen, A.M. Supplemental ubiquinol in patients with advanced congestive heart failure. Biofactors 2008, 32, 119–128. [Google Scholar] [CrossRef]
- Lanone, S.; Bloc, S.; Foresti, R. Bilirubin decreases nos2 expression via inhibition of NAD(P)H oxidase: Implications for pro-tection against endotoxic shock in rats. FASEB J. 2005, 19, 1890–1892. [Google Scholar] [CrossRef] [PubMed]
- Matsumoto, H.; Ishikawa, K.; Itabe, H.; Maruyama, Y. Carbon monoxide and bilirubin from heme oxygenase-1 suppresses reactive oxygen species generation and plasminogen activator inhibitor-1 induction. Mol. Cell. Biochem. 2006, 291, 21–28. [Google Scholar] [CrossRef]
- Jiang, F.; Roberts, S.J.; Datla, S.R.; Dusting, G.J. NO Modulates NADPH Oxidase Function via Heme Oxygenase-1 in Human Endothelial Cells. Hypertension 2006, 48, 950–957. [Google Scholar] [CrossRef]
- Datla, S.R.; Dusting, G.J.; Mori, T.A.; Taylor, C.J.; Croft, K.D.; Jiang, F. Induction of Heme Oxygenase-1 in Vivo Suppresses NADPH Oxidase–Derived Oxidative Stress. Hypertension 2007, 50, 636–642. [Google Scholar] [CrossRef] [PubMed]
- Basuroy, S.; Bhattacharya, S.; Leffler, C.W.; Parfenova, H. Nox4 NADPH oxidase mediates oxidative stress and apoptosis caused by TNF-α in cerebral vascular endothelial cells. Am. J. Physiol. Physiol. 2009, 296, C422–C432. [Google Scholar] [CrossRef] [PubMed]
- Fujii, M.; Inoguchi, T.; Sasaki, S.; Maeda, Y.; Zheng, J.; Kobayashi, K.; Takayanagi, R. Bilirubin and biliverdin protect rodents against diabetic nephropathy by downregulating NAD(P)H oxidase. Kidney Int. 2010, 78, 905–919. [Google Scholar] [CrossRef] [PubMed]
- Ayaz, T.; Durakoglugil, M.E.; Kocaman, S.A.; Durakoğlugil, T.; Erdoğan, T.; Şahin, O.Z.; Sahin, S.B.; Satiroglu, O.; Çiçek, Y. Bilirubin Level is Associated with Left Ventricular Hypertrophy Independent of Blood Pressure in Previously Untreated Hypertensive Patients. Korean Circ. J. 2014, 44, 336–343. [Google Scholar] [CrossRef] [PubMed]
- Zhou, T.; Chen, X.; Li, Z.; Li, L. Relationship between Serum Bilirubin and Left Ventricular Hypertrophy in Patients with Essential Hypertension. PLoS ONE 2015, 10, e0125275. [Google Scholar] [CrossRef] [PubMed]
- Ndisang, J.F.; Jadhav, A. Upregulating the heme oxygenase system suppresses left ventricular hypertrophy in adult sponta-neously hypertensive rats for 3 months. J. Card. Fail. 2009, 15, 616–628. [Google Scholar] [CrossRef] [PubMed]
- Hu, C.-M.; Chen, Y.-H.; Chiang, M.-T.; Chau, L.-Y. Heme Oxygenase-1 Inhibits Angiotensin II-Induced Cardiac Hypertrophy in Vitro and in Vivo. Circulation 2004, 110, 309–316. [Google Scholar] [CrossRef] [PubMed]
- Terry, M.J.; Maines, M.D.; Lagarias, J.C. Inactivation of phytochrome- and phycobiliprotein-chromophore precursors by rat liver biliverdin reductase. J. Biol. Chem. 1993, 268, 26099–26106. [Google Scholar] [CrossRef]
- Mccarty, M.F. Clinical Potential of Spirulina as a Source of Phycocyanobilin. J. Med. Food 2007, 10, 566–570. [Google Scholar] [CrossRef]
- Zheng, J.; Inoguchi, T.; Sasaki, S. Phycocyanin and phycocyanobilin from Spirulina platensis protect against diabetic nephropathy by inhibiting oxidative stress. Am. J. Physiol. Regul. Integr. Comp. Physiol. 2013, 304, R110–R120. [Google Scholar] [CrossRef] [PubMed]
- Romay, C.; Gonzalez, R.; Ledon, N.; Remirez, D.; Rimbau, V. C-Phycocyanin: A Biliprotein with Antioxidant, Anti-Inflammatory and Neuroprotective Effects. Curr. Protein Pept. Sci. 2003, 4, 207–216. [Google Scholar] [CrossRef]
- Liu, Q.; Huang, Y.; Zhang, R.; Cai, T.; Cai, Y. Medical Application of Spirulina platensis Derived C-Phycocyanin. Evid. Based Complementary Altern. Med. 2016, 2016, 7803846. [Google Scholar] [CrossRef]
- Penton-Rol, G.; Marin-Prida, J.; Pardo-Andreu, G. C-Phycocyanin is neuroprotective against global cerebral ische-mia/reperfusion injury in gerbils. Brain Res. Bull. 2011, 86, 42–52. [Google Scholar] [CrossRef] [PubMed]
- Cervantes-Llanos, M.; Lagumersindez-Denis, N.; Marín-Prida, J.; Pavón-Fuentes, N.; Falcón-Cama, V.; Piniella-Matamoros, B.; Camacho-Rodríguez, H.; Fernández-Massó, J.R.; Valenzuela-Silva, C.; Raíces-Cruz, I.; et al. Beneficial effects of oral administration of C-Phycocyanin and Phycocyanobilin in rodent models of experimental autoimmune encephalomyelitis. Life Sci. 2018, 194, 130–138. [Google Scholar] [CrossRef] [PubMed]
- Khan, M.; Shobha, J.C.; Mohan, I.K.; Naidu, M.U.R.; Sundaram, C.; Singh, S.; Kuppusamy, P.; Kutala, V.K. Protective effect ofSpirulina against doxorubicin-induced cardiotoxicity. Phytother. Res. 2005, 19, 1030–1037. [Google Scholar] [CrossRef]
- Khan, M.; Varadharaj, S.; Shobha, J.C.; Naidu, M.U.; Parinandi, N.L.; Kutala, V.K.; Kuppusamy, P. C-Phycocyanin Ameliorates Doxorubicin-Induced Oxidative Stress and Apoptosis in Adult Rat Cardiomyocytes. J. Cardiovasc. Pharmacol. 2006, 47, 9–20. [Google Scholar] [CrossRef] [PubMed]
- Dickinson, D.A.; Forman, H.J. Glutathione in defense and signaling: Lessons from a small thiol. Ann. N. Y. Acad. Sci. 2002, 973, 488–504. [Google Scholar] [CrossRef]
- Shelton, M.D.; Chock, P.B.; Mieyal, J.J. Glutaredoxin: Role in Reversible Protein S-Glutathionylation and Regulation of Redox Signal Transduction and Protein Translocation. Antioxid. Redox Signal. 2005, 7, 348–366. [Google Scholar] [CrossRef]
- Parsons, Z.D.; Gates, K.S. Thiol-Dependent Recovery of Catalytic Activity from Oxidized Protein Tyrosine Phosphatases. Biochemistry 2013, 52, 6412–6423. [Google Scholar] [CrossRef]
- Atkuri, K.R.; Mantovani, J.J.; Herzenberg, L.A. N-Acetylcysteine—A safe antidote for cysteine/glutathione deficiency. Curr. Opin. Pharmacol. 2007, 7, 355–359. [Google Scholar] [CrossRef] [PubMed]
- Dodd, S.; Dean, O.; Copolov, D.L.; Malhi, G.S.; Berk, M. N-acetylcysteine for antioxidant therapy: Pharmacology and clinical utility. Expert Opin. Biol. Ther. 2008, 8, 1955–1962. [Google Scholar] [CrossRef]
- Suh, J.H.; Shenvi, S.V.; Dixon, B.M. Decline in transcriptional activity of Nrf2 causes age-related loss of glutathione synthesis, which is reversible with lipoic acid. Proc. Natl. Acad. Sci. USA 2004, 101, 3381–3386. [Google Scholar] [CrossRef] [PubMed]
- Rebrin, I.; Forster, M.J.; Sohal, R.S. Effects of age and caloric intake on glutathione redox state in different brain regions of C57BL/6 and DBA/2 mice. Brain Res. 2007, 1127, 10–18. [Google Scholar] [CrossRef] [PubMed]
- Droge, W.; Kinscherf, R.; Hildebrandt, W.; Schmitt, T. The Deficit in Low Molecular Weight Thiols as a Target for Antiageing Therapy. Curr. Drug Targets 2006, 7, 1505–1512. [Google Scholar] [CrossRef]
- Sekhar, R.V.; Patel, S.G.; Guthikonda, A.P.; Reid, M.; Balasubramanyam, A.; Taffet, G.E.; Jahoor, F. Deficient synthesis of glutathione underlies oxidative stress in aging and can be corrected by dietary cysteine and glycine supplementation. Am. J. Clin. Nutr. 2011, 94, 847–853. [Google Scholar] [CrossRef]
- Foltz, W.U.; Wagner, M.; Rudakova, E.; Volk, T. N-acetylcysteine prevents electrical remodeling and attenuates cellular hyper-trophy in epicardial myocytes of rats with ascending aortic stenosis. Basic Res. Cardiol. 2012, 107, 290. [Google Scholar] [CrossRef]
- Wilder, T.; Ryba, D.M.; Wieczorek, D.F.; Wolska, B.M.; Solaro, R.J. N-acetylcysteine reverses diastolic dysfunction and hypertrophy in familial hypertrophic cardiomyopathy. Am. J. Physiol. Circ. Physiol. 2015, 309, H1720–H1730. [Google Scholar] [CrossRef]
- Reyes, D.R.; Gomes, M.J.; Rosa, C.M.; Pagan, L.U.; Damatto, F.C.; Damatto, R.L.; DePra, I.; Campos, D.H.; Fernandez, A.A.; Martinez, P.F.; et al. N-Acetylcysteine Influence on Oxidative Stress and Cardiac Remodeling in Rats during Transition from Compensated Left Ventricular Hypertrophy to Heart Failure. Cell. Physiol. Biochem. 2017, 44, 2310–2321. [Google Scholar] [CrossRef]
- DiNicolantonio, J.J.; Okeefe, J.H.; Mccarty, M.F. Boosting endogenous production of vasoprotective hydrogen sulfide via supplementation with taurine and N-acetylcysteine: A novel way to promote cardiovascular health. Open Heart 2017, 4, e000600. [Google Scholar] [CrossRef]
- Yeh, C.-T.; Ching, L.-C.; Yen, G.-C. Inducing gene expression of cardiac antioxidant enzymes by dietary phenolic acids in rats. J. Nutr. Biochem. 2009, 20, 163–171. [Google Scholar] [CrossRef] [PubMed]
- Li, J.; Ichikawa, T.; Villacorta, L.; Janicki, J.S.; Brower, G.L.; Yamamoto, M.; Cui, T. Nrf2 Protects Against Maladaptive Cardiac Responses to Hemodynamic Stress. Arterioscler. Thromb. Vasc. Biol. 2009, 29, 1843–1850. [Google Scholar] [CrossRef] [PubMed]
- Zhou, S.; Sun, W.; Zhang, Z.; Zheng, Y. The Role of Nrf2-Mediated Pathway in Cardiac Remodeling and Heart Failure. Oxidative Med. Cell. Longev. 2014, 2014, 1–16. [Google Scholar] [CrossRef] [PubMed]
- Strom, J.; Chen, Q.M. Loss of Nrf2 promotes rapid progression to heart failure following myocardial infarction. Toxicol. Appl. Pharmacol. 2017, 327, 52–58. [Google Scholar] [CrossRef]
- Bubb, K.J.; Kok, C.; Tang, O. The NRF2 activator DH404 attenuates adverse ventricular remodeling post-myocardial in-farction by modifying redox signalling. Free Radic. Biol. Med. 2017, 108, 585–594. [Google Scholar] [CrossRef]
- Fernandes, R.O.; De Castro, A.L.; Bonetto, J.H.P.; Ortiz, V.D.; Müller, D.D.; Campos-Carraro, C.; Barbosa, S.; Neves, L.T.; Xavier, L.L.; Schenkel, P.C.; et al. Sulforaphane effects on postinfarction cardiac remodeling in rats: Modulation of redox-sensitive prosurvival and proapoptotic proteins. J. Nutr. Biochem. 2016, 34, 106–117. [Google Scholar] [CrossRef]
- Cabreiro, F.G.; Perichon, M.; Jatje, J.; Malavolta, M.; Mocchegiani, E.; Friguet, B.; Petropoulos, I. Zinc supplementation in the elderly subjects: Effect on oxidized protein degradation and repair systems in peripheral blood lymphocytes. Exp. Gerontol. 2008, 43, 483–487. [Google Scholar] [CrossRef]
- Sullivan, V.K.; Burnett, F.R.; Cousins, R.J. Metallothionein Expression Is Increased in Monocytes and Erythrocytes of Young Men during Zinc Supplementation. J. Nutr. 1998, 128, 707–713. [Google Scholar] [CrossRef]
- Cao, J.; Cousins, R.J. Metallothionein mRNA in Monocytes and Peripheral Blood Mononuclear Cells and in Cells from Dried Blood Spots Increases after Zinc Supplementation of Men. J. Nutr. 2000, 130, 2180–2187. [Google Scholar] [CrossRef]
- Aydemir, T.B.; Blanchard, R.K.; Cousins, R.J. Zinc supplementation of young men alters metallothionein, zinc transporter, and cytokine gene expression in leukocyte populations. Proc. Natl. Acad. Sci. USA 2006, 103, 1699–1704. [Google Scholar] [CrossRef]
- Liang, Q.; Carlson, E.C.; Donthi, R.V.; Kralik, P.M.; Shen, X.; Epstein, P.N. Overexpression of metallothionein reduces diabetic cardiomyopathy. Diabetes 2002, 51, 174–181. [Google Scholar] [CrossRef] [PubMed]
- Wang, J.; Song, Y.; Elsherif, L. Cardiac metallothionein induction plays the major role in the prevention of diabetic cardio-myopathy by zinc supplementation. Circulation 2006, 113, 544–554. [Google Scholar] [CrossRef]
- Cai, L. Diabetic Cardiomyopathy and its Prevention by Metallothionein: Experimental Evidence, Possible Mechanisms and Clinical Implications. Curr. Med. Chem. 2007, 14, 2193–2203. [Google Scholar] [CrossRef] [PubMed]
- Lu, Y.; Liu, Y.; Li, H.; Wang, X.; Wu, W.; Gao, L. Effect and mechanisms of zinc supplementation in protecting against diabetic cardiomyopathy in a rat model of type 2 diabetes. Bosn. J. Basic Med. Sci. 2015, 15, 14–20. [Google Scholar] [CrossRef] [PubMed]
- Mccarty, M.F. Zinc and multi-mineral supplementation should mitigate the pathogenic impact of cadmium exposure. Med. Hypotheses 2012, 79, 642–648. [Google Scholar] [CrossRef]
- Klaassen, C.D.; Liu, J.; Diwan, B.A. Metallothionein protection of cadmium toxicity. Toxicol. Appl. Pharmacol. 2009, 238, 215–220. [Google Scholar] [CrossRef]
- Liu, Y.; Liu, J.; Habeebu, S.M.; Waalkes, M.P.; Klaassen, C.D. Metallothionein-I/II null mice are sensitive to chronic oral cad-mium-induced nephrotoxicity. Toxicol. Sci. 2000, 57, 167–176. [Google Scholar] [CrossRef]
- Nakagawa, H.; Nishijo, M.; Morikawa, Y.; Miura, K.; Tawara, K.; Kuriwaki, J.-I.; Kido, T.; Ikawa, A.; Kobayashi, E.; Nogawa, K. Urinary cadmium and mortality among inhabitants of a cadmium-polluted area in Japan. Environ. Res. 2006, 100, 323–329. [Google Scholar] [CrossRef]
- Peters, J.L.; Perlstein, T.S.; Perry, M.J.; McNeely, E.; Weuve, J. Cadmium exposure in association with history of stroke and heart failure. Environ. Res. 2010, 110, 199–206. [Google Scholar] [CrossRef]
- Tellez-Plaza, M.; Guallar, E.; Howard, B.V.; Umans, J.G.; Francesconi, K.A.; Goessler, W.; Silbergeld, E.K.; Devereux, R.B.; Navas-Acien, A. Cadmium Exposure and Incident Cardiovascular Disease. Epidemiology 2013, 24, 421–429. [Google Scholar] [CrossRef]
- Borné, Y.; Barregard, L.; Persson, M.; Hedblad, B.; Fagerberg, B.; Engström, G. Cadmium exposure and incidence of heart failure and atrial fibrillation: A population-based prospective cohort study. BMJ Open 2015, 5, e007366. [Google Scholar] [CrossRef] [PubMed]
- Yang, W.; Zhang, Z.; Thijs, L.; Cauwenberghs, N.; Wei, F.; Jacobs, L.; Luttun, A.; Verhamme, P.; Kuznetsova, T.; Nawrot, T.S.; et al. Left Ventricular Structure and Function in Relation to Environmental Exposure to Lead and Cadmium. J. Am. Heart Assoc. 2017, 6, e004692. [Google Scholar] [CrossRef]
- Hsu, C.-W.; Weng, C.-H.; Lee, C.-C.; Lin-Tan, D.-T.; Chu, P.-H.; Chen, K.-H.; Yen, T.-H.; Huang, W.-H. Urinary cadmium levels predict mortality of patients with acute heart failure. Ther. Clin. Risk Manag. 2017, 13, 379–386. [Google Scholar] [CrossRef] [PubMed]
- Clemons, T.E.; Kurinij, N.; Sperduto, R.D. Associations of mortality with ocular disorders and an intervention of high-dose antioxidants and zinc in the Age-Related Eye Disease Study: AREDS Report No. 13. Arch. Ophthalmol. 2004, 122, 716–726. [Google Scholar] [PubMed]
- Huang, L.; Teng, T.; Bian, B.; Yao, W.; Yu, X.; Wang, Z.; Xu, Z.; Sun, Y. Zinc Levels in Left Ventricular Hypertrophy. Biol. Trace Elem. Res. 2016, 176, 48–55. [Google Scholar] [CrossRef]
- Stadtman, T.C. Selenium biochemistry. Mammalian selenoenzymes. Ann. N. Y. Acad. Sci. 2000, 899, 399–402. [Google Scholar] [CrossRef]
- Rose, A.H.; Hoffmann, P.R. Selenoproteins and cardiovascular stress. Thromb. Haemost. 2015, 113, 494–504. [Google Scholar] [CrossRef] [PubMed]
- Rayman, M.P. Selenoproteins and human health: Insights from epidemiological data. Biochim. Biophys. Acta 2009, 1790, 1533–1540. [Google Scholar] [CrossRef]
- Tanguy, S.; Grauzam, S.; De Leiris, J.; Boucher, F. Impact of dietary selenium intake on cardiac health: Experimental approaches and human studies. Mol. Nutr. Food Res. 2012, 56, 1106–1121. [Google Scholar] [CrossRef]
- Keshan Disease Research Group. Observations on effect of sodium selenite in prevention of Keshan disease. Chin. Med. J. 1979, 92, 471–476. [Google Scholar]
- Alehagen, U.; Johansson, P.; Bjornstedt, M.; Rosen, A.; Dahlstrom, U. Cardiovascular mortality and N-terminal-proBNP re-duced after combined selenium and coenzyme Q10 supplementation: A 5-year prospective randomized double-blind place-bo-controlled trial among elderly Swedish citizens. Int. J. Cardiol. 2013, 167, 1860–1866. [Google Scholar] [CrossRef]
- Alehagen, U.; Aaseth, J.; Johansson, P. Reduced Cardiovascular Mortality 10 Years after Supplementation with Selenium and Coenzyme Q10 for Four Years: Follow-Up Results of a Prospective Randomized Double-Blind Placebo-Controlled Trial in El-derly Citizens. PLoS ONE 2015, 10, e0141641. [Google Scholar] [CrossRef] [PubMed]
- Alehagen, U.; Alexander, J.; Aaseth, J. Supplementation with Selenium and Coenzyme Q10 Reduces Cardiovascular Mortality in Elderly with Low Selenium Status. A Secondary Analysis of a Randomised Clinical Trial. PLoS ONE 2016, 11, e0157541. [Google Scholar] [CrossRef]
- Lauver, D.A.; Lockwood, S.F.; Lucchesi, B.R. Disodium Disuccinate Astaxanthin (Cardax) Attenuates Complement Activation and Reduces Myocardial Injury following Ischemia/Reperfusion. J. Pharmacol. Exp. Ther. 2005, 314, 686–692. [Google Scholar] [CrossRef] [PubMed]
- Qiu, X.; Fu, K.; Zhao, X.; Zhang, Y.; Yuan, Y.; Zhang, S.; Gu, X.; Guo, H. Protective effects of astaxanthin against ischemia/reperfusion induced renal injury in mice. J. Transl. Med. 2015, 13, 28–29. [Google Scholar] [CrossRef] [PubMed]
- Xue, Y.; Qu, Z.; Fu, J.; Zhen, J.; Wang, W.; Cai, Y.; Wang, W. The protective effect of astaxanthin on learning and memory deficits and oxidative stress in a mouse model of repeated cerebral ischemia/reperfusion. Brain Res. Bull. 2017, 131, 221–228. [Google Scholar] [CrossRef]
- Alam, M.N.; Hossain, M.M.; Rahman, M.M. Astaxanthin Prevented Oxidative Stress in Heart and Kidneys of Isopro-terenol-Administered Aged Rats. J. Diet. Suppl. 2018, 15, 42–54. [Google Scholar] [CrossRef]
- García, J.A.; Volt, H.; Venegas, C.; Doerrier, C.; Escames, G.; López, L.C.; Acuña-Castroviejo, D. Disruption of the NF-κB/NLRP3 connection by melatonin requires retinoid-related orphan receptor-α and blocks the septic response in mice. FASEB J. 2015, 29, 3863–3875. [Google Scholar] [CrossRef]
- Early, J.O.; Menon, D.; Wyse, C.A. Circadian clock protein BMAL1 regulates IL-1β in macrophages via NRF2. Proc. Natl. Acad. Sci. USA 2018, 115, E8460–E8468. [Google Scholar] [CrossRef]
- Zhou, B.; Zhang, Y.; Zhang, F.; Xia, Y.; Liu, J.; Huang, R.; Wang, Y.; Hu, Y.; Wu, J.; Dai, C.; et al. CLOCK/BMAL1 regulates circadian change of mouse hepatic insulin sensitivity by SIRT1. Hepatology 2014, 59, 2196–2206. [Google Scholar] [CrossRef]
- Yu, L.; Sun, Y.; Cheng, L.; Jin, Z.; Yang, Y.; Zhai, M.; Pei, H.; Wang, X.; Zhang, H.; Meng, Q.; et al. Melatonin receptor-mediated protection against myocardial ischemia/reperfusion injury: Role of SIRT1. J. Pineal Res. 2014, 57, 228–238. [Google Scholar] [CrossRef]
- Huang, X.Z.; Wen, D.; Zhang, M. Sirt1 activation ameliorates renal fibrosis by inhibiting the TGF-β/Smad3 pathway. J. Cell. Biochem. 2014, 115, 996–1005. [Google Scholar] [CrossRef]
- Zeng, Z.; Cheng, S.; Chen, H.; Li, Q.; Hu, Y.; Wang, Q.; Zhu, X.; Wang, J. Activation and overexpression of Sirt1 attenuates lung fibrosis via P300. Biochem. Biophys. Res. Commun. 2017, 486, 1021–1026. [Google Scholar] [CrossRef] [PubMed]
- Kuno, A.; Hori, Y.S.; Hosoda, R. Resveratrol improves cardiomyopathy in dystrophin-deficient mice through SIRT1 pro-tein-mediated modulation of p300 protein. J. Biol. Chem. 2013, 288, 5963–5972. [Google Scholar] [CrossRef]
- Li, Z.; Wang, F.; Zha, S.; Cao, Q.; Sheng, J.; Chen, S. SIRT1 inhibits TGF-β-induced endothelial-mesenchymal transition in human endothelial cells with Smad4 deacetylation. J. Cell. Physiol. 2018, 233, 9007–9014. [Google Scholar] [CrossRef]
- Bugyei-Twum, A.; Ford, C.; Civitarese, R. Sirtuin 1 activation attenuates cardiac fibrosis in a rodent pressure overload model by modifying Smad2/3 transactivation. Cardiovasc. Res. 2018, 114, 1629–1641. [Google Scholar] [CrossRef]
- Simko, F.; Paulis, L. Antifibrotic effect of melatonin—Perspective protection in hypertensive heart disease. Int. J. Cardiol. 2013, 168, 2876–2877. [Google Scholar] [CrossRef] [PubMed]
- Paulis, L.; Pechanova, O.; Zicha, J.; Krajcirovicova, K.; Barta, A.; Pelouch, V.; Adamcova, M.; Simko, F. Melatonin prevents fibrosis but not hypertrophy development in the left ventricle of NG-nitro-L-arginine-methyl ester hypertensive rats. J. Hypertens. 2009, 27, S11–S16. [Google Scholar] [CrossRef]
- Hu, W.; Ma, Z.; Jiang, S.; Fan, C.; Deng, C.; Yan, X.; Di, S.; Lv, J.; Reiter, R.J.; Yang, Y. Melatonin: The dawning of a treatment for fibrosis? J. Pineal Res. 2015, 60, 121–131. [Google Scholar] [CrossRef]
- Wu, Y.; Si, F.; Luo, L.; Jing, F.; Jiang, K.; Zhou, J.; Yi, Q. The effect of melatonin on cardio fibrosis in juvenile rats with pressure overload and deregulation of HDACs. Korean J. Physiol. Pharmacol. 2018, 22, 607–616. [Google Scholar] [CrossRef] [PubMed]
- Che, H.; Wang, Y.; Li, H. Melatonin alleviates cardiac fibrosis via inhibiting lncRNA MALAT1/miR-141-mediated NLRP3 inflammasome and TGF-β1/Smads signaling in diabetic cardiomyopathy. FASEB J. 2020, 34, 5282–5298. [Google Scholar] [CrossRef] [PubMed]
- Castillero, E.; Akashi, H.; Pendrak, K.; Yerebakan, H.; Najjar, M.; Wang, C.; Naka, Y.; Mancini, N.M.; Sweeney, H.L.; D’armiento, J.; et al. Attenuation of the unfolded protein response and endoplasmic reticulum stress after mechanical unloading in dilated cardiomyopathy. Am. J. Physiol. Circ. Physiol. 2015, 309, H459–H470. [Google Scholar] [CrossRef] [PubMed]
- Sano, R.; Reed, J.C. ER stress-induced cell death mechanisms. Biochim. Biophys. Acta 2013, 1833, 3460–3470. [Google Scholar] [CrossRef]
- Groenendyk, J.; Lee, D.; Jung, J.; Dyck, J.R.B.; Lopaschuk, G.D.; Agellon, L.B.; Michalak, M. Inhibition of the Unfolded Protein Response Mechanism Prevents Cardiac Fibrosis. PLoS ONE 2016, 11, e0159682. [Google Scholar] [CrossRef]
- Rani, S.; Sreenivasaiah, P.K.; Kim, J.O.; Lee, M.Y.; Kang, W.S.; Kim, Y.S.; Ahn, Y.; Park, W.J.; Cho, C.; Kim, D.H. Tauroursodeoxycholic acid (TUDCA) attenuates pressure overload-induced cardiac remodeling by reducing endoplasmic reticulum stress. PLoS ONE 2017, 12, e0176071. [Google Scholar] [CrossRef]
- Turdi, S.; Hu, N.; Ren, J. Tauroursodeoxycholic acid mitigates high fat diet-induced cardiomyocyte contractile and intracellular Ca2+ anomalies. PLoS ONE 2013, 8, e63615. [Google Scholar] [CrossRef]
- Ceylan-Isik, A.F.; Sreejayan, N.; Ren, J. Endoplasmic reticulum chaperon tauroursodeoxycholic acid alleviates obesity-induced myocardial contractile dysfunction. J. Mol. Cell. Cardiol. 2011, 50, 107–116. [Google Scholar] [CrossRef] [PubMed]
- Park, C.S.; Cha, H.; Kwon, E.J.; Sreenivasaiah, P.K.; Kim, D.H. The chemical chaperone 4-phenylbutyric acid attenuates pressure-overload cardiac hypertrophy by alleviating endoplasmic reticulum stress. Biochem. Biophys. Res. Commun. 2012, 421, 578–584. [Google Scholar] [CrossRef] [PubMed]
- Zhang, Y.; Li, X.; Zou, D.; Liu, W.; Yang, J.; Zhu, N.; Huo, L.; Wang, M.; Hong, J.; Wu, P.; et al. Treatment of Type 2 Diabetes and Dyslipidemia with the Natural Plant Alkaloid Berberine. J. Clin. Endocrinol. Metab. 2008, 93, 2559–2565. [Google Scholar] [CrossRef]
- Lan, J.; Zhao, Y.; Dong, F.; Yan, Z.; Zheng, W.; Fan, J.; Sun, G. Meta-analysis of the effect and safety of berberine in the treatment of type 2 diabetes mellitus, hyperlipemia and hypertension. J. Ethnopharmacol. 2015, 161, 69–81. [Google Scholar] [CrossRef]
- Chang, W.; Chen, L.; Hatch, G.M. Berberine as a therapy for type 2 diabetes and its complications: From mechanism of action to clinical studies. Biochem. Cell Biol. 2015, 93, 479–486. [Google Scholar] [CrossRef]
- Lee, Y.S.; Kim, W.S.; Kim, K.H.; Yoon, M.J.; Cho, H.J.; Shen, Y.; Ye, J.-M.; Lee, C.H.; Oh, W.K.; Kim, C.T.; et al. Berberine, a Natural Plant Product, Activates AMP-Activated Protein Kinase with Beneficial Metabolic Effects in Diabetic and Insulin-Resistant States. Diabetes 2006, 55, 2256–2264. [Google Scholar] [CrossRef]
- Turner, N.; Li, J.-Y.; Gosby, A.; To, S.W.; Cheng, Z.; Miyoshi, H.; Taketo, M.M.; Cooney, G.J.; Kraegen, E.W.; James, D.E.; et al. Berberine and Its More Biologically Available Derivative, Dihydroberberine, Inhibit Mitochondrial Respiratory Complex I: A Mechanism for the Action of Berberine to Activate AMP-Activated Protein Kinase and Improve Insulin Action. Diabetes 2008, 57, 1414–1418. [Google Scholar] [CrossRef]
- Marin-Neto, J.A.; Maciel, B.C.; Secches, A.L.; Júnior, L.G. Cardiovascular effects of berberine in patients with severe congestive heart failure. Clin. Cardiol. 1988, 11, 253–260. [Google Scholar] [CrossRef] [PubMed]
- Zeng, X.; Zeng, X. Relationship between the clinical effects of berberine on severe congestive heart failure and its concentration in plasma studied by HPLC. Biomed. Chromatogr. 1999, 13, 442–444. [Google Scholar] [CrossRef]
- Hong, Y.; Hui, S.-C.; Chan, T.-Y.; Hou, J.-Y. Effect of Berberine on Regression of Pressure-Overload Induced Cardiac Hypertrophy in Rats. Am. J. Chin. Med. 2002, 30, 589–599. [Google Scholar] [CrossRef] [PubMed]
- Zeng, X.H.; Zeng, X.J.; Li, Y.Y. Efficacy and safety of berberine for congestive heart failure secondary to ischemic or idiopathic dilated cardiomyopathy. Am. J. Cardiol. 2003, 92, 173–176. [Google Scholar] [CrossRef]
- Dziubak, A.; Wójcicka, G. The pathophysiological basis of the protective effects of metformin in heart failure. Postępy Higieny i Medycyny Doświadczalnej 2017, 71, 773–787. [Google Scholar] [CrossRef] [PubMed]
- Feng, Y.; Zhang, Y.; Xiao, H. AMPK and cardiac remodelling. Sci. China Life Sci. 2018, 61, 14–23. [Google Scholar] [CrossRef] [PubMed]
- Terai, K.; Hiramoto, Y.; Masaki, M.; Sugiyama, S.; Kuroda, T.; Hori, M.; Kawase, I.; Hirota, H. AMP-Activated Protein Kinase Protects Cardiomyocytes against Hypoxic Injury through Attenuation of Endoplasmic Reticulum Stress. Mol. Cell. Biol. 2005, 25, 9554–9575. [Google Scholar] [CrossRef] [PubMed]
- Dong, Y.; Zhang, M.; Liang, B.; Xie, Z.; Zhao, Z.; Asfa, S.; Choi, H.C.; Zou, M.-H. Reduction of AMP-Activated Protein Kinase α2 Increases Endoplasmic Reticulum Stress and Atherosclerosis in Vivo. Circulation 2010, 121, 792–803. [Google Scholar] [CrossRef]
- Yeh, C.H.; Chen, T.P.; Wang, Y.C.; Lin, Y.M.; Fang, S.W. AMP-activated protein kinase activation during cardioplegia-induced hy-poxia/reoxygenation injury attenuates cardiomyocytic apoptosis via reduction of endoplasmic reticulum stress. Mediat. Inflamm. 2010, 2010, 130636. [Google Scholar] [CrossRef]
- Zhuo, X.Z.; Wu, Y.; Ni, Y.J. Isoproterenol instigates cardiomyocyte apoptosis and heart failure via AMPK inactiva-tion-mediated endoplasmic reticulum stress. Apoptosis 2013, 18, 800–810. [Google Scholar] [CrossRef]
- Kim, H.; Moon, S.Y.; Kim, J.-S.; Baek, C.H.; Kim, M.; Min, J.Y.; Lee, S.K. Activation of AMP-activated protein kinase inhibits ER stress and renal fibrosis. Am. J. Physiol. Physiol. 2015, 308, F226–F236. [Google Scholar] [CrossRef] [PubMed]
- Hardie, D.G.; Lin, S.-C. AMP-activated protein kinase—Not just an energy sensor. F1000Research 2017, 6, 1724. [Google Scholar] [CrossRef]
- Browne, G.J.; Finn, S.G.; Proud, C.G. Stimulation of the AMP-activated protein kinase leads to activation of eukaryotic elon-gation factor 2 kinase and to its phosphorylation at a novel site, serine 398. J. Biol. Chem. 2004, 279, 12220–12231. [Google Scholar] [CrossRef]
- Johanns, M.; dit Ruys, S.P.; Houddane, A. Direct and indirect activation of eukaryotic elongation factor 2 kinase by AMP-activated protein kinase. Cell. Signal. 2017, 36, 212–221. [Google Scholar] [CrossRef] [PubMed]
- Chen, Z.-P.; Mitchelhill, K.I.; Michell, B.J.; Stapleton, D.; Rodriguez-Crespo, I.; Witters, L.A.; Power, D.A.; De Montellano, P.R.O.; Kemp, B.E. AMP-activated protein kinase phosphorylation of endothelial NO synthase. FEBS Lett. 1999, 443, 285–289. [Google Scholar] [CrossRef]
- Morrow, V.A.; Foufelle, F.; Connell, J.M.C.; Petrie, J.R.; Gould, G.W.; Salt, I.P. Direct Activation of AMP-activated Protein Kinase Stimulates Nitric-oxide Synthesis in Human Aortic Endothelial Cells. J. Biol. Chem. 2003, 278, 31629–31639. [Google Scholar] [CrossRef] [PubMed]
- McCarty, M.F. Asymmetric Dimethylarginine Is a Well Established Mediating Risk Factor for Cardiovascular Morbidity and Mortality—Should Patients with Elevated Levels Be Supplemented with Citrulline? Healthcare 2016, 4, 40. [Google Scholar] [CrossRef]
- Gao, L.; Siu, K.L.; Chalupsky, K. Role of uncoupled endothelial nitric oxide synthase in abdominal aortic aneurysm formation: Treatment with folic acid. Hypertension 2012, 59, 158–166. [Google Scholar] [CrossRef] [PubMed]
- Siu, K.L.; Miao, X.N.; Cai, H. Recoupling of eNOS with Folic Acid Prevents Abdominal Aortic Aneurysm Formation in Angiotensin II-Infused Apolipoprotein E Null Mice. PLoS ONE 2014, 9, e88899. [Google Scholar] [CrossRef]
- Chalupsky, K.; Kračun, D.; Kanchev, I.; Bertram, K.; Görlach, A. Folic Acid Promotes Recycling of Tetrahydrobiopterin and Protects against Hypoxia-Induced Pulmonary Hypertension by Recoupling Endothelial Nitric Oxide Synthase. Antioxid. Redox Signal. 2015, 23, 1076–1091. [Google Scholar] [CrossRef]
- Rezk, B.M.; Haenen, G.R.; Van Der Vijgh, W.J.; Bast, A. Tetrahydrofolate and 5-methyltetrahydrofolate are folates with high antioxidant activity. Identification of the antioxidant pharmacophore. FEBS Lett. 2003, 555, 601–605. [Google Scholar] [CrossRef]
- Antoniades, C.; Shirodaria, C.; Warrick, N. 5-methyltetrahydrofolate rapidly improves endothelial function and decreases superoxide production in human vessels: Effects on vascular tetrahydrobiopterin availability and endothelial nitric oxide synthase coupling. Circulation 2006, 114, 1193–1201. [Google Scholar] [CrossRef] [PubMed]
- McCarty, M.F.; Barroso-Aranda, J.; Contreras, F. High-dose folate and dietary purines promote scavenging of peroxyni-trite-derived radicals—Clinical potential in inflammatory disorders. Med. Hypotheses 2009, 73, 824–834. [Google Scholar] [CrossRef] [PubMed]
- Mccarty, M.F. Oster rediscovered—Mega-dose folate for symptomatic atherosclerosis. Med. Hypotheses 2007, 69, 325–332. [Google Scholar] [CrossRef]
- Moens, A.L.; Claeys, M.J.; Wuyts, F.L.; Goovaerts, I.; Van Hertbruggen, E.; Wendelen, L.C.; Van Hoof, V.O.; Vrints, C.J. Effect of Folic Acid on Endothelial Function Following Acute Myocardial Infarction. Am. J. Cardiol. 2007, 99, 476–481. [Google Scholar] [CrossRef]
- Moens, A.L.; Vrints, C.J.; Claeys, M.J.; Timmermans, J.-P.; Champion, H.C.; Kass, D.A. Mechanisms and potential therapeutic targets for folic acid in cardiovascular disease. Am. J. Physiol. Circ. Physiol. 2008, 294, H1971–H1977. [Google Scholar] [CrossRef] [PubMed]
- Ionova, I.A.; Vásquez-Vivar, J.; Whitsett, J.; Herrnreiter, A.; Medhora, M.; Cooley, B.C.; Pieper, G.M. Deficient BH4 production via de novo and salvage pathways regulates NO responses to cytokines in adult cardiac myocytes. Am. J. Physiol. Circ. Physiol. 2008, 295, H2178–H2187. [Google Scholar] [CrossRef]
- Tawakol, A.; Migrino, R.Q.; Aziz, K.S.; Waitkowska, J.; Holmvang, G.; Alpert, N.M.; Muller, J.E.; Fischman, A.J.; Gewirtz, H. High-dose folic acid acutely improves coronary vasodilator function in patients with coronary artery disease. J. Am. Coll. Cardiol. 2005, 45, 1580–1584. [Google Scholar] [CrossRef] [PubMed]
- Piquereau, J.; Moulin, M.; Zurlo, G.; Mateo, P.; Gressette, M.; Paul, J.-L.; Lemaire, C.; Ventura-Clapier, R.; Veksler, V.; Garnier, A. Cobalamin and folate protect mitochondrial and contractile functions in a murine model of cardiac pressure overload. J. Mol. Cell. Cardiol. 2017, 102, 34–44. [Google Scholar] [CrossRef] [PubMed]
- Octavia, Y.; Kararigas, G.; De Boer, M.; Chrifi, I.; Kietadisorn, R.; Swinnen, M.; Duimel, H.; Verheyen, F.K.; Brandt, M.M.; Fliegner, D.; et al. Folic acid reduces doxorubicin-induced cardiomyopathy by modulating endothelial nitric oxide synthase. J. Cell. Mol. Med. 2017, 21, 3277–3287. [Google Scholar] [CrossRef]
- Moens, A.L.; Champion, H.C.; Claeys, M.J. High-dose folic acid pretreatment blunts cardiac dysfunction during ischemia coupled to maintenance of high-energy phosphates and reduces postreperfusion injury. Circulation 2008, 117, 1810–1819. [Google Scholar] [CrossRef]
- Usui, M.; Matsuoka, H.; Miyazaki, H.; Ueda, S.; Okuda, S.; Imaizumi, T. Increased endogenous nitric oxide synthase inhibitor in patients with congestive heart failure. Life Sci. 1998, 62, 2425–2430. [Google Scholar] [CrossRef]
- Saitoh, M.; Osanai, T.; Kamada, T.; Matsunaga, T.; Ishizaka, H.; Hanada, H.; Okumura, K. High plasma level of asymmetric dimethylarginine in patients with acutely exacerbated congestive heart failure: Role in reduction of plasma nitric oxide level. Heart Vessels 2003, 18, 177–182. [Google Scholar] [CrossRef]
- Kielstein, J.T.; Bode-Boger, S.M.; Klein, G.; Graf, S.; Haller, H.; Fliser, D. Endogenous nitric oxide synthase inhibitors and renal perfusion in patients with heart failure. Eur. J. Clin. Investig. 2003, 33, 370–375. [Google Scholar] [CrossRef]
- Dückelmann, C.; Mittermayer, F.; Haider, D.G.; Altenberger, J.; Eichinger, J.; Wolzt, M. Asymmetric Dimethylarginine Enhances Cardiovascular Risk Prediction in Patients with Chronic Heart Failure. Arterioscler. Thromb. Vasc. Biol. 2007, 27, 2037–2042. [Google Scholar] [CrossRef]
- Zairis, M.N.; Patsourakos, N.G.; Tsiaousis, G.Z.; Georgilas, A.T.; Melidonis, A.; Makrygiannis, S.S.; Velissaris, D.; Batika, P.C.; Argyrakis, K.S.; Tzerefos, S.P.; et al. Plasma asymmetric dimethylarginine and mortality in patients with acute decompensation of chronic heart failure. Heart 2012, 98, 860–864. [Google Scholar] [CrossRef] [PubMed]
- Hsu, C.-P.; Lin, S.-J.; Chung, M.-Y.; Lu, T.-M. Asymmetric dimethylarginine predicts clinical outcomes in ischemic chronic heart failure. Atherosclerosis 2012, 225, 504–510. [Google Scholar] [CrossRef]
- Sverdlov, A.; Ngo, D.; Nightingale, A.; Rajendran, S.; Mishra, K.; Heresztyn, T.; Ritchie, R.; Marwick, T.; Frenneaux, M.; Horowitz, J. The endogenous NOS inhibitor asymmetric dimethylarginine (ADMA) predicts LV mass independent of afterload. Nitric Oxide 2011, 25, 41–46. [Google Scholar] [CrossRef] [PubMed]
- Bai, Y.; Hui, R. Dimethylarginine dimethylaminohydrolase (DDAH)—A critical regulator of hypertensive left ventricular hy-pertrophy? Med. Hypotheses 2008, 70, 962–966. [Google Scholar] [CrossRef]
- Shi, B.; Ni, Z.; Zhou, W.; Yu, Z.; Gu, L.; Mou, S.; Fang, W.; Wang, Q.; Cao, L.; Yan, Y.; et al. Circulating levels of asymmetric dimethylarginine are an independent risk factor for left ventricular hypertrophy and predict cardiovascular events in pre-dialysis patients with chronic kidney disease. Eur. J. Intern. Med. 2010, 21, 444–448. [Google Scholar] [CrossRef] [PubMed]
- Ebinc, F.A.; Erten, Y.; Ebinç, H.; Pasaoglu, H.; Demirtas, C.; Tacoy, G.; Mutluay, R.; Koc, E.; Derici, U.; Reis, K.A.; et al. The Relationship among Asymmetric Dimethylarginine (ADMA) Levels, Residual Renal Function, and Left Ventricular Hypertrophy in Continuous Ambulatory Peritoneal Dialysis Patients. Ren. Fail. 2008, 30, 401–406. [Google Scholar] [CrossRef] [PubMed]
- Antoniades, C.; Shirodaria, C.; Leeson, P.; Antonopoulos, A.; Warrick, N.; Van-Assche, T.; Cunnington, C.; Tousoulis, D.; Pillai, R.; Ratnatunga, C.; et al. Association of plasma asymmetrical dimethylarginine (ADMA) with elevated vascular superoxide production and endothelial nitric oxide synthase uncoupling: Implications for endothelial function in human atherosclerosis. Eur. Heart J. 2009, 30, 1142–1150. [Google Scholar] [CrossRef]
- Collins, J.K.; Wu, G.; Perkins-Veazie, P.; Spears, K.; Claypool, P.L.; Baker, R.A.; Clevidence, B.A. Watermelon consumption increases plasma arginine concentrations in adults. Nutrition 2007, 23, 261–266. [Google Scholar] [CrossRef]
- Waugh, W.H.; Daeschner, C.W.; Files, B.A.; McConnell, M.E.; Strandjord, S.E. Oral citrulline as arginine precursor may be beneficial in sickle cell disease: Early phase two results. J. Natl. Med. Assoc. 2001, 93, 363–371. [Google Scholar]
- Schwedhelm, E.; Maas, R.; Freese, R.; Jung, D.; Lukacs, Z.; Jambrecina, A.; Spickler, W.; Schulze, F.; Böger, R.H. Pharmacokinetic and pharmacodynamic properties of oral L-citrulline and L-arginine: Impact on nitric oxide metabolism. Br. J. Clin. Pharmacol. 2008, 65, 51–59. [Google Scholar] [CrossRef]
- Romero, M.J.; Platt, D.H.; Caldwell, R.W. Therapeutic Use of Citrulline in Cardiovascular Disease. Cardiovasc. Drug Rev. 2006, 24, 275–290. [Google Scholar] [CrossRef]
- Balderas-Munoz, K.; Castillo-Martínez, L.; Orea-Tejeda, A.; Infante-Vázquez, O.; Utrera-Lagunas, M.; Martínez-Memije, R.; Keirns-Davis, C.; Becerra-Luna, B.; Sánchez-Vidal, G. Improvement of ventricular function in systolic heart failure patients with oral L-citrulline supplementation. Cardiol. J. 2012, 19, 612–617. [Google Scholar] [CrossRef]
- Simon, T.; Mary-Krause, M.; Funck-Brentano, C.; Jaillon, P. Sex differences in the prognosis of congestive heart failure: Results from the Cardiac Insufficiency Bisoprolol Study (CIBIS II). Circulation 2001, 103, 375–380. [Google Scholar] [CrossRef] [PubMed]
- Patrizio, M.; Marano, G. Gender differences in cardiac hypertrophic remodeling. Annali dell’Istituto Superiore di Sanità 2016, 52, 223–229. [Google Scholar] [PubMed]
- Scott, N.S. Understanding Hormones, Menopause, and Heart Failure: Still a Work in Progress. J. Am. Coll. Cardiol. 2017, 69, 2527–2529. [Google Scholar] [CrossRef]
- Lim, W.K.; Wren, B.; Jepson, N.; Roy, S.; Caplan, G. Effect of hormone replacement therapy on left ventricular hypertrophy. Am. J. Cardiol. 1999, 83, 1132–1134. [Google Scholar] [CrossRef]
- Modena, M.G.; Molinari, R.; Muia, N.; Castelli, A., Jr.; Pala, F.; Rossi, R. Double-blind randomized placebo-controlled study of transdermal estrogen replacement therapy on hypertensive postmenopausal women. Am. J. Hypertens. 1999, 12, 1000–1008. [Google Scholar] [CrossRef]
- Light, K.C.; Hinderliter, A.L.; West, S.G.; Grewen, K.M.; Steege, J.F.; Sherwood, A.; Girdler, S.S. Hormone replacement improves hemodynamic profile and left ventricular geometry in hypertensive and normotensive postmenopausal women. J. Hypertens. 2001, 19, 269–278. [Google Scholar] [CrossRef] [PubMed]
- Wu, C.H.; Liu, J.Y.; Wu, J.P. 17beta-estradiol reduces cardiac hypertrophy mediated through the up-regulation of PI3K/Akt and the suppression of calcineurin/NF-AT3 signaling pathways in rats. Life Sci. 2005, 78, 347–356. [Google Scholar] [CrossRef]
- Pedram, A.; Razandi, M.; Narayanan, R.; Dalton, J.T.; McKinsey, T.A.; Levin, E.R. Estrogen regulates histone deacetylases to prevent cardiac hypertrophy. Mol. Biol. Cell 2013, 24, 3805–3818. [Google Scholar] [CrossRef]
- Cui, Y.H.; Tan, Z.; Fu, X.D.; Xiang, Q.L.; Xu, J.W.; Wang, T.H. 17 beta-estradiol attenuates pressure overload-induced myocardial hy-pertrophy through regulating caveolin-3 protein in ovariectomized female rats. Mol. Biol. Rep. 2011, 38, 4885–4892. [Google Scholar] [CrossRef]
- Gardner, J.D.; Murray, D.B.; Voloshenyuk, T.G.; Brower, G.L.; Bradley, J.M.; Janicki, J.S. Estrogen attenuates chronic volume overload induced structural and functional remodeling in male rat hearts. Am. J. Physiol. Circ. Physiol. 2010, 298, H497–H504. [Google Scholar] [CrossRef]
- Grohé, C.; Kahlert, S.; Löbbert, K.; Stimpel, M.; Karas, R.H.; Vetter, H.; Neyses, L. Cardiac myocytes and fibroblasts contain functional estrogen receptors 1. FEBS Lett. 1997, 416, 107–112. [Google Scholar] [CrossRef]
- Lizotte, E.; Grandy, S.A.; Tremblay, A.; Allen, B.G.; Fiset, C. Expression, Distribution and Regulation of Sex Steroid Hormone Receptors in Mouse Heart. Cell. Physiol. Biochem. 2009, 23, 075–086. [Google Scholar] [CrossRef]
- Skavdahl, M.; Steenbergen, C.; Clark, J. Estrogen receptor-beta mediates male-female differences in the development of pressure overload hypertrophy. Am. J. Physiol. Heart Circ. Physiol. 2005, 288, H469–H476. [Google Scholar] [CrossRef]
- Fliegner, D.; Schubert, C.; Penkalla, A. Female sex and estrogen receptor-beta attenuate cardiac remodeling and apoptosis in pressure overload. Am. J. Physiol. Regul. Integr. Comp. Physiol. 2010, 298, R1597–R1606. [Google Scholar] [CrossRef] [PubMed]
- Wang, M.; Wang, Y.; Weil, B. Estrogen receptor beta mediates increased activation of PI3K/Akt signaling and improved myocardial function in female hearts following acute ischemia. Am. J. Physiol. Regul. Integr. Comp. Physiol. 2009, 296, R972–R978. [Google Scholar] [CrossRef]
- Hoa, N.; Ge, L.; Korach, K.S.; Levin, E.R. Estrogen receptor beta maintains expression of KLF15 to prevent cardiac myocyte hypertrophy in female rodents. Mol. Cell. Endocrinol. 2018, 470, 240–250. [Google Scholar] [CrossRef]
- Pedram, A.; Razandi, M.; O’Mahony, F.; Lubahn, D.; Levin, E.R. Estrogen receptor-beta prevents cardiac fibrosis. Mol. Endocrinol. 2010, 24, 2152–2165. [Google Scholar] [CrossRef] [PubMed]
- Schuster, I.; Mahmoodzadeh, S.; Dworatzek, E. Cardiomyocyte-specific overexpression of oestrogen receptor beta improves survival and cardiac function after myocardial infarction in female and male mice. Clin. Sci. 2016, 130, 365–376. [Google Scholar] [CrossRef]
- Nuedling, S.; Kahlert, S.; Loebbert, K. 17 Beta-estradiol stimulates expression of endothelial and inducible NO synthase in rat myocardium in-vitro and in-vivo. Cardiovasc. Res. 1999, 43, 666–674. [Google Scholar] [CrossRef]
- Nuedling, S.; Karas, R.H.; Mendelsohn, M.E. Activation of estrogen receptor beta is a prerequisite for estrogen-dependent upregulation of nitric oxide synthases in neonatal rat cardiac myocytes. FEBS Lett. 2001, 502, 103–108. [Google Scholar] [CrossRef]
- Kuiper, G.G.; Carlsson, B.; Grandien, K. Comparison of the ligand binding specificity and transcript tissue distribution of estrogen receptors alpha and beta. Endocrinology 1997, 138, 863–870. [Google Scholar] [CrossRef] [PubMed]
- Kuiper, G.G.; Lemmen, J.G.; Carlsson, B. Interaction of estrogenic chemicals and phytoestrogens with estrogen receptor beta. Endocrinology 1998, 139, 4252–4263. [Google Scholar] [CrossRef]
- Mccarty, M.F. Isoflavones made simple—Genistein’s agonist activity for the beta-type estrogen receptor mediates their health benefits. Med. Hypotheses 2006, 66, 1093–1114. [Google Scholar] [CrossRef]
- Jackson, R.L.; Greiwe, J.S.; Schwen, R.J. Emerging evidence of the health benefits of S-equol, an estrogen receptor β agonist. Nutr. Rev. 2011, 69, 432–448. [Google Scholar] [CrossRef] [PubMed]
- Li, J.; Xie, Z.-Z.; Tang, Y.-B. Genistein Prevents Myocardial Hypertrophy in 2-Kidney 1-Clip Renal Hypertensive Rats by Restoring eNOS Pathway. Pharmacology 2010, 86, 240–248. [Google Scholar] [CrossRef]
- Matori, H.; Umar, S.; Nadadur, R.D.; Sharma, S.; Partow-Navid, R.; Afkhami, M.; Amjedi, M.; Eghbali, M. Genistein, a Soy Phytoestrogen, Reverses Severe Pulmonary Hypertension and Prevents Right Heart Failure in Rats. Hypertension 2012, 60, 425–430. [Google Scholar] [CrossRef]
- Maulik, S.K.; Prabhakar, P.; Dinda, A.K.; Seth, S. Genistein prevents isoproterenol-induced cardiac hypertrophy in rats. Can. J. Physiol. Pharmacol. 2012, 90, 1117–1125. [Google Scholar] [CrossRef]
- Qin, W.; Du, N.; Zhang, L.; Wu, X.; Hu, Y.; Li, X.; Shen, N.; Li, Y.; Yang, B.; Xu, C.; et al. Genistein alleviates pressure overload-induced cardiac dysfunction and interstitial fibrosis in mice. Br. J. Pharmacol. 2015, 172, 5559–5572. [Google Scholar] [CrossRef]
- Meng, Y.; Zhang, Y.; Ma, Z.; Zhou, H.; Ni, J.; Liao, H.; Tang, Q. Genistein attenuates pathological cardiac hypertrophy in vivo and in vitro. Herz 2017, 44, 247–256. [Google Scholar] [CrossRef] [PubMed]
- Tang, Y.-B.; Wang, Q.-L.; Zhu, B.-Y.; Huang, H.-L.; Liao, D.-F. Phytoestrogen genistein supplementation increases eNOS and decreases caveolin-1 expression in ovariectomized rat hearts. Sheng Li Xue Bao 2005, 57, 373–378. [Google Scholar]
- Fisher, N.D.; Hughes, M.; Gerhard-Herman, M.; Hollenberg, N.K. Flavanol-rich cocoa induces nitric-oxide-dependent vaso-dilation in healthy humans. J. Hypertens. 2003, 21, 2281–2286. [Google Scholar] [CrossRef]
- Hollenberg, K. Vascular action of cocoa flavanols in humans: The roots of the story. J. Cardiovasc. Pharmacol. 2006, 47 (Suppl. 2), S99–S102. [Google Scholar] [CrossRef]
- Ramirez-Sanchez, I.; Maya, L.; Ceballos, G.; Villarreal, F. (−)-Epicatechin Activation of Endothelial Cell Endothelial Nitric Oxide Synthase, Nitric Oxide, and Related Signaling Pathways. Hypertension 2010, 55, 1398–1405. [Google Scholar] [CrossRef]
- Ramírez-Sánchez, I.; Maya, L.; Ceballos, G.; Villarreal, F. (−)-Epicatechin induces calcium and translocation independent eNOS activation in arterial endothelial cells. Am. J. Physiol. Physiol. 2011, 300, C880–C887. [Google Scholar] [CrossRef] [PubMed]
- De, P.R.; Sotto, I.; Wood, E.G. Cocoa flavanols reduce N-terminal pro-B-type natriuretic peptide in patients with chronic heart failure. ESC Heart Fail. 2016, 3, 97–106. [Google Scholar]
- Caton, P.W.; Pothecary, M.R.; Lees, D.M.; Khan, N.Q.; Wood, E.G.; Shoji, T.; Kanda, T.; Rull, G.; Corder, R. Regulation of Vascular Endothelial Function by Procyanidin-Rich Foods and Beverages. J. Agric. Food Chem. 2010, 58, 4008–4013. [Google Scholar] [CrossRef]
- Brixius, K.; Willms, S.; Napp, A. Crataegus special extract WS 1442 induces an endothelium-dependent, NO-mediated vas-orelaxation via eNOS-phosphorylation at serine 1177. Cardiovasc. Drugs Ther. 2006, 20, 177–184. [Google Scholar] [CrossRef] [PubMed]
- Anselm, E.; Socorro, V.F.M.; Dal-Ros, S.; Schott, C.; Bronner, C.; Schini-Kerth, V.B. Crataegus Special Extract WS 1442 Causes Endothelium-dependent Relaxation via a Redox-sensitive Src- and Akt-dependent Activation of Endothelial NO Synthase but Not via Activation of Estrogen Receptors. J. Cardiovasc. Pharmacol. 2009, 53, 253–260. [Google Scholar] [CrossRef]
- Pittler, M.H.; Guo, R.; Ernst, E. Hawthorn extract for treating chronic heart failure. Cochrane Database Syst. Rev. 2008, 1, CD005312. [Google Scholar]
- Lundberg, J.O.; Weitzberg, E. NO Generation from Nitrite and Its Role in Vascular Control. Arterioscler. Thromb. Vasc. Biol. 2005, 25, 915–922. [Google Scholar] [CrossRef]
- Lundberg, J.O.; Gladwin, M.T.; Ahluwalia, A.; Benjamin, N.; Bryan, N.S.; Butler, A.R.; Cabrales, P.; Fago, A.; Feelisch, M.; Ford, P.C.; et al. Nitrate and nitrite in biology, nutrition and therapeutics. Nat. Chem. Biol. 2009, 5, 865–869. [Google Scholar] [CrossRef]
- Kapil, V.; Milsom, A.B.; Okorie, M. Inorganic nitrate supplementation lowers blood pressure in humans: Role for nitrite-derived NO. Hypertension 2010, 56, 274–281. [Google Scholar] [CrossRef] [PubMed]
- Webb, A.J.; Patel, N.; Loukogeorgakis, S.; Okorie, M.; Aboud, Z.; Misra, S.; Rashid, R.; Miall, P.; Deanfield, J.; Benjamin, N.; et al. Acute Blood Pressure Lowering, Vasoprotective, and Antiplatelet Properties of Dietary Nitrate via Bioconversion to Nitrite. Hypertension 2008, 51, 784–790. [Google Scholar] [CrossRef]
- Coles, L.T.; Clifton, P.M. Effect of beetroot juice on lowering blood pressure in free-living, disease-free adults: A randomized, placebo-controlled trial. Nutr. J. 2012, 11, 106. [Google Scholar] [CrossRef]
- Jajja, A.; Sutyarjoko, A.; Lara, J.; Rennie, K.; Brandt, K.; Qadir, O.; Siervo, M. Beetroot supplementation lowers daily systolic blood pressure in older, overweight subjects. Nutr. Res. 2014, 34, 868–875. [Google Scholar] [CrossRef]
- Kapil, V.; Khambata, R.S.; Robertson, A.; Caulfield, M.J.; Ahluwalia, A. Dietary nitrate provides sustained blood pressure lowering in hypertensive patients: A randomized, phase 2, double-blind, placebo-controlled study. Hypertension 2015, 65, 320–327. [Google Scholar] [CrossRef]
- Bailey, S.J.; Winyard, P.; Vanhatalo, A.; Blackwell, J.R.; DiMenna, F.J.; Wilkerson, D.P.; Tarr, J.; Benjamin, N.; Jones, A.M. Dietary nitrate supplementation reduces the O2 cost of low-intensity exercise and enhances tolerance to high-intensity exercise in humans. J. Appl. Physiol. 2009, 107, 1144–1155. [Google Scholar] [CrossRef]
- Lansley, K.E.; Winyard, P.G.; Fulford, J. Dietary nitrate supplementation reduces the O2 cost of walking and running: A pla-cebo-controlled study. J. Appl. Physiol. 2011, 110, 591–600. [Google Scholar] [CrossRef]
- Ferguson, S.K.; Holdsworth, C.T.; Colburn, T.D.; Wright, J.L.; Craig, J.C.; Fees, A.; Jones, A.M.; Allen, J.D.; Musch, T.I.; Poole, D.C. Dietary nitrate supplementation: Impact on skeletal muscle vascular control in exercising rats with chronic heart failure. J. Appl. Physiol. 2016, 121, 661–669. [Google Scholar] [CrossRef]
- Coggan, A.R.; Leibowitz, J.L.; Spearie, C.A. Acute Dietary Nitrate Intake Improves Muscle Contractile Function in Patients with Heart Failure: A Double-Blind, Placebo-Controlled, Randomized Trial. Circ. Heart Fail. 2015, 8, 914–920. [Google Scholar] [CrossRef]
- Eggebeen, J.; Kim-Shapiro, D.B.; Haykowsky, M. One Week of Daily Dosing with Beetroot Juice Improves Submaximal Endurance and Blood Pressure in Older Patients with Heart Failure and Preserved Ejection Fraction. JACC Heart Fail. 2016, 4, 428–437. [Google Scholar] [CrossRef]
- Coggan, A.R.; Broadstreet, S.R.; Mahmood, K. Dietary Nitrate Increases VO2peak and Performance but Does Not Alter Ventilation or Efficiency in Patients with Heart Failure with Reduced Ejection Fraction. J. Card. Fail. 2018, 24, 65–73. [Google Scholar] [CrossRef]
- Hirai, D.M.; Zelt, J.T.; Jones, J.H.; Castanhas, L.G.; Bentley, R.F.; Earle, W.; Staples, P.; Tschakovsky, M.E.; McCans, J.; O’Donnell, D.E.; et al. Dietary nitrate supplementation and exercise tolerance in patients with heart failure with reduced ejection fraction. Am. J. Physiol. Integr. Comp. Physiol. 2017, 312, R13–R22. [Google Scholar] [CrossRef] [PubMed]
- Dubin, R.F.; Shah, S.J. Soluble Guanylate Cyclase Stimulators: A Novel Treatment Option for Heart Failure Associated with Cardiorenal Syndromes? Curr. Heart Fail. Rep. 2016, 13, 132–139. [Google Scholar] [CrossRef] [PubMed]
- Pieske, B.; Butler, J.; Filippatos, G.; Lam, C.; Maggioni, A.P.; Ponikowski, P.; Shah, S.; Solomon, S.; Kraigher-Krainer, E.; Samano, E.T.; et al. Rationale and design of the SOluble guanylate Cyclase stimulatoR in heArT failurE Studies (SOCRATES). Eur. J. Heart Fail. 2014, 16, 1026–1038. [Google Scholar] [CrossRef]
- Gheorghiade, M.; Marti, C.N.; Sabbah, H.N.; Roessig, L.; Greene, S.J.; Boehm, M.; Burnett, J.C.; Campia, U.; Cleland, J.G.F.; Collins, S.P.; et al. Soluble guanylate cyclase: A potential therapeutic target for heart failure. Heart Fail. Rev. 2012, 18, 123–134. [Google Scholar] [CrossRef]
- Armstrong, P.W.; Roessig, L.; Patel, M.J. A Multicenter, Randomized, Double-Blind, Placebo-Controlled Trial of the Efficacy and Safety of the Oral Soluble Guanylate Cyclase Stimulator: The VICTORIA Trial. JACC Heart Fail. 2018, 6, 96–104. [Google Scholar] [CrossRef] [PubMed]
- Sandner, P.; Stasch, J.P. Anti-fibrotic effects of soluble guanylate cyclase stimulators and activators: A review of the preclinical evidence. Respir. Med. 2017, 122, S1–S9. [Google Scholar] [CrossRef]
- Breitenstein, S.; Roessig, L.; Sandner, P.; Lewis, K.S. Novel sGC Stimulators and sGC Activators for the Treatment of Heart Failure. Handb. Exp. Pharmacol. 2017, 243, 225–247. [Google Scholar]
- Vesely, D. Biotin enhances guanylate cyclase activity. Science 1982, 216, 1329–1330. [Google Scholar] [CrossRef]
- Vesely, D.L.; Wormser, H.C.; Bramson, H.N. Biotin analogs activate guanylate cyclase. Mol. Cell. Biochem. 1984, 60, 109–114. [Google Scholar] [CrossRef]
- Singh, I.N.; Dakshinamurti, K. Stimulation of guanylate cyclase and RNA polymerase II activities in HeLa cells and fibroblasts by biotin. Mol. Cell. Biochem. 1988, 79, 47–55. [Google Scholar] [CrossRef]
- Watanabe-Kamiyama, M.; Kamiyama, S.; Horiuchi, K. Antihypertensive effect of biotin in stroke-prone spontaneously hy-pertensive rats. Br. J. Nutr. 2008, 99, 756–763. [Google Scholar] [CrossRef] [PubMed]
- Tourbah, A.; Lebrun-Frenay, C.; Edan, G.; Clanet, M.; Papeix, C.; Vukusic, S.; De Sèze, J.; Debouverie, M.; Gout, O.; Clavelou, P.; et al. MD1003 (high-dose biotin) for the treatment of progressive multiple sclerosis: A randomised, double-blind, placebo-controlled study. Mult. Scler. J. 2016, 22, 1719–1731. [Google Scholar] [CrossRef] [PubMed]
- McCarty, M.F.; DiNicolantonio, J.J. Neuroprotective potential of high-dose biotin. Med. Hypotheses 2017, 109, 145–149. [Google Scholar] [CrossRef] [PubMed]
- McCarty, M.F. Supplementation with Phycocyanobilin, Citrulline, Taurine, and Supranutritional Doses of Folic Acid and Biotin—Potential for Preventing or Slowing the Progression of Diabetic Complications. Healthcare 2017, 5, 15. [Google Scholar] [CrossRef]
- Mock, D.M. Biotin: From Nutrition to Therapeutics. J. Nutr. 2017, 147, 1487–1492. [Google Scholar] [CrossRef]
- Zhou, Z.; Martin, E.; Sharina, I.; Esposito, I.; Szabo, C.; Bucci, M.; Cirino, G.; Papapetropoulos, A. Regulation of soluble guanylyl cyclase redox state by hydrogen sulfide. Pharmacol. Res. 2016, 111, 556–562. [Google Scholar] [CrossRef]
- Takimoto, E.; Champion, H.C.; Li, M.; Belardi, D.F.; Ren, S.; Rodriguez, E.R.; Bedja, D.; Gabrielson, K.L.; Wang, Y.A.; Kass, D. Chronic inhibition of cyclic GMP phosphodiesterase 5A prevents and reverses cardiac hypertrophy. Nat. Med. 2005, 11, 214–222. [Google Scholar] [CrossRef] [PubMed]
- Zhuang, X.-D.; Long, M.; Li, F.; Hu, X.; Liao, X.-X.; Du, Z.-M. PDE5 inhibitor sildenafil in the treatment of heart failure: A meta-analysis of randomized controlled trials. Int. J. Cardiol. 2014, 172, 581–587. [Google Scholar] [CrossRef]
- Vecchis, R.; Cesaro, A.; Ariano, C. Therapeutic benefits of phosphodiesterase-5 inhibition in chronic heart failure: A meta-analysis. Interv. Med. Appl. Sci. 2017, 9, 123–135. [Google Scholar] [CrossRef]
- De Vecchis, R.; Cesaro, A.; Ariano, C.; Giasi, A.; Cioppa, C. Phosphodiesterase-5 Inhibitors Improve Clinical Outcomes, Exercise Capacity and Pulmonary Hemodynamics in Patients with Heart Failure with Reduced Left Ventricular Ejection Fraction: A Meta-Analysis. J. Clin. Med. Res. 2017, 9, 488–498. [Google Scholar] [CrossRef] [PubMed]
- Szabo, C. Hydrogen sulfide, an enhancer of vascular nitric oxide signaling: Mechanisms and implications. Am. J. Physiol. Physiol. 2017, 312, C3–C15. [Google Scholar] [CrossRef]
- Endo, J.; Arita, M. Cardioprotective mechanism of omega-3 polyunsaturated fatty acids. J. Cardiol. 2016, 67, 22–27. [Google Scholar] [CrossRef] [PubMed]
- Leaf, A.; Xiao, Y.-F.; Kang, J.; Billman, G. Membrane Effects of the n-3 Fish Oil Fatty Acids, which Prevent Fatal Ventricular Arrhythmias. J. Membr. Biol. 2005, 206, 129–139. [Google Scholar] [CrossRef]
- Xiao, Y.-F.; Sigg, D.; Leaf, A. The Antiarrhythmic Effect of n-3 Polyunsaturated Fatty Acids: Modulation of Cardiac Ion Channels as a Potential Mechanism. J. Membr. Biol. 2005, 206, 141–154. [Google Scholar] [CrossRef] [PubMed]
- Chen, J.; Shearer, G.C.; Chen, Q.; Healy, C.L.; Beyer, A.J.; Nareddy, V.B.; Gerdes, A.M.; Harris, W.S.; O’Connell, T.D.; Wang, D. Omega-3 Fatty Acids Prevent Pressure Overload–Induced Cardiac Fibrosis through Activation of Cyclic GMP/Protein Kinase G Signaling in Cardiac Fibroblasts. Circulation 2011, 123, 584–593. [Google Scholar] [CrossRef]
- Eclov, J.A.; Qian, Q.; Redetzke, R.; Chen, Q.; Wu, S.C.; Healy, C.L.; Ortmeier, S.B.; Harmon, E.; Shearer, G.C.; O’Connell, T.D. EPA, not DHA, prevents fibrosis in pressure overload-induced heart failure: Potential role of free fatty acid receptor 4. J. Lipid Res. 2015, 56, 2297–2308. [Google Scholar] [CrossRef]
- O’Connell, T.D.; Block, R.C.; Huang, S.P.; Shearer, G.C. Omega3-Polyunsaturated fatty acids for heart failure: Effects of dose on efficacy and novel signaling through free fatty acid receptor 4. J. Mol. Cell. Cardiol. 2017, 103, 74–92. [Google Scholar] [CrossRef] [PubMed]
- Ohnishi, H.; Saito, Y. Eicosapentaenoic Acid (EPA) Reduces Cardiovascular Events: Relationship with the EPA/Arachidonic Acid Ratio. J. Atheroscler. Thromb. 2013, 20, 861–877. [Google Scholar] [CrossRef][Green Version]
- Fischer, S.; Weber, P.C. Prostaglandin I3 is formed in vivo in man after dietary eicosapentaenoic acid. Nature 1984, 307, 165–168. [Google Scholar] [CrossRef] [PubMed]
- Knapp, H.R.; Reilly, I.A.; Alessandrini, P.; Fitzgerald, G.A. In Vivo Indexes of Platelet and Vascular Function during Fish-Oil Administration in Patients with Atherosclerosis. N. Engl. J. Med. 1986, 314, 937–942. [Google Scholar] [CrossRef] [PubMed]
- Kobzar, G.; Mardla, V.; Järving, I.; Samel, N. Comparison of anti-aggregatory effects of PGI2, PGI3 and iloprost on human and rabbit platelets. Cell. Physiol. Biochem. 2001, 11, 279–284. [Google Scholar] [CrossRef]
- Watanabe, S.; Yoshihisa, A.; Kanno, Y.; Takiguchi, M.; Yokokawa, T.; Sato, A.; Miura, S.; Shimizu, T.; Abe, S.; Sato, T.; et al. Associations with Eicosapentaenoic Acid to Arachidonic Acid Ratio and Mortality in Hospitalized Heart Failure Patients. J. Card. Fail. 2016, 22, 962–969. [Google Scholar] [CrossRef]
- Nagahara, Y.; Motoyama, S.; Sarai, M.; Ito, H.; Kawai, H.; Takakuwa, Y.; Miyagi, M.; Shibata, D.; Takahashi, H.; Naruse, H.; et al. Eicosapentaenoic acid to arachidonic acid (EPA/AA) ratio as an associated factor of high risk plaque on coronary computed tomography in patients without coronary artery disease. Atherosclerosis 2016, 250, 30–37. [Google Scholar] [CrossRef]
- Hasegawa, T.; Otsuka, K.; Iguchi, T.; Matsumoto, K.; Ehara, S.; Nakata, S.; Nishimura, S.; Kataoka, T.; Shimada, K.; Yoshiyama, M. Serum n-3 to n-6 polyunsaturated fatty acids ratio correlates with coronary plaque vulnerability: An optical coherence tomography study. Heart Vessels 2013, 29, 596–602. [Google Scholar] [CrossRef]
- Yagi, S.; Aihara, K.-I.; Fukuda, D.; Takashima, A.; Bando, M.; Hara, T.; Nishimoto, S.; Ise, T.; Kusunose, K.; Yamaguchi, K.; et al. Reduced ratio of eicosapentaenoic acid and docosahexaenoic acid to arachidonic acid is associated with early onset of acute coronary syndrome. Nutr. J. 2015, 14, 111. [Google Scholar] [CrossRef]
- Kramer, H.; Stevens, J.; Grimminger, F.; Seeger, W. Fish oil fatty acids and human platelets: Dose-dependent decrease in dienoic and increase in trienoic thromboxane generation. Biochem. Pharmacol. 1996, 52, 1211–1217. [Google Scholar] [CrossRef]
- Shah, K.B.; Duda, M.K.; O’Shea, K.M. The cardioprotective effects of fish oil during pressure overload are blocked by high fat intake: Role of cardiac phospholipid remodeling. Hypertension 2009, 54, 605–611. [Google Scholar] [CrossRef]
- Kunutsor, S.K.; Khan, H.; Laukkanen, J.A. Serum magnesium and risk of new onset heart failure in men: The Kuopio Ischemic Heart Disease Study. Eur. J. Epidemiol. 2016, 31, 1035–1043. [Google Scholar] [CrossRef] [PubMed]
- Reffelmann, T.; Dörr, M.; Ittermann, T.; Schwahn, C.; Völzke, H.; Ruppert, J.; Robinson, D.; Felix, S.B. Low serum magnesium concentrations predict increase in left ventricular mass over 5 years independently of common cardiovascular risk factors. Atherosclerosis 2010, 213, 563–569. [Google Scholar] [CrossRef]
- Joao, M.P.; Azevedo, A.; Laranjinha, I. Lower serum magnesium is associated with cardiovascular risk factors and mortality in haemodialysis patients. Blood Purif. 2014, 38, 244–252. [Google Scholar] [CrossRef] [PubMed]
- Lutsey, P.L.; Alonso, A.; Michos, E.D.; Loehr, L.R.; Astor, B.C.; Coresh, J.; Folsom, A.R. Serum magnesium, phosphorus, and calcium are associated with risk of incident heart failure: The Atherosclerosis Risk in Communities (ARIC) Study. Am. J. Clin. Nutr. 2014, 100, 756–764. [Google Scholar] [CrossRef]
- Zhang, W.; Iso, H.; Ohira, T.; Date, C.; Tamakoshi, A. Associations of dietary magnesium intake with mortality from cardio-vascular disease: The JACC study. Atherosclerosis 2012, 221, 587–595. [Google Scholar] [CrossRef]
- Fang, X.; Wang, K.; Han, D.; He, X.; Wei, J.; Zhao, L.; Imam, M.U.; Ping, Z.; Li, Y.; Xu, Y.; et al. Dietary magnesium intake and the risk of cardiovascular disease, type 2 diabetes, and all-cause mortality: A dose–response meta-analysis of prospective cohort studies. BMC Med. 2016, 14, 1–13. [Google Scholar] [CrossRef]
- Taveira, T.H.; Ouellette, D.; Gulum, A. Relation of Magnesium Intake with Cardiac Function and Heart Failure Hospitali-zations in Black Adults: The Jackson Heart Study. Circ. Heart Fail. 2016, 9, e002698. [Google Scholar] [CrossRef] [PubMed]
- Douban, S.; Brodsky, M.A.; Whang, D.D.; Whang, R. Significance of magnesium in congestive heart failure. Am. Heart J. 1996, 132, 664–671. [Google Scholar] [CrossRef]
- Ohki, S.-Y.; Ikura, M.; Zhang, M. Identification of Mg2+-Binding Sites and the Role of Mg2+ on Target Recognition by Calmodulin. Biochemistry 1997, 36, 4309–4316. [Google Scholar] [CrossRef] [PubMed]
- Malmendal, A.; Linse, S.; Evenas, J.; Forsen, S.; Drakenberg, T. Battle for the EF-hands: Magnesium-calcium interference in calmodulin. Biochemistry 1999, 38, 11844–11850. [Google Scholar] [CrossRef] [PubMed]
- Grabarek, Z. Insights into modulation of calcium signaling by magnesium in calmodulin, troponin C and related EF-hand proteins. Biochim. Biophys. Acta 2011, 1813, 913–921. [Google Scholar] [CrossRef]
- Kawano, S. Dual mechanisms of Mg2+ block of ryanodine receptor Ca2+ release channel from cardiac sarcoplasmic reticulum. Recept. Channels 1998, 5, 405–416. [Google Scholar] [PubMed]
- Bertinato, J.; Lavergne, C.; Plouffe, L.J.; El Niaj, H.A. Small increases in dietary calcium above normal requirements exacerbate magnesium deficiency in rats fed a low magnesium diet. Magnes. Res. 2014, 27, 35–47. [Google Scholar] [CrossRef]
- DiNicolantonio, J.J.; Mccarty, M.F.; O’Keefe, J.H. Decreased magnesium status may mediate the increased cardiovascular risk associated with calcium supplementation. Open Heart 2017, 4, e000617. [Google Scholar] [CrossRef] [PubMed]
- Kircelli, F.; Peter, M.E.; Ok, E.S.; Celenk, F.G.; Yilmaz, M.; Steppan, S.; Asci, G.; Passlick-Deetjen, J. Magnesium reduces calcification in bovine vascular smooth muscle cells in a dose-dependent manner. Nephrol. Dial. Transplant. 2011, 27, 514–521. [Google Scholar] [CrossRef] [PubMed]
- Louvet, L.; Büchel, J.; Steppan, S.; Passlick-Deetjen, J.; Massy, Z.A. Magnesium prevents phosphate-induced calcification in human aortic vascular smooth muscle cells. Nephrol. Dial. Transplant. 2012, 28, 869–878. [Google Scholar] [CrossRef] [PubMed]
- Ter Braake, A.D.; Shanahan, C.M.; de Baaij, J.H.F. Magnesium Counteracts Vascular Calcification: Passive Interference or Active Modulation? Arterioscler. Thromb. Vasc. Biol. 2017, 37, 1431–1445. [Google Scholar] [CrossRef]
- Ishimura, E.; Okuno, S.; Kitatani, K.; Tsuchida, T.; Yamakawa, T.; Shioi, A.; Inaba, M.; Nishizawa, Y. Significant association between the presence of peripheral vascular calcification and lower serum magnesium in hemodialysis patients. Clin. Nephrol. 2007, 68, 222–227. [Google Scholar] [CrossRef]
- Meema, H.E.; Oreopoulos, D.G.; Rapoport, A. Serum magnesium level and arterial calcification in end-stage renal disease. Kidney Int. 1987, 32, 388–394. [Google Scholar] [CrossRef]
- Massy, Z.A.; Drüeke, T.B. Magnesium and outcomes in patients with chronic kidney disease: Focus on vascular calcification, atherosclerosis and survival. Clin. Kidney J. 2012, 5, i52–i61. [Google Scholar] [CrossRef]
- Lee, S.Y.; Hyun, Y.Y.; Lee, K.B.; Kim, H. Low serum magnesium is associated with coronary artery calcification in a Korean population at low risk for cardiovascular disease. Nutr. Metab. Cardiovasc. Dis. 2015, 25, 1056–1061. [Google Scholar] [CrossRef] [PubMed]
- Sakaguchi, Y.; Hamano, T.; Isaka, Y. Effects of Magnesium on the Phosphate Toxicity in Chronic Kidney Disease: Time for Intervention Studies. Nutrients 2017, 9, 112. [Google Scholar] [CrossRef]
- Schurgers, L.; Dissel, P.; Spronk, H.; Soute, B.; Dhore, C.; Cleutjens, J.; Vermeer, C. Role of vitamin K and vitamin K-dependent proteins in vascular calcification. Zeitschrift für Kardiologie 2001, 90, III57–III63. [Google Scholar] [CrossRef]
- Shea, M.K.; Holden, R.M. Vitamin K Status and Vascular Calcification: Evidence from Observational and Clinical Studies. Adv. Nutr. 2012, 3, 158–165. [Google Scholar] [CrossRef] [PubMed]
- Vossen, L.M.; Schurgers, L.J.; van Varik, B.J. Menaquinone-7 Supplementation to Reduce Vascular Calcification in Patients with Coronary Artery Disease: Rationale and Study Protocol (VitaK-CAC Trial). Nutrients 2015, 7, 8905–8915. [Google Scholar] [CrossRef] [PubMed]
- Beulens, J.W.J.; Booth, S.L.; van den Heuvel, E.G.; Stoecklin, E.; Baka, A.; Vermeer, C. The role of menaquinones (vitamin K2) in human health. Br. J. Nutr. 2013, 110, 1357–1368. [Google Scholar] [CrossRef]
- Geiss, K.R.; Stergiou, N.; Neuenfeld, H.U.J.; Jester, H.G. Effects of magnesium orotate on exercise tolerance in patients with coronary heart disease. Cardiovasc. Drugs Ther. 1998, 12 (Suppl. 2), 153–156. [Google Scholar] [CrossRef] [PubMed]
- Jasmin, G.; Proschek, L. Effect of orotic acid and magnesium orotate on the development and progression of the UM-X7.1 hamster hereditary cardiomyopathy. Cardiovasc. Drugs Ther. 1998, 12, 189–195. [Google Scholar] [CrossRef]
- Branea, I.; Gaiţă, D.; Drăgulescu, I.; Socoteanu, I.; Luca, C.; Mancaş, S.; DrĂgan, S.; Iurciuc, M.; Velimirovici, D.; Gaşpar, M.; et al. Assessment of treatment with orotate magnesium in early postoperative period of patients with cardiac insufficiency and coronary artery by-pass grafts (ATOMIC). Rom. J. Intern. Med. 2004, 37, 287–296. [Google Scholar]
- Rosenfeldt, F.L. Editorial: Metabolic Supplementation with Orotic Acid and Magnesium Orotate. Cardiovasc. Drugs Ther. 1998, 12, 147–152. [Google Scholar] [CrossRef]
- Stepura, O.B.; Martynow, A.I. Magnesium orotate in severe congestive heart failure (MACH). Int. J. Cardiol. 2009, 134, 145–147. [Google Scholar] [CrossRef]
- Aonuma, S.; Hama, T.; Tamaki, N.; Okumura, H. Orotate as a beta-alanine donor for anserine and carnosine biosynthesis, and effects of actinomycin D and azauracil on their pathway. J. Biochem. 1969, 66, 123–132. [Google Scholar] [CrossRef]
- McCarty, M.F.; DiNicolantonio, J.J. Beta-Alanine and orotate as supplements for cardiac protection. Open Heart 2014, 1, e000119. [Google Scholar] [CrossRef]
- Alabovsky, V.V.; Boldyrev, A.A.; Vinokurov, A.A.; VKh, S. Effect of histidine-containing dipeptides on isolated heart under ischemia/reperfusion. Biochem. Biokhimiia 1997, 62, 77–87. [Google Scholar]
- Sale, C.; Saunders, B.; Harris, R.C. Effect of beta-alanine supplementation on muscle carnosine concentrations and exercise performance. Amino Acids 2009, 39, 321–333. [Google Scholar] [CrossRef]
- Saunders, B.; Elliott-Sale, K.; Artioli, G.G. Beta-alanine supplementation to improve exercise capacity and performance: A systematic review and meta-analysis. Br. J. Sports Med. 2017, 51, 658–669. [Google Scholar] [CrossRef] [PubMed]
- Lombardi, C.; Carubelli, V.; Lazzarini, V.; Vizzardi, E.; Bordonali, T.; Ciccarese, C.; Castrini, A.I.; Cas, A.D.; Nodari, S.; Metra, M. Effects of oral administration of orodispersible levo-carnosine on quality of life and exercise performance in patients with chronic heart failure. Nutrition 2015, 31, 72–78. [Google Scholar] [CrossRef]
- Everaert, I.; Taes, Y.; De Heer, E.; Baelde, H.; Zutinic, A.; Yard, B.; Sauerhöfer, S.; Vanhee, L.; Delanghe, J.; Aldini, G.; et al. Low plasma carnosinase activity promotes carnosinemia after carnosine ingestion in humans. Am. J. Physiol. Physiol. 2012, 302, F1537–F1544. [Google Scholar] [CrossRef] [PubMed]
- Koeth, R.A.; Wang, Z.; Levison, B.S.; Buffa, J.A.; Org, E.; Sheehy, B.T.; Britt, E.B.; Fu, X.; Wu, Y.; Li, L.; et al. Intestinal microbiota metabolism of l-carnitine, a nutrient in red meat, promotes atherosclerosis. Nat. Med. 2013, 19, 576–585. [Google Scholar] [CrossRef]
- DiNicolantonio, J.J.; Lavie, C.J.; Fares, H.; Menezes, A.R.; O’Keefe, J.H. L-Carnitine in the Secondary Prevention of Cardiovascular Disease: Systematic Review and Meta-analysis. Mayo Clin. Proc. 2013, 88, 544–551. [Google Scholar] [CrossRef] [PubMed]
- Shang, R.; Sun, Z.; Li, H. Effective dosing of L-carnitine in the secondary prevention of cardiovascular disease: A systematic review and meta-analysis. BMC Cardiovasc. Disord. 2014, 14, 88. [Google Scholar] [CrossRef]
- Mccarty, M.F. L-Carnitine Consumption, Its Metabolism by Intestinal Microbiota, and Cardiovascular Health. Mayo Clin. Proc. 2013, 88, 786–789. [Google Scholar] [CrossRef] [PubMed]
- Song, X.; Qu, H.; Yang, Z.; Rong, J.; Cai, W.; Zhou, H. Efficacy and Safety of L-Carnitine Treatment for Chronic Heart Failure: A Meta-Analysis of Randomized Controlled Trials. BioMed Res. Int. 2017, 2017, 6274854. [Google Scholar] [CrossRef]
- Pettit, F.H.; Pelley, J.W.; Reed, L.J. Regulation of pyruvate dehydrogenase kinase and phosphatase by acetyl-CoA/CoA and NADH/NAD ratios. Biochem. Biophys. Res. Commun. 1975, 65, 575–582. [Google Scholar] [CrossRef]
- Calvani, M.; Reda, E.; Arrigoni-Martelli, E. Regulation by carnitine of myocardial fatty acid and carbohydrate metabolism under normal and pathological conditions. Basic Res. Cardiol. 2000, 95, 75–83. [Google Scholar] [CrossRef] [PubMed]
- Karmazyn, M.; Moffat, M.P. Role of Na+/H+ exchange in cardiac physiology and pathophysiology: Mediation of myocardial reperfusion injury by the pH paradox. Cardiovasc. Res. 1993, 27, 915–924. [Google Scholar] [CrossRef]
- Stvolinsky, S.L.; Dobrota, D. Anti-ischemic activity of carnosine. Biochemistry 2000, 65, 849–855. [Google Scholar]
- Azuma, J.; Sawamura, A.; Awata, N.; Ohta, H.; Hamaguchi, T.; Harada, H.; Takihara, K.; Hasegawa, H.; Yamagami, T.; Ishiyama, T.; et al. Therapeutic effect of taurine in congestive heart failure: A double-blind crossover trial. Clin. Cardiol. 1985, 8, 276–282. [Google Scholar] [CrossRef] [PubMed]
- Azuma, J.; Hasegawa, H.; Sawamura, A.; Awata, N.; Ogura, K.; Harada, H.; Yamamura, Y.; Kishimoto, S. Therapy of congestive heart failure with orally administered taurine. Clin. Ther. 1983, 5, 398–408. [Google Scholar]
- Beyranvand, M.R.; Khalafi, M.K.; Roshan, V.D.; Choobineh, S.; Parsa, S.A.; Piranfar, M.A. Effect of taurine supplementation on exercise capacity of patients with heart failure. J. Cardiol. 2011, 57, 333–337. [Google Scholar] [CrossRef]
- Azuma, J.; Sawamura, A.; Awata, N. Usefulness of Taurine in Chronic Congestive Heart Failure and Its Prospective Application. Jpn. Circ. J. 1992, 56, 95–99. [Google Scholar] [CrossRef] [PubMed]
- Azuma, J.; Takihara, K.; Awata, N. Beneficial effect of taurine on congestive heart failure induced by chronic aortic regur-gitation in rabbits. Res. Commun. Chem. Pathol. Pharmacol. 1984, 45, 261–270. [Google Scholar]
- Takihara, K.; Azuma, J.; Awata, N.; Ohta, H.; Hamaguchi, T.; Sawamura, A.; Tanaka, Y.; Kishimoto, S.; Sperelakis, N. Beneficial effect of taurine in rabbits with chronic congestive heart failure. Am. Heart J. 1986, 112, 1278–1284. [Google Scholar] [CrossRef]
- Pion, P.D.; Kittleson, M.D.; Skiles, M.L.; Rogers, Q.R.; Morris, J.G. Dilated Cardiomyopathy Associated with Taurine Deficiency in the Domestic Cat: Relationship to Diet and Myocardial Taurine Content. Tissue Eng. 1992, 315, 63–73. [Google Scholar] [CrossRef]
- Ito, T.; Kimura, Y.; Uozumi, Y. Taurine depletion caused by knocking out the taurine transporter gene leads to cardiomyo-pathy with cardiac atrophy. J. Mol. Cell. Cardiol. 2008, 44, 927–937. [Google Scholar] [CrossRef] [PubMed]
- Sun, Q.; Wang, B.; Li, Y. Taurine Supplementation Lowers Blood Pressure and Improves Vascular Function in Prehyper-tension: Randomized, Double-Blind, Placebo-Controlled Study. Hypertension 2016, 67, 541–549. [Google Scholar] [CrossRef]
- Yamori, Y.; Taguchi, T.; Hamada, A.; Kunimasa, K.; Mori, H.; Mori, M. Taurine in health and diseases: Consistent evidence from experimental and epidemiological studies. J. Biomed. Sci. 2010, 17, S6. [Google Scholar] [CrossRef] [PubMed]
- Murakami, S. Taurine and atherosclerosis. Amino Acids 2014, 46, 73–80. [Google Scholar] [CrossRef] [PubMed]
- Abebe, W.; Mozaffari, M.S. Role of taurine in the vasculature: An overview of experimental and human studies. Am. J. Cardiovasc. Dis. 2011, 1, 293–311. [Google Scholar]
- Wang, H.D.; Lu, X.X.; Lu, D.X. Glycine inhibits the LPS-induced increase in cytosolic Ca2+ concentration and TNFalpha production in cardiomyocytes by activating a glycine receptor. Acta Pharmacol. Sin. 2009, 30, 1107–1114. [Google Scholar] [CrossRef][Green Version]
- Zhong, Z.; Wheeler, M.D.; Li, X.; Froh, M.; Schemmer, P.; Yin, M.; Bunzendaul, H.; Bradford, B.; Lemasters, J.J. L-Glycine: A novel antiinflammatory, immunomodulatory, and cytoprotective agent. Curr. Opin. Clin. Nutr. Metab. Care 2003, 6, 229–240. [Google Scholar] [CrossRef]
- Mccarty, M.F.; DiNicolantonio, J.J. The cardiometabolic benefits of glycine: Is glycine an ‘antidote’ to dietary fructose? Open Heart 2014, 1, e000103. [Google Scholar] [CrossRef] [PubMed]
- Lu, Y.; Zhu, X.; Li, J.; Fang, R.; Wang, Z.; Zhang, J.; Li, K.; Li, X.; Bai, H.; Yang, Q.; et al. Glycine prevents pressure overload induced cardiac hypertrophy mediated by glycine receptor. Biochem. Pharmacol. 2017, 123, 40–51. [Google Scholar] [CrossRef] [PubMed]
- Zhong, X.; Li, X.; Qian, L. Glycine attenuates myocardial ischemia-reperfusion injury by inhibiting myocardial apoptosis in rats. J. Biomed. Res. 2012, 26, 346–354. [Google Scholar] [CrossRef] [PubMed]
- Schemmer, P.; Zhong, Z.; Galli, U.; Wheeler, M.D.; Xiangli, L.; Bradford, B.U.; Conzelmann, L.O.; Forman, D.; Boyer, J.; Thurman, R.G. Glycine reduces platelet aggregation. Amino Acids 2012, 44, 925–931. [Google Scholar] [CrossRef]
- Ding, Y.; Svingen, G.F.T.; Pedersen, E.R.; Gregory, J.F.; Ueland, P.M.; Tell, G.S.; Nygård, O.K. Plasma Glycine and Risk of Acute Myocardial Infarction in Patients With Suspected Stable Angina Pectoris. J. Am. Heart Assoc. 2016, 5, e002621. [Google Scholar] [CrossRef]
- Hughes, W.M., Jr.; Rodriguez, W.E.; Rosenberger, D. Role of copper and homocysteine in pressure overload heart failure. Cardiovasc. Toxicol. 2008, 8, 137–144. [Google Scholar] [CrossRef]
- Feng, W.; Ye, F.; Xue, W.; Zhou, Z.; Kang, Y.J. Copper Regulation of Hypoxia-Inducible Factor-1 Activity. Mol. Pharmacol. 2008, 75, 174–182. [Google Scholar] [CrossRef]
- Wang, T.; Li, R.; Lin, C.; Sun, M.; Kang, Y.J. Brief Communication: Copper suppression of vascular endothelial growth factor receptor-2 is involved in the regression of cardiomyocyte hypertrophy. Exp. Biol. Med. 2014, 239, 948–953. [Google Scholar] [CrossRef]
- Zheng, L.; Han, P.; Liu, J.; Li, R.; Yin, W.; Wang, T.; Zhang, W.; Kang, Y.J. Role of copper in regression of cardiac hypertrophy. Pharmacol. Ther. 2015, 148, 66–84. [Google Scholar] [CrossRef]
- Witte, K.K.; Nikitin, N.P.; Parker, A.C.; Von Haehling, S.; Volk, H.-D.; Anker, S.D.; Clark, A.L.; Cleland, J.G. The effect of micronutrient supplementation on quality-of-life and left ventricular function in elderly patients with chronic heart failure. Eur. Heart J. 2005, 26, 2238–2244. [Google Scholar] [CrossRef]
- Klevay, L.M. Heart failure improvement from a supplement containing copper. Eur. Heart J. 2005, 27, 117. [Google Scholar] [CrossRef]
- Zhang, S.; Liu, H.; Amarsingh, G.V.; Cheung, C.C.H.; Hogl, S.; Narayanan, U.; Zhang, L.; McHarg, S.; Xu, J.; Gong, D.; et al. Diabetic cardiomyopathy is associated with defective myocellular copper regulation and both defects are rectified by divalent copper chelation. Cardiovasc. Diabetol. 2014, 13, 100. [Google Scholar] [CrossRef] [PubMed]
- Brewer, G.J. Zinc acetate for the treatment of Wilson’s disease. Expert Opin. Pharmacother. 2001, 2, 1473–1477. [Google Scholar] [CrossRef] [PubMed]
- McMahon, D.J.; Carrelli, A.; Palmeri, N. Effect of Parathyroidectomy upon Left Ventricular Mass in Primary Hyperpara-thyroidism: A Meta-Analysis. J. Clin. Endocrinol. Metab. 2015, 100, 4399–4407. [Google Scholar] [CrossRef]
- Smogorzewski, M.; Zayed, M.; Zhang, Y.B.; Roe, J.; Massry, S.G. Parathyroid hormone increases cytosolic calcium concentration in adult rat cardiac myocytes. Am. J. Physiol. Circ. Physiol. 1993, 264, H1998–H2006. [Google Scholar] [CrossRef] [PubMed]
- Fallo, F.; Catena, C.; Camozzi, V.; Luisetto, G.; Cosma, C.; Plebani, M.; Lupia, M.; Tona, F.; Sechi, L. Low serum 25-hydroxyvitamin D levels are associated with left ventricular hypertrophy in essential hypertension. Nutr. Metab. Cardiovasc. Dis. 2012, 22, 871–876. [Google Scholar] [CrossRef] [PubMed]
- Costanzo, S.; De, C.A.; Di, C.A. Serum vitamin D deficiency and risk of hospitalization for heart failure: Prospective results from the Moli-sani study. Nutr. Metab. Cardiovasc. Dis. 2018, 28, 298–307. [Google Scholar] [CrossRef]
- Zhu, K.; Knuiman, M.; Divitini, M.; Hung, J.; Lim, E.M.; Cooke, B.R.; Walsh, J.P. Serum 25-hydroxyvitamin D as a predictor of mortality and cardiovascular events: A 20-year study of a community-based cohort. Clin. Endocrinol. 2018, 88, 154–163. [Google Scholar] [CrossRef]
- Lutsey, P.L.; Michos, E.D.; Misialek, J.R. Race and Vitamin D Binding Protein Gene Polymorphisms Modify the Association of 25-Hydroxyvitamin D and Incident Heart Failure: The ARIC (Atherosclerosis Risk in Communities) Study. JACC Heart Fail. 2015, 3, 347–356. [Google Scholar] [CrossRef]
- Li, Y.; Chen, C.; Liu, H.; Qian, G. Vitamin D, Parathyroid Hormone, and Heart Failure in a Chinese Elderly Population. Endocr. Pract. 2015, 21, 30–40. [Google Scholar] [CrossRef]
- Welles, C.C.; Whooley, M.A.; Karumanchi, S.A.; Hod, T.; Thadhani, R.; Berg, A.H.; Ix, J.H.; Mukamal, K.J. Vitamin D deficiency and cardiovascular events in patients with coronary heart disease: Data from the Heart and Soul Study. Am. J. Epidemiol. 2014, 179, 1279–1287. [Google Scholar] [CrossRef]
- Jiang, W.-L.; Gu, H.-B.; Zhang, Y.-F.; Xia, Q.-Q.; Qi, J.; Chen, J.-C. Vitamin D Supplementation in the Treatment of Chronic Heart Failure: A Meta-analysis of Randomized Controlled Trials. Clin. Cardiol. 2016, 39, 56–61. [Google Scholar] [CrossRef]
- D’Amore, C.; Marsico, F.; Parente, A.; Paolillo, S.; De Martino, F.; Gargiulo, P.; Ferrazzano, F.; De Roberto, A.; La Mura, L.; Marciano, C.; et al. Vitamin D deficiency and clinical outcome in patients with chronic heart failure: A review. Nutr. Metab. Cardiovasc. Dis. 2017, 27, 837–849. [Google Scholar] [CrossRef]
- Agarwal, M.; Phan, A.; Willix, R.; Barber, M., Jr.; Schwarz, E.R. Is vitamin D deficiency associated with heart failure? A review of current evidence. J. Cardiovasc. Pharmacol. Ther. 2011, 16, 354–363. [Google Scholar] [CrossRef] [PubMed]
- De Boer, R.A.; Meems, L.M.G.; van Veldhuisen, D.J. Vitamin D supplementation in heart failure: Case closed? Eur. Heart J. 2017, 38, 2287–2289. [Google Scholar] [CrossRef]
- Afzal, S.; Brondum-Jacobsen, P.; Bojesen, S.E.; Nordestgaard, B.G. Genetically low vitamin D concentrations and increased mortality: Mendelian randomisation analysis in three large cohorts. BMJ 2014, 349, g6330. [Google Scholar] [CrossRef] [PubMed]
- Halldin, M.; Fahlstadius, P.; de Faire, U.; Vikstrom, M.; Hellenius, M.L. The metabolic syndrome and left ventricular hypertro-phy—The influence of gender and physical activity. Blood Press. 2012, 21, 153–160. [Google Scholar] [CrossRef] [PubMed][Green Version]
- Salvetti, G.; Pucci, A.; Fierabracci, P. Prevalence of left ventricular hypertrophy and determinants of left ventricular mass in obese women. High Blood Press. Cardiovasc. Prev. 2012, 19, 33–39. [Google Scholar] [CrossRef] [PubMed]
- Gupta, R.K.; Gupta, R.; Makar, N.; Chaudhary, S.; Bhatheja, H.; Pathak, P. The Association of Left Ventricular Mass Index with Metabolic Syndrome in Comparison to Hypertensive Patients. J. Cardiovasc. Echogr. 2016, 26, 42–47. [Google Scholar] [CrossRef] [PubMed]
- Al-Daydamony, M.M.; El-Tahlawi, M. What Is the Effect of Metabolic Syndrome without Hypertension on Left Ventricular Hypertrophy? Echocardiography 2016, 33, 1284–1289. [Google Scholar] [CrossRef]
- Sukmoko, S.; Waspadji, S.; Alwi, I.; Nainggolan, G. Correlation between left ventricular mass and visceral fat thickness in obese women. Acta Med. Indones. 2006, 38, 135–141. [Google Scholar]
- Rider, O.J.; Francis, J.M.; Ali, M.K.; Byrne, J.; Clarke, K.; Neubauer, S.; Petersen, S.E. Determinants of left ventricular mass in obesity; a cardiovascular magnetic resonance study. J. Cardiovasc. Magn. Reson. 2009, 11, 9. [Google Scholar] [CrossRef]
- Neeland, I.J.; Gupta, S.; Ayers, C.R.; Turer, A.T.; Rame, J.E.; Das, S.R.; Berry, J.D.; Khera, A.; McGuire, D.K.; Vega, G.L.; et al. Relation of Regional Fat Distribution to Left Ventricular Structure and Function. Circ. Cardiovasc. Imaging 2013, 6, 800–807. [Google Scholar] [CrossRef]
- Tenenbaum, A.; Fisman, E.Z.; Schwammenthal, E.; Adler, Y.; Benderly, M.; Motro, M.; Shemesh, J. Increased prevalence of left ventricular hypertrophy in hypertensive women with type 2 diabetes mellitus. Cardiovasc. Diabetol. 2003, 2, 14. [Google Scholar] [CrossRef][Green Version]
- De Kreutzenberg, S.V.; Avogaro, A.; Tiengo, A.; Del Prato, S. Left ventricular mass in type 2 diabetes mellitus. A study employing a simple ECG index: The Cornell voltage. J. Endocrinol. Investig. 2000, 23, 139–144. [Google Scholar] [CrossRef]
- Sato, A.; Tarnow, L.; Nielsen, F.; Knudsen, E.; Parving, H.-H. Left ventricular hypertrophy in normoalbuminuric type 2 diabetic patients not taking antihypertensive treatment. QJM Int. J. Med. 2005, 98, 879–884. [Google Scholar] [CrossRef][Green Version]
- Eguchi, K.; Boden-Albala, B.; Jin, Z.; Rundek, T.; Sacco, R.L.; Homma, S.; Di Tullio, M.R. Association Between Diabetes Mellitus and Left Ventricular Hypertrophy in a Multiethnic Population. Am. J. Cardiol. 2008, 101, 1787–1791. [Google Scholar] [CrossRef]
- Frantz, S.; Kobzik, L.; Kim, Y.-D.; Fukazawa, R.; Medzhitov, R.; Lee, R.T.; Kelly, R.A. Toll4 (TLR4) expression in cardiac myocytes in normal and failing myocardium. J. Clin. Investig. 1999, 104, 271–280. [Google Scholar] [CrossRef]
- Sokolova, M.; Vinge, L.E.; Alfsnes, K.; Olsen, M.B.; Eide, L.; Kaasbøll, O.J.; Attramadal, H.; Torp, M.-K.; Fosshaug, L.E.; Rashidi, A.; et al. Palmitate promotes inflammatory responses and cellular senescence in cardiac fibroblasts. Biochim. Biophys. Acta 2017, 1862, 234–245. [Google Scholar] [CrossRef]
- Li, W.; Fang, Q.; Zhong, P.; Chen, L.; Wang, L.; Zhang, Y.; Wang, J.; Li, X.; Wang, Y.; Wang, J.; et al. EGFR Inhibition Blocks Palmitic Acid-induced inflammation in cardiomyocytes and Prevents Hyperlipidemia-induced Cardiac Injury in Mice. Sci. Rep. 2016, 6, 24580. [Google Scholar] [CrossRef]
- Zhong, P.; Quan, D.; Peng, J.; Xiong, X.; Liu, Y.; Kong, B.; Huang, H. Role of CaMKII in free fatty acid/hyperlipidemia-induced cardiac remodeling both in vitro and in vivo. J. Mol. Cell. Cardiol. 2017, 109, 1–16. [Google Scholar] [CrossRef] [PubMed]
- Hu, N.; Zhang, Y. TLR4 knockout attenuated high fat diet-induced cardiac dysfunction via NF-kappaB/JNK-dependent activation of autophagy. Biochim. Biophys. Acta 2017, 1863, 2001–2011. [Google Scholar] [CrossRef] [PubMed]
- Angeli, F.; Verdecchia, P.; Pellegrino, C. Association between periodontal disease and left ventricle mass in essential hypertension. Hypertension 2003, 41, 488–492. [Google Scholar] [CrossRef] [PubMed]
- Suzuki, J.-I.; Sato, H.; Kaneko, M.; Yoshida, A.; Aoyama, N.; Akimoto, S.; Wakayama, K.; Kumagai, H.; Ikeda, Y.; Akazawa, H.; et al. Periodontitis and myocardial hypertrophy. Hypertens. Res. 2016, 40, 324–328. [Google Scholar] [CrossRef]
- Fröhlich, H.; Herrmann, K.; Franke, J.; Karimi, A.; Täger, T.; Cebola, R.; Katus, H.A.; Zugck, C.; Frankenstein, L. Periodontitis in Chronic Heart Failure. Tex. Heart Inst. J. 2016, 43, 297–304. [Google Scholar] [CrossRef]
- Fallach, R.; Shainberg, A.; Avlas, O.; Fainblut, M.; Chepurko, Y.; Porat, E.; Hochhauser, E. Cardiomyocyte Toll-like receptor 4 is involved in heart dysfunction following septic shock or myocardial ischemia. J. Mol. Cell. Cardiol. 2010, 48, 1236–1244. [Google Scholar] [CrossRef]
- Avlas, O.; Fallach, R.; Shainberg, A.; Porat, E.; Hochhauser, E. Toll-like receptor 4 stimulation initiates an inflammatory response that decreases cardiomyocyte contractility. Antioxid. Redox Signal. 2011, 15, 1895–1909. [Google Scholar] [CrossRef]
- Yu, J.; Lu, Y.; Li, Y. Role of S100A1 in hypoxia-induced inflammatory response in cardiomyocytes via TLR4/ROS/NF-kappaB pathway. J. Pharm. Pharmacol. 2015, 67, 1240–1250. [Google Scholar] [CrossRef]
- Liu, L.; Wang, Y.; Cao, Z.Y. Up-regulated TLR4 in cardiomyocytes exacerbates heart failure after long-term myocardial in-farction. J. Cell. Mol. Med. 2015, 19, 2728–2740. [Google Scholar] [CrossRef]
- Knowlton, A.A. Paying for the Tolls: The High Cost of the Innate Immune System for the Cardiac Myocyte. Adv. Exp. Med. Biol. 2017, 1003, 17–34. [Google Scholar] [CrossRef]
- Yang, J.; Zhang, R.; Jiang, X.; Lv, J.; Li, Y.; Ye, H.; Liu, W.; Wang, G.; Zhang, C.; Zheng, N.; et al. Toll-like receptor 4–induced ryanodine receptor 2 oxidation and sarcoplasmic reticulum Ca2+ leakage promote cardiac contractile dysfunction in sepsis. J. Biol. Chem. 2018, 293, 794–807. [Google Scholar] [CrossRef] [PubMed]
- Katare, P.B.; Bagul, P.K.; Dinda, A.K.; Banerjee, S.K. Toll-Like Receptor 4 Inhibition Improves Oxidative Stress and Mito-chondrial Health in Isoproterenol-Induced Cardiac Hypertrophy in Rats. Front. Immunol 2017, 8, 719. [Google Scholar] [CrossRef]
- Zhang, C.; Mo, M.; Ding, W.; Liu, W.; Yan, D.; Deng, J.; Luo, X.; Liu, J. High-mobility group box 1 (HMGB1) impaired cardiac excitation–contraction coupling by enhancing the sarcoplasmic reticulum (SR) Ca2+ leak through TLR4–ROS signaling in cardiomyocytes. J. Mol. Cell. Cardiol. 2014, 74, 260–273. [Google Scholar] [CrossRef] [PubMed]
- Zhao, H.; Zhang, M.; Zhou, F.; Cao, W.; Bi, L.; Xie, Y.; Yang, Q.; Wang, S. Cinnamaldehyde ameliorates LPS-induced cardiac dysfunction via TLR4-NOX4 pathway: The regulation of autophagy and ROS production. J. Mol. Cell. Cardiol. 2016, 101, 11–24. [Google Scholar] [CrossRef] [PubMed]
- Akoumi, A.; Haffar, T.; Mousterji, M.; Kiss, R.S.; Bousette, N. Palmitate mediated diacylglycerol accumulation causes endo-plasmic reticulum stress, Plin2 degradation, and cell death in H9C2 cardiomyoblasts. Exp. Cell Res. 2017, 354, 85–94. [Google Scholar] [CrossRef] [PubMed]
- Russo, S.B.; Baicu, C.F.; Van Laer, A.; Geng, T.; Kasiganesan, H.; Zile, M.R.; Cowart, L.A. Ceramide synthase 5 mediates lipid-induced autophagy and hypertrophy in cardiomyocytes. J. Clin. Investig. 2012, 122, 3919–3930. [Google Scholar] [CrossRef]
- Butler, T.; Ashford, D.; Seymour, A.-M. Western diet increases cardiac ceramide content in healthy and hypertrophied hearts. Nutr. Metab. Cardiovasc. Dis. 2017, 27, 991–998. [Google Scholar] [CrossRef]
- Colin-Ramirez, E.; Castillo-Martinez, L.; Orea-Tejeda, A.; Zheng, Y.; Westerhout, C.M.; Ezekowitz, J.A. Dietary fatty acids intake and mortality in patients with heart failure. Nutrition 2014, 30, 1366–1371. [Google Scholar] [CrossRef] [PubMed]
- Yamagishi, K.; Nettleton, J.A.; Folsom, A.R. Plasma fatty acid composition and incident heart failure in middle-aged adults: The Atherosclerosis Risk in Communities (ARIC) Study. Am. Heart J. 2008, 156, 965–974. [Google Scholar] [CrossRef]
- Esselstyn, C.B.; Ellis, S.G., Jr.; Medendorp, S.V.; Crowe, T.D. A strategy to arrest and reverse coronary artery disease: A 5-year longitudinal study of a single physician’s practice. J. Fam. Pract. 1995, 41, 560–568. [Google Scholar] [PubMed]
- Esselstyn, C.B. A plant-based diet and coronary artery disease: A mandate for effective therapy. J. Geriatr. Cardiol. 2017, 14, 317–320. [Google Scholar]
- Esselstyn, C.B., Jr. Updating a 12-year experience with arrest and reversal therapy for coronary heart disease (an overdue req-uiem for palliative cardiology). Am. J. Cardiol. 1999, 84, 339–341. [Google Scholar] [CrossRef]
- Mccarty, M.F.; DiNicolantonio, J.J. Bioavailable dietary phosphate, a mediator of cardiovascular disease, may be decreased with plant-based diets, phosphate binders, niacin, and avoidance of phosphate additives. Nutrition 2014, 30, 739–747. [Google Scholar] [CrossRef]
- Mccarty, M.F. Plant-based diets relatively low in bioavailable phosphate and calcium may aid prevention and control of prostate cancer by lessening production of fibroblast growth factor 23. Med. Hypotheses 2017, 99, 68–72. [Google Scholar] [CrossRef]
- Giachelli, C.M. The emerging role of phosphate in vascular calcification. Kidney Int. 2009, 75, 890–897. [Google Scholar] [CrossRef] [PubMed]
- Ferro, C.J.; Chue, C.D.; Steeds, R.P.; Townend, J.N. Is lowering phosphate exposure the key to preventing arterial stiffening with age? Heart 2009, 95, 1770–1772. [Google Scholar] [CrossRef] [PubMed]
- Ellam, T.J.; Chico, T.J. Phosphate: The new cholesterol? The role of the phosphate axis in non-uremic vascular disease. Atherosclerosis 2012, 220, 310–318. [Google Scholar] [CrossRef] [PubMed]
- Mccarty, M.F.; DiNicolantonio, J.J. The Molecular Biology and Pathophysiology of Vascular Calcification. Postgrad. Med. 2014, 126, 54–64. [Google Scholar] [CrossRef]
- Gutiérrez, O.M.; Wolf, M.; Taylor, E.N. Fibroblast Growth Factor 23, Cardiovascular Disease Risk Factors, and Phosphorus Intake in the Health Professionals Follow-up Study. Clin. J. Am. Soc. Nephrol. 2011, 6, 2871–2878. [Google Scholar] [CrossRef]
- Vervloet, M.G.; Van Ittersum, F.J.; Büttler, R.M.; Heijboer, A.C.; Blankenstein, M.A.; Ter Wee, P.M. Effects of Dietary Phosphate and Calcium Intake on Fibroblast Growth Factor-23. Clin. J. Am. Soc. Nephrol. 2010, 6, 383–389. [Google Scholar] [CrossRef]
- Eckberg, K.; Kramer, H.; Wolf, M.; Durazo-Arvizu, R.; Tayo, B.; Luke, A.; Cooper, R. Impact of westernization on fibroblast growth factor 23 levels among individuals of African ancestry. Nephrol. Dial. Transplant. 2015, 30, 630–635. [Google Scholar] [CrossRef] [PubMed][Green Version]
- Yuen, S.N.; Kramer, H.; Luke, A. Fibroblast Growth Factor-23 (FGF-23) Levels Differ across Populations by Degree of In-dustrialization. J. Clin. Endocrinol. Metab. 2016, 101, 2246–2253. [Google Scholar] [CrossRef] [PubMed]
- Uribarri, J.; Calvo, M.S. Hidden Sources of Phosphorus in the Typical American Diet: Does it Matter in Nephrology? Semin. Dial. 2003, 16, 186–188. [Google Scholar] [CrossRef]
- Ritz, E.; Hahn, K.; Ketteler, M.; Kuhlmann, M.K.; Mann, J. Phosphate additives in food—A health risk. Dtsch. Ärzteblatt Int. 2012, 109, 49–55. [Google Scholar]
- Fontana, L.; Cummings, N.E.; Apelo, S.I.A. Decreased Consumption of Branched-Chain Amino Acids Improves Metabolic Health. Cell Rep. 2016, 16, 520–530. [Google Scholar] [CrossRef]
- McCarty, M.F. GCN2 and FGF21 are likely mediators of the protection from cancer, autoimmunity, obesity, and diabetes afforded by vegan diets. Med. Hypotheses 2014, 83, 365–371. [Google Scholar] [CrossRef]
- Castaño-Martinez, T.; Schumacher, F.; Schumacher, S. Methionine restriction prevents onset of type 2 diabetes in NZO mice. FASEB J. 2019, 33, 7092–7102. [Google Scholar] [CrossRef] [PubMed]
- De Sousa-Coelho, A.L.; Marrero, P.F.; Haro, D. Activating transcription factor 4-dependent induction of FGF21 during amino acid deprivation. Biochem. J. 2012, 443, 165–171. [Google Scholar] [CrossRef]
- Planavila, A.; Redondo, I.; Hondares, E.; Vinciguerra, M.; Munts, C.; Iglesias, R.; Gabrielli, L.A.; Sitges, M.; Giralt, M.; Van Bilsen, M.; et al. Fibroblast growth factor 21 protects against cardiac hypertrophy in mice. Nat. Commun. 2013, 4, 2019. [Google Scholar] [CrossRef]
- Planavila, A.; Redondo-Angulo, I.; Ribas, F.; Garrabou, G.; Casademont, J.; Giralt, M.; Villarroya, F. Fibroblast growth factor 21 protects the heart from oxidative stress. Cardiovasc. Res. 2014, 106, 19–31. [Google Scholar] [CrossRef] [PubMed]
- Joki, Y.; Ohashi, K.; Yuasa, D.; Shibata, R.; Ito, M.; Matsuo, K.; Kambara, T.; Uemura, Y.; Hayakawa, S.; Hiramatsu-Ito, M.; et al. FGF21 attenuates pathological myocardial remodeling following myocardial infarction through the adiponectin-dependent mechanism. Biochem. Biophys. Res. Commun. 2015, 459, 124–130. [Google Scholar] [CrossRef]
- Planavila, A.; Redondo-Angulo, I.; Villarroya, F. FGF21 and Cardiac Physiopathology. Front. Endocrinol. 2015, 6, 133. [Google Scholar] [CrossRef] [PubMed]
- Liang, P.; Zhong, L.; Gong, L. Fibroblast growth factor 21 protects rat cardiomyocytes from endoplasmic reticulum stress by promoting the fibroblast growth factor receptor 1-extracellular signalregulated kinase 1/2 signaling pathway. Int. J. Mol. Med. 2017, 40, 1477–1485. [Google Scholar] [CrossRef]
- Zhang, Y.; Xie, Y.; Berglund, E.D.; Coate, K.C.; He, T.T.; Katafuchi, T.; Xiao, G.; Potthoff, M.J.; Wei, W.; Wan, Y.; et al. The starvation hormone, fibroblast growth factor-21, extends lifespan in mice. eLife 2012, 1, e00065. [Google Scholar] [CrossRef]
- Mendelsohn, A.R.; Larrick, J.W. Fibroblast Growth Factor-21 Is a Promising Dietary Restriction Mimetic. Rejuvenation Res. 2012, 15, 624–628. [Google Scholar] [CrossRef]
- Salminen, A.; Kaarniranta, K.; Kauppinen, A. Regulation of longevity by FGF21: Interaction between energy metabolism and stress responses. Ageing Res. Rev. 2017, 37, 79–93. [Google Scholar] [CrossRef]
- Willcox, B.J.; Willcox, D.C.; Todoriki, H. Caloric restriction, the traditional Okinawan diet, and healthy aging: The diet of the world’s longest-lived people and its potential impact on morbidity and life span. Ann. N. Y. Acad. Sci. 2007, 1114, 434–455. [Google Scholar] [CrossRef]
- Mccarty, M.F.; Barroso-Aranda, J.; Contreras, F. The low-methionine content of vegan diets may make methionine restriction feasible as a life extension strategy. Med. Hypotheses 2009, 72, 125–128. [Google Scholar] [CrossRef] [PubMed]
- Wek, R.C.; Jiang, H.Y.; Anthony, T.G. Coping with stress: eIF2 kinases and translational control. Biochem. Soc. Trans. 2006, 34 Pt 1, 7–11. [Google Scholar] [CrossRef]
- Boyce, M.; Bryant, K.F.; Jousse, C.; Long, K.; Harding, H.P.; Scheuner, D.; Kaufman, R.J.; Ma, D.; Coen, D.M.; Ron, D.; et al. A Selective Inhibitor of eIF2 Dephosphorylation Protects Cells from ER Stress. Science 2005, 307, 935–939. [Google Scholar] [CrossRef] [PubMed]
- Qin, P.; Arabacilar, P.; Bernard, R.E.; Bao, W.; Olzinski, A.R.; Guo, Y.; Lal, H.; Eisennagel, S.H.; Platchek, M.C.; Xie, W.; et al. Activation of the Amino Acid Response Pathway Blunts the Effects of Cardiac Stress. J. Am. Heart Assoc. 2017, 6, e004453. [Google Scholar] [CrossRef]
- Rani, S.; Sreenivasaiah, P.K.; Cho, C.; Kim, D.H. Salubrinal Alleviates Pressure Overload-Induced Cardiac Hypertrophy by Inhibiting Endoplasmic Reticulum Stress Pathway. Mol. Cells 2017, 40, 66–72. [Google Scholar] [CrossRef]
- He, Y.-Y.; Liu, C.-L.; Li, X.; Li, R.-J.; Wang, L.-L.; He, K.-L. Salubrinal attenuates right ventricular hypertrophy and dysfunction in hypoxic pulmonary hypertension of rats. Vasc. Pharmacol. 2016, 87, 190–198. [Google Scholar] [CrossRef]
- Liu, Y.; Qi, S.Y.; Ru, L.S. Salubrinal improves cardiac function in rats with heart failure post myocardial infarction through reducing endoplasmic reticulum stress-associated apoptosis. Zhonghua Xin Xue Guan Bing Za Zhi 2016, 44, 494–500. [Google Scholar]
- Liu, Y.; Wang, J.; Qi, S.-Y.; Ru, L.-S.; Ding, C.; Wang, H.-J.; Zhao, J.-S.; Li, J.-J.; Li, A.-Y.; Wang, D.-M. Reduced Endoplasmic Reticulum Stress Might Alter the Course of Heart Failure via Caspase-12 and JNK Pathways. Can. J. Cardiol. 2014, 30, 368–375. [Google Scholar] [CrossRef]
- Lu, Z.; Xu, X.; Fassett, J.; Kwak, D.; Liu, X.; Hu, X.; Wang, H.; Guo, H.; Xu, D.; Yan, S.; et al. Loss of the eukaryotic initiation factor 2α kinase general control nonderepressible 2 protects mice from pressure overload-induced congestive heart failure without affecting ventricular hypertrophy. Hypertension 2014, 63, 128–135. [Google Scholar] [CrossRef]
- Campbell, T.C.; Chen, J. Energy balance: Interpretation of data from rural China. Toxicol. Sci. 1999, 52, 87–94. [Google Scholar] [CrossRef] [PubMed]
- Haddad, E.H.; Berk, L.S.; Kettering, J.D.; Hubbard, R.W.; Peters, W.R. Dietary intake and biochemical, hematologic, and immune status of vegans compared with nonvegetarians. Am. J. Clin. Nutr. 1999, 70, 586s–593s. [Google Scholar] [CrossRef] [PubMed]
- Spencer, E.A.; Appleby, P.N.; Davey, G.K.; Key, T.J. Diet and body mass index in 38 000 EPIC-Oxford meat-eaters, fish-eaters, vegetarians and vegans. Int. J. Obes. 2003, 27, 728–734. [Google Scholar] [CrossRef]
- Newby, P.K.; Tucker, K.L.; Wolk, A. Risk of overweight and obesity among semivegetarian, lactovegetarian, and vegan women. Am. J. Clin. Nutr. 2005, 81, 1267–1274. [Google Scholar] [CrossRef] [PubMed]
- Tonstad, S.; Butler, T.; Yan, R.; Fraser, G.E. Type of Vegetarian Diet, Body Weight, and Prevalence of Type 2 Diabetes. Diabetes Care 2009, 32, 791–796. [Google Scholar] [CrossRef]
- Tonstad, S.; Stewart, K.; Oda, K.; Batech, M.; Herring, R.; Fraser, G. Vegetarian diets and incidence of diabetes in the Adventist Health Study-2. Nutr. Metab. Cardiovasc. Dis. 2013, 23, 292–299. [Google Scholar] [CrossRef]
- Dod, H.S.; Bhardwaj, R.; Sajja, V.; Weidner, G.; Hobbs, G.R.; Konat, G.W.; Manivannan, S.; Gharib, W.; Warden, B.E.; Nanda, N.C.; et al. Effect of Intensive Lifestyle Changes on Endothelial Function and on Inflammatory Markers of Atherosclerosis. Am. J. Cardiol. 2010, 105, 362–367. [Google Scholar] [CrossRef]
- Mccarty, M.F. A shift in myocardial substrate, improved endothelial function, and diminished sympathetic activity may contribute to the anti-anginal impact of very-low-fat diets. Med. Hypotheses 2004, 62, 62–71. [Google Scholar] [CrossRef]
- Hall, W.L. Dietary saturated and unsaturated fats as determinants of blood pressure and vascular function. Nutr. Res. Rev. 2009, 22, 18–38. [Google Scholar] [CrossRef] [PubMed]
- Cook, B.; Cooper, D.; Fitzpatrick, D.; Smith, S.; Tierney, D.; Mehy, S. 8:45–90:00. The Influence of a High Fat Meal Compared to an Olestra Meal on Coronary Artery Endothelial Dysfunction by Rubidium (Rb)-82 Positron Emission Tomography (PET) and on Post Prandial Serum Triglycerides. Clin. Positron Imaging 2000, 3, 150. [Google Scholar] [CrossRef]
- Tektonidis, T.G.; Åkesson, A.; Gigante, B.; Wolk, A.; Larsson, S.C. A Mediterranean diet and risk of myocardial infarction, heart failure and stroke: A population-based cohort study. Atherosclerosis 2015, 243, 93–98. [Google Scholar] [CrossRef]
- Nettleton, J.A.; Steffen, L.M.; Loehr, L.R.; Rosamond, W.D.; Folsom, A.R. Incident Heart Failure Is Associated with Lower Whole-Grain Intake and Greater High-Fat Dairy and Egg Intake in the Atherosclerosis Risk in Communities (ARIC) Study. J. Am. Diet. Assoc. 2008, 108, 1881–1887. [Google Scholar] [CrossRef]
- Pfister, R.; Sharp, S.J.; Luben, R.; Wareham, N.J.; Khaw, K.-T. Plasma vitamin C predicts incident heart failure in men and women in European Prospective Investigation into Cancer and Nutrition–Norfolk prospective study. Am. Heart J. 2011, 162, 246–253. [Google Scholar] [CrossRef]
- Ashaye, A.; Gaziano, J.; Djoussé, L. Red meat consumption and risk of heart failure in male physicians. Nutr. Metab. Cardiovasc. Dis. 2011, 21, 941–946. [Google Scholar] [CrossRef] [PubMed]
- Wannamethee, S.G.; Bruckdorfer, K.R.; Shaper, A.G.; Papacosta, O.; Lennon, L.; Whincup, P.H. Plasma Vitamin C, but Not Vitamin E, Is Associated with Reduced Risk of Heart Failure in Older Men. Circ. Heart Fail. 2013, 6, 647–654. [Google Scholar] [CrossRef]
- Choi, E.Y.; Allen, K.; McDonnough, M.; Massera, D.; Ostfeld, R.J. A plant-based diet and heart failure: Case report and literature review. J. Geriatr. Cardiol. 2017, 14, 375–378. [Google Scholar] [PubMed]
- Mccarty, M.F. Sub-optimal taurine status may promote platelet hyperaggregability in vegetarians. Med. Hypotheses 2004, 63, 426–433. [Google Scholar] [CrossRef] [PubMed]
- Krajcovicová-Kudlácková, M.; Simoncic, R.; Béderová, A.; Babinská, K.; Béder, I. Correlation of carnitine levels to methionine and lysine intake. Physiol. Res. 2000, 49, 399–402. [Google Scholar] [PubMed]
- Fedorova, O.V.; Zernetkina, V.I.; Shilova, V.Y. Synthesis of an Endogenous Steroidal Na Pump Inhibitor Marinobufagenin, Implicated in Human Cardiovascular Diseases, Is Initiated by CYP27A1 via Bile Acid Pathway. Circ. Cardiovasc. Genet. 2015, 8, 736–745. [Google Scholar] [CrossRef]
- Fedorova, O.V.; Bagrov, A.Y. Inhibition of Na/K ATPase from rat aorta by two Na/K pump inhibitors, ouabain and marino-bufagenin: Evidence of interaction with different alpha-subunit isoforms. Am. J. Hypertens 1997, 10, 929–935. [Google Scholar] [CrossRef]
- Elkareh, J.; Kennedy, D.J.; Yashaswi, B.; Vetteth, S.; Shidyak, A.; Kim, E.G.R.; Smaili, S.; Periyasamy, S.M.; Hariri, I.M.; Fedorova, L.; et al. Marinobufagenin Stimulates Fibroblast Collagen Production and Causes Fibrosis in Experimental Uremic Cardiomyopathy. Hypertension 2007, 49, 215–224. [Google Scholar] [CrossRef]
- Orlov, S.N.; Klimanova, E.A.; Tverskoi, A.M.; Vladychenskaya, E.A.; Smolyaninova, L.V.; Lopina, O.D. Na+ i, K+ i-dependent and-independent signaling triggered by cardiotonic steroids: Facts and artifacts. Molecules 2017, 22, 635. [Google Scholar] [CrossRef]
- Fedorova, O.V.; Kolodkin, N.I.; Agalakova, N.I.; Lakatta, E.G.; Bagrov, A.Y. Marinobufagenin, an Endogenous α-1 Sodium Pump Ligand, in Hypertensive Dahl Salt-Sensitive Rats. Hypertension 2001, 37, 462–466. [Google Scholar] [CrossRef]
- Bagrov, A.Y.; Roukoyatkina, N.I.; Pinaev, A.G.; Dmitrieva, R.I.; Fedorova, O.V. Effects of two endogenous Na+,K+-ATPase inhibitors, marinobufagenin and ouabain, on isolated rat aorta. Eur. J. Pharmacol. 1995, 274, 151–158. [Google Scholar] [CrossRef]
- Bai, Y.; Morgan, E.E.; Giovannucci, D.R.; Pierre, S.V.; Philipson, K.D.; Askari, A.; Liu, L. Different roles of the cardiac Na+/Ca2+-exchanger in ouabain-induced inotropy, cell signaling, and hypertrophy. Am. J. Physiol. Circ. Physiol. 2013, 304, H427–H435. [Google Scholar] [CrossRef] [PubMed]
- Fedorova, O.V.; Talan, M.I.; Agalakova, N.I.; Lakatta, E.G.; Bagrov, A.Y. Endogenous Ligand of α 1 Sodium Pump, Marinobufagenin, Is a Novel Mediator of Sodium Chloride–Dependent Hypertension. Circulation 2002, 105, 1122–1127. [Google Scholar] [CrossRef]
- Orlov, S.N.; La, J.; Smolyaninova, L.V.; Dulin, N.O. Na+, K+-ATPase as a Target for Treatment of Tissue Fibrosis. Curr. Med. Chem. 2019, 26, 564–575. [Google Scholar] [CrossRef]
- Drummond, C.A.; Hill, M.C.; Shi, H.; Fan, X.; Xie, J.X.; Haller, S.T.; Kennedy, D.J.; Liu, J.; Garrett, M.R.; Xie, Z.; et al. Na/K-ATPase signaling regulates collagen synthesis through microRNA-29b-3p in cardiac fibroblasts. Physiol. Genom. 2016, 48, 220–229. [Google Scholar] [CrossRef] [PubMed]
- McCarty, M.F. Marinobufagenin may mediate the impact of salty diets on left ventricular hypertrophy by disrupting the protective function of coronary microvascular endothelium. Med. Hypotheses 2005, 64, 854–863. [Google Scholar] [CrossRef]
- Heimann, J.C.; Drumond, S.; Tadeu, A.; Alves, R.; Julio, A.; Barbato, G.; Dichtchekenian, V.; Marcondes, M. Left Ventricular Hypertrophy Is More Marked in Salt-Sensitive than in Salt-Resistant Hypertensive Patients. J. Cardiovasc. Pharmacol. 1991, 17, S122–S124. [Google Scholar] [CrossRef]
- de la Sierra, A.; Lluch, M.M.; Pare, J.C. Increased left ventricular mass in salt-sensitive hypertensive patients. J. Hum. Hypertens. 1996, 10, 795–799. [Google Scholar]
- Schmieder, R.E.; Messerli, F.H.; Rüddel, H.; Garavaglia, G.G.; Grube, E.; Núñez, B.D.; Schulte, W. Sodium intake modulates left ventricular hypertrophy in essential hypertension. J. Hypertens. 1988, 6, S148–S150. [Google Scholar] [CrossRef]
- Beil, A.H.; Schmieder, R.E. Salt intake as a determinant of cardiac hypertrophy. Blood Press. Suppl. 1995, 2, 30–34. [Google Scholar] [PubMed]
- Alderman, M.H.; Cohen, H.W. Impact of dietary sodium on cardiovascular disease morbidity and mortality. Curr. Hypertens. Rep. 2002, 4, 453–457. [Google Scholar] [CrossRef]
- Mente, A.; O’Donnell, M.; Rangarajan, S.; Dagenais, G.; Lear, S.; McQueen, M.; Diaz, R.; Avezum, A.; Lopez-Jaramillo, P.; Lanas, F.; et al. Associations of urinary sodium excretion with cardiovascular events in individuals with and without hypertension: A pooled analysis of data from four studies. Lancet 2016, 388, 465–475. [Google Scholar] [CrossRef]
- MacGregor, G.A.; Markandu, N.D.; Singer, D.R.; Cappuccio, F.P.; Shore, A.C.; Sagnella, G.A. Moderate sodium restriction with angiotensin converting enzyme inhibitor in essential hypertension: A double blind study. BMJ 1987, 294, 531–534. [Google Scholar] [CrossRef] [PubMed]
- Penton, D.; Czogalla, J.; Loffing, J. Dietary potassium and the renal control of salt balance and blood pressure. Pflügers Arch. Eur. J. Physiol. 2015, 467, 513–530. [Google Scholar] [CrossRef]
- Haring, B.; Wang, W.; Lee, E.T.; Jhamnani, S.; Howard, B.V.; Devereux, R.B. Effect of dietary sodium and potassium intake on left ventricular diastolic function and mass in adults ≤ 40 years (from the Strong Heart Study). Am. J. Cardiol. 2015, 115, 1244–1248. [Google Scholar] [CrossRef] [PubMed]
- Mervaala, E.M.; Paakkari, I.; Laakso, J.; Nevala, R.; Teräväinen, T.M.-L.; Fyhrquist, F.; Vapaatalo, H.; Karppanen, H. Replacement of salt by a novel potassium- and magnesium-enriched salt alternative improves the cardiovascular effects of ramipril. Br. J. Pharmacol. 1994, 111, 1189–1197. [Google Scholar] [CrossRef][Green Version]
- Chang, H.-Y.; Hu, Y.-W.; Yue, C.-S.J.; Wen, Y.-W.; Yeh, W.-T.; Hsu, L.-S.; Tsai, S.-Y.; Pan, W.-H. Effect of potassium-enriched salt on cardiovascular mortality and medical expenses of elderly men. Am. J. Clin. Nutr. 2006, 83, 1289–1296. [Google Scholar] [CrossRef] [PubMed]
- Jewiss, D.; Ostman, C.; Smart, N. The effect of resistance training on clinical outcomes in heart failure: A systematic review and meta-analysis. Int. J. Cardiol. 2016, 221, 674–681. [Google Scholar] [CrossRef]
- Pearson, M.; Smart, N. Effect of exercise training on endothelial function in heart failure patients: A systematic review meta-analysis. Int. J. Cardiol. 2017, 231, 234–243. [Google Scholar] [CrossRef] [PubMed]
- Chan, E.; Giallauria, F.; Vigorito, C.; Smart, N.A. Exercise training in heart failure patients with preserved ejection fraction: A systematic review and meta-analysis. Monaldi Arch. Chest Dis. 2016, 86, 759. [Google Scholar] [CrossRef]
- Ferrari, R.; Bachetti, T.; Agnoletti, L.; Comini, L.; Curello, S. Endothelial function and dysfunction in heart failure. Eur. Heart J. 1998, 19, G41–G47. [Google Scholar]
- Callaerts-Végh, Z.; Wenk, M.; Goebbels, U.; Dziekan, G.; Myers, J.; Dubach, P.; Haefeli, W.E. Influence of Intensive Physical Training on Urinary Nitrate Elimination and Plasma Endothelin-1 Levels in Patients with Congestive Heart Failure. J. Cardiopulm. Rehabil. 1998, 18, 450–457. [Google Scholar] [CrossRef] [PubMed]
- Gielen, S.; Erbs, S.; Schuler, G.; Hambrecht, R. Exercise training and endothelial dysfunction in coronary artery disease and chronic heart failure. From molecular biology to clinical benefits. Minerva Cardioangiol. 2002, 50, 95–106. [Google Scholar]
- Blum, N.; Blum, A. Beneficial effects of sauna bathing for heart failure patients. Exp. Clin. Cardiol. 2007, 12, 29–32. [Google Scholar]
- Mussivand, T.; Alshaer, H.; Haddad, H. Thermal therapy: A viable adjunct in the treatment of heart failure? Congest. Heart Fail. 2008, 14, 180–186. [Google Scholar] [CrossRef]
- Tei, C.; Imamura, T.; Kinugawa, K.; Inoue, T.; Masuyama, T.; Inoue, H.; Noike, H.; Muramatsu, T.; Takeishi, Y.; Saku, K.; et al. Waon Therapy for Managing Chronic Heart Failure—Results from a Multicenter Prospective Randomized WAON-CHF Study. Circ. J. 2016, 80, 827–834. [Google Scholar] [CrossRef]
- Haseba, S.; Sakakima, H.; Kubozono, T.; Nakao, S.; Ikeda, S. Combined effects of repeated sauna therapy and exercise training on cardiac function and physical activity in patients with chronic heart failure. Disabil. Rehabil. 2015, 38, 409–415. [Google Scholar] [CrossRef]
- Sobajima, M.; Nozawa, T.; Fukui, Y.; Ihori, H.; Ohori, T.; Fujii, N.; Inoue, H. Waon Therapy Improves Quality of Life as Well as Cardiac Function and Exercise Capacity in Patients with Chronic Heart Failure. Int. Heart J. 2015, 56, 203–208. [Google Scholar] [CrossRef]
- Brunt, V.E.; Howard, M.J.; Francisco, M.A.; Ely, B.R.; Minson, C.T. Passive heat therapy improves endothelial function, arterial stiffness and blood pressure in sedentary humans. J. Physiol. 2016, 594, 5329–5342. [Google Scholar] [CrossRef] [PubMed]
- Laukkanen, T.; Khan, H.; Zaccardi, F.; Laukkanen, J.A. Association between Sauna Bathing and Fatal Cardiovascular and All-Cause Mortality Events. JAMA Intern. Med. 2015, 175, 542. [Google Scholar] [CrossRef]
- Zarezadeh, M.; Faghfouri, A.H.; Radkhah, N.; Foroumandi, E.; Khorshidi, M.; Rasouli, A.; Zarei, M.; Honarvar, N.M.; Karzar, N.H.; Mamaghani, M.E. Spirulina supplementation and anthropometric indices: A systematic review and meta-analysis of controlled clinical trials. Phytother. Res. 2021, 35, 577–586. [Google Scholar] [CrossRef]
- Papanas, N.; Ziegler, D. Efficacy of α-lipoic acid in diabetic neuropathy. Expert Opin. Pharmacother. 2014, 15, 2721–2731. [Google Scholar] [CrossRef] [PubMed]
- Bumrungpert, A.; Lilitchan, S.; Tuntipopipat, S.; Tirawanchai, N.; Komindr, S. Ferulic Acid Supplementation Improves Lipid Profiles, Oxidative Stress, and Inflammatory Status in Hyperlipidemic Subjects: A Randomized, Double-Blind, Placebo-Controlled Clinical Trial. Nutrients 2018, 10, 713. [Google Scholar] [CrossRef] [PubMed]
- Zhang, X.X.; Zhao, D.S.; Wang, J. The treatment of cardiovascular diseases: A review of ferulic acid and its derivatives. Pharmazie 2021, 76, 55–60. [Google Scholar] [PubMed]
- Prasad, A.S.; Beck, F.W.J.; Bao, B.; Fitzgerald, J.T.; Snell, D.C.; Steinberg, J.D.; Cardozo, L.J. Zinc supplementation decreases incidence of infections in the elderly: Effect of zinc on generation of cytokines and oxidative stress. Am. J. Clin. Nutr. 2007, 85, 837–844. [Google Scholar] [CrossRef] [PubMed]
- Di Lorenzo, L.A.; Iannuzzo, G.; Parlato, A. Clinical Evidence for Q10 Coenzyme Supplementation in Heart Failure: From Energetics to Functional Improvement. J. Clin. Med. 2020, 9, 1266. [Google Scholar] [CrossRef] [PubMed]
- Alf, D.; Schmidt, M.E.; Siebrecht, S.C. Ubiquinol supplementation enhances peak power production in trained athletes: A double-blind, placebo controlled study. J. Int. Soc. Sports Nutr. 2013, 10, 24. [Google Scholar] [CrossRef]
- Kato, T.; Kasai, T.; Sato, A.; Ishiwata, S.; Yatsu, S.; Matsumoto, H.; Shitara, J.; Murata, A.; Shimizu, M.; Suda, S.; et al. Effects of 3-Month Astaxanthin Supplementation on Cardiac Function in Heart Failure Patients with Left Ventricular Systolic Dysfunction—A Pilot Study. Nutrients 2020, 12, 1896. [Google Scholar] [CrossRef]
- Xia, W.; Tang, N.; Kord-Varkaneh, H.; Low, T.Y.; Tan, S.C.; Wu, X.; Zhu, Y. The effects of astaxanthin supplementation on obesity, blood pressure, CRP, glycemic biomarkers, and lipid profile: A meta-analysis of randomized controlled trials. Pharmacol. Res. 2020, 161, 105113. [Google Scholar] [CrossRef]
- Gandolfi, J.V.; Di Bernardo, A.P.A.; Chanes, D.A.V. The Effects of Melatonin Supplementation on Sleep Quality and Assessment of the Serum Melatonin in ICU Patients: A Randomized Controlled Trial. Crit. Care Med. 2020, 48, e1286–e1293. [Google Scholar] [CrossRef]
- Ferlazzo, N.; Andolina, G.; Cannata, A.; Costanzo, M.G.; Rizzo, V.; Currò, M.; Ientile, R.; Caccamo, D. Is Melatonin the Cornucopia of the 21st Century? Antioxidants 2020, 9, 1088. [Google Scholar] [CrossRef]
- Kars, M.; Yang, L.; Gregor, M.F.; Mohammed, B.S.; Pietka, T.A.; Finck, B.N.; Patterson, B.W.; Horton, J.D.; Mittendorfer, B.; Hotamisligil, G.S.; et al. Tauroursodeoxycholic Acid May Improve Liver and Muscle but Not Adipose Tissue Insulin Sensitivity in Obese Men and Women. Diabetes 2010, 59, 1899–1905. [Google Scholar] [CrossRef]
- Liang, Y.; Xu, X.; Yin, M.; Zhang, Y.; Huang, L.; Chen, R.; Ni, J. Effects of berberine on blood glucose in patients with type 2 diabetes mellitus: A systematic literature review and a meta-analysis. Endocr. J. 2019, 66, 51–63. [Google Scholar] [CrossRef] [PubMed]
- Bernasconi, A.A.; Wiest, M.M.; Lavie, C.J.; Milani, R.V.; Laukkanen, J.A. Effect of Omega-3 Dosage on Cardiovascular Outcomes: An Updated Meta-Analysis and Meta-Regression of Interventional Trials. Mayo Clin. Proc. 2021, 96, 304–313. [Google Scholar] [CrossRef]
- Dibaba, D.T.; Xun, P.; Song, Y.; Rosanoff, A.; Shechter, M.; He, K. The effect of magnesium supplementation on blood pressure in individuals with insulin resistance, prediabetes, or noncommunicable chronic diseases: A meta-analysis of randomized controlled trials. Am. J. Clin. Nutr. 2017, 106, 921–929. [Google Scholar] [CrossRef]
- Shatanawi, A.; Momani, M.S.; Al-Aqtash, R.; Hamdan, M.H.; Gharaibeh, M.N. L-Citrulline Supplementation Increases Plasma Nitric Oxide Levels and Reduces Arginase Activity in Patients with Type 2 Diabetes. Front. Pharmacol. 2020, 11, 584669. [Google Scholar] [CrossRef] [PubMed]
- Rashid, J.; Kumar, S.S.; Job, K.M.; Liu, X.; Fike, C.D.; Sherwin, C.M.T. Therapeutic Potential of Citrulline as an Arginine Supplement: A Clinical Pharmacology Review. Pediatr. Drugs 2020, 22, 279–293. [Google Scholar] [CrossRef] [PubMed]
- Jonvik, K.L.; Nyakayiru, J.; Pinckaers, P.J.; Senden, J.M.; Van Loon, L.J.; Verdijk, L.B. Nitrate-Rich Vegetables Increase Plasma Nitrate and Nitrite Concentrations and Lower Blood Pressure in Healthy Adults. J. Nutr. 2016, 146, 986–993. [Google Scholar] [CrossRef]
- Woessner, M.N.; Levinger, I.; Allen, J.D.; McIlvenna, L.C.; Neil, C. The Effect of Dietary Inorganic Nitrate Supplementation on Cardiac Function during Submaximal Exercise in Men with Heart Failure with Reduced Ejection Fraction (HFrEF): A Pilot Study. Nutrients 2020, 12, 2132. [Google Scholar] [CrossRef] [PubMed]
- Koutsikos, D.; Agroyannis, B.; Tzanatos-Exarchou, H. Biotin for diabetic peripheral neuropathy. Biomed. Pharmacother. 1990, 44, 511–514. [Google Scholar] [CrossRef]
- McCarty, M.F. In type 1 diabetics, high-dose biotin may compensate for low hepatic insulin exposure, promoting a more normal expression of glycolytic and gluconeogenic enyzymes and thereby aiding glycemic control. Med. Hypotheses 2016, 95, 45–48. [Google Scholar] [CrossRef]
- De Gregorio, G.C.; Marini, H.; Alibrandi, A. Genistein Supplementation and Cardiac Function in Postmenopausal Women with Metabolic Syndrome: Results from a Pilot Strain-Echo Study. Nutrients 2017, 9, 584. [Google Scholar] [CrossRef]
- D’Anna, R.; Cannata, M.L.; Marini, H. Effects of the phytoestrogen genistein on hot flushes, endometrium, and vaginal epithelium in postmenopausal women: A 2-year randomized, double-blind, placebo-controlled study. Menopause 2009, 16, 301–306. [Google Scholar] [CrossRef]
- Heiss, C.; Finis, D.; Kleinbongard, P.; Hoffmann, A.; Rassaf, T.; Kelm, M.; Sies, H. Sustained Increase in Flow-Mediated Dilation after Daily Intake of High-Flavanol Cocoa Drink over 1 Week. J. Cardiovasc. Pharmacol. 2007, 49, 74–80. [Google Scholar] [CrossRef]
- Ried, K.; Fakler, P.; Stocks, N.P. Effect of cocoa on blood pressure. Cochrane Database Syst. Rev. 2017, 4, CD008893. [Google Scholar] [CrossRef]
- Sandoval, G.C.; Santillan, R.M.; Juarez, E.; Martlnez, G.R.; Juärez, M.E.C. Effect of glycine on hemoglobin glycation in diabetic patients. In Proceedings of the Western Pharmacology Society, Maui, HI, USA, 30 January–4 February 1999; Volume 42, pp. 31–32. [Google Scholar]
- Cruz, M.; Maldonado-Bernal, C.; Mondragon-Gonzalez, R. Glycine treatment decreases proinflammatory cytokines and increases interferon-gamma in patients with type 2 diabetes. J. Endocrinol. Investig. 2008, 31, 694–699. [Google Scholar] [CrossRef]
- Rojas-Sobarzo, L.; Olivares, M.; Brito, A.; Suazo, M.; Araya, M.; Pizarro, F. Copper Supplementation at 8 mg Neither Affects Circulating Lipids nor Liver Function in Apparently Healthy Chilean Men. Biol. Trace Elem. Res. 2013, 156, 1–4. [Google Scholar] [CrossRef]
- Witte, K.K.; Clark, A.L. Micronutrients and their supplementation in chronic cardiac failure. An update beyond theoretical perspectives. Heart Fail. Rev. 2006, 11, 65–74. [Google Scholar] [CrossRef]
- Cicero, A.F.; Colletti, A. Nutraceuticals and Dietary Supplements to Improve Quality of Life and Outcomes in Heart Failure Patients. Curr. Pharm. Des. 2017, 23, 1265–1272. [Google Scholar] [CrossRef]
- Jeejeebhoy, F.; Keith, M.; Freeman, M. Nutritional supplementation with MyoVive repletes essential cardiac myocyte nutrients and reduces left ventricular size in patients with left ventricular dysfunction. Am. Heart J. 2002, 143, 1092–1100. [Google Scholar] [CrossRef]
- Mccarty, M.F. Fish oil and other nutritional adjuvants for treatment of congestive heart failure. Med. Hypotheses 1996, 46, 400–406. [Google Scholar] [CrossRef]
- Pastori, D.; Pignatelli, P.; Carnevale, R.; Violi, F. Nox-2 up-regulation and platelet activation: Novel insights. Prostaglandins Other Lipid Mediat. 2015, 120, 50–55. [Google Scholar] [CrossRef] [PubMed]
- Sun, Q.-A.; Madamanchi, N.R.; Runge, M.S. Oxidative stress, NADPH oxidases, and arteries. Hämostaseologie 2016, 36, 77–88. [Google Scholar] [CrossRef] [PubMed]
- Quesada, I.; Lucero, A.; Amaya, C.; Meijles, D.; Cifuentes, M.; Pagano, P.; Castro, C. Selective inactivation of NADPH oxidase 2 causes regression of vascularization and the size and stability of atherosclerotic plaques. Atherosclerosis 2015, 242, 469–475. [Google Scholar] [CrossRef]
- Azumi, H.; Inoue, N.; Ohashi, Y. Superoxide generation in directional coronary atherectomy specimens of patients with angina pectoris: Important role of NAD(P)H oxidase. Arterioscler. Thromb. Vasc. Biol. 2002, 22, 1838–1844. [Google Scholar] [CrossRef]
- Xu, S.; Chamseddine, A.H.; Carrell, S.; Miller, F.J. Nox4 NADPH oxidase contributes to smooth muscle cell phenotypes associated with unstable atherosclerotic plaques. Redox Biol. 2014, 2, 642–650. [Google Scholar] [CrossRef] [PubMed]
- Peng, J.-J.; Liu, B.; Xu, J.-Y.; Peng, J.; Luo, X.-J. NADPH oxidase: Its potential role in promotion of pulmonary arterial hypertension. Naunyn Schmiedeberg’s Arch. Pharmacol. 2017, 390, 331–338. [Google Scholar] [CrossRef]
- Paravicini, T.M.; Touyz, R.M. NADPH Oxidases, Reactive Oxygen Species, and Hypertension: Clinical implications and therapeutic possibilities. Diabetes Care 2008, 31, S170–S180. [Google Scholar] [CrossRef]
- Guzik, B.; Sagan, A.; Ludew, D.; Mrowiecki, W.; Chwała, M.; Bujak-Gizycka, B.; Filip, G.; Grudzien, G.; Kapelak, B.; Żmudka, K.; et al. Mechanisms of oxidative stress in human aortic aneurysms—Association with clinical risk factors for atherosclerosis and disease severity. Int. J. Cardiol. 2013, 168, 2389–2396. [Google Scholar] [CrossRef]
- Xiong, W.; MacTaggart, J.N.; Knispel, R.; Worth, J.M.; Zhu, Z.; Li, Y.; Sun, Y.; Baxter, B.T.; Johanning, J.M. Inhibition of reactive oxygen species attenuates aneurysm formation in a murine model. Atherosclerosis 2009, 202, 128–134. [Google Scholar] [CrossRef] [PubMed]
- Tada, Y.; Yano, S.; Yamaguchi, T.; Okazaki, K.; Ogawa, N.; Morita, M.; Sugimoto, T. Advanced Glycation End Products-induced Vascular Calcification is Mediated by Oxidative Stress: Functional Roles of NAD(P)H-oxidase. Horm. Metab. Res. 2012, 45, 267–272. [Google Scholar] [CrossRef]
- Yamada, S.; Taniguchi, M.; Tokumoto, M.; Toyonaga, J.; Fujisaki, K.; Suehiro, T.; Noguchi, H.; Iida, M.; Tsuruya, K.; Kitazono, T. The antioxidant tempol ameliorates arterial medial calcification in uremic rats: Important role of oxidative stress in the pathogenesis of vascular calcification in chronic kidney disease. J. Bone Miner. Res. 2012, 27, 474–485. [Google Scholar] [CrossRef]
- De Silva, T.M.; Miller, A.A. Cerebral Small Vessel Disease: Targeting Oxidative Stress as a Novel Therapeutic Strategy? Front. Pharmacol. 2016, 7, 61. [Google Scholar] [CrossRef]
- Huang, A.; Young, T.L.; Dang, V.T.; Shi, Y.; McAlpine, C.S.; Werstuck, G.H. 4-phenylbutyrate and valproate treatment attenuates the progression of atherosclerosis and stabilizes existing plaques. Atherosclerosis 2017, 266, 103–112. [Google Scholar] [CrossRef]
- Ivanova, E.A.; Orekhov, A.N. The Role of Endoplasmic Reticulum Stress and Unfolded Protein Response in Atherosclerosis. Int. J. Mol. Sci. 2016, 17, 193. [Google Scholar] [CrossRef]
- Tsukano, H.; Gotoh, T.; Endo, M.; Miyata, K.; Tazume, H.; Kadomatsu, T.; Yano, M.; Iwawaki, T.; Kohno, K.; Araki, K.; et al. The Endoplasmic Reticulum Stress-C/EBP Homologous Protein Pathway-Mediated Apoptosis in Macrophages Contributes to the Instability of Atherosclerotic Plaques. Arterioscler. Thromb. Vasc. Biol. 2010, 30, 1925–1932. [Google Scholar] [CrossRef]
- Furmanik, M.; Shanahan, C.M. Endoplasmic reticulum stress in arterial smooth muscle cells: A novel regulator of vascular disease. Curr. Cardiol. Rev. 2017, 13, 94–105. [Google Scholar]
- Jia, L.X.; Zhang, W.M.; Zhang, H.J. Mechanical stretch-induced endoplasmic reticulum stress, apoptosis and inflammation contribute to thoracic aortic aneurysm and dissection. J. Pathol. 2015, 236, 373–383. [Google Scholar] [CrossRef]
- Wu, Y.; Adi, D.; Long, M. 4-Phenylbutyric Acid Induces Protection against Pulmonary Arterial Hypertension in Rats. PLoS ONE 2016, 11, e0157538. [Google Scholar] [CrossRef]
- Dromparis, P.; Paulin, R.; Stenson, T.H.; Haromy, A.; Sutendra, G.; Michelakis, E.D. Attenuating Endoplasmic Reticulum Stress as a Novel Therapeutic Strategy in Pulmonary Hypertension. Circulation 2013, 127, 115–125. [Google Scholar] [CrossRef]
- Young, C.N. Endoplasmic reticulum stress in the pathogenesis of hypertension. Exp. Physiol. 2017, 102, 869–884. [Google Scholar] [CrossRef]
- Förstermann, U. Nitric oxide and oxidative stress in vascular disease. Pflügers Arch. Eur. J. Physiol. 2010, 459, 923–939. [Google Scholar] [CrossRef] [PubMed]
- Li, H.; Förstermann, U. Uncoupling of endothelial NO synthase in atherosclerosis and vascular disease. Curr. Opin. Pharmacol. 2013, 13, 161–167. [Google Scholar] [CrossRef] [PubMed]
- Gielis, J.F.; Lin, J.Y.; Wingler, K.; Van Schil, P.E.; Schmidt, H.H.; Moens, A.L. Pathogenetic role of eNOS uncoupling in cardiopulmonary disorders. Free Radic. Biol. Med. 2011, 50, 765–776. [Google Scholar] [CrossRef]
- Bakker, J.R.; Bondonno, N.P.; Gaspari, T.A. Low dose dietary nitrate improves endothelial dysfunction and plaque stability in the ApoE(-/-) mouse fed a high fat diet. Free Radic. Biol. Med. 2016, 99, 189–198. [Google Scholar] [CrossRef]
- Jaitovich, A.; Jourd’Heuil, D. A Brief Overview of Nitric Oxide and Reactive Oxygen Species Signaling in Hypoxia-Induced Pulmonary Hypertension. Adv. Exp. Med. Biol. 2017, 967, 71–81. [Google Scholar] [CrossRef]
- Wang, Z.-J.; Wu, J.; Guo, W.; Zhu, Y.-Z. Atherosclerosis and the Hydrogen Sulfide Signaling Pathway—Therapeutic Approaches to Disease Prevention. Cell. Physiol. Biochem. 2017, 42, 859–875. [Google Scholar] [CrossRef] [PubMed]
- Meng, G.; Ma, Y.; Xie, L.; Ferro, A.; Ji, Y. Emerging role of hydrogen sulfide in hypertension and related cardiovascular diseases. Br. J. Pharmacol. 2015, 172, 5501–5511. [Google Scholar] [CrossRef]
- Yu, X.-H.; Cui, L.-B.; Wu, K.; Zheng, X.-L.; Cayabyab, F.S.; Chen, Z.-W.; Tang, C.-K. Hydrogen sulfide as a potent cardiovascular protective agent. Clin. Chim. Acta 2014, 437, 78–87. [Google Scholar] [CrossRef]
- Mani, S.; Untereiner, A.; Wu, L.; Wang, R. Hydrogen Sulfide and the Pathogenesis of Atherosclerosis. Antioxid. Redox Signal. 2014, 20, 805–817. [Google Scholar] [CrossRef]
- Brampton, J.; Aaronson, P.I. Role of Hydrogen Sulfide in Systemic and Pulmonary Hypertension: Cellular Mechanisms and Therapeutic Implications. Cardiovasc. Hematol. Agents Med. Chem. 2016, 14, 4–22. [Google Scholar] [CrossRef] [PubMed]
- Yang, R.; Teng, X.; Li, H.; Xue, H.-M.; Guo, Q.; Xiao, L.; Wu, Y.-M. Hydrogen Sulfide Improves Vascular Calcification in Rats by Inhibiting Endoplasmic Reticulum Stress. Oxidative Med. Cell. Longev. 2016, 2016, 9095242. [Google Scholar] [CrossRef]
- Emerson, M. Hydrogen Sulfide and Platelets: A Possible Role in Thrombosis. Handb. Exp. Pharmacol. 2015, 230, 153–162. [Google Scholar] [PubMed]
- Kieboom, B.C.T.; Niemeijer, M.N.; Leening, M.J.G.; Berg, M.E.V.D.; Franco, O.H.; Deckers, J.W.; Hofman, A.; Zietse, R.; Stricker, B.H.; Hoorn, E.J. Serum Magnesium and the Risk of Death from Coronary Heart Disease and Sudden Cardiac Death. J. Am. Heart Assoc. 2016, 5, e002707. [Google Scholar] [CrossRef] [PubMed]
- Shechter, M.; Merz, C.B.; Paul-Labrador, M.; Meisel, S.R.; Rude, R.K.; Molloy, M.D.; Dwyer, J.H.; Shah, P.K.; Kaul, S. Oral magnesium supplementation inhibits platelet-dependent thrombosis in patients with coronary artery disease. Am. J. Cardiol. 1999, 84, 152–156. [Google Scholar] [CrossRef]
- Posadas-Sánchez, R.; Posadas-Romero, C.; Cardoso-Saldaña, G.; Vargas-Alarcón, G.; Villarreal-Molina, M.T.; Pérez-Hernández, N.; Rodríguez-Pérez, J.M.; Medina-Urrutia, A.; Jorge-Galarza, E.; Juárez-Rojas, J.G.; et al. Serum magnesium is inversely associated with coronary artery calcification in the Genetics of Atherosclerotic Disease (GEA) study. Nutr. J. 2015, 15, 1–7. [Google Scholar] [CrossRef] [PubMed]
- Han, C.Y. Roles of Reactive Oxygen Species on Insulin Resistance in Adipose Tissue. Diabetes Metab. J. 2016, 40, 272–279. [Google Scholar] [CrossRef]
- Den Hartigh, L.J.; Omer, M.; Goodspeed, L. Adipocyte-Specific Deficiency of NADPH Oxidase 4 Delays the Onset of Insulin Resistance and Attenuates Adipose Tissue Inflammation in Obesity. Arterioscler. Thromb. Vasc. Biol. 2017, 37, 466–475. [Google Scholar] [CrossRef]
- Khitan, Z.; Harsh, M.; Sodhi, K.; Shapiro, J.I.; Abraham, N.G. HO-1 Upregulation Attenuates Adipocyte Dysfunction, Obesity, and Isoprostane Levels in Mice Fed High Fructose Diets. J. Nutr. Metab. 2014, 2014, 1–13. [Google Scholar] [CrossRef] [PubMed]
- Cao, J.; Peterson, S.J.; Sodhi, K.; Vanella, L.; Barbagallo, I.; Rodella, L.F.; Schwartzman, M.L.; Abraham, N.G.; Kappas, A. Heme Oxygenase Gene Targeting to Adipocytes Attenuates Adiposity and Vascular Dysfunction in Mice Fed a High-Fat Diet. Hypertension 2012, 60, 467–475. [Google Scholar] [CrossRef]
- Furukawa, S.; Fujita, T.; Shimabukuro, M. Increased oxidative stress in obesity and its impact on metabolic syndrome. J. Clin. Investig. 2004, 114, 1752–1761. [Google Scholar] [CrossRef]
- Liu, J.; Dong, H.; Zhang, Y. Bilirubin Increases Insulin Sensitivity by Regulating Cholesterol Metabolism, Adipokines and PPARgamma Levels. Sci. Rep. 2015, 5, 9886. [Google Scholar] [CrossRef]
- Szulinska, M.; Gibas-Dorna, M.; Miller-Kasprzak, E.; Suliburska, J.; Miczke, A.; Walczak-Gałezewska, M.; Stelmach-Mardas, M.; Walkowiak, J.; Bogdanski, P. Spirulina maxima improves insulin sensitivity, lipid profile, and total antioxidant status in obese patients with well-treated hypertension: A randomized double-blind placebo-controlled study. Eur. Rev. Med. Pharmacol. Sci. 2017, 21, 2473–2481. [Google Scholar]
- Hozayen, W.G.; Mahmoud, A.M.; Soliman, H.A.; Mostafa, S.R. Spirulina versicolor improves insulin sensitivity and attenuates hyperglycemia-mediated oxidative stress in fructose-fed rats. J. Intercult. Ethnopharmacol. 2016, 5, 57–64. [Google Scholar] [CrossRef]
- Ichimura, M.; Kato, S.; Tsuneyama, K.; Matsutake, S.; Kamogawa, M.; Hirao, E.; Miyata, A.; Mori, S.; Yamaguchi, N.; Suruga, K.; et al. Phycocyanin prevents hypertension and low serum adiponectin level in a rat model of metabolic syndrome. Nutr. Res. 2013, 33, 397–405. [Google Scholar] [CrossRef] [PubMed]
- Kawasaki, N.; Asada, R.; Saito, A.; Kanemoto, S.; Imaizumi, K. Obesity-induced endoplasmic reticulum stress causes chronic inflammation in adipose tissue. Sci. Rep. 2012, 2, 799. [Google Scholar] [CrossRef] [PubMed]
- Ghosh, A.K.; Garg, S.K.; Mau, T.; O’Brien, M.; Liu, J.; Yung, R. Elevated Endoplasmic Reticulum Stress Response Contributes to Adipose Tissue Inflammation in Aging. J. Gerontol. Ser. A Boil. Sci. Med. Sci. 2014, 70, 1320–1329. [Google Scholar] [CrossRef] [PubMed]
- Özcan, U.; Yilmaz, E.; Özcan, L.; Furuhashi, M.; Vaillancourt, E.; Smith, R.O.; Görgün, C.Z.; Hotamisligil, G.S. Chemical Chaperones Reduce ER Stress and Restore Glucose Homeostasis in a Mouse Model of Type 2 Diabetes. Science 2006, 313, 1137–1140. [Google Scholar] [CrossRef]
- Guo, Q.; Xu, L.; Liu, J.; Li, H.; Sun, H.; Wu, S.; Zhou, B. Fibroblast growth factor 21 reverses suppression of adiponectin expression via inhibiting endoplasmic reticulum stress in adipose tissue of obese mice. Exp. Biol. Med. 2017, 242, 441–447. [Google Scholar] [CrossRef] [PubMed]
- Jiao, P.; Ma, J.; Feng, B. FFA-induced adipocyte inflammation and insulin resistance: Involvement of ER stress and IKKbeta pathways. Obesity 2011, 19, 483–491. [Google Scholar] [CrossRef]
- Hoffmann, L.S.; Etzrodt, J.; Willkomm, L. Stimulation of soluble guanylyl cyclase protects against obesity by recruiting brown adipose tissue. Nat. Commun. 2015, 6, 7235. [Google Scholar] [CrossRef] [PubMed]
- Joffin, N.; Jaubert, A.-M.; Durant, S.; Bastin, J.; De Bandt, J.-P.; Cynober, L.; Moinard, C.; Forest, C.; Noirez, P. Citrulline induces fatty acid release selectively in visceral adipose tissue from old rats. Mol. Nutr. Food Res. 2014, 58, 1765–1775. [Google Scholar] [CrossRef] [PubMed]
- Untereiner, A.; Wu, L. Hydrogen Sulfide and Glucose Homeostasis: A Tale of Sweet and the Stink. Antioxid. Redox Signal. 2018, 28, 1463–1482. [Google Scholar] [CrossRef]
- Bełtowski, J.; Jamroz-Wiśniewska, A. Hydrogen Sulfide in the Adipose Tissue—Physiology, Pathology and a Target for Pharmacotherapy. Molecules 2016, 22, 63. [Google Scholar] [CrossRef] [PubMed]
- Cai, J.; Shi, X.; Wang, H. Cystathionine gamma lyase-hydrogen sulfide increases peroxisome proliferator-activated receptor gamma activity by sulfhydration at C139 site thereby promoting glucose uptake and lipid storage in adipocytes. Biochim. Biophys. Acta 2016, 1861, 419–429. [Google Scholar] [CrossRef]
- Murakami, S. The physiological and pathophysiological roles of taurine in adipose tissue in relation to obesity. Life Sci. 2017, 186, 80–86. [Google Scholar] [CrossRef]
- Kandeel, F.R.; Balon, E.; Scott, S.; Nadler, J.L. Magnesium deficiency and glucose metabolism in rat adipocytes. Metabolism 1996, 45, 838–843. [Google Scholar] [CrossRef]
- Guerrero-Romero, F.; Jaquez-Chairez, F.O.; Rodríguez-Morán, M. Magnesium in metabolic syndrome: A review based on randomized, double-blind clinical trials. Magnes. Res. 2016, 29, 146–153. [Google Scholar] [CrossRef]
- Sarrafzadegan, N.; Khosravi-Boroujeni, H.; Lotfizadeh, M.; Pourmogaddas, A.; Salehi-Abargouei, A. Magnesium status and the metabolic syndrome: A systematic review and meta-analysis. Nutrition 2016, 32, 409–417. [Google Scholar] [CrossRef] [PubMed]
- Li, Y.; Wang, P.; Zhuang, Y. Activation of AMPK by berberine promotes adiponectin multimerization in 3T3-L1 adipocytes. FEBS Lett. 2011, 585, 1735–1740. [Google Scholar] [CrossRef]
- Chen, J.; Ma, X.; Yang, Y.; Dai, Z.; Wu, Z.; Wu, G. Glycine enhances expression of adiponectin and IL-10 in 3T3-L1 adipocytes without affecting adipogenesis and lipolysis. Amino Acids 2018, 50, 629–640. [Google Scholar] [CrossRef]
- López, Y.R.; Pérez-Torres, I.; Zúñiga-Muñoz, A.; Lans, V.G.; Díaz-Díaz, E.; Castro, E.S.; Espejel, R.V. Effect of Glycine on Adipocyte Hypertrophy in a Metabolic Syndrome Rat Model. Curr. Drug Deliv. 2016, 13, 158–169. [Google Scholar] [CrossRef]
- Blancas-Flores, G.; Alarcon-Aguilar, F.J.; Garcia-Macedo, R. Glycine suppresses TNF-alpha-induced activation of NF-kappaB in differentiated 3T3-L1 adipocytes. Eur. J. Pharmacol. 2012, 689, 270–277. [Google Scholar] [CrossRef] [PubMed]
- BonDurant, L.D.; Ameka, M.; Naber, M.C.; Markan, K.R.; Idiga, S.O.; Acevedo, M.R.; Walsh, S.A.; Ornitz, D.M.; Potthoff, M.J. FGF21 Regulates Metabolism through Adipose-Dependent and -Independent Mechanisms. Cell Metab. 2017, 25, 935–944.e4. [Google Scholar] [CrossRef]
- Giralt, M.; Gavaldà-Navarro, A.; Villarroya, F. Fibroblast growth factor-21, energy balance and obesity. Mol. Cell. Endocrinol. 2015, 418, 66–73. [Google Scholar] [CrossRef] [PubMed]
- Turner-McGrievy, G.; Harris, M. Key Elements of Plant-Based Diets Associated with Reduced Risk of Metabolic Syndrome. Curr. Diabetes Rep. 2014, 14, 524. [Google Scholar] [CrossRef]
- Roberts, C.K.; Hevener, A.L.; Barnard, R.J. Metabolic Syndrome and Insulin Resistance: Underlying Causes and Modification by Exercise Training. Compr. Physiol. 2013, 3, 1–58. [Google Scholar] [CrossRef]
- Kong, W.; Wei, J.; Abidi, P. Berberine is a novel cholesterol-lowering drug working through a unique mechanism distinct from statins. Nat. Med. 2004, 10, 1344–1351. [Google Scholar] [CrossRef]
- Kong, W.-J.; Wei, J.; Zuo, Z.-Y.; Wang, Y.-M.; Song, D.-Q.; You, X.-F.; Zhao, L.-X.; Pan, H.-N.; Jiang, J.-D. Combination of simvastatin with berberine improves the lipid-lowering efficacy. Metabolism 2008, 57, 1029–1037. [Google Scholar] [CrossRef]
- Mccarty, M.F.; O’Keefe, J.H.; DiNicolantonio, J.J. Red Yeast Rice Plus Berberine: Practical Strategy for Promoting Vascular and Metabolic Health. Altern. Ther. Health Med. 2015, 21, 40–45. [Google Scholar]
Phycocyanobilin. | 100 mg (or 15 g spirulina) [140,570]. |
N-Acetylcysteine | 1200–1800 mg [152]. |
Lipoic Acid | 1200–1800 mg and/or Ferulic Acid 250–1000 mg [571,572,573]. |
Zinc | 30–80 mg (complemented by copper, 1–2 mg) [184,574]. |
Selenium | 100–200 mcg [189,193]. |
Ubiquinol | 300 mg [575,576]. |
Astaxanthin | 10–20 mg [577,578]. |
Melatonin | 5–20 mg (at bedtime) [579,580]. |
TUDCA | 2–4 g [581]. |
Berberine | 1000–2000 mg [582]. |
EPA | 1–2 g daily [583]. |
Magnesium | 200–400 mg [584]. |
Mg Orotate | 3–4 g [390]. |
Citrulline | 3 g [585,586]. |
Folate | 40–80 mg [247]. |
Na or K Nitrate | 500–1000 mg (or 250 mL beet juice) [587,588]. |
Biotin | 20–40 mg [589,590]. |
Soy Isoflavones | 100 mg [591,592]. |
Cocoa flavanols | 400–1000 mg [593,594]. |
Taurine | 2–6 g [407,415]. |
Carnitine | 2–4 g [399]. |
Glycine | 10–15 g [595,596]. |
Copper | 2–8 mg [431,597]. |
Nutraceutical Regimen Suggested for VH/HF Prevention |
Multivitamin/mineral—Includes Mg, Zn, Cu, Se |
Drink Powder—Spirulina, Citrulline, Taurine, Glycine, Soy Isoflavones, Cocoa Flavanols |
Glutathione Booster Caps—N-Acetylcysteine, Lipoic Acid, Ferulic Acid |
EPA/DHA Caps |
Melatonin Cap |
Nutraceuticals Which Could be Added for VH/HF Treatment |
ER Stress Caps—Berberine, TUDCA |
Ubiquinol |
Carnitine |
High-dose Folate |
High-dose Biotin |
Consider Also: |
K Nitrate caps (or beet juice) |
Mg Orotate |
Astaxanthin |
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McCarty, M.F. Nutraceutical, Dietary, and Lifestyle Options for Prevention and Treatment of Ventricular Hypertrophy and Heart Failure. Int. J. Mol. Sci. 2021, 22, 3321. https://doi.org/10.3390/ijms22073321
McCarty MF. Nutraceutical, Dietary, and Lifestyle Options for Prevention and Treatment of Ventricular Hypertrophy and Heart Failure. International Journal of Molecular Sciences. 2021; 22(7):3321. https://doi.org/10.3390/ijms22073321
Chicago/Turabian StyleMcCarty, Mark F. 2021. "Nutraceutical, Dietary, and Lifestyle Options for Prevention and Treatment of Ventricular Hypertrophy and Heart Failure" International Journal of Molecular Sciences 22, no. 7: 3321. https://doi.org/10.3390/ijms22073321
APA StyleMcCarty, M. F. (2021). Nutraceutical, Dietary, and Lifestyle Options for Prevention and Treatment of Ventricular Hypertrophy and Heart Failure. International Journal of Molecular Sciences, 22(7), 3321. https://doi.org/10.3390/ijms22073321