Extracellular Superoxide Dismutase in Acute Respiratory Distress Syndrome: Pathogenic Mechanisms and Therapeutic Implications
Abstract
1. Structural and Functional Characteristics of EC-SOD
2. Tissue Localization and Cellular Sources of EC-SOD
3. Acute Respiratory Distress Syndrome
4. Therapeutics
| Mimetic Name | SOD Activity (log kcat) | t½ Plasma (hrs) | Plasma Cmax (ug/g) | Clinical Trial(s) |
|---|---|---|---|---|
| MnTE-2-Pyp | 7.79 [210] | 76.9 [210] | 17.74 [210] | Phase1/2 as topical agent |
| AEOL 10150 | 7.83 [211] | 6.6 [211] | 4.046 [211] | Phase 1 |
| M40403 | 7.08 [212] | n/a | n/a | Phase 2 |
| EUK-189 | 5.78 [212] | n/a | n/a | Phase 1 as topical agent |
| EUK-8 | 5.78 [212] | n/a | n/a | n/a |
| GC4419 or AVA | 7.3 [213] | n/a | n/a | Phases 1 and 3 |
5. Polymorphisms and Genetic Variants of EC-SOD
6. Conclusions and Future Directions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
- McCord, J.M.; Fridovich, I. Superoxide Dismutase. J. Biol. Chem. 1969, 244, 6049–6055. [Google Scholar] [CrossRef] [PubMed]
- Weisiger, R.A.; Fridovich, I. Superoxide Dismutase. J. Biol. Chem. 1973, 248, 3582–3592. [Google Scholar] [CrossRef]
- Marklund, S.L.; Holme, E.; Hellner, L. Superoxide Dismutase in Extracellular Fluids. Clin. Chim. Acta 1982, 126, 41–51. [Google Scholar] [CrossRef]
- Crapo, J.D.; Oury, T.; Rabouille, C.; Slot, J.W.; Chang, L.Y. Copper, Zinc Superoxide Dismutase Is Primarily a Cytosolic Protein in Human Cells. Proc. Natl. Acad. Sci. USA 1992, 89, 10405–10409. [Google Scholar] [CrossRef]
- Crapo, J.D.; Chang, L.-Y.; Oury, T. Compartmentalization of Radical Reactions and Antioxidants. Free Radic. Biol. Med. 1993, 15, 536. [Google Scholar] [CrossRef]
- Weisiger, R.A.; Fridovich, I. Mitochondrial Superoxide Dismutase. J. Biol. Chem. 1973, 248, 4793–4796. [Google Scholar] [CrossRef]
- Nozik-Grayck, E.; Suliman, H.B.; Piantadosi, C.A. Extracellular Superoxide Dismutase. Int. J. Biochem. Cell Biol. 2005, 37, 2466–2471. [Google Scholar] [CrossRef] [PubMed]
- Coelho, D.R.; Palma, F.R.; Paviani, V.; He, C.; Danes, J.M.; Huang, Y.; Calado, J.C.P.; Hart, P.C.; Furdui, C.M.; Poole, L.B.; et al. Nuclear-Localized, Iron-Bound Superoxide Dismutase-2 Antagonizes Epithelial Lineage Programs to Promote Stemness of Breast Cancer Cells via a Histone Demethylase Activity. Proc. Natl. Acad. Sci. USA 2022, 119, e2110348119. [Google Scholar] [CrossRef]
- Hjalmarsson, K.; Marklund, S.L.; Engström, A.; Edlund, T. Isolation and Sequence of Complementary DNA Encoding Human Extracellular Superoxide Dismutase. Proc. Natl. Acad. Sci. USA 1987, 84, 6340–6344. [Google Scholar] [CrossRef]
- Edlund, A.; Edlund, T.; Hjalmarsson, K.; Marklund, S.L.; Sandström, J.; Strömqvist, M.; Tibell, L. A Non-Glycosylated Extracellular Superoxide Dismutase Variant. Biochem. J. 1992, 288, 451–456. [Google Scholar] [CrossRef] [PubMed]
- Ota, F.; Kizuka, Y.; Kitazume, S.; Adachi, T.; Taniguchi, N. N-Glycosylation Is Essential for the Secretion of Extracellular Superoxide Dismutase. FEBS Lett. 2016, 590, 3357–3367. [Google Scholar] [CrossRef]
- Marklund, S.L. Human Copper-Containing Superoxide Dismutase of High Molecular Weight. Proc. Natl. Acad. Sci. USA 1982, 79, 7634–7638. [Google Scholar] [CrossRef] [PubMed]
- Marklund, S.L. Extracellular Superoxide Dismutase in Human Tissues and Human Cell Lines. J. Clin. Investig. 1984, 74, 1398–1403. [Google Scholar] [CrossRef]
- Enghild, J.J.; Thøgersen, I.B.; Oury, T.D.; Valnickova, Z.; Højrup, P.; Crapo, J.D. The Heparin-Binding Domain of Extracellular Superoxide Dismutase Is Proteolytically Processed Intracellularly during Biosynthesis. J. Biol. Chem. 1999, 274, 14818–14822. [Google Scholar] [CrossRef]
- Fattman, C.L.; Enghild, J.J.; Crapo, J.D.; Schaefer, L.M.; Valnickova, Z.; Oury, T.D. Purification and Characterization of Extracellular Superoxide Dismutase in Mouse Lung. Biochem. Biophys. Res. Commun. 2000, 275, 542–548. [Google Scholar] [CrossRef]
- Oury, T.D.; Crapo, J.D.; Valnickova, Z.; Enghild, J.J. Human Extracellular Superoxide Dismutase Is a Tetramer Composed of Two Disulphide-Linked Dimers: A Simplified, High-Yield Purification of Extracellular Superoxide Dismutase. Biochem. J. 1996, 317, 51–57. [Google Scholar] [CrossRef]
- Due, A.V.; Petersen, S.V.; Valnickova, Z.; Østergaard, L.; Oury, T.D.; Crapo, J.D.; Enghild, J.J. Extracellular Superoxide Dismutase Exists as an Octamer. FEBS Lett. 2006, 580, 1485–1489. [Google Scholar] [CrossRef]
- Tibell, L.; Hjalmarsson, K.; Edlund, T.; Skogman, G.; Engström, A.; Marklund, S.L. Expression of Human Extracellular Superoxide Dismutase in Chinese Hamster Ovary Cells and Characterization of the Product. Proc. Natl. Acad. Sci. USA 1987, 84, 6634–6638. [Google Scholar] [CrossRef] [PubMed]
- Petersen, S.V.; Oury, T.D.; Valnickova, Z.; Thøgersen, I.B.; Højrup, P.; Crapo, J.D.; Enghild, J.J. The Dual Nature of Human Extracellular Superoxide Dismutase: One Sequence and Two Structures. Proc. Natl. Acad. Sci. USA 2003, 100, 13875–13880. [Google Scholar] [CrossRef]
- Petersen, S.V.; Oury, T.D.; Ostergaard, L.; Valnickova, Z.; Wegrzyn, J.; Thøgersen, I.B.; Jacobsen, C.; Bowler, R.P.; Fattman, C.L.; Crapo, J.D.; et al. Extracellular Superoxide Dismutase (EC-SOD) Binds to Type I Collagen and Protects Against Oxidative Fragmentation. J. Biol. Chem. 2004, 279, 13705–13710. [Google Scholar] [CrossRef] [PubMed]
- Jeney, V.; Itoh, S.; Wendt, M.; Gradek, Q.; Ushio-Fukai, M.; Harrison, D.G.; Fukai, T. Role of Antioxidant-1 in Extracellular Superoxide Dismutase Function and Expression. Circ. Res. 2005, 96, 723–729. [Google Scholar] [CrossRef] [PubMed]
- Gottfredsen, R.H.; Larsen, U.G.; Enghild, J.J.; Petersen, S.V. Hydrogen Peroxide Induce Modifications of Human Extracellular Superoxide Dismutase That Results in Enzyme Inhibition. Redox Biol. 2013, 1, 24–31. [Google Scholar] [CrossRef]
- Kurahashi, T.; Miyazaki, A.; Suwan, S.; Isobe, M. Extensive Investigations on Oxidized Amino Acid Residues in H2O2-Treated Cu,Zn-SOD Protein with LC-ESI-Q-TOF-MS, MS/MS for the Determination of the Copper-Binding Site. J. Am. Chem. Soc. 2001, 123, 9268–9278. [Google Scholar] [CrossRef]
- Uchida, K.; Kawakishi, S. Identification of Oxidized Histidine Generated at the Active Site of Cu,Zn-Superoxide Dismutase Exposed to H2O2. Selective Generation of 2-Oxo-Histidine at the Histidine 118. J. Biol. Chem. 1994, 269, 2405–2410. [Google Scholar] [CrossRef]
- Adachi, T.; Marklund, S.L. Interactions between Human Extracellular Superoxide Dismutase C and Sulfated Polysaccharides. J. Biol. Chem. 1989, 264, 8537–8541. [Google Scholar] [CrossRef]
- Beyer, W.F.; Fridovich, I.; Mullenbach, G.T.; Hallewell, R. Examination of the Role of Arginine-143 in the Human Copper and Zinc Superoxide Dismutase by Site-Specific Mutagenesis. J. Biol. Chem. 1987, 262, 11182–11187. [Google Scholar] [CrossRef]
- Strömqvist, M.; Holgersson, J.; Samuelsson, B. Glycosylation of Extracellular Superoxide Dismutase Studied by High-Performance Liquid Chromatography and Mass Spectrometry. J. Chromatogr. 1991, 548, 293–301. [Google Scholar] [CrossRef]
- Ota, F.; Kizuka, Y.; Nakano, M.; Yamaguchi, Y.; Kitazume, S.; Ookawara, T.; Taniguchi, N. Sialylation of Extracellular Superoxide Dismutase (EC-SOD) Enhances Furin-Mediated Cleavage and Secretion. Glycobiology 2017, 27, 1081–1088. [Google Scholar] [CrossRef]
- Korekane, H.; Korekane, A.; Yamaguchi, Y.; Kato, M.; Miyamoto, Y.; Matsumoto, A.; Hasegawa, T.; Suzuki, K.; Taniguchi, N.; Ookawara, T. N-Glycosylation Profiling of Recombinant Mouse Extracellular Superoxide Dismutase Produced in Chinese Hamster Ovary Cells. Glycoconj. J. 2011, 28, 183–196. [Google Scholar] [CrossRef] [PubMed]
- Carlsson, L.M.; Marklund, S.L.; Edlund, T. The Rat Extracellular Superoxide Dismutase Dimer Is Converted to a Tetramer by the Exchange of a Single Amino Acid. Proc. Natl. Acad. Sci. USA 1996, 93, 5219–5222. [Google Scholar] [CrossRef] [PubMed]
- Sandström, J.; Carlsson, L.; Marklund, S.L.; Edlund, T. The Heparin-Binding Domain of Extracellular Superoxide Dismutase C and Formation of Variants with Reduced Heparin Affinity. J. Biol. Chem. 1992, 267, 18205–18209. [Google Scholar] [CrossRef]
- Adachi, T.; Kodera, T.; Ohta, H.; Hayashi, K.; Hirano, K. The Heparin Binding Site of Human Extracellular-Superoxide Dismutase. Arch. Biochem. Biophys. 1992, 297, 155–161. [Google Scholar] [CrossRef]
- Karlsson, K.; Marklund, S.L. Heparin-Induced Release of Extracellular Superoxide Dismutase to Human Blood Plasma. Biochem. J. 1987, 242, 55–59. [Google Scholar] [CrossRef]
- Karlsson, K.; Lindahl, U.; Marklund, S.L. Binding of Human Extracellular Superoxide Dismutase C to Sulphated Glycosaminoglycans. Biochem. J. 1988, 256, 29–33. [Google Scholar] [CrossRef]
- Gao, F.; Koenitzer, J.R.; Tobolewski, J.M.; Jiang, D.; Liang, J.; Noble, P.W.; Oury, T.D. Extracellular Superoxide Dismutase Inhibits Inflammation by Preventing Oxidative Fragmentation of Hyaluronan. J. Biol. Chem. 2008, 283, 6058–6066. [Google Scholar] [CrossRef]
- Sandström, J.; Karlsson, K.; Edlund, T.; Marklund, S.L. Heparin-Affinity Patterns and Composition of Extracellular Superoxide Dismutase in Human Plasma and Tissues. Biochem. J. 1993, 294, 853–857. [Google Scholar] [CrossRef]
- Oury, T.D.; Chang, L.-Y.; Marklund, S.L.; Day, B.J.; Crapo, J.D. Immunocytochemical Localization of Extracellular Superoxide Dismutase in Human Lung. Lab. Investig. 1994, 70, 889–898. [Google Scholar] [PubMed]
- Bowler, R.P.; Nicks, M.; Olsen, D.A.; Thøgersen, I.B.; Valnickova, Z.; Højrup, P.; Franzusoff, A.; Enghild, J.J.; Crapo, J.D. Furin Proteolytically Processes the Heparin-Binding Region of Extracellular Superoxide Dismutase. J. Biol. Chem. 2002, 277, 16505–16511. [Google Scholar] [CrossRef] [PubMed]
- Gottfredsen, R.H.; Tran, S.M.-H.; Larsen, U.G.; Madsen, P.; Nielsen, M.S.; Enghild, J.J.; Petersen, S.V. The C-Terminal Proteolytic Processing of Extracellular Superoxide Dismutase Is Redox Regulated. Free Radic. Biol. Med. 2012, 52, 191–197. [Google Scholar] [CrossRef]
- Mitchem, E.C.; Harris, P.S.; Michel, C.R.; McGinnis, C.D.; Ray, S.; Mallela, K.M.G.; Roede, J.R.; Petersen, S.V.; Nozik, E.S.; Fritz, K.S. Deacetylation of SOD3 by Sirtuins Restores Furin Cleavage. Redox Biochem. Chem. 2025, 14, 100062. [Google Scholar] [CrossRef] [PubMed]
- Ookawara, T.; Kizaki, T.; Takayama, E.; Imazeki, N.; Matsubara, O.; Ikeda, Y.; Suzuki, K.; Li Ji, L.; Tadakuma, T.; Taniguchi, N.; et al. Nuclear Translocation of Extracellular Superoxide Dismutase. Biochem. Biophys. Res. Commun. 2002, 296, 54–61. [Google Scholar] [CrossRef]
- Ookawara, T.; Eguchi, H.; Nishimura, M.; Kizaki, T.; Takayama, E.; Saitoh, D.; Ohno, H.; Suzuki, K. Effects of Oxidative Stress on the Nuclear Translocation of Extracellular Superoxide Dismutase. Biochem. Biophys. Res. Commun. 2003, 303, 914–919. [Google Scholar] [CrossRef] [PubMed]
- Chu, Y.; Piper, R.; Richardson, S.; Watanabe, Y.; Patel, P.; Heistad, D.D. Endocytosis of Extracellular Superoxide Dismutase Into Endothelial Cells. Arterioscler. Thromb. Vasc. Biol. 2006, 26, 1985–1990. [Google Scholar] [CrossRef][Green Version]
- Petersen, S.V.; Thøgersen, I.B.; Valnickova, Z.; Nielsen, M.S.; Petersen, J.S.; Poulsen, E.T.; Jacobsen, C.; Oury, T.D.; Moestrup, S.K.; Crapo, J.D.; et al. The Concentration of Extracellular Superoxide Dismutase in Plasma Is Maintained by LRP-Mediated Endocytosis. Free Radic. Biol. Med. 2010, 49, 894–899. [Google Scholar] [CrossRef] [PubMed]
- Singh, B.; Bhat, H.K. Superoxide Dismutase 3 Is Induced by Antioxidants, Inhibits Oxidative DNA Damage and Is Associated with Inhibition of Estrogen-Induced Breast Cancer. Carcinogenesis 2012, 33, 2601–2610. [Google Scholar] [CrossRef] [PubMed]
- Luo, J.; Obal, D.; Dimova, N.; Tang, X.-L.; Rokosh, G. Cardiac Myocyte-Specific Transgenic ecSOD Targets Mitochondria to Protect against Ca2+ Induced Permeability Transition. Front. Physiol. 2013, 4, 295. [Google Scholar] [CrossRef]
- Adachi, T.; Ohta, H.; Hirano, K.; Hayashi, K.; Marklund, S.L. Non-Enzymic Glycation of Human Extracellular Superoxide Dismutase. Biochem. J. 1991, 279, 263–267. [Google Scholar] [CrossRef]
- Marklund, S.L. Expression of Extracellular Superoxide Dismutase by Human Cell Lines. Biochem. J. 1990, 266, 213–219. [Google Scholar] [CrossRef]
- Boggessa, K.A.; Oury, T.D.; Kay, H.H.; Crapo, J.D. Extracellular Superoxide Dismutase Localization and Activity within the Human Placenta. Placenta 1998, 19, 417–422. [Google Scholar] [CrossRef]
- Oury, T.D.; Card, J.P.; Klann, E. Localization of Extracellular Superoxide Dismutase in Adult Mouse Brain. Brain Res. 1999, 850, 96–103. [Google Scholar] [CrossRef]
- Serra, V.; Von Zglinicki, T.; Lorenz, M.; Saretzki, G. Extracellular Superoxide Dismutase Is a Major Antioxidant in Human Fibroblasts and Slows Telomere Shortening. J. Biol. Chem. 2003, 278, 6824–6830. [Google Scholar] [CrossRef]
- Teoh, M.L.T.; Sun, W.; Smith, B.J.; Oberley, L.W.; Cullen, J.J. Modulation of Reactive Oxygen Species in Pancreatic Cancer. Clin. Cancer Res. 2007, 13, 7441–7450. [Google Scholar] [CrossRef]
- Obal, D.; Dai, S.; Keith, R.; Dimova, N.; Kingery, J.; Zheng, Y.-T.; Zweier, J.; Velayutham, M.; Prabhu, S.D.; Li, Q.; et al. Cardiomyocyte-Restricted Overexpression of Extracellular Superoxide Dismutase Increases Nitric Oxide Bioavailability and Reduces Infarct Size after Ischemia/Reperfusion. Basic. Res. Cardiol. 2012, 107, 305. [Google Scholar] [CrossRef]
- Manni, M.L.; Tomai, L.P.; Norris, C.A.; Thomas, L.M.; Kelley, E.E.; Salter, R.D.; Crapo, J.D.; Chang, L.-Y.L.; Watkins, S.C.; Piganelli, J.D.; et al. Extracellular Superoxide Dismutase in Macrophages Augments Bacterial Killing by Promoting Phagocytosis. Am. J. Pathol. 2011, 178, 2752–2759. [Google Scholar] [CrossRef]
- Gottfredsen, R.H.; Goldstrohm, D.A.; Hartney, J.M.; Larsen, U.G.; Bowler, R.P.; Petersen, S.V. The Cellular Distribution of Extracellular Superoxide Dismutase in Macrophages Is Altered by Cellular Activation but Unaffected by the Naturally Occurring R213G Substitution. Free Radic. Biol. Med. 2014, 69, 348–356. [Google Scholar] [CrossRef]
- Hu, L.; Zachariae, E.D.; Larsen, U.G.; Vilhardt, F.; Petersen, S.V. The Dynamic Uptake and Release of SOD3 from Intracellular Stores in Macrophages Modulates the Inflammatory Response. Redox Biol. 2019, 26, 101268. [Google Scholar] [CrossRef] [PubMed]
- Anthony, D.; Papanicolaou, A.; Wang, H.; Seow, H.J.; To, E.E.; Yatmaz, S.; Anderson, G.P.; Wijburg, O.; Selemidis, S.; Vlahos, R.; et al. Excessive Reactive Oxygen Species Inhibit IL-17A+ Γδ T Cells and Innate Cellular Responses to Bacterial Lung Infection. Antioxid. Redox Signal. 2020, 32, 943–956. [Google Scholar] [CrossRef]
- Marklund, S.L. Extracellular Superoxide Dismutase and Other Superoxide Dismutase Isoenzymes in Tissues from Nine Mammalian Species. Biochem. J. 1984, 222, 649–655. [Google Scholar] [CrossRef] [PubMed]
- Folz, R.J.; Crapo, J.D. Extracellular Superoxide Dismutase (SOD3): Tissue-Specific Expression, Genomic Characterization, and Computer-Assisted Sequence Analysis of the Human EC SOD Gene. Genomics 1994, 22, 162–171. [Google Scholar] [CrossRef] [PubMed]
- Singer, M.; Young, P.J.; Laffey, J.G.; Asfar, P.; Taccone, F.S.; Skrifvars, M.B.; Meyhoff, C.S.; Radermacher, P. Dangers of Hyperoxia. Crit. Care 2021, 25, 440. [Google Scholar] [CrossRef]
- Sikkema, L.; Ramírez-Suástegui, C.; Strobl, D.C.; Gillett, T.E.; Zappia, L.; Madissoon, E.; Markov, N.S.; Zaragosi, L.-E.; Ji, Y.; Ansari, M.; et al. An Integrated Cell Atlas of the Lung in Health and Disease. Nat. Med. 2023, 29, 1563–1577. [Google Scholar] [CrossRef] [PubMed]
- Domingo-Gonzalez, R.; Zanini, F.; Che, X.; Liu, M.; Jones, R.C.; Swift, M.A.; Quake, S.R.; Cornfield, D.N.; Alvira, C.M. Diverse Homeostatic and Immunomodulatory Roles of Immune Cells in the Developing Mouse Lung at Single Cell Resolution. eLife 2020, 9, e56890. [Google Scholar] [CrossRef]
- Zanini, F.; Che, X.; Suresh, N.E.; Knutsen, C.; Klavina, P.; Xie, Y.; Domingo-Gonzalez, R.; Liu, M.; Kum, A.; Jones, R.C.; et al. Hyperoxia Prevents the Dynamic Neonatal Increases in Lung Mesenchymal Cell Diversity. Sci. Rep. 2024, 14, 2033. [Google Scholar] [CrossRef]
- Nozik-Grayck, E.; Woods, C.; Taylor, J.M.; Benninger, R.K.P.; Johnson, R.D.; Villegas, L.R.; Stenmark, K.R.; Harrison, D.G.; Majka, S.M.; Irwin, D.; et al. Selective Depletion of Vascular EC-SOD Augments Chronic Hypoxic Pulmonary Hypertension. Am. J. Physiol.-Lung Cell. Mol. Physiol. 2014, 307, L868–L876. [Google Scholar] [CrossRef]
- Makino, J.; Asai, R.; Hashimoto, M.; Kamiya, T.; Hara, H.; Ninomiya, M.; Koketsu, M.; Adachi, T. Suppression of EC-SOD by oxLDL During Vascular Smooth Muscle Cell Proliferation. J. Cell Biochem. 2016, 117, 2496–2505. [Google Scholar] [CrossRef]
- Strålin, P.; Karlsson, K.; Johansson, B.O.; Marklund, S.L. The Interstitium of the Human Arterial Wall Contains Very Large Amounts of Extracellular Superoxide Dismutase. Arter. Thromb. Vasc. Biol. 1995, 15, 2032–2036. [Google Scholar] [CrossRef]
- Su, W.Y.; Folz, R.; Chen, J.S.; Crapo, J.D.; Chang, L.Y. Extracellular Superoxide Dismutase mRNA Expressions in the Human Lung by in Situ Hybridization. Am. J. Respir. Cell Mol. Biol. 1997, 16, 162–170. [Google Scholar] [CrossRef]
- Allawzi, A.; McDermott, I.; Delaney, C.; Nguyen, K.; Banimostafa, L.; Trumpie, A.; Hernandez-Lagunas, L.; Riemondy, K.; Gillen, A.; Hesselberth, J.; et al. Redistribution of EC-SOD Resolves Bleomycin-Induced Inflammation via Increased Apoptosis of Recruited Alveolar Macrophages. FASEB J. 2019, 33, 13465–13475. [Google Scholar] [CrossRef] [PubMed]
- Zelko, I.N.; Stepp, M.W.; Vorst, A.L.; Folz, R.J. Histone Acetylation Regulates the Cell-Specific and Interferon-γ–Inducible Expression of Extracellular Superoxide Dismutase in Human Pulmonary Arteries. Am. J. Respir. Cell Mol. Biol. 2011, 45, 953–961. [Google Scholar] [CrossRef] [PubMed]
- Zelko, I.N.; Folz, R.J. Regulation of Oxidative Stress in Pulmonary Artery Endothelium. Modulation of Extracellular Superoxide Dismutase and NOX4 Expression Using Histone Deacetylase Class I Inhibitors. Am. J. Respir. Cell Mol. Biol. 2015, 53, 513–524. [Google Scholar] [CrossRef]
- Zelko, I.N.; Folz, R.J. Sp1 and Sp3 Transcription Factors Mediate Trichostatin A-Induced and Basal Expression of Extracellular Superoxide Dismutase. Free Radic. Biol. Med. 2004, 37, 1256–1271. [Google Scholar] [CrossRef]
- Zelko, I.N.; Mueller, M.R.; Folz, R.J. Transcription Factors Sp1 and Sp3 Regulate Expression of Human Extracellular Superoxide Dismutase in Lung Fibroblasts. Am. J. Respir. Cell Mol. Biol. 2008, 39, 243–251. [Google Scholar] [CrossRef]
- Zelko, I.N.; Mueller, M.R.; Folz, R.J. CpG Methylation Attenuates Sp1 and Sp3 Binding to the Human Extracellular Superoxide Dismutase Promoter and Regulates Its Cell-Specific Expression. Free Radic. Biol. Med. 2010, 48, 895–904. [Google Scholar] [CrossRef]
- Roman, J.; Zhu, J.; Ritzenthaler, J.D.; Zelko, I.N. Epigenetic Regulation of EC-SOD Expression in Aging Lung Fibroblasts: Role of Histone Acetylation. Free Radic. Biol. Med. 2017, 112, 212–223. [Google Scholar] [CrossRef] [PubMed]
- Nozik-Grayck, E.; Woods, C.; Stearman, R.S.; Venkataraman, S.; Ferguson, B.S.; Swain, K.; Bowler, R.P.; Geraci, M.W.; Ihida-Stansbury, K.; Stenmark, K.R.; et al. Histone Deacetylation Contributes to Low Extracellular Superoxide Dismutase Expression in Human Idiopathic Pulmonary Arterial Hypertension. Am. J. Physiol.-Lung Cell. Mol. Physiol. 2016, 311, L124–L134. [Google Scholar] [CrossRef] [PubMed]
- Marklund, S.L. Regulation by Cytokines of Extracellular Superoxide Dismutase and Other Superoxide Dismutase Isoenzymes in Fibroblasts. J. Biol. Chem. 1992, 267, 6696–6701. [Google Scholar] [CrossRef] [PubMed]
- Matsubara, T.; Ziff, M. Increased Superoxide Anion Release from Human Endothelial Cells in Response to Cytokines. J. Immunol. 1986, 137, 3295–3298. [Google Scholar] [CrossRef]
- Griendling, K.K.; Minieri, C.A.; Ollerenshaw, J.D.; Alexander, R.W. Angiotensin II Stimulates NADH and NADPH Oxidase Activity in Cultured Vascular Smooth Muscle Cells. Circ. Res. 1994, 74, 1141–1148. [Google Scholar] [CrossRef]
- Touyz, R.M.; Chen, X.; Tabet, F.; Yao, G.; He, G.; Quinn, M.T.; Pagano, P.J.; Schiffrin, E.L. Expression of a Functionally Active Gp91phox-Containing Neutrophil-Type NAD(P)H Oxidase in Smooth Muscle Cells From Human Resistance Arteries. Circ. Res. 2002, 90, 1205–1213. [Google Scholar] [CrossRef]
- Strålin, P.; Marklund, S.L. Vasoactive Factors and Growth Factors Alter Vascular Smooth Muscle Cell EC-SOD Expression. Am. J. Physiol.-Heart Circ. Physiol. 2001, 281, H1621–H1629. [Google Scholar] [CrossRef][Green Version]
- Fukai, T.; Siegfried, M.R.; Ushio-Fukai, M.; Cheng, Y.; Kojda, G.; Harrison, D.G. Regulation of the Vascular Extracellular Superoxide Dismutase by Nitric Oxide and Exercise Training. J. Clin. Investig. 2000, 105, 1631–1639. [Google Scholar] [CrossRef]
- Frid, M.G.; Dempsey, E.C.; Durmowicz, A.G.; Stenmark, K.R. Smooth Muscle Cell Heterogeneity in Pulmonary and Systemic Vessels: Importance in Vascular Disease. Arterioscler. Thromb. Vasc. Biol. 1997, 17, 1203–1209. [Google Scholar] [CrossRef]
- Ueda, J.; Starr, M.E.; Takahashi, H.; Du, J.; Chang, L.Y.; Crapo, J.D.; Evers, B.M.; Saito, H. Decreased Pulmonary Extracellular Superoxide Dismutase during Systemic Inflammation. Free Radic. Biol. Med. 2008, 45, 897–904. [Google Scholar] [CrossRef][Green Version]
- Ranieri, V.M.; Rubenfeld, G.D.; Thompson, B.T.; Ferguson, N.D.; Caldwell, E.; Fan, E.; Camporota, L.; Slutsky, A.S. Acute Respiratory Distress Syndrome: The Berlin Definition. JAMA J. Am. Med. Assoc. 2012, 307, 2526–2533. [Google Scholar] [CrossRef]
- Thompson, B.T.; Chambers, R.C.; Liu, K.D. Acute Respiratory Distress Syndrome. N. Engl. J. Med. 2017, 377, 562–572. [Google Scholar] [CrossRef]
- Bellani, G.; Laffey, J.G.; Pham, T.; Fan, E.; Brochard, L.; Esteban, A.; Gattinoni, L.; van Haren, F.; Larsson, A.; McAuley, D.F.; et al. Epidemiology, Patterns of Care, and Mortality for Patients With Acute Respiratory Distress Syndrome in Intensive Care Units in 50 Countries. JAMA 2016, 315, 788–800. [Google Scholar] [CrossRef] [PubMed]
- Pediatric Acute Lung Injury Consensus Conference Group. Pediatric Acute Respiratory Distress Syndrome: Consensus Recommendations from the Pediatric Acute Lung Injury Consensus Conference. Pediatr. Crit. Care Med. 2015, 16, 428–439. [Google Scholar] [CrossRef] [PubMed]
- Khemani, R.G.; Smith, L.; Lopez-Fernandez, Y.M.; Kwok, J.; Morzov, R.; Klein, M.; Yehya, N.; Willson, D.; Kneyber, M.C.L.; Lillie, J.; et al. Pediatric Acute Respiratory Distress Syndrome Incidence and Epidemiology (PARDIE): An International Observational Study. Lancet Respir. Med. 2019, 7, 115–128. [Google Scholar] [CrossRef]
- Rowan, C.M.; Klein, M.J.; Hsing, D.D.; Dahmer, M.K.; Spinella, P.C.; Emeriaud, G.; Hassinger, A.B.; Piñeres-Olave, B.E.; Flori, H.R.; Haileselassie, B.; et al. Early Use of Adjunctive Therapies for Pediatric Acute Respiratory Distress Syndrome: A PARDIE Study. Am. J. Respir. Crit. Care Med. 2020, 201, 1389–1397. [Google Scholar] [CrossRef]
- Emeriaud, G.; López-Fernández, Y.M.; Iyer, N.P.; Bembea, M.M.; Agulnik, A.; Barbaro, R.P.; Baudin, F.; Bhalla, A.; Brunow de Carvalho, W.; Carroll, C.L.; et al. Executive Summary of the Second International Guidelines for the Diagnosis and Management of Pediatric Acute Respiratory Distress Syndrome (PALICC-2). Pediatr. Crit. Care Med. 2023, 24, 143. [Google Scholar] [CrossRef]
- Khemani, R.G.; Parvathaneni, K.; Yehya, N.; Bhalla, A.K.; Thomas, N.J.; Newth, C.J.L. Positive End-Expiratory Pressure Lower Than the ARDS Network Protocol Is Associated with Higher Pediatric Acute Respiratory Distress Syndrome Mortality. Am. J. Respir. Crit. Care Med. 2018, 198, 77–89. [Google Scholar] [CrossRef] [PubMed]
- Bhalla, A.K.; Klein, M.J.; Emeriaud, G.; Lopez-Fernandez, Y.M.; Napolitano, N.; Fernandez, A.; Al-Subu, A.M.; Gedeit, R.; Shein, S.L.; Nofziger, R.; et al. Adherence to Lung-Protective Ventilation Principles in Pediatric Acute Respiratory Distress Syndrome: A Pediatric Acute Respiratory Distress Syndrome Incidence and Epidemiology Study. Crit. Care Med. 2021, 49, 1779–1789. [Google Scholar] [CrossRef] [PubMed]
- Opitz, B.; van Laak, V.; Eitel, J.; Suttorp, N. Innate Immune Recognition in Infectious and Noninfectious Diseases of the Lung. Am. J. Respir. Crit. Care Med. 2010, 181, 1294–1309. [Google Scholar] [CrossRef]
- Huppert, L.A.; Matthay, M.A.; Ware, L.B. Pathogenesis of Acute Respiratory Distress Syndrome. Semin. Respir. Crit. Care Med. 2019, 40, 31–39. [Google Scholar] [CrossRef]
- Matthay, M.A.; Zemans, R.L.; Zimmerman, G.A.; Arabi, Y.M.; Beitler, J.R.; Mercat, A.; Herridge, M.; Randolph, A.G.; Calfee, C.S. Acute Respiratory Distress Syndrome. Nat. Rev. Dis. Primers 2019, 5, 18. [Google Scholar] [CrossRef]
- Wick, K.D.; Ware, L.B.; Matthay, M.A. Acute Respiratory Distress Syndrome. BMJ 2024, 387, e076612. [Google Scholar] [CrossRef]
- Schmidt, E.P.; Yang, Y.; Janssen, W.J.; Gandjeva, A.; Perez, M.J.; Barthel, L.; Zemans, R.L.; Bowman, J.C.; Koyanagi, D.E.; Yunt, Z.X.; et al. The Pulmonary Endothelial Glycocalyx Regulates Neutrophil Adhesion and Lung Injury during Experimental Sepsis. Nat. Med. 2012, 18, 1217–1223. [Google Scholar] [CrossRef] [PubMed]
- Haeger, S.M.; Liu, X.; Han, X.; McNeil, J.B.; Oshima, K.; McMurtry, S.A.; Yang, Y.; Ouyang, Y.; Zhang, F.; Nozik-Grayck, E.; et al. Epithelial Heparan Sulfate Contributes to Alveolar Barrier Function and Is Shed during Lung Injury. Am. J. Respir. Cell Mol. Biol. 2018, 59, 363–374. [Google Scholar] [CrossRef]
- Ndengele, M.M.; Muscoli, C.; Wang, Z.Q.; Doyle, T.M.; Matuschak, G.M.; Salvemini, D. Superoxide Potentiates NF-kappaB Activation and Modulates Endotoxin-Induced Cytokine Production in Alveolar Macrophages. Shock 2005, 23, 186–193. [Google Scholar] [CrossRef]
- Zhang, W.-J.; Wei, H.; Tien, Y.-T.; Frei, B. Genetic Ablation of Phagocytic NADPH Oxidase in Mice Limits TNFα-Induced Inflammation in the Lungs but Not Other Tissues. Free Radic. Biol. Med. 2011, 50, 1517–1525. [Google Scholar] [CrossRef]
- Sharma, A.K.; Mulloy, D.P.; Le, L.T.; Laubach, V.E. NADPH Oxidase Mediates Synergistic Effects of IL-17 and TNF-α on CXCL1 Expression by Epithelial Cells after Lung Ischemia-Reperfusion. Am. J. Physiol.-Lung Cell. Mol. Physiol. 2014, 306, L69–L79. [Google Scholar] [CrossRef]
- Hidalgo, M.A.; Carretta, M.D.; Teuber, S.E.; Zárate, C.; Cárcamo, L.; Concha, I.I.; Burgos, R.A. fMLP-Induced IL-8 Release Is Dependent on NADPH Oxidase in Human Neutrophils. J. Immunol. Res. 2015, 2015, 120348. [Google Scholar] [CrossRef]
- Fan, J.; Frey, R.S.; Rahman, A.; Malik, A.B. Role of Neutrophil NADPH Oxidase in the Mechanism of Tumor Necrosis Factor-α-Induced NF-κB Activation and Intercellular Adhesion Molecule-1 Expression in Endothelial Cells. J. Biol. Chem. 2002, 277, 3404–3411. [Google Scholar] [CrossRef]
- Frey, R.S.; Rahman, A.; Kefer, J.C.; Minshall, R.D.; Malik, A.B. PKCζ Regulates TNF-α–Induced Activation of NADPH Oxidase in Endothelial Cells. Circ. Res. 2002, 90, 1012–1019. [Google Scholar] [CrossRef]
- van Wetering, S.; van Buul, J.D.; Quik, S.; Mul, F.P.J.; Anthony, E.C.; ten Klooster, J.-P.; Collard, J.G.; Hordijk, P.L. Reactive Oxygen Species Mediate Rac-Induced Loss of Cell-Cell Adhesion in Primary Human Endothelial Cells. J. Cell Sci. 2002, 115, 1837–1846. [Google Scholar] [CrossRef]
- Van Wetering, S.; Van Den Berk, N.; Van Buul, J.D.; Mul, F.P.J.; Lommerse, I.; Mous, R.; Klooster, J.-P.T.; Zwaginga, J.-J.; Hordijk, P.L. VCAM-1-Mediated Rac Signaling Controls Endothelial Cell-Cell Contacts and Leukocyte Transmigration. Am. J. Physiol.-Cell Physiol. 2003, 285, C343–C352. [Google Scholar] [CrossRef]
- Asehnoune, K.; Strassheim, D.; Mitra, S.; Kim, J.Y.; Abraham, E. Involvement of Reactive Oxygen Species in Toll-like Receptor 4-Dependent Activation of NF-Kappa B. J. Immunol. 2004, 172, 2522–2529. [Google Scholar] [CrossRef]
- Gertzberg, N.; Neumann, P.; Rizzo, V.; Johnson, A. NAD(P)H Oxidase Mediates the Endothelial Barrier Dysfunction Induced by TNF-α. Am. J. Physiol.-Lung Cell. Mol. Physiol. 2004, 286, L37–L48. [Google Scholar] [CrossRef]
- Chignalia, A.Z.; Weinberg, G.; Dull, R.O. Norepinephrine Induces Lung Microvascular Endothelial Cell Death by NADPH Oxidase-Dependent Activation of Caspase-3. Oxidative Med. Cell. Longev. 2020, 2020, 2563764. [Google Scholar] [CrossRef]
- Sato, K.; Kadiiska, M.B.; Ghio, A.J.; Corbett, J.; Fann, Y.C.; Holland, S.M.; Thurman, R.G.; Mason, R.P. In Vivo Lipid-Derived Free Radical Formation by NADPH Oxidase in Acute Lung Injury Induced by Lipopolysaccharide: A Model for ARDS. FASEB J. 2002, 16, 1713–1720. [Google Scholar] [CrossRef]
- Elajaili, H.B.; Dee, N.M.; Dikalov, S.I.; Kao, J.P.Y.; Nozik, E.S. Use of Electron Paramagnetic Resonance (EPR) to Evaluate Redox Status in a Preclinical Model of Acute Lung Injury. Mol. Imaging Biol. 2024, 26, 495–502. [Google Scholar] [CrossRef] [PubMed]
- Aikens, J.; Dix, T.A. Perhydroxyl Radical (HOO.) Initiated Lipid Peroxidation. The Role of Fatty Acid Hydroperoxides. J. Biol. Chem. 1991, 266, 15091–15098. [Google Scholar] [CrossRef]
- Chabot, F.; Mitchell, J.; Gutteridge, J.; Evans, T. Reactive Oxygen Species in Acute Lung Injury. Eur. Respir. J. 1998, 11, 745–757. [Google Scholar] [CrossRef] [PubMed]
- McCord, J.M. Free Radicals and Inflammation: Protection of Synovial Fluid by Superoxide Dismutase. Science 1974, 185, 529–531. [Google Scholar] [CrossRef]
- Halliwell, B. Superoxide-Dependent Formation of Hydroxyl Radicals in the Presence of Iron Chelates. FEBS Lett. 1978, 92, 321–326. [Google Scholar] [CrossRef] [PubMed]
- McCord, J.M.; Day, E.D. Superoxide-Dependent Production of Hydroxyl Radical Catalyzed by Iron—EDTA Complex. FEBS Lett. 1978, 86, 139–142. [Google Scholar] [CrossRef]
- Wong, S.F.; Halliwell, B.; Richmond, R.; Skowroneck, W.R. The Role of Superoxide and Hydroxyl Radicals in the Degradation of Hyaluronic Acid Induced by Metal Ions and by Ascorbic Acid. J. Inorg. Biochem. 1981, 14, 127–134. [Google Scholar] [CrossRef]
- Kliment, C.R.; Tobolewski, J.M.; Manni, M.L.; Tan, R.J.; Enghild, J.; Oury, T.D. Extracellular Superoxide Dismutase Protects Against Matrix Degradation of Heparan Sulfate in the Lung. Antioxid. Redox Signal. 2008, 10, 261–268. [Google Scholar] [CrossRef]
- Kliment, C.R.; Englert, J.M.; Gochuico, B.R.; Yu, G.; Kaminski, N.; Rosas, I.; Oury, T.D. Oxidative Stress Alters Syndecan-1 Distribution in Lungs with Pulmonary Fibrosis. J. Biol. Chem. 2009, 284, 3537–3545. [Google Scholar] [CrossRef]
- Henry, C.B.S.; Duling, B.R. Permeation of the Luminal Capillary Glycocalyx Is Determined by Hyaluronan. Am. J. Physiol.-Heart Circ. Physiol. 1999, 277, H508–H514. [Google Scholar] [CrossRef]
- Rehm, M.; Zahler, S.; Lötsch, M.; Welsch, U.; Conzen, P.; Jacob, M.; Becker, B.F. Endothelial Glycocalyx as an Additional Barrier Determining Extravasation of 6% Hydroxyethyl Starch or 5% Albumin Solutions in the Coronary Vascular Bed. Anesthesiology 2004, 100, 1211–1223. [Google Scholar] [CrossRef] [PubMed]
- Gao, L.; Lipowsky, H.H. Composition of the Endothelial Glycocalyx and Its Relation to Its Thickness and Diffusion of Small Solutes. Microvasc. Res. 2010, 80, 394–401. [Google Scholar] [CrossRef]
- Park, S.; Kim, J.A.; Choi, S.; Suh, S.H. Superoxide Is a Potential Culprit of Caspase-3 Dependent Endothelial Cell Death Induced by Lysophosphatidylcholine. J. Physiol. Pharmacol. 2010, 61, 375–381. [Google Scholar]
- Schmidt, E.P.; Li, G.; Li, L.; Fu, L.; Yang, Y.; Overdier, K.H.; Douglas, I.S.; Linhardt, R.J. The Circulating Glycosaminoglycan Signature of Respiratory Failure in Critically Ill Adults. J. Biol. Chem. 2014, 289, 8194–8202. [Google Scholar] [CrossRef]
- Rizzo, A.N.; Haeger, S.M.; Oshima, K.; Yang, Y.; Wallbank, A.M.; Jin, Y.; Lettau, M.; McCaig, L.A.; Wickersham, N.E.; McNeil, J.B.; et al. Alveolar Epithelial Glycocalyx Degradation Mediates Surfactant Dysfunction and Contributes to Acute Respiratory Distress Syndrome. JCI Insight 2022, 7, e154573. [Google Scholar] [CrossRef]
- Sallee, C.J.; Maddux, A.B.; Hippensteel, J.A.; Markovic, D.; Oshima, K.; Schwingshackl, A.; Mourani, P.M.; Schmidt, E.P.; Sapru, A. Circulating Heparan Sulfate Profiles in Pediatric Acute Respiratory Distress Syndrome. Shock 2024, 62, 496–504. [Google Scholar] [CrossRef]
- Hippensteel, J.A.; Uchimido, R.; Tyler, P.D.; Burke, R.C.; Han, X.; Zhang, F.; McMurtry, S.A.; Colbert, J.F.; Lindsell, C.J.; Angus, D.C.; et al. Intravenous Fluid Resuscitation Is Associated with Septic Endothelial Glycocalyx Degradation. Crit. Care 2019, 23, 259. [Google Scholar] [CrossRef] [PubMed]
- Parikh, C.R.; Abraham, E.; Ancukiewicz, M.; Edelstein, C.L. Urine IL-18 Is an Early Diagnostic Marker for Acute Kidney Injury and Predicts Mortality in the Intensive Care Unit. J. Am. Soc. Nephrol. 2005, 16, 3046–3052. [Google Scholar] [CrossRef] [PubMed]
- Liu, K.D.; Glidden, D.V.; Eisner, M.D.; Parsons, P.E.; Ware, L.B.; Wheeler, A.; Korpak, A.; Thompson, B.T.; Chertow, G.M.; Matthay, M.A. Predictive and Pathogenetic Value of Plasma Biomarkers for Acute Kidney Injury in Patients with Acute Lung Injury*. Crit. Care Med. 2007, 35, 2755–2761. [Google Scholar] [CrossRef]
- Koyner, J.L.; Murray, P.T. Mechanical Ventilation and the Kidney. Blood Purif. 2010, 29, 52–68. [Google Scholar] [CrossRef]
- Raats, C.J.I.; Bakker, M.A.H.; Van Den Born, J.; Berden, J.H.M. Hydroxyl Radicals Depolymerize Glomerular Heparan Sulfate in Vitro and in Experimental Nephrotic Syndrome. J. Biol. Chem. 1997, 272, 26734–26741. [Google Scholar] [CrossRef]
- Raats, C.J.I.; Van Den Born, J.; Berden, J.H.M. Glomerular Heparan Sulfate Alterations: Mechanisms and Relevance for Proteinuria. Kidney Int. 2000, 57, 385–400. [Google Scholar] [CrossRef]
- Rops, A.L.; Jacobs, C.W.; Linssen, P.C.; Boezeman, J.B.; Lensen, J.F.; Wijnhoven, T.J.; Van Den Heuvel, L.P.; Van Kuppevelt, T.H.; Van Der Vlag, J.; Berden, J.H. Heparan Sulfate on Activated Glomerular Endothelial Cells and Exogenous Heparinoids Influence the Rolling and Adhesion of Leucocytes. Nephrol. Dial. Transplant. 2007, 22, 1070–1077. [Google Scholar] [CrossRef]
- Tan, R.J.; Zhou, D.; Xiao, L.; Zhou, L.; Li, Y.; Bastacky, S.I.; Oury, T.D.; Liu, Y. Extracellular Superoxide Dismutase Protects against Proteinuric Kidney Disease. J. Am. Soc. Nephrol. 2015, 26, 2447–2459. [Google Scholar] [CrossRef]
- Lygizos, M.I.; Yang, Y.; Altmann, C.J.; Okamura, K.; Hernando, A.A.; Perez, M.J.; Smith, L.P.; Koyanagi, D.E.; Gandjeva, A.; Bhargava, R.; et al. Heparanase Mediates Renal Dysfunction during Early Sepsis in Mice. Physiol. Rep. 2013, 1, e00153. [Google Scholar] [CrossRef]
- Schmidt, E.P.; Overdier, K.H.; Sun, X.; Lin, L.; Liu, X.; Yang, Y.; Ammons, L.A.; Hiller, T.D.; Suflita, M.A.; Yu, Y.; et al. Urinary Glycosaminoglycans Predict Outcomes in Septic Shock and Acute Respiratory Distress Syndrome. Am. J. Respir. Crit. Care Med. 2016, 194, 439–449. [Google Scholar] [CrossRef]
- Brinkmann, V.; Reichard, U.; Goosmann, C.; Fauler, B.; Uhlemann, Y.; Weiss, D.S.; Weinrauch, Y.; Zychlinsky, A. Neutrophil Extracellular Traps Kill Bacteria. Science 2004, 303, 1532–1535. [Google Scholar] [CrossRef] [PubMed]
- Li, P.; Li, M.; Lindberg, M.R.; Kennett, M.J.; Xiong, N.; Wang, Y. PAD4 Is Essential for Antibacterial Innate Immunity Mediated by Neutrophil Extracellular Traps. J. Exp. Med. 2010, 207, 1853–1862. [Google Scholar] [CrossRef]
- Fuchs, T.A.; Abed, U.; Goosmann, C.; Hurwitz, R.; Schulze, I.; Wahn, V.; Weinrauch, Y.; Brinkmann, V.; Zychlinsky, A. Novel Cell Death Program Leads to Neutrophil Extracellular Traps. J. Cell Biol. 2007, 176, 231–241. [Google Scholar] [CrossRef] [PubMed]
- Nishinaka, Y.; Arai, T.; Adachi, S.; Takaori-Kondo, A.; Yamashita, K. Singlet Oxygen Is Essential for Neutrophil Extracellular Trap Formation. Biochem. Biophys. Res. Commun. 2011, 413, 75–79. [Google Scholar] [CrossRef] [PubMed]
- Pilsczek, F.H.; Salina, D.; Poon, K.K.H.; Fahey, C.; Yipp, B.G.; Sibley, C.D.; Robbins, S.M.; Green, F.H.Y.; Surette, M.G.; Sugai, M.; et al. A Novel Mechanism of Rapid Nuclear Neutrophil Extracellular Trap Formation in Response to Staphylococcus aureus. J. Immunol. 2010, 185, 7413–7425. [Google Scholar] [CrossRef]
- Yipp, B.G.; Petri, B.; Salina, D.; Jenne, C.N.; Scott, B.N.V.; Zbytnuik, L.D.; Pittman, K.; Asaduzzaman, M.; Wu, K.; Meijndert, H.C.; et al. Infection-Induced NETosis Is a Dynamic Process Involving Neutrophil Multitasking in Vivo. Nat. Med. 2012, 18, 1386–1393. [Google Scholar] [CrossRef]
- Clark, S.R.; Ma, A.C.; Tavener, S.A.; McDonald, B.; Goodarzi, Z.; Kelly, M.M.; Patel, K.D.; Chakrabarti, S.; McAvoy, E.; Sinclair, G.D.; et al. Platelet TLR4 Activates Neutrophil Extracellular Traps to Ensnare Bacteria in Septic Blood. Nat. Med. 2007, 13, 463–469. [Google Scholar] [CrossRef] [PubMed]
- Lefrançais, E.; Mallavia, B.; Zhuo, H.; Calfee, C.S.; Looney, M.R. Maladaptive Role of Neutrophil Extracellular Traps in Pathogen-Induced Lung Injury. JCI Insight 2018, 3, e98178. [Google Scholar] [CrossRef]
- Folz, R.J.; Abushamaa, A.M.; Suliman, H.B. Extracellular Superoxide Dismutase in the Airways of Transgenic Mice Reduces Inflammation and Attenuates Lung Toxicity Following Hyperoxia. J. Clin. Investig. 1999, 103, 1055–1066. [Google Scholar] [CrossRef]
- Suliman, H.B.; Ryan, L.K.; Bishop, L.; Folz, R.J. Prevention of Influenza-Induced Lung Injury in Mice Overexpressing Extracellular Superoxide Dismutase. Am. J. Physiol.-Lung Cell. Mol. Physiol. 2001, 280, L69–L78. [Google Scholar] [CrossRef]
- Bowler, R.P.; Nicks, M.; Tran, K.; Tanner, G.; Chang, L.-Y.; Young, S.K.; Worthen, G.S. Extracellular Superoxide Dismutase Attenuates Lipopolysaccharide-Induced Neutrophilic Inflammation. Am. J. Respir. Cell Mol. Biol. 2004, 31, 432–439. [Google Scholar] [CrossRef]
- Hassett, P.; Curley, G.F.; Contreras, M.; Masterson, C.; Higgins, B.D.; O’Brien, T.; Devaney, J.; O’Toole, D.; Laffey, J.G. Overexpression of Pulmonary Extracellular Superoxide Dismutase Attenuates Endotoxin-Induced Acute Lung Injury. Intensive Care Med. 2011, 37, 1680. [Google Scholar] [CrossRef]
- Min, J.H.; Codipilly, C.N.; Nasim, S.; Miller, E.J.; Ahmed, M.N. Synergistic Protection against Hyperoxia-Induced Lung Injury by Neutrophils Blockade and EC-SOD Overexpression. Respir. Res. 2012, 13, 58. [Google Scholar] [CrossRef] [PubMed]
- Bowler, R.P.; Arcaroli, J.; Abraham, E.; Patel, M.; Chang, L.-Y.; Crapo, J.D. Evidence for Extracellular Superoxide Dismutase as a Mediator of Hemorrhage-Induced Lung Injury. Am. J. Physiol.-Lung Cell. Mol. Physiol. 2003, 284, L680–L687. [Google Scholar] [CrossRef] [PubMed]
- Starr, M.E.; Ueda, J.; Yamamoto, S.; Evers, B.M.; Saito, H. The Effects of Aging on Pulmonary Oxidative Damage, Protein Nitration, and Extracellular Superoxide Dismutase down-Regulation during Systemic Inflammation. Free Radic. Biol. Med. 2011, 50, 371–380. [Google Scholar] [CrossRef]
- Loenders, B.; Van Mechelen, E.; Nicoläı, S.; Buyssens, N.; Van Osselaer, N.; Jorens, P.G.; Willems, J.; Herman, A.G.; Slegers, H. Localization of Extracellular Superoxide Dismutase in Rat Lung: Neutrophils and Macrophages as Carriers of the Enzyme. Free Radic. Biol. Med. 1998, 24, 1097–1106. [Google Scholar] [CrossRef] [PubMed]
- Tan, R.J.; Lee, J.S.; Manni, M.L.; Fattman, C.L.; Tobolewski, J.M.; Zheng, M.; Kolls, J.K.; Martin, T.R.; Oury, T.D. Inflammatory Cells as a Source of Airspace Extracellular Superoxide Dismutase after Pulmonary Injury. Am. J. Respir. Cell Mol. Biol. 2006, 34, 226–232. [Google Scholar] [CrossRef]
- Folz, R.J.; Guan, J.; Seldin, M.F.; Oury, T.D.; Enghild, J.J.; Crapo, J.D. Mouse Extracellular Superoxide Dismutase: Primary Structure, Tissue-Specific Gene Expression, Chromosomal Localization, and Lung In Situ Hybridization. Am. J. Respir. Cell Mol. Biol. 1997, 17, 393–403. [Google Scholar] [CrossRef]
- Manni, M.L.; Epperly, M.W.; Han, W.; Blackwell, T.S.; Duncan, S.R.; Piganelli, J.D.; Oury, T.D. Leukocyte-Derived Extracellular Superoxide Dismutase Does Not Contribute to Airspace EC-SOD after Interstitial Pulmonary Injury. Am. J. Physiol.-Lung Cell. Mol. Physiol. 2012, 302, L160–L166. [Google Scholar] [CrossRef]
- Iversen, M.B.; Gottfredsen, R.H.; Larsen, U.G.; Enghild, J.J.; Praetorius, J.; Borregaard, N.; Petersen, S.V. Extracellular Superoxide Dismutase Is Present in Secretory Vesicles of Human Neutrophils and Released upon Stimulation. Free Radic. Biol. Med. 2016, 97, 478–488. [Google Scholar] [CrossRef]
- Pasupuleti, M.; Davoudi, M.; Malmsten, M.; Schmidtchen, A. Antimicrobial Activity of a C-Terminal Peptide from Human Extracellular Superoxide Dismutase. BMC Res. Notes 2009, 2, 136. [Google Scholar] [CrossRef]
- McCarthy, S.D.; Rohde, C.B.; Angel, M.; Masterson, C.H.; MacLoughlin, R.; Fandiño, J.; González, H.E.; Byrnes, D.; Laffey, J.G.; O’Toole, D. Aerosolized Pulmonary Delivery of mRNA Constructs Attenuates Severity of Escherichia Coli Pneumonia in the Rat. Nucleic Acid. Ther. 2023, 33, 148–158. [Google Scholar] [CrossRef]
- Oshikawa, J.; Urao, N.; Kim, H.W.; Kaplan, N.; Razvi, M.; McKinney, R.; Poole, L.B.; Fukai, T.; Ushio-Fukai, M. Extracellular SOD-Derived H2O2 Promotes VEGF Signaling in Caveolae/Lipid Rafts and Post-Ischemic Angiogenesis in Mice. PLoS ONE 2010, 5, e10189. [Google Scholar] [CrossRef] [PubMed]
- Teoh, M.L.T.; Fitzgerald, M.P.; Oberley, L.W.; Domann, F.E. Overexpression of Extracellular Superoxide Dismutase Attenuates Heparanase Expression and Inhibits Breast Carcinoma Cell Growth and Invasion. Cancer Res. 2009, 69, 6355–6363. [Google Scholar] [CrossRef] [PubMed]
- Ribot, J.C.; Lopes, N.; Silva-Santos, B. Γδ T Cells in Tissue Physiology and Surveillance. Nat. Rev. Immunol. 2021, 21, 221–232. [Google Scholar] [CrossRef]
- Patil, R.S.; Bhat, S.A.; Dar, A.A.; Chiplunkar, S.V. The Jekyll and Hyde Story of IL17-Producing γδT Cells. Front. Immunol. 2015, 6, 37. [Google Scholar] [CrossRef] [PubMed]
- Nakasone, C.; Yamamoto, N.; Nakamatsu, M.; Kinjo, T.; Miyagi, K.; Uezu, K.; Nakamura, K.; Higa, F.; Ishikawa, H.; O’Brien, R.L.; et al. Accumulation of Gamma/Delta T Cells in the Lungs and Their Roles in Neutrophil-Mediated Host Defense against Pneumococcal Infection. Microbes Infect. 2007, 9, 251–258. [Google Scholar] [CrossRef]
- Sul, C.; Lewis, C.; Dee, N.; Burns, N.; Oshima, K.; Schmidt, E.; Vohwinkel, C.; Nozik, E. Release of Extracellular Superoxide Dismutase into Alveolar Fluid Protects against Acute Lung Injury and Inflammation in Staphylococcus Aureus Pneumonia. Am. J. Physiol.-Lung Cell. Mol. Physiol. 2023, 324, L445–L455. [Google Scholar] [CrossRef] [PubMed]
- Sul, C.; Lewis, C.V.; Posey, J.; Jordan, M.; Colon Hidalgo, D.; Porfilio, T.; Elajaili, H.; McCormack, G.; Burciaga, S.; Delaney, C.; et al. Increased Circulating Extracellular Superoxide Dismutase Attenuates Platelet–Neutrophil Interactions. Am. J. Respir. Cell Mol. Biol. 2025, 72, 653–662. [Google Scholar] [CrossRef] [PubMed]
- Fuchs, T.A.; Brill, A.; Duerschmied, D.; Schatzberg, D.; Monestier, M.; Myers, D.D.; Wrobleski, S.K.; Wakefield, T.W.; Hartwig, J.H.; Wagner, D.D. Extracellular DNA Traps Promote Thrombosis. Proc. Natl. Acad. Sci. USA 2010, 107, 15880–15885. [Google Scholar] [CrossRef]
- Oury, T.D.; Schaefer, L.M.; Fattman, C.L.; Choi, A.; Weck, K.E.; Watkins, S.C. Depletion of Pulmonary EC-SOD after Exposure to Hyperoxia. Am. J. Physiol.-Lung Cell. Mol. Physiol. 2002, 283, L777–L784. [Google Scholar] [CrossRef]
- Florian, J.A.; Kosky, J.R.; Ainslie, K.; Pang, Z.; Dull, R.O.; Tarbell, J.M. Heparan Sulfate Proteoglycan Is a Mechanosensor on Endothelial Cells. Circ. Res. 2003, 93, e136–e142. [Google Scholar] [CrossRef]
- Constantino, L.; Galant, L.S.; Vuolo, F.; Guarido, K.L.; Kist, L.W.; De Oliveira, G.M.T.; Pasquali, M.A.D.B.; De Souza, C.T.; Da Silva-Santos, J.E.; Bogo, M.R.; et al. Extracellular Superoxide Dismutase Is Necessary to Maintain Renal Blood Flow during Sepsis Development. ICMx 2017, 5, 15. [Google Scholar] [CrossRef]
- Nozik-Grayck, E.; Suliman, H.B.; Majka, S.; Albietz, J.; Van Rheen, Z.; Roush, K.; Stenmark, K.R. Lung EC-SOD Overexpression Attenuates Hypoxic Induction of Egr-1 and Chronic Hypoxic Pulmonary Vascular Remodeling. Am. J. Physiol.-Lung Cell. Mol. Physiol. 2008, 295, L422–L430. [Google Scholar] [CrossRef]
- Xu, D.; Guo, H.; Xu, X.; Lu, Z.; Fassett, J.; Hu, X.; Xu, Y.; Tang, Q.; Hu, D.; Somani, A.; et al. Exacerbated Pulmonary Arterial Hypertension and Right Ventricular Hypertrophy in Animals With Loss of Function of Extracellular Superoxide Dismutase. Hypertension 2011, 58, 303–309. [Google Scholar] [CrossRef] [PubMed]
- Lewis, C.V.; Nguyen, T.-T.N.; Porfilio, T.E.; Burciaga, S.D.; Posey, J.N.; Jordan, M.; Colon Hidalgo, D.; Stenmark, K.R.; Mickael, C.; Sul, C.; et al. Vascular EC-SOD Limits the Accumulation, Proinflammatory Profibrotic Reprogramming, and Hyaluronan Binding of Interstitial Macrophages in Hypoxia. Am. J. Physiol.-Lung Cell. Mol. Physiol. 2025, 328, L885–L900. [Google Scholar] [CrossRef]
- Sullivan, K.D.; Galbraith, M.D.; Kinning, K.T.; Bartsch, K.W.; Levinsky, N.C.; Araya, P.; Smith, K.P.; Granrath, R.E.; Shaw, J.R.; Baxter, R.M.; et al. The COVIDome Explorer Researcher Portal. Cell Rep. 2021, 36, 109527. [Google Scholar] [CrossRef]
- Jin, J.-Y.; Chen, Y.; Wang, X.-Y.; Li, C.-M.; Chen, W.-L.; Li, L. Superoxide Dismutase 3 as an Inflammatory Suppressor in A549 Cells Infected with Mycoplasma Pneumoniae. J. Biosci. 2020, 45, 133. [Google Scholar] [CrossRef]
- Andrejkovits, Á.V.; Huțanu, A.; Susányi, E.J.; Negrea, V.; Văsieșiu, A.M. The Prognostic Utility of Cytokines in Hospitalized COVID-19 Patients. J. Crit. Care Med. (Targu Mures) 2023, 9, 208–217. [Google Scholar] [CrossRef]
- Abouhashem, A.S.; Singh, K.; Azzazy, H.M.E.; Sen, C.K. Is Low Alveolar Type II Cell SOD3 in the Lungs of Elderly Linked to the Observed Severity of COVID-19? Antioxid. Redox Signal. 2020, 33, 59–65. [Google Scholar] [CrossRef] [PubMed]
- Kim, L.; Garg, S.; O’Halloran, A.; Whitaker, M.; Pham, H.; Anderson, E.J.; Armistead, I.; Bennett, N.M.; Billing, L.; Como-Sabetti, K.; et al. Risk Factors for Intensive Care Unit Admission and In-Hospital Mortality Among Hospitalized Adults Identified through the US Coronavirus Disease 2019 (COVID-19)-Associated Hospitalization Surveillance Network (COVID-NET). Clin. Infect. Dis. 2021, 72, e206–e214. [Google Scholar] [CrossRef]
- Taylor, C.A.; Patel, K.; Patton, M.E.; Reingold, A.; Kawasaki, B.; Meek, J.; Openo, K.; Ryan, P.A.; Falkowski, A.; Bye, E.; et al. COVID-19–Associated Hospitalizations Among U.S. Adults Aged ≥65 Years—COVID-NET, 13 States, January–August 2023. MMWR. Morb. Mortal. Wkly. Rep. 2023, 72, 1089–1094. [Google Scholar] [CrossRef] [PubMed]
- Koumans, E.H.A.; Khan, D.; Trejo, I.; Deng, L.; Devine, O.; Smith-Jeffcoat, S.E.; Hamid, S.; Patton, M.E.; Carter, E.; Aggarwal, M.; et al. Estimated Burden of COVID-19 Illnesses, Medical Visits, Hospitalizations, and Deaths in the US From October 2022 to September 2024. JAMA Intern. Med. 2026, e257179. [Google Scholar] [CrossRef]
- McCord, J.M.; Gao, B.; Leff, J.; Flores, S.C. Neutrophil-Generated Free Radicals: Possible Mechanisms of Injury in Adult Respiratory Distress Syndrome. Environ. Health Perspect. 1994, 102, 57–60. [Google Scholar] [CrossRef]
- Owen, C.A.; Campbell, M.A.; Sannes, P.L.; Boukedes, S.S.; Campbell, E.J. Cell Surface-Bound Elastase and Cathepsin G on Human Neutrophils: A Novel, Non-Oxidative Mechanism by Which Neutrophils Focus and Preserve Catalytic Activity of Serine Proteinases. J. Cell Biol. 1995, 131, 775–789. [Google Scholar] [CrossRef] [PubMed]
- Morales, K.; Olesen, M.N.; Poulsen, E.T.; Larsen, U.G.; Enghild, J.J.; Petersen, S.V. The Effects of Hypochlorous Acid and Neutrophil Proteases on the Structure and Function of Extracellular Superoxide Dismutase. Free Radic. Biol. Med. 2015, 81, 38–46. [Google Scholar] [CrossRef] [PubMed]
- Mohammedi, K.; Bellili-Muñoz, N.; Marklund, S.L.; Driss, F.; Le Nagard, H.; Patente, T.A.; Fumeron, F.; Roussel, R.; Hadjadj, S.; Marre, M.; et al. Plasma Extracellular Superoxide Dismutase Concentration, Allelic Variations in the SOD3 Gene and Risk of Myocardial Infarction and All-Cause Mortality in People with Type 1 and Type 2 Diabetes. Cardiovasc. Diabetol. 2015, 14, 845. [Google Scholar] [CrossRef] [PubMed]
- Calfee, C.S.; Delucchi, K.; Parsons, P.E.; Thompson, B.T.; Ware, L.B.; Matthay, M.A. Subphenotypes in Acute Respiratory Distress Syndrome: Latent Class Analysis of Data from Two Randomised Controlled Trials. Lancet Respir. Med. 2014, 2, 611–620. [Google Scholar] [CrossRef]
- Sinha, P.; Calfee, C.S. Peeking under the Hood of Acute Respiratory Distress Syndrome Phenotypes: Deeper Insights into Biological Heterogeneity. Am. J. Respir. Crit. Care Med. 2019, 200, 4–6. [Google Scholar] [CrossRef]
- Qadir, N.; Sahetya, S.; Munshi, L.; Summers, C.; Abrams, D.; Beitler, J.; Bellani, G.; Brower, R.G.; Burry, L.; Chen, J.-T.; et al. An Update on Management of Adult Patients with Acute Respiratory Distress Syndrome: An Official American Thoracic Society Clinical Practice Guideline. Am. J. Respir. Crit. Care Med. 2024, 209, 24–36. [Google Scholar] [CrossRef]
- Fowler, A.A.; Truwit, J.D.; Hite, R.D.; Morris, P.E.; DeWilde, C.; Priday, A.; Fisher, B.; Thacker, L.R.; Natarajan, R.; Brophy, D.F.; et al. Effect of Vitamin C Infusion on Organ Failure and Biomarkers of Inflammation and Vascular Injury in Patients With Sepsis and Severe Acute Respiratory Failure: The CITRIS-ALI Randomized Clinical Trial. JAMA 2019, 322, 1261–1270. [Google Scholar] [CrossRef]
- de Alencar, J.C.G.; Moreira, C.d.L.; Müller, A.D.; Chaves, C.E.; Fukuhara, M.A.; da Silva, E.A.; Miyamoto, M.d.F.S.; Pinto, V.B.; Bueno, C.G.; Lazar Neto, F.; et al. Double-Blind, Randomized, Placebo-Controlled Trial With N-Acetylcysteine for Treatment of Severe Acute Respiratory Syndrome Caused by Coronavirus Disease 2019 (COVID-19). Clin. Infect. Dis. 2021, 72, e736–e741. [Google Scholar] [CrossRef]
- Taher, A.; Lashgari, M.; Sedighi, L.; Rahimi-Bashar, F.; Poorolajal, J.; Mehrpooya, M. A Pilot Study on Intravenous N-Acetylcysteine Treatment in Patients with Mild-to-Moderate COVID19-Associated Acute Respiratory Distress Syndrome. Pharmacol. Rep. 2021, 73, 1650–1659. [Google Scholar] [CrossRef]
- Bunnell, E.; Pacht, E.R. Oxidized Glutathione Is Increased in the Alveolar Fluid of Patients with the Adult Respiratory Distress Syndrome. Am. Rev. Respir. Dis. 1993, 148, 1174–1178. [Google Scholar] [CrossRef]
- Wilson, J.X. Mechanism of Action of Vitamin C in Sepsis: Ascorbate Modulates Redox Signaling in Endothelium. Biofactors 2009, 35, 5–13. [Google Scholar] [CrossRef]
- Borrelli, E.; Roux-Lombard, P.; Grau, G.E.; Girardin, E.; Ricou, B.; Dayer, J.; Suter, P.M. Plasma Concentrations of Cytokines, Their Soluble Receptors, and Antioxidant Vitamins Can Predict the Development of Multiple Organ Failure in Patients at Risk. Crit. Care Med. 1996, 24, 392–397. [Google Scholar] [CrossRef]
- Fisher, B.J.; Seropian, I.M.; Kraskauskas, D.; Thakkar, J.N.; Voelkel, N.F.; Fowler, A.A.; Natarajan, R. Ascorbic Acid Attenuates Lipopolysaccharide-Induced Acute Lung Injury. Crit. Care Med. 2011, 39, 1454–1460. [Google Scholar] [CrossRef]
- Yen, C.-C.; Lai, Y.-W.; Chen, H.-L.; Lai, C.-W.; Lin, C.-Y.; Chen, W.; Kuan, Y.-P.; Hsu, W.-H.; Chen, C.-M. Aerosolized Human Extracellular Superoxide Dismutase Prevents Hyperoxia-Induced Lung Injury. PLoS ONE 2011, 6, e26870. [Google Scholar] [CrossRef] [PubMed]
- Kim, Y.; Jeon, Y.-J.; Ryu, K.; Kim, T.-Y. Zinc(II) Ion Promotes Anti-Inflammatory Effects of rhSOD3 by Increasing Cellular Association. BMB Rep. 2017, 50, 85–90. [Google Scholar] [CrossRef] [PubMed]
- Rosenfeld, W.; Evans, H.; Concepcion, L.; Jhaveri, R.; Schaeffer, H.; Friedman, A. Prevention of Bronchopulmonary Dysplasia by Administration of Bovine Superoxide Dismutase in Preterm Infants with Respiratory Distress Syndrome. J. Pediatr. 1984, 105, 781–785. [Google Scholar] [CrossRef]
- Rosenfeld, W.N.; Davis, J.M.; Parton, L.; Richter, S.E.; Price, A.; Flaster, E.; Kassem, N. Safety and Pharmacokinetics of Recombinant Human Superoxide Dismutase Administered Intratracheally to Premature Neonates With Respiratory Distress Syndrome. Pediatrics 1996, 97, 811–817. [Google Scholar] [CrossRef]
- Davis, J.M.; Rosenfeld, W.N.; Richter, S.E.; Parad, R.; Gewolb, I.H.; Spitzer, A.R.; Carlo, W.A.; Couser, R.J.; Price, A.; Flaster, E.; et al. Safety and Pharmacokinetics of Multiple Doses of Recombinant Human CuZn Superoxide Dismutase Administered Intratracheally to Premature Neonates With Respiratory Distress Syndrome. Pediatrics 1997, 100, 24–30. [Google Scholar] [CrossRef]
- Davis, J.M.; Richter, S.E.; Biswas, S.; Rosenfeld, W.N.; Parton, L.; Gewolb, I.H.; Parad, R.; Carlo, W.; Couser, R.J.; Baumgart, S.; et al. Long-Term Follow-up of Premature Infants Treated With Prophylactic, Intratracheal Recombinant Human CuZn Superoxide Dismutase. J. Perinatol. 2000, 20, 213–216. [Google Scholar] [CrossRef]
- Salvemini, D.; Riley, D.P.; Cuzzocrea, S. Sod Mimetics Are Coming of Age. Nat. Rev. Drug Discov. 2002, 1, 367–374. [Google Scholar] [CrossRef] [PubMed]
- Gongora, M.C.; Lob, H.E.; Landmesser, U.; Guzik, T.J.; Martin, W.D.; Ozumi, K.; Wall, S.M.; Wilson, D.S.; Murthy, N.; Gravanis, M.; et al. Loss of Extracellular Superoxide Dismutase Leads to Acute Lung Damage in the Presence of Ambient Air. Am. J. Pathol. 2008, 173, 915–926. [Google Scholar] [CrossRef] [PubMed]
- al Jalali, V.; Bauer, M.; Jorda, A.; Bergmann, F.; Wölfl-Duchek, M.; Partl, R.; Vcelar, B.; Katinger, D.; Bashur, R.; Schnidar, H.; et al. Randomized, Double-Blind, Phase I Pharmacokinetic Study of Subcutaneous Recombinant Human Superoxide Dismutase (rhSOD) in Healthy Volunteers. Clin. Pharmacokinet. 2026, 65, 71–80. [Google Scholar] [CrossRef]
- Nagano, T.; Hirano, T.; Hirobe, M. Superoxide Dismutase Mimics Based on Iron in Vivo. J. Biol. Chem. 1989, 264, 9243–9249. [Google Scholar] [CrossRef]
- Beyer, W.F.; Fridovich, I. Characterization of a Superoxide Dismutase Mimic Prepared from Desferrioxamine and MnO2. Arch. Biochem. Biophys. 1989, 271, 149–156. [Google Scholar] [CrossRef] [PubMed]
- Darr, D.; Zarilla, K.A.; Fridovich, I. A Mimic of Superoxide Dismutase Activity Based upon Desferrioxamine B and Manganese(IV). Arch. Biochem. Biophys. 1987, 258, 351–355. [Google Scholar] [CrossRef]
- Hosakote, Y.M.; Komaravelli, N.; Mautemps, N.; Liu, T.; Garofalo, R.P.; Casola, A. Antioxidant Mimetics Modulate Oxidative Stress and Cellular Signaling in Airway Epithelial Cells Infected with Respiratory Syncytial Virus. Am. J. Physiol.-Lung Cell. Mol. Physiol. 2012, 303, L991–L1000. [Google Scholar] [CrossRef] [PubMed]
- Baudry, M.; Etienne, S.; Bruce, A.; Palucki, M.; Jacobsen, E.; Malfroy, B. Salen-Manganese Complexes Are Superoxide Dismutase-Mimics. Biochem. Biophys. Res. Commun. 1993, 192, 964–968. [Google Scholar] [CrossRef] [PubMed]
- Gonzalez, P.K.; Zhuang, J.; Doctrow, S.R.; Malfroy, B.; Benson, P.F.; Menconi, M.J.; Fink, M.P. EUK-8, a Synthetic Superoxide Dismutase and Catalase Mimetic, Ameliorates Acute Lung Injury in Endotoxemic Swine. J. Pharmacol. Exp. Ther. 1995, 275, 798–806. [Google Scholar] [CrossRef]
- Peksöz, R.; Ağırman, E.; Tavacı, T.; Topatan, A.S.; Özmen, S.; Kutlu, Z.; Atış, V.; Halıcı, Z.; Atamanalp, S.S. Protective Effects of Avasopasem Manganese (GC4419) against Sepsis-Induced Acute Lung Injury: A Comprehensive Experimental Study. Eur. J. Clin. Investig. 2025, 56, e70111. [Google Scholar] [CrossRef]
- Spasojević, I.; Chen, Y.; Noel, T.J.; Fan, P.; Zhang, L.; Rebouças, J.S.; St Clair, D.K.; Batinić-Haberle, I. Pharmacokinetics of the Potent Redox-Modulating Manganese Porphyrin, MnTE-2-PyP5+, in Plasma and Major Organs of B6C3F1 Mice. Free Radic. Biol. Med. 2008, 45, 943–949. [Google Scholar] [CrossRef]
- McGovern, T.; Day, B.J.; White, C.W.; Powell, W.S.; Martin, J.G. AEOL10150: A Novel Therapeutic for Rescue Treatment after Toxic Gas Lung Injury. Free Radic. Biol. Med. 2011, 50, 602–608. [Google Scholar] [CrossRef]
- Batinić-Haberle, I.; Rebouças, J.S.; Spasojević, I. Superoxide Dismutase Mimics: Chemistry, Pharmacology, and Therapeutic Potential. Antioxid. Redox Signal. 2010, 13, 877–918. [Google Scholar] [CrossRef]
- Aston, K.; Rath, N.; Naik, A.; Slomczynska, U.; Schall, O.F.; Riley, D.P. Computer-Aided Design (CAD) of Mn(II) Complexes: Superoxide Dismutase Mimetics with Catalytic Activity Exceeding the Native Enzyme. Inorg. Chem. 2001, 40, 1779–1789. [Google Scholar] [CrossRef] [PubMed]
- Folz, R.J.; Peno-Green, L.; Crapo, J.D. Identification of a Homozygous Missense Mutation (Arg to Gly) in the Critical Binding Region of the Human EC-SOD Gene (SOD3) and Its Association with Dramatically Increased Serum Enzyme Levels. Hum. Mol. Genet. 1994, 3, 2251–2254. [Google Scholar] [CrossRef] [PubMed]
- Sandström, J.; Nilsson, P.; Karlsson, K.; Marklund, S.L. 10-Fold Increase in Human Plasma Extracellular Superoxide Dismutase Content Caused by a Mutation in Heparin-Binding Domain. J. Biol. Chem. 1994, 269, 19163–19166. [Google Scholar] [CrossRef] [PubMed]
- Yamada, H.; Yamada, Y.; Adachi, T.; Goto, H.; Ogasawara, N.; Futenma, A.; Kitano, M.; Hirano, K.; Kato, K. Molecular Analysis of Extracellular-Superoxide Dismutase Gene Associated with High Level in Serum. Jpn. J. Hum. Genet. 1995, 40, 177–184. [Google Scholar] [CrossRef]
- Adachi, T.; Yamada, H.; Yamada, Y.; Morihara, N.; Yamazaki, N.; Murakami, T.; Futenma, A.; Kato, K.; Hirano, K. Substitution of Glycine for Arginine-213 in Extracellular-Superoxide Dismutase Impairs Affinity for Heparin and Endothelial Cell Surface. Biochem. J. 1996, 313, 235–239. [Google Scholar] [CrossRef]
- Adachi, T.; Ohta, H.; Yamada, H.; Futenma, A.; Kato, K.; Hirano, K. Quantitative Analysis of Extracellular-Superoxide Dismutase in Serum and Urine by ELISA with Monoclonal Antibody. Clin. Chim. Acta 1992, 212, 89–102. [Google Scholar] [CrossRef]
- Marklund, S.L.; Nilsson, P.; Israelsson, K.; Schampi, I.; Peltonen, M.; Asplund, K. Two Variants of Extracellular-Superoxide Dismutase: Relationship to Cardiovascular Risk Factors in an Unselected Middle-Aged Population. J. Intern. Med. 1997, 242, 5–14. [Google Scholar] [CrossRef]
- Petersen, S.V.; Olsen, D.A.; Kenney, J.M.; Oury, T.D.; Valnickova, Z.; Thøgersen, I.B.; Crapo, J.D.; Enghild, J.J. The High Concentration of Arg213→Gly Extracellular Superoxide Dismutase (EC-SOD) in Plasma Is Caused by a Reduction of Both Heparin and Collagen Affinities. Biochem. J. 2005, 385, 427–432. [Google Scholar] [CrossRef]
- Iida, R.; Tsubota, E.; Takeshita, H.; Yasuda, T. Multiplex Single Base Extension Method for Simultaneous Genotyping of Non-Synonymous SNP in the Three Human SOD Genes. Electrophoresis 2008, 29, 4788–4794. [Google Scholar] [CrossRef]
- Hartney, J.M.; Stidham, T.; Goldstrohm, D.A.; Oberley-Deegan, R.E.; Weaver, M.R.; Valnickova-Hansen, Z.; Scavenius, C.; Benninger, R.K.P.; Leahy, K.F.; Johnson, R.; et al. A Common Polymorphism in Extracellular Superoxide Dismutase Affects Cardiopulmonary Disease Risk by Altering Protein Distribution. Circ. Cardiovasc. Genet. 2014, 7, 659–666. [Google Scholar] [CrossRef] [PubMed]
- Adachi, T.; Morihara, N.; Yamazaki, N.; Yamada, H.; Futenina, A.; Kato, K.; Hirano, K. An Arginine-213 to Glycine Mutation in Human Extracellular-Superoxide Dismutase Reduces Susceptibility to Trypsin-Like Proteinases. J. Biochem. 1996, 120, 184–188. [Google Scholar] [CrossRef] [PubMed]
- Kobylecki, C.J.; Afzal, S.; Nordestgaard, B.G. Does SOD3 R213G Homozygosity Influence Morbidity, Mortality, and Lung Function in the General Population? Antioxid. Redox Signal. 2016, 24, 884–891. [Google Scholar] [CrossRef]
- Arcaroli, J.J.; Hokanson, J.E.; Abraham, E.; Geraci, M.; Murphy, J.R.; Bowler, R.P.; Dinarello, C.A.; Silveira, L.; Sankoff, J.; Heyland, D.; et al. Extracellular Superoxide Dismutase Haplotypes Are Associated with Acute Lung Injury and Mortality. Am. J. Respir. Crit. Care Med. 2009, 179, 105–112. [Google Scholar] [CrossRef]
- Juul, K.; Tybjærg-Hansen, A.; Marklund, S.; Lange, P.; Nordestgaard, B.G. Genetically Increased Antioxidative Protection and Decreased Chronic Obstructive Pulmonary Disease. Am. J. Respir. Crit. Care Med. 2006, 173, 858–864. [Google Scholar] [CrossRef] [PubMed]
- Young, R.P.; Hopkins, R.; Black, P.N.; Eddy, C.; Wu, L.; Gamble, G.D.; Mills, G.D.; Garrett, J.E.; Eaton, T.E.; Rees, M.I. Functional Variants of Antioxidant Genes in Smokers with COPD and in Those with Normal Lung Function. Thorax 2006, 61, 394–399. [Google Scholar] [CrossRef]
- Siedlinski, M.; Diemen, C.C.v.; Postma, D.S.; Vonk, J.M.; Boezen, H.M. Superoxide Dismutases, Lung Function and Bronchial Responsiveness in a General Population. Eur. Respir. J. 2009, 33, 986–992. [Google Scholar] [CrossRef]
- Juul, K.; Tybjærg-Hansen, A.; Marklund, S.; Heegaard, N.H.H.; Steffensen, R.; Sillesen, H.; Jensen, G.; Nordestgaard, B.G. Genetically Reduced Antioxidative Protection and Increased Ischemic Heart Disease Risk. Circulation 2004, 109, 59–65. [Google Scholar] [CrossRef]
- Grammer, T.B.; Renner, W.; Hoffmann, M.M.; Kleber, M.; Winkelhofer-Roob, B.M.; Boehm, B.O.; Maerz, W. SOD3 R231G Polymorphism Associated with Coronary Artery Disease and Myocardial Infarction. The Ludwigshafen Risk and Cardiovascular Health (LURIC) Study. Free Radic. Res. 2009, 43, 677–684. [Google Scholar] [CrossRef]
- Strokov, I.A.; Bursa, T.R.; Drepa, O.I.; Zotova, E.V.; Nosikov, V.V.; Ametov, A.S. Predisposing Genetic Factors for Diabetic Polyneuropathy in Patients with Type 1 Diabetes: A Population-Based Case-Control Study. Acta Diabetol. 2003, 40, S375–S379. [Google Scholar] [CrossRef]
- Yamada, H.; Yamada, Y.; Adachi, T.; Goto, H.; Ogasawara, N.; Futenma, A.; Kitano, M.; Miyai, H.; Fukatsu, A.; Hirano, K.; et al. Polymorphism of Extracellular Superoxide Dismutase (EC-SOD) Gene: Relation to the Mutation Responsible for High EC-SOD Level in Serum. Jpn. J. Hum. Genet. 1997, 42, 353–356. [Google Scholar] [CrossRef]
- Dahl, M.; Bowler, R.P.; Juul, K.; Crapo, J.D.; Levy, S.; Nordestgaard, B.G. Superoxide Dismutase 3 Polymorphism Associated with Reduced Lung Function in Two Large Populations. Am. J. Respir. Crit. Care Med. 2008, 178, 906–912. [Google Scholar] [CrossRef] [PubMed]
- Campo, S.; Sardo, A.M.; Campo, G.M.; D’Ascola, A.; Avenoso, A.; Castaldo, M.; Saitta, C.; Lania, A.; Saitta, A.; Calatroni, A. Extracellular Superoxide Dismutase (EC-SOD) Gene Mutations Screening in a Sample of Mediterranean Population. Mutat. Res.-Fundam. Mol. Mech. Mutagen. 2005, 578, 143–148. [Google Scholar] [CrossRef] [PubMed]
- Tamai, M.; Furuta, H.; Kawashima, H.; Doi, A.; Hamanishi, T.; Shimomura, H.; Sakagashira, S.; Nishi, M.; Sasaki, H.; Sanke, T.; et al. Extracellular Superoxide Dismutase Gene Polymorphism Is Associated with Insulin Resistance and the Susceptibility to Type 2 Diabetes. Diabetes Res. Clin. Pract. 2006, 71, 140–145. [Google Scholar] [CrossRef] [PubMed]
- Ganguly, K.; Depner, M.; Fattman, C.; Bein, K.; Oury, T.D.; Wesselkamper, S.C.; Borchers, M.T.; Schreiber, M.; Gao, F.; von Mutius, E.; et al. Superoxide Dismutase 3, Extracellular (SOD3) Variants and Lung Function. Physiol. Genom. 2009, 37, 260–267. [Google Scholar] [CrossRef][Green Version]
- Rosta, K.; Molvarec, A.; Enzsöly, A.; Nagy, B.; Rónai, Z.; Fekete, A.; Sasvári-Székely, M.; Rigó, J.; Vér, Á. Association of Extracellular Superoxide Dismutase (SOD3) Ala40Thr Gene Polymorphism with Pre-Eclampsia Complicated by Severe Fetal Growth Restriction. Eur. J. Obstet. Gynecol. Reprod. Biol. 2009, 142, 134–138. [Google Scholar] [CrossRef]
- Mansego, M.L.; Solar, G.D.M.; Alonso, M.P.; Martínez, F.; Sáez, G.T.; Escudero, J.C.M.; Redón, J.; Chaves, F.J. Polymorphisms of Antioxidant Enzymes, Blood Pressure and Risk of Hypertension. J. Hypertens. 2011, 29, 492–500. [Google Scholar] [CrossRef]



Disclaimer/Publisher’s Note: The statements, opinions and data contained in all publications are solely those of the individual author(s) and contributor(s) and not of MDPI and/or the editor(s). MDPI and/or the editor(s) disclaim responsibility for any injury to people or property resulting from any ideas, methods, instructions or products referred to in the content. |
© 2026 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license.
Share and Cite
Osier, W.; Nozik, E.S.; Sul, C. Extracellular Superoxide Dismutase in Acute Respiratory Distress Syndrome: Pathogenic Mechanisms and Therapeutic Implications. Antioxidants 2026, 15, 249. https://doi.org/10.3390/antiox15020249
Osier W, Nozik ES, Sul C. Extracellular Superoxide Dismutase in Acute Respiratory Distress Syndrome: Pathogenic Mechanisms and Therapeutic Implications. Antioxidants. 2026; 15(2):249. https://doi.org/10.3390/antiox15020249
Chicago/Turabian StyleOsier, William, Eva S. Nozik, and Christina Sul. 2026. "Extracellular Superoxide Dismutase in Acute Respiratory Distress Syndrome: Pathogenic Mechanisms and Therapeutic Implications" Antioxidants 15, no. 2: 249. https://doi.org/10.3390/antiox15020249
APA StyleOsier, W., Nozik, E. S., & Sul, C. (2026). Extracellular Superoxide Dismutase in Acute Respiratory Distress Syndrome: Pathogenic Mechanisms and Therapeutic Implications. Antioxidants, 15(2), 249. https://doi.org/10.3390/antiox15020249

