p38α MAPK-Mediated Redox Regulation of Transglutaminase 2 Drives Microvascular Leakage in Diabetic Retinas
Abstract
1. Introduction
2. Materials and Methods
2.1. Cell Culture
2.2. Measurement of ROS Generation and In Situ TGase Activity in HRECs
2.3. Transfection with siRNA in HRECs
2.4. Western Blot Analysis
2.5. Endothelial Monolayer Permeability Assay in HRECs
2.6. Visualization of Actin Filaments and VE-Cadherin in HRECs
2.7. Generation of Diabetic Mice and Intravitreal Injection
2.8. Measurement of In Vivo TGase Activity in Mouse Retinas
2.9. Measurement of VEGF Levels by ELISA in Mouse Retinas
2.10. Immunofluorescence in Mouse Retinal Sections
2.11. Measurement of ROS Generation in Mouse Retinas
2.12. Visualization of Actin Filaments and VE-Cadherin in Whole-Mount Mouse Retinas
2.13. Measurement of Vascular Leakage in Mouse Retinas
2.14. Statistical Analysis
3. Results
3.1. p38 MAPK and TGase Contribute to Hyperglycemia-Induced Microvascular Leakage in Diabetic Retinas
3.2. p38α MAPK Mediates VEGF-Induced TGase2 Activation in HRECs and Mouse Retinas
3.3. p38α MAPK Mediates Hyperglycemia-Induced TGase2 Activation in Diabetic Retinas
3.4. P38α MAPK Activates TGase2 Through ROS Generation in HRECs and Diabetic Retinas
3.5. The p38α–TGase2 Axis Is Essential for Hyperglycemia-Induced Stress Fiber Formation, VE-Cadherin Disassembly, and Microvascular Leakage in Diabetic Retinas
4. Discussion
5. Conclusions
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Abbreviations
| AMPK | AMP-activated protein kinase |
| BAPA | 5-(biotinamido)pentylamine |
| DHE | dihydroethidium |
| DAPI | 4′,6-diamidino-2-phenylindole |
| FITC | fluorescein Isothiocyanate |
| GAPDH | glyceraldehyde-3-phosphate dehydrogenase |
| HRECs | human retinal endothelial cells |
| MAPK | mitogen-activated protein kinase |
| ROS | reactive oxygen species |
| TGase2 | transglutaminase 2 |
| VE | vascular endothelia |
| VEGF | vascular endothelial growth factor |
References
- Ha, K.-S. Transglutaminase 2 in diabetes mellitus: Unraveling its multifaceted role and therapeutic implications for vascular complications. Theranostics 2024, 14, 2329–2344. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Ren, J.; Zhang, S.; Pan, Y.; Jin, M.; Li, J.; Luo, Y.; Sun, X.; Li, G. Diabetic retinopathy: Involved cells, biomarkers, and treatments. Front. Pharmacol. 2022, 13, 953691. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Wang, W.; Lo, A.C.Y. Diabetic Retinopathy: Pathophysiology and Treatments. Int. J. Mol. Sci. 2018, 19, 1816. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Gettinger, K.; Lee, D.; Tomita, Y.; Negishi, K.; Kurihara, T. Diabetic Retinopathy, a Comprehensive Overview on Pathophysiology and Relevant Experimental Models. Int. J. Mol. Sci. 2025, 26, 9882. [Google Scholar] [CrossRef] [Scilit]
- Moon, C.-H.; Lee, A.-J.; Jeon, H.-Y.; Kim, E.-B.; Ha, K.-S. Therapeutic effect of ultra-long-lasting human C-peptide delivery against hyperglycemia-induced neovascularization in diabetic retinopathy. Theranostics 2023, 13, 2424–2438. [Google Scholar] [CrossRef] [Scilit]
- Duh, E.J.; Sun, J.K.; Stitt, A.W. Diabetic retinopathy: Current understanding, mechanisms, and treatment strategies. JCI Insight 2017, 2, 93751. [Google Scholar] [CrossRef] [Scilit]
- Jeon, H.-Y.; Lee, A.-J.; Moon, C.-H.; Ha, K.-S. Regulation of AMPK and GAPDH by Transglutaminase 2 Plays a Pivotal Role in Microvascular Leakage in Diabetic Retinas. Diabetes 2024, 73, 1756–1766. [Google Scholar] [CrossRef] [Scilit]
- Lee, Y.-J.; Jung, S.-H.; Kim, S.-H.; Kim, M.-S.; Lee, S.; Hwang, J.; Kim, S.-Y.; Kim, Y.-M.; Ha, K.-S. Essential Role of Transglutaminase 2 in Vascular Endothelial Growth Factor-Induced Vascular Leakage in the Retina of Diabetic Mice. Diabetes 2016, 65, 2414–2428. [Google Scholar] [CrossRef] [Scilit]
- Weiss, M.E.; Patel, M.J.; Watts, B.H.; Parrales, P.E.; Alcazar, O.; Pizza, I.M.; Karapelou, N.; Hackam, A.S.; Abdulreda, M.H. Investigating Late-Stage Diabetic Retinopathy: A Long-term Analysis of Vascular Changes in the Streptozotocin-Induced Mouse Model. Diabetes 2025, 74, 2023–2032. [Google Scholar] [CrossRef] [Scilit]
- Prat-Duran, J.; Pinilla, E.; Nørregaard, R.; Simonsen, U.; Buus, N.H. Transglutaminase 2 as a novel target in chronic kidney disease-Methods, mechanisms and pharmacological inhibition. Pharmacol. Ther. 2021, 222, 107787. [Google Scholar] [CrossRef] [Scilit]
- Yao, Z.; Fan, Y.; Lin, L.; Kellems, R.E.; Xia, Y. Tissue transglutaminase: A multifunctional and multisite regulator in health and disease. Physiol. Rev. 2024, 104, 281–325. [Google Scholar] [CrossRef] [Scilit]
- Aplin, C.; Zielinski, K.A.; Pabit, S.; Ogunribido, D.; Katt, W.P.; Pollack, L.; Cerione, R.A.; Milano, S.K. Distinct conformational states enable transglutaminase 2 to promote cancer cell survival versus cell death. Commun. Biol. 2024, 7, 982. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Olsen, K.C.; Sapinoro, R.E.; Kottmann, R.M.; Kulkarni, A.A.; Iismaa, S.E.; Johnson, G.V.; Thatcher, T.H.; Phipps, R.P.; Sime, P.J. Transglutaminase 2 and its role in pulmonary fibrosis. Am. J. Respir. Crit. Care Med. 2011, 184, 699–707. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Iismaa, S.E.; Mearns, B.M.; Lorand, L.; Graham, R.M. Transglutaminases and disease: Lessons from genetically engineered mouse models and inherited disorders. Physiol. Rev. 2009, 89, 991–1023. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Jeon, H.-Y.; Moon, C.-H.; Kim, E.-B.; Sayyed, N.D.; Lee, A.-J.; Ha, K.-S. Simultaneous attenuation of hyperglycemic memory-induced retinal, pulmonary, and glomerular dysfunctions by proinsulin C-peptide in diabetes. BMC Med. 2023, 21, 49. [Google Scholar] [CrossRef] [Scilit]
- Uludag, G.; Hassan, M.; Matsumiya, W.; Pham, B.H.; Chea, S.; Than, N.T.T.; Doan, H.L.; Akhavanrezayat, A.; Halim, M.S.; Do, D.V.; et al. Efficacy and safety of intravitreal anti-VEGF therapy in diabetic retinopathy: What we have learned and what should we learn further? Expert. Opin. Biol. Ther. 2022, 22, 1275–1291. [Google Scholar] [CrossRef] [Scilit]
- Canovas, B.; Nebreda, A.R. Diversity and versatility of p38 kinase signalling in health and disease. Nat. Rev. Mol. Cell Biol. 2021, 22, 346–366. [Google Scholar] [CrossRef] [Scilit]
- Han, J.; Wu, J.; Silke, J. An overview of mammalian p38 mitogen-activated protein kinases, central regulators of cell stress and receptor signaling. F1000Research 2020, 9, 653. [Google Scholar] [CrossRef] [Scilit]
- Cuenda, A.; Rousseau, S. p38 MAP-kinases pathway regulation, function and role in human diseases. Biochim. Biophys. Acta 2007, 1773, 1358–1375. [Google Scholar] [CrossRef] [Scilit]
- Cuadrado, A.; Nebreda, A.R. Mechanisms and functions of p38 MAPK signalling. Biochem. J. 2010, 429, 403–417. [Google Scholar] [CrossRef] [Scilit]
- Kudaravalli, S.; den Hollander, P.; Mani, S.A. Role of p38 MAP kinase in cancer stem cells and metastasis. Oncogene 2022, 41, 3177–3185. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Yang, F.; Zhao, L.-J.; Xu, Q.; Zhao, J. The journey of p38 MAP kinase inhibitors: From bench to bedside in treating inflammatory diseases. Eur. J. Med. Chem. 2024, 280, 116950. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Zheng, Q.; Li, S.; Wang, A.; Zhe, M.; Yang, P.; Wu, Y.; Zhao, M.; Zhu, Y.; Luo, Y.; Wang, G.; et al. p38 mitogen-activated protein kinase: Functions and targeted therapy in diseases. MedComm—Oncol. 2023, 2, 53. [Google Scholar] [CrossRef] [Scilit]
- Du, Y.; Tang, J.; Li, G.; Berti-Mattera, L.; Lee, C.A.; Bartkowski, D.; Gale, D.; Monahan, J.; Niesman, M.R.; Alton, G.; et al. Effects of p38 MAPK inhibition on early stages of diabetic retinopathy and sensory nerve function. Investig. Ophthalmol. Vis. Sci. 2010, 51, 2158–2164. [Google Scholar] [CrossRef] [Scilit]
- Wang, S.; Ding, L.; Ji, H.; Xu, Z.; Liu, Q.; Zheng, Y. The Role of p38 MAPK in the Development of Diabetic Cardiomyopathy. Int. J. Mol. Sci. 2016, 17, 1037. [Google Scholar] [CrossRef] [Scilit]
- Wang, J.; Huang, H.; Liu, P.; Tang, F.; Qin, J.; Huang, W.; Chen, F.; Guo, F.; Liu, W.; Yang, B. Inhibition of phosphorylation of p38 MAPK involved in the protection of nephropathy by emodin in diabetic rats. Eur. J. Pharmacol. 2006, 553, 297–303. [Google Scholar] [CrossRef] [Scilit]
- Westermann, D.; Rutschow, S.; Van Linthout, S.; Linderer, A.; Bücker-Gärtner, C.; Sobirey, M.; Riad, A.; Pauschinger, M.; Schultheiss, H.-P.; Tschöpe, C. Inhibition of p38 mitogen-activated protein kinase attenuates left ventricular dysfunction by mediating pro-inflammatory cardiac cytokine levels in a mouse model of diabetes mellitus. Diabetologia 2006, 49, 2507–2513. [Google Scholar] [CrossRef] [Scilit]
- Thandavarayan, R.A.; Watanabe, K.; Ma, M.; Gurusamy, N.; Veeraveedu, P.T.; Konishi, T.; Zhang, S.; Muslin, A.J.; Kodama, M.; Aizawa, Y. Dominant-negative p38α mitogen-activated protein kinase prevents cardiac apoptosis and remodeling after streptozotocin-induced diabetes mellitus. Am. J. Physiol.-Heart Circ. Physiol. 2009, 297, H911–H919. [Google Scholar] [CrossRef] [Scilit]
- Chen, P.; Yuan, Y.; Zhang, T.; Xu, B.; Gao, Q.; Guan, T. Pentosan polysulfate ameliorates apoptosis and inflammation by suppressing activation of the p38 MAPK pathway in high glucose-treated HK-2 cells. Int. J. Mol. Med. 2018, 41, 908–914. [Google Scholar] [CrossRef] [Scilit]
- Huang, C.; Zhu, H.J.; Li, H.; Li, Q.X.; Li, F.M.; Cheng, L.; Liu, Y.G. p38-MAPK pathway is activated in retinopathy of microvascular disease of STZ-induced diabetic rat model. Eur. Rev. Med. Pharm. 2018, 22, 5789–5796. [Google Scholar]
- Schulz, L.; Young, A.E.; Liu, F.; Gattineni, S.; Ghosh, S.S.; Douglass, E.; Kroeger, H.; Narayanan, S.P.; Grimsey, N.J. Atypical p38 Kinase Signaling in Retinal Vascular Damage and Recovery. FASEB J. 2025, 39, e71334. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Veluthakal, R.; Kumar, B.; Mohammad, G.; Kowluru, A.; Kowluru, R.A. Tiam1-Rac1 Axis Promotes Activation of p38 MAP Kinase in the Development of Diabetic Retinopathy: Evidence for a Requisite Role for Protein Palmitoylation. Cell Physiol. Biochem. 2015, 36, 208–220. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Zou, W.; Zou, C.; Zhao, M.J.; Zheng, Z. ASK1 induces retinal microvascular endothelial cell apoptosis through ER stress-associated pathway. Int. J. Clin. Exp. Pathol. 2019, 12, 1324–1332. [Google Scholar] [PubMed]
- Ray, A.; Sehgal, N.; Karunakaran, S.; Rangarajan, G.; Ravindranath, V. MPTP activates ASK1—p38 MAPK signaling pathway through TNF-dependent Trx1 oxidation in parkinsonism mouse model. Free Radic. Bio Med. 2015, 87, 312–325. [Google Scholar] [CrossRef] [Scilit]
- Asih, P.R.; Prikas, E.; Stefanoska, K.; Tan, A.R.P.; Ahel, H.I.; Ittner, A. Functions of p38 MAP Kinases in the Central Nervous System. Front. Mol. Neurosci. 2020, 13, 570586. [Google Scholar] [CrossRef] [Scilit]
- Forbes, J.M.; Cooper, M.E. Mechanisms of diabetic complications. Physiol. Rev. 2013, 93, 137–188. [Google Scholar] [CrossRef] [Scilit]
- Arima, M.; Nakao, S.; Kaizu, Y.; Wada, I.; Yamaguchi, M.; Fujiwara, K.; Akiyama, M.; Stitt, A.W.; Sonoda, K.H. Diabetic vascular hyperpermeability: Optical coherence tomography angiography and functional loss assessments of relationships among retinal vasculature changes. Sci. Rep. 2021, 11, 4185. [Google Scholar] [CrossRef] [Scilit]
- Wei, L.; Sun, X.; Fan, C.; Li, R.; Zhou, S.; Yu, H. The pathophysiological mechanisms underlying diabetic retinopathy. Front. Cell Dev. Biol. 2022, 10, 963615. [Google Scholar] [CrossRef] [Scilit]
- Wong, T.Y.; Cheung, C.M.; Larsen, M.; Sharma, S.; Simó, R. Diabetic retinopathy. Nat. Rev. Dis. Primers 2016, 17, 16012. [Google Scholar] [CrossRef] [Scilit]
- Lee, A.; Moon, C.; Lee, Y.; Jeon, H.; Park, W.S.; Ha, K. Systemic C-peptide supplementation ameliorates retinal neurodegeneration by inhibiting VEGF-induced pathological events in diabetes. FASEB J. 2023, 37, e22763. [Google Scholar] [CrossRef] [Scilit]








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Koh, T.-Y.; Lee, A.-J.; Moon, C.-H.; Cho, W.R.; Yoon, J.-S.; Kim, M.; Ha, K.-S. p38α MAPK-Mediated Redox Regulation of Transglutaminase 2 Drives Microvascular Leakage in Diabetic Retinas. Antioxidants 2026, 15, 192. https://doi.org/10.3390/antiox15020192
Koh T-Y, Lee A-J, Moon C-H, Cho WR, Yoon J-S, Kim M, Ha K-S. p38α MAPK-Mediated Redox Regulation of Transglutaminase 2 Drives Microvascular Leakage in Diabetic Retinas. Antioxidants. 2026; 15(2):192. https://doi.org/10.3390/antiox15020192
Chicago/Turabian StyleKoh, Tae-Yong, Ah-Jun Lee, Chan-Hee Moon, Woo Ri Cho, Ji-Seok Yoon, Minsoo Kim, and Kwon-Soo Ha. 2026. "p38α MAPK-Mediated Redox Regulation of Transglutaminase 2 Drives Microvascular Leakage in Diabetic Retinas" Antioxidants 15, no. 2: 192. https://doi.org/10.3390/antiox15020192
APA StyleKoh, T.-Y., Lee, A.-J., Moon, C.-H., Cho, W. R., Yoon, J.-S., Kim, M., & Ha, K.-S. (2026). p38α MAPK-Mediated Redox Regulation of Transglutaminase 2 Drives Microvascular Leakage in Diabetic Retinas. Antioxidants, 15(2), 192. https://doi.org/10.3390/antiox15020192

