ArticleCell death & disease2025
Hypoxia-mediated SUMOylation of FADD exacerbates endothelial cell injury via the RIPK1-RIPK3-MLKL signaling axis.
Article in Cell death & disease, 2025. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 10 papers.
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Who cites it
10 citing papers in PubMed.
- Ginkgolic acid targets HSPA8 to trigger ferroptosis in hepatocellular carcinomaPharmaceutical biology · 2026Article
- The landscape of protein post-translational modifications in the pathogenesis of acute respiratory distress syndrome.Journal of thoracic disease · 2026Review
- PANoptosis in the pathogenesis of myelodysplastic syndromes.Molecular oncology · 2026Review
- SUMOylation in Mitochondrial Quality Control: Mechanisms and Implications for Neurodegenerative Disease.Molecular neurobiology · 2026Review
- Distinct types of regulated cell death in atherosclerosis.Journal of pharmaceutical analysis · 2026Review
- Acute Myocardial Infarction: Molecular Pathogenesis, Diagnosis, and Clinical Management.MedComm · 2025Review
- Necroptotic and Apoptotic Pathways in Sepsis: A Comparative Analysis of Pediatric and Adult ICU Patients.Biomedicines · 2025Article
- Plasmolipin deficiency is essential for HUVECs survival under hypoxic conditions.Cell death discovery · 2025Article
- Clofoctol impairs the stemness of gastric cancer and induces TNF-mediated necroptosis by directly binding to RanBP2.Cellular and molecular life sciences : CMLS · 2025Article
- Ubiquitination-mediated protein homeostasis in cardiovascular diseases: molecular mechanisms and therapeutic opportunities.American journal of cardiovascular disease · 2025Review
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Authors and funding
10 authors.
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Abstract
Vascular endothelial cells are the predominant cell type in the cardiovascular system, and their dysfunction and death following hypoxic injury contribute to vascular lesions, playing an essential role in cardiovascular disease. Despite its importance, the mechanisms underlying vascular endothelial cell injury under hypoxia and potential therapeutic interventions remain poorly understood. Here, we constructed both an in vivo hypoxia model in C57BL/6 mice and an in vitro hypoxia model in HUVEC cells. Our findings demonstrated that hypoxia induces necroptosis in vascular endothelial cells and exacerbates inflammatory injury in vivo and in vitro, as evidenced by immunofluorescence and western blot. We identified FADD as a critical regulator of hypoxia-mediated necroptosis, with FADD knockdown significantly reversing hypoxia-induced necroptosis. Mechanistically, hypoxia affected protein conformation through SUMOylation of FADD and competitively inhibited its ubiquitination, leading to an increase in protein half-life and protein level of FADD. Furthermore, SUMOylation increased the interaction between FADD and RIPK1 and induced the formation of the FADD-RIPK1-RIPK3 complex, thereby promoting necroptosis in vascular endothelial cells. The SUMOylation inhibitor ginkgolic acid (GA) notably reduced hypoxia-induced vascular endothelial injury and inflammatory responses in male mice. Taken together, our research has uncovered a new process by which SUMOylation of FADD regulates hypoxia-induced necroptosis in endothelial cells, providing potential therapeutic targets for hypoxia-related cardiovascular diseases.
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