ArticleJournal of translational medicine2024
The role of TRAP1 in regulating mitochondrial dynamics during acute hypoxia-induced brain injury.
Article in Journal of translational medicine, 2024. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 6 papers.
What it found
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Who cites it
6 citing papers in PubMed.
- SIRT5-mediated HSDL2 desuccinylation promotes diabetic-associated cognitive dysfunction via disrupting mitochondrial TRAP1.Cell biology and toxicology · 2026Article
- Role of mitochondrial dysfunction in muscle wasting in cancer cachexia: a narrative review.Journal of translational medicine · 2026Review
- Mitochondria as a therapeutic target in neurodegeneration caused by hypoxia and ischemia during the perinatal period.Pharmacological reports : PR · 2026Review
- Jiangtang Decoction for Type 2 Diabetes and NAFLD: Integrative AnalysisEndocrine, metabolic & immune disorders drug targets · 2026Article
- Restricting metabolic plasticity enhances stress adaptation through the modulation of PDH and HIF1A in TRAP1-depleted colon cancer.Cancer letters · 2025Article
- Management succinate release through SDHA by G protein-coupled receptor 91 signal, TRAP1, and SIRT3 regulation in lung cancer cells by NAR nanoparticles.Journal, genetic engineering & biotechnology · 2025Article
Corrections and comments
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Authors and funding
9 authors.
Funding
Abstract
Brain damage caused by acute hypoxia is associated with the physiological activities of mitochondria. Although mitochondria being dynamically regulated, our comprehensive understanding of the response of specific brain cell types to acute hypoxia remains ambiguous. Tumor necrosis factor receptor-associated protein 1 (TRAP1), a mitochondrial-based molecular chaperone, plays a role in controlling mitochondrial movements. Herein, we demonstrated that acute hypoxia significantly alters mitochondria morphology and functionality in both in vivo and in vitro brain injury experiments. Summary-data-based Mendelian Randomization (SMR) analyses revealed possible causative links between mitochondria-related genes and hypoxia injury. Advancing the protein-protein interaction network and molecular docking further elucidated the associations between TRAP1 and mitochondrial dynamics. Furthermore, it was shown that TRAP1 knockdown levels variably affected the expression of key mitochondrial dynamics proteins (DRP1, FIS1, and MFN1/2) in primary hippocampal neurons, astrocytes, and BV-2 cell, leading to changes in mitochondrial structure and function. Understanding the function of TRAP1 in altering mitochondrial physiological activity during hypoxia-induced acute brain injury could help serve as a potential therapeutic target to mitigate neurological damage.
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Registered trials
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