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Updated: Sep 18, 2026

Histological Examination of Mitochondrial Morphology in a Parkinson's Disease Model
Published on: June 23, 2023
ARMC10 (S43) phosphorylation mediates trimethyltin chloride-induced cognitive impairment through mitochondrial
Mingke Qin1, Fan Zhang2, Liting Wang3
1Department of Occupational Health (Key Laboratory of Electromagnetic Radiation Protection, Ministry of Education), Army Medical University (Third Military Medical University), Chongqing 400038, China.
Abstract:
Trimethyltin chloride (TMT) is a well-established environmental neurotoxin known to induce hippocampal damage and cognitive impairment. Abnormal mitochondrial dynamics are involved in TMT-induced neurotoxicity, but the underlying molecular mechanisms remain unclear. Here, our study revealed that TMT-induced mitochondrial fragmentation led to mitochondrial dysfunction, nerve cell death and cognitive deficit. We assessed the expression of mitochondrial dynamics‑related proteins (OPA1, MFN1/2, DRP1, and FIS1). Using phosphoproteomics, we further identified Ser43 (S43) as a phosphorylation site in ARMC10, a protein implicated in mitochondrial dynamics. TMT exposure elevated the phosphorylation level of ARMC10S43, validated by the anti-ARMC10S43 phospho-specific antibody and parallel reaction monitoring (PRM). The overexpression of nonphosphorylatable ARMC10S43A, but not phosphomimic ARMC10S43D, remarkably antagonized TMT-induced mitochondrial fragmentation and dysfunction in vitro and in vivo. Immunoprecipitation-coupled mass spectrometry (IP-MS), followed by co-localization analysis and proximity ligation assay (PLA), verified that phosphorylated ARMC1S43 targets MTFP1 and BNIP3, contributing to TMT-induced neurotoxicity. We identified the natural product derivative 1-(3,5-dimethylbenzenesulfonyl)-8',9'-dimethyl-5'H-spiro[piperidine-4,4'-pyrrolo[1,2-a]quinoxaline] from over 160,000 natural product-derived compounds library as a potential inhibitor of ARMC10 phosphorylation at S43, which antagonizes TMT-induced mitochondrial fragmentation and dysfunction. This study provides a better understanding of how post-translational modifications regulate mitochondrial dynamics in TMT-induced memory disorders, and offers guidance for a comprehensive assessment of the ecological and health risks associated with neurodegenerative diseases.

