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Ringer Loss in <Drosophila/> Uncovers Mitochondrial Complex I Deficits Characteristic of Human Parkinson's Disease

Tillmon, H. G.; Boyen, S. K.; Velazquez, R.; Urbina-Berlanga, M. E.; Sciortino, M.; Banerjee, S.

2026-07-29 neuroscience
10.64898/2026.07.27.741040 bioRxiv
Show abstract

Tubulin polymerization promoting proteins (TPPPs) are known for their cytoskeletal regulation across species; however, emerging evidence suggests broader cellular functions, including potential roles in mitochondrial biology. Here, we identify the Drosophila homolog of human TPPP, Ringer, as a previously unrecognized regulator of mitochondrial bioenergetics and electron transport chain complex I (CI) function. Ringer is enriched in the mitochondrial matrix, and its loss results in reduced levels of multiple CI subunits and assembly factors and a significant decrease in CI enzymatic activity. Notably, similar deficits are observed in postmortem human Parkinsons disease (PD) brain tissues, underscoring the translational relevance of our Drosophila model and highlighting conserved, disease-associated mechanisms. Pharmacological administration of the CI-specific reactive oxygen species (ROS) scavenger, resveratrol, ameliorates superoxide levels and improves CI enzymatic activity and ATP production in ringer mutants, demonstrating that targeted antioxidant therapeutics can improve bioenergetic function with Ringer loss. Together, these findings establish Ringer as a key regulator of mitochondrial bioenergetics and reveal CI instability as a potential mechanism underlying PD-associated mitochondrial dysfunction, providing a robust and translationally meaningful framework for future therapeutic exploration.

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