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MA-5 attenuates disease-associated transcriptomic aging and pathological microglial states in Gaucher disease
Abstract:
Chronic inflammation and mitochondrial dysfunction are hallmarks of neurodegeneration and aging, yet how mitochondrial damage contributes to inflammatory and aging-like cellular programs remains poorly understood. Gaucher disease (GD) is a lysosomal storage disorder caused by GBA1 mutations, which also represent a major genetic risk factor for Parkinson's disease. In a GD mouse model, we identified marked mitochondrial cristae disorganization accompanied by mitochondrial DNA release, activation of the cGAS-STING and NLRP3 inflammasome pathways, and subsequent inflammatory microglial activation. Circulating galectin-3 was also elevated in both model mice and patients with GD, supporting its potential relevance as a systemic marker of disease-associated inflammation. Mitochonic acid-5 (MA-5) is a mitochondria-targeting compound that interacts with mitofilin/MIC60 in the mitochondrial inner membrane and enhances ATP production. In a GD mouse model and patient-derived iPSC microglia, MA-5 increased ATP levels, preserved mitochondrial cristae integrity, limited mtDNA release, and suppressed cGAS-STING and NLRP3 inflammasome signaling, thereby attenuating microglial innate immune activation and galectin-3 expression. MA-5 also prolonged survival and reversed accelerated transcriptomic aging across multiple brain cell types, with particularly prominent effects in microglia. In the liver, GD was similarly associated with inflammatory, stress-related, and aging-associated transcriptional changes, whereas MA-5 improved liver function, restored mitochondrial morphology, suppressed inflammatory and stress responses, restored metabolic programs, and reduced transcriptomic age. Overall, MA-5 suppresses neuroinflammation and reverses accelerated transcriptomic aging, supporting its potential as a therapeutic strategy for GD and other lysosomal storage disorders, as well as for diseases characterized by mitochondrial dysfunction, chronic inflammation, and pathological accumulation.
