RRC ID 90004
Author Oikawa Y, Luo Y, Suzuki N, Kasahara T, Tongu Y, Yoshida Y, Tominari T, Tanabe S, Suto Y, Kashiwagi H, Saito S, Ikeda K, Suzuki C, Kuranaga A, Akiyama T, Morimoto S, Aoki Y, Muramatsu R, Soga T, Aoki M, Okano H, Tanaka T, Abe T, Kuranaga E, Toyohara T.
Title Mitochonic acid 5 alleviates amyotrophic lateral sclerosis phenotypes via mitochondrial augmentation.
Journal JCI Insight
Abstract Amyotrophic lateral sclerosis (ALS) is a fatal neurodegenerative disease that urgently requires effective treatment. Mitochondrial dysfunction underlies ALS pathology and represents a potential therapeutic target. Here, we demonstrated the therapeutic potential of mitochonic acid 5 (MA-5), a novel mitochondria-targeted compound that ameliorated ALS phenotypes by enhancing mitochondrial function. In a Drosophila ALS model expressing a mutant human SOD1 (G85R), MA-5 significantly improved locomotor activity, with a trend toward restoration of mitochondrial integrity. In skin fibroblasts derived from ALS patients and motor neurons derived from induced pluripotent stem cells, MA-5 restored ATP production and increased mitochondrial motility. Multiomics analyses suggested that MA-5 modulated mitochondria-linked gene expression and downregulated the glycerophosphate shuttle, contributing to mitochondrial reactive oxygen species production. Transcriptomic analysis identified C7orf31 as a potential marker for monitoring the therapeutic effects of MA-5 and diagnosing ALS subtypes. These findings support MA-5 as a promising therapeutic candidate for ALS and propose C7orf31 as a potential biomarker for treatment monitoring and for disease subtyping.
Volume 11(18)
Published 2026-9-22
DOI 10.1172/jci.insight.200761
PII 200761
PMID 42770300
PMC PMC13596712
MeSH Amyotrophic Lateral Sclerosis* / drug therapy Amyotrophic Lateral Sclerosis* / genetics Amyotrophic Lateral Sclerosis* / metabolism Amyotrophic Lateral Sclerosis* / pathology Animals Disease Models, Animal Drosophila Fibroblasts / drug effects Fibroblasts / metabolism Humans Induced Pluripotent Stem Cells Mitochondria* / drug effects Mitochondria* / metabolism Motor Neurons / drug effects Motor Neurons / metabolism Phenotype Reactive Oxygen Species / metabolism Superoxide Dismutase-1 / genetics Superoxide Dismutase-1 / metabolism
Resource
Human and Animal Cells HPS0476(HPS0476) HPS0485(HPS0485)