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Mitochonic acid 5 alleviates amyotrophic lateral sclerosis phenotypes via mitochondrial augmentation
Yoshitsugu Oikawa, Yuhan Luo, Naoki Suzuki, Tomoko Kasahara, Yoshiyasu Tongu, Yuki Yoshida, Tsukasa Tominari, Shogo Tanabe, Yoshiko Suto, Hitomi Kashiwagi, Saki Saito, Kensuke Ikeda, Chitose Suzuki, Arata Kuranaga, Tetsuya Akiyama, Satoru Morimoto, Yoshitsugu Aoki, Rieko Muramatsu, Tomoyoshi Soga, Masashi Aoki, Hideyuki Okano, Tetsuhiro Tanaka, Takaaki Abe, Erina Kuranaga, Takafumi Toyohara
Yoshitsugu Oikawa, Yuhan Luo, Naoki Suzuki, Tomoko Kasahara, Yoshiyasu Tongu, Yuki Yoshida, Tsukasa Tominari, Shogo Tanabe, Yoshiko Suto, Hitomi Kashiwagi, Saki Saito, Kensuke Ikeda, Chitose Suzuki, Arata Kuranaga, Tetsuya Akiyama, Satoru Morimoto, Yoshitsugu Aoki, Rieko Muramatsu, Tomoyoshi Soga, Masashi Aoki, Hideyuki Okano, Tetsuhiro Tanaka, Takaaki Abe, Erina Kuranaga, Takafumi Toyohara
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Research Article Metabolism Neuroscience

Mitochonic acid 5 alleviates amyotrophic lateral sclerosis phenotypes via mitochondrial augmentation

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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.

Authors

Yoshitsugu Oikawa, Yuhan Luo, Naoki Suzuki, Tomoko Kasahara, Yoshiyasu Tongu, Yuki Yoshida, Tsukasa Tominari, Shogo Tanabe, Yoshiko Suto, Hitomi Kashiwagi, Saki Saito, Kensuke Ikeda, Chitose Suzuki, Arata Kuranaga, Tetsuya Akiyama, Satoru Morimoto, Yoshitsugu Aoki, Rieko Muramatsu, Tomoyoshi Soga, Masashi Aoki, Hideyuki Okano, Tetsuhiro Tanaka, Takaaki Abe, Erina Kuranaga, Takafumi Toyohara

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Figure 4

Effect of MA-5 on iPSC-derived motor neurons and potential clinical markers identified in ALS-iPSCs.

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Effect of MA-5 on iPSC-derived motor neurons and potential clinical mark...
(A) Enrichment analyses of gene expression changes caused by MA-5 treatment (100 nM) in motor neurons derived from SOD1-ALS-iPSCs. The enrichment analysis was performed using Gene Ontology Cellular Component 2023 (left) and WikiPathways 2023 (right), which are integrated in the Enrichr tool (https://maayanlab.cloud/Enrichr/). Mutual genes altered by MA-5 in SOD-Pt1 and SOD-Pt2 lines were analyzed. (B) Metabolites involved in the tricarboxylic acid (TCA) cycle in motor neurons derived from healthy controls and SOD1-ALS-iPSCs with or without MA-5 (10 μM) (N = 3). (C) Variable importance in projection (VIP) scores in motor neurons derived from SOD1-ALS-iPSCs with or without MA-5 (10 μM) (N = 6, respectively). (D) The top 10 ORF genes increased in motor neurons derived from SOD1-ALS-iPSCs and decreased by MA-5 (100 nM). Gene expression in motor neurons derived from sporadic-ALS-iPSCs with or without MA-5 (100 nM) is also shown. (E) C3orf62 and C7orf31 expression in motor neurons from SOD1-ALS-iPSCs, sporadic-ALS-iPSCs, and healthy controls (control, n = 3; SOD, n = 6; sporadic, n = 6). TPM, transcripts per kilobase million. (F) Plasma C7orf31 levels in healthy controls (n = 8), patients with SOD-ALS (n = 5), patients with sporadic ALS (n = 21), and those with other neurological diseases (n = 13; neuropathy with liability to pressure palsies, dermatomyositis, Parkinson’s disease, and spinocerebellar degeneration). Data are represented as mean ± SEM. *P < 0.05, **P < 0.01, ***P < 0.001, ****P < 0.0001. B, E, and F were analyzed using 1-way ANOVA.

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