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【Publication】Mitochondria-targeting ACSL6 variant drives mitochondrial fragmentation potentially through local DHA-CoA production

August 14, 2026

August 14, 2026

Co-authored by researchers from Bio2Q and published in Scientific Reports, this study reveals how a short ACSL6 enzyme variant selectively targets mitochondria to locally convert omega-3 DHA into DHA-CoA. By activating Drp1-dependent fission pathways, this localized lipid production triggers mitochondrial fragmentation. As a result, they were able to demonstrate a direct link between variant-specific lipid metabolism and organelle dynamics, shedding light on mitochondrial regulation in brain health, vision, and fertility.

Title Mitochondria-targeting ACSL6 variant drives mitochondrial fragmentation potentially through local DHA-CoA production
Authors Ryuji Ota 1 2, Yosuke Isobe 1 2 3, Yohsuke Ohba 1 2, Makoto Arita 4 5 6 7
Short Description
This study, co-authored by researchers from both Bio2Q and Keio University, demonstrates how a previously uncharacterized variant of the fatty acid-metabolizing enzyme ACSL6 regulates mitochondrial dynamics through localized lipid metabolism.
ACSL6 plays an essential role in converting the omega-3 fatty acid docosahexaenoic acid (DHA) into its active coenzyme A (CoA) form and is critical for normal brain function, vision, and male fertility. However, the distinct functions of its different protein variants have remained poorly understood. Here, these researchers identified a short ACSL6 isoform that is predominantly expressed in the brain, retina, and testes and discovered that it selectively localizes to mitochondria through a unique N-terminal targeting sequence. In the presence of DHA, this mitochondrial ACSL6 variant generated DHA-CoA locally, triggering mitochondrial fragmentation through a pathway involving the mitochondrial fission proteins Drp1, Mid49, and Mid51. Disrupting either the enzyme’s catalytic activity or its mitochondrial localization abolished these effects, demonstrating that localized DHA-CoA production is required to drive this process.
By linking variant-specific lipid metabolism to the regulation of mitochondrial morphology, this study provides new insight into how cellular lipid metabolism controls organelle homeostasis and establishes a foundation for understanding the roles of ACSL6 in neurological function, vision, fertility, and diseases associated with mitochondrial dysfunction.
DOI 10.1038/s41598-026-46977-x
Journal Scientific Reports
Vol/Num/Page
16(1):15456.
Publication Date April, 2026

Affiliations

1 Division of Physiological Chemistry and Metabolism, Graduate School of Pharmaceutical Sciences, Keio University, 1-5-30 Shibakoen, Minato-ku, Tokyo, 105-8512, Japan.
2 Laboratory for Metabolomics, RIKEN Center for Integrative Medical Sciences, 1-7-22 Suehiro-cho, Tsurumi-ku, Yokohama, Kanagawa, 230-0045, Japan.
3 Cellular and Molecular Epigenetics Laboratory, Graduate School of Medical Life Science, Yokohama City University, 1-7-22 Suehiro-cho, Tsurumi-ku, Yokohama, Kanagawa, 230-0045, Japan.
4 Division of Physiological Chemistry and Metabolism, Graduate School of Pharmaceutical Sciences, Keio University, 1-5-30 Shibakoen, Minato-ku, Tokyo, 105-8512, Japan.
5 Laboratory for Metabolomics, RIKEN Center for Integrative Medical Sciences, 1-7-22 Suehiro-cho, Tsurumi-ku, Yokohama, Kanagawa, 230-0045, Japan.
6 Cellular and Molecular Epigenetics Laboratory, Graduate School of Medical Life Science, Yokohama City University, 1-7-22 Suehiro-cho, Tsurumi-ku, Yokohama, Kanagawa, 230-0045, Japan.
7 Human Biology-Microbiome-Quantum Research Center (WPI-Bio2Q), Keio University, 35 Shinanomachi, Shinjuku-ku, Tokyo, 160-8582, Japan. 

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