Genetic defects in peroxisome morphogenesis (Pex11β, dynamin-like protein 1, and nucleoside diphosphate kinase 3) affect docosahexaenoic acid-phospholipid metabolism

Yuichi Abe, Ronald J.A. Wanders, Hans R. Waterham, Hanna Mandel, Tzipora C. Falik-Zaccai, Naotada Ishihara, Yukio Fujiki

Research output: Contribution to journalArticlepeer-review

4 Scopus citations

Abstract

Peroxisomes are essential organelles involved in lipid metabolisms including plasmalogen biosynthesis and β-oxidation of very long-chain fatty acids. Peroxisomes proliferate by the growth and division of pre-existing peroxisomes. The peroxisomal membrane is elongated by Pex11β and then divided by the dynamin-like GTPase, DLP1 (also known as DRP1 encoded by DNM1L gene), which also functions as a fission factor for mitochondria. Nucleoside diphosphate kinase 3 (NME3) localized in both peroxisomes and mitochondria generates GTP for DLP1 activity. Deficiencies of either of these factors induce abnormal morphology of peroxisomes and/or mitochondria, and are associated with central nervous system dysfunction. To investigate whether the impaired division of peroxisomes affects lipid metabolisms, we assessed the phospholipid composition of cells lacking each of the different division factors. In fibroblasts from the patients deficient in DLP1, NME3, or Pex11β, docosahexaenoic acid (DHA, C22:6)-containing phospholipids were found to be decreased. Conversely, the levels of several fatty acids such as arachidonic acid (AA, C20:4) and oleic acid (C18:1) were elevated. Mouse embryonic fibroblasts from Drp1- and Pex11β-knockout mice also showed a decrease in the levels of phospholipids containing DHA and AA. Collectively, these results suggest that the dynamics of organelle morphology exert marked effects on the fatty acid composition of phospholipids.

Original languageEnglish
Pages (from-to)273-285
Number of pages13
JournalJournal of Inherited Metabolic Disease
Volume46
Issue number2
Early online date15 Dec 2022
DOIs
StatePublished - Mar 2023

Bibliographical note

Publisher Copyright:
© 2022 SSIEM.

Funding

JSPS Grants‐in‐Aid for Scientific Research, Grant/Award Numbers: JP17H03675, JP15K21743, JP15K14511, JP26116007, JP19K07386; the Takeda Science Foundation; the Naito Foundation, Japan; the Novartis Foundation (Japan) for the Promotion of Science Funding information We thank the other members of our laboratory for helpful discussions. This work was supported in part by JSPS Grants‐in‐Aid for Scientific Research Grant Numbers JP19K07386 (to Y.A.) and JP26116007, JP15K14511, JP15K21743, and JP17H03675 (to Y.F.); grants (to Y.F.) from the Takeda Science Foundation, the Naito Foundation, Japan, and the Novartis Foundation (Japan) for the Promotion of Science. We thank the other members of our laboratory for helpful discussions. This work was supported in part by JSPS Grants-in-Aid for Scientific Research Grant Numbers JP19K07386 (to Y.A.) and JP26116007, JP15K14511, JP15K21743, and JP17H03675 (to Y.F.); grants (to Y.F.) from the Takeda Science Foundation, the Naito Foundation, Japan, and the Novartis Foundation (Japan) for the Promotion of Science.

FundersFunder number
JSPS Grants‐in‐Aid for Scientific Research
Naito Foundation
Takeda Science Foundation
Japan Society for the Promotion of ScienceJP15K21743, JP17H03675, JP15K14511, JP26116007, JP19K07386
NOVARTIS Foundation (Japan) for the Promotion of Science

    Keywords

    • Pex11β
    • dynamin-like protein 1
    • impaired peroxisome division
    • lipidomics
    • nucleoside diphosphate kinase 3 (NME3)
    • polyunsaturated fatty acid

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