4.7 Article

Genetic screening reveals phospholipid metabolism as a key regulator of the biosynthesis of the redox-active lipid coenzyme Q

期刊

REDOX BIOLOGY
卷 46, 期 -, 页码 -

出版社

ELSEVIER
DOI: 10.1016/j.redox.2021.102127

关键词

Coenzyme Q; Mitochondria; PEMT; Insulin resistance; S-adenosylmethionine; S-adenosylhomocysteine; Reactive oxygen species

资金

  1. Australian Research Council [DP150102408]
  2. National Health and Medical Research Council of Australia [NHMRC1052616]
  3. Canadian Institutes of Health Research [MOP 5182, MOP 33505]
  4. NH&MRC Senior Principal Research Fellowship [1111632]
  5. Australian Post-graduate Award
  6. National Science Foundation [MCB-1714569]
  7. National Health and Medical Research Council of Australia [1111632] Funding Source: NHMRC

向作者/读者索取更多资源

PEMT deficiency was identified as a positive regulator of CoQ synthesis, altering mitochondrial concentrations of one-carbon metabolites and decreasing mitochondrial oxidative stress. This newly described regulatory pathway may have implications for the treatment of CoQ deficiencies, mitochondrial dysfunction, and associated diseases.
Mitochondrial energy production and function rely on optimal concentrations of the essential redox-active lipid, coenzyme Q (CoQ). CoQ deficiency results in mitochondrial dysfunction associated with increased mitochondrial oxidative stress and a range of pathologies. What drives CoQ deficiency in many of these pathologies is unknown, just as there currently is no effective therapeutic strategy to overcome CoQ deficiency in humans. To date, largescale studies aimed at systematically interrogating endogenous systems that control CoQ biosynthesis and their potential utility to treat disease have not been carried out. Therefore, we developed a quantitative highthroughput method to determine CoQ concentrations in yeast cells. Applying this method to the Yeast Deletion Collection as a genome-wide screen, 30 genes not known previously to regulate cellular concentrations of CoQ were discovered. In combination with untargeted lipidomics and metabolomics, phosphatidylethanolamine N-methyltransferase (PEMT) deficiency was confirmed as a positive regulator of CoQ synthesis, the first identified to date. Mechanistically, PEMT deficiency alters mitochondrial concentrations of one-carbon metabolites, characterized by an increase in the S-adenosylmethionine to S-adenosylhomocysteine (SAM-to-SAH) ratio that reflects mitochondrial methylation capacity, drives CoQ synthesis, and is associated with a decrease in mitochondrial oxidative stress. The newly described regulatory pathway appears evolutionary conserved, as ablation of PEMT using antisense oligonucleotides increases mitochondrial CoQ in mouse-derived adipocytes that translates to improved glucose utilization by these cells, and protection of mice from high-fat diet-induced insulin resistance. Our studies reveal a previously unrecognized relationship between two spatially distinct lipid pathways with potential implications for the treatment of CoQ deficiencies, mitochondrial oxidative stress/ dysfunction, and associated diseases.

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