4.8 Article

Chlamydomonas carries out fatty acid β-oxidation in ancestral peroxisomes using a bona fide acyl-CoA oxidase

期刊

PLANT JOURNAL
卷 90, 期 2, 页码 358-371

出版社

WILEY
DOI: 10.1111/tpj.13498

关键词

acyl-CoA oxidase; microbodies; lipid catabolism; oil content; hydrogen peroxide; lipid homeostasis; nitrogen starvation; catalase; lipid droplet; Chlamydomonas reinhardtii

资金

  1. China Scholarship Council (CSC)
  2. A*MIDEX project
  3. ANR MUsCA
  4. Region Provence Alpes Cote d'Azur
  5. Conseil General des Bouches-du-Rhone
  6. French Ministry of Research
  7. CNRS
  8. CEA
  9. European Union Regional Developing Fund (ERDF)
  10. Biotechnology and Biological Sciences Research Council [BBS/E/C/000I0420, BBS/E/C/00005207] Funding Source: researchfish
  11. BBSRC [BBS/E/C/00005207, BBS/E/C/000I0420] Funding Source: UKRI

向作者/读者索取更多资源

Peroxisomes are thought to have played a key role in the evolution of metabolic networks of photosynthetic organisms by connecting oxidative and biosynthetic routes operating in different compartments. While the various oxidative pathways operating in the peroxisomes of higher plants are fairly well characterized, the reactions present in the primitive peroxisomes ( microbodies) of algae are poorly understood. Screening of a Chlamydomonas insertional mutant library identified a strain strongly impaired in oil remobilization and defective in Cre05.g232002 (CrACX2), a gene encoding a member of the acyl-CoA oxidase/dehydrogenase superfamily. The purified recombinant CrACX2 expressed in Escherichia coli catalyzed the oxidation of fatty acyl-CoAs into trans-2-enoyl-CoA and produced H2O2. This result demonstrated that CrACX2 is a genuine acyl-CoA oxidase, which is responsible for the first step of the peroxisomal fatty acid ( FA) beta-oxidation spiral. A fluorescent protein-tagging study pointed to a peroxisomal location of CrACX2. The importance of peroxisomal FA beta-oxidation in algal physiology was shown by the impact of the mutation on FA turnover during day/night cycles. Moreover, under nitrogen depletion the mutant accumulated 20% more oil than the wild type, illustrating the potential of beta-oxidation mutants for algal biotechnology. This study provides experimental evidence that a plant-type FA beta-oxidation involving H2O2- producing acyl-CoA oxidation activity has already evolved in the microbodies of the unicellular green alga Chlamydomonas reinhardtii.

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