Fatty acid synthase cooperates with glyoxalase 1 to protect against sugar toxicity

Damien Garrido1, Thomas Rubin1, Mickael Poidevin1

  • 1Université Paris-Sud 11, Orsay, France; CNRS, Centre de Génétique Moléculaire, UPR 3404, Gif-sur-Yvette, France.

Plos Genetics
|February 19, 2015
PubMed

Insights

Fatty acid synthase (FASN) deficiency in Drosophila causes lethality, but lipid diets rescue animals. FASN and Glyoxalase 1 (Glo1) protect against sugar toxicity by limiting methylglyoxal-derived AGEs.

Area of Science:

  • Biochemistry
  • Metabolic Diseases
  • Cell Biology

Background:

  • Fatty acid (FA) metabolism is crucial in health and disease, with deregulation observed in metabolic syndrome, type 2 diabetes, and cancers.
  • Triacylglycerol (TAG) synthesis increases with dietary sugar, and impaired TAG storage is linked to type 2 diabetes.
  • Sugar toxicity is associated with advanced glycation end-products (AGEs), formed from sugars and reactive α-oxoaldehydes like methylglyoxal (MG).

Purpose of the Study:

  • To investigate the consequences of Fatty acid synthase (FASN) deficiency on sugar-supplemented diets using Drosophila genetics.
  • To explore the cooperative roles of FASN and Glyoxalase 1 (Glo1) in protecting against sugar toxicity at systemic and cellular levels.

Main Methods:

  • Generation of FASN mutants in Drosophila.
  • Rescue experiments using lipid-supplemented diets.
  • Analysis of insulin resistance, AGE accumulation, and cellular responses to dietary sugar.
  • Genetic manipulation of glycolytic enzymes and Glo1 in FASN mutant cells.

Main Results:

  • FASN mutants are lethal but can be rescued by lipid diets, with rescued animals showing no insulin resistance but high sensitivity to dietary sugar and AGE accumulation.
  • FASN and Glo1 cooperate to protect against sugar toxicity.
  • FASN mutant cell size decreases with increased sucrose, directly linked to methylglyoxal-derived AGE accumulation.

Conclusions:

  • FASN is dispensable for cell growth when extracellular lipids are available.
  • FA synthesis is essential for limiting intracellular accumulation of MG-derived AGEs, highlighting MG as a key intracellular toxic agent.

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