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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.
Abstract:
Fatty acid (FA) metabolism is deregulated in several human diseases including metabolic syndrome, type 2 diabetes and cancers. Therefore, FA-metabolic enzymes are potential targets for drug therapy, although the consequence of these treatments must be precisely evaluated at the organismal and cellular levels. In healthy organism, synthesis of triacylglycerols (TAGs)-composed of three FA units esterified to a glycerol backbone-is increased in response to dietary sugar. Saturation in the storage and synthesis capacity of TAGs is associated with type 2 diabetes progression. Sugar toxicity likely depends on advanced-glycation-end-products (AGEs) that form through covalent bounding between amine groups and carbonyl groups of sugar or their derivatives α-oxoaldehydes. Methylglyoxal (MG) is a highly reactive α-oxoaldehyde that is derived from glycolysis through a non-enzymatic reaction. Glyoxalase 1 (Glo1) works to neutralize MG, reducing its deleterious effects. Here, we have used the power of Drosophila genetics to generate Fatty acid synthase (FASN) mutants, allowing us to investigate the consequence of this deficiency upon sugar-supplemented diets. We found that FASN mutants are lethal but can be rescued by an appropriate lipid diet. Rescued animals do not exhibit insulin resistance, are dramatically sensitive to dietary sugar and accumulate AGEs. We show that FASN and Glo1 cooperate at systemic and cell-autonomous levels to protect against sugar toxicity. We observed that the size of FASN mutant cells decreases as dietary sucrose increases. Genetic interactions at the cell-autonomous level, where glycolytic enzymes or Glo1 were manipulated in FASN mutant cells, revealed that this sugar-dependent size reduction is a direct consequence of MG-derived-AGE accumulation. In summary, our findings indicate that FASN is dispensable for cell growth if extracellular lipids are available. In contrast, FA-synthesis appears to be required to limit a cell-autonomous accumulation of MG-derived-AGEs, supporting the notion that MG is the most deleterious α-oxoaldehyde at the intracellular level.
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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