Glycine Increases Insulin Sensitivity and Glutathione Biosynthesis and Protects against Oxidative Stress in a Model of Sucrose-Induced Insulin Resistance.
Mohammed El-HafidiMartha FrancoAngélica Ruiz RamírezJosé Santamaria SosaJosé Antonio Pineda FloresOcarol López AcostaMonserrath Chávez SalgadoGuillermo Cardoso-SaldañaPublished in: Oxidative medicine and cellular longevity (2018)
Oxidative stress and redox status play a central role in the link between insulin resistance (IR) and lipotoxicity in metabolic syndrome. This mechanistic link may involve alterations in the glutathione redox state. We examined the effect of glycine supplementation to diet on glutathione biosynthesis, oxidative stress, IR, and insulin cell signaling in liver from sucrose-fed (SF) rats characterized by IR and oxidative stress. Our hypothesis is that the correction of glutathione levels by glycine treatment leads to reduced oxidative stress, a mechanism associated with improved insulin signaling and IR. Glycine treatment decreases the levels of oxidative stress markers in liver from SF rats and increases the concentrations of glutathione (GSH) and γ-glutamylcysteine and the amount of γ-glutamylcysteine synthetase (γ-GCS), a key enzyme of GSH biosynthesis in liver from SF rats. In liver from SF rats, glycine also decreases the insulin-induced phosphorylation of insulin receptor substrate-1 (ISR-1) in serine residue and increases the phosphorylation of insulin receptor β-subunit (IR-β) in tyrosine residue. Thus, supplementing diets with glycine to correct GSH deficiency and to reduce oxidative stress provides significant metabolic benefits to SF rats by improving insulin sensitivity.
Keyphrases
- oxidative stress
- diabetic rats
- type diabetes
- insulin resistance
- dna damage
- metabolic syndrome
- ischemia reperfusion injury
- glycemic control
- induced apoptosis
- adipose tissue
- weight loss
- high glucose
- stem cells
- cardiovascular disease
- protein kinase
- replacement therapy
- high fat diet
- cell therapy
- polycystic ovary syndrome
- amino acid
- signaling pathway
- single cell
- endothelial cells
- cardiovascular risk factors
- high fat diet induced
- smoking cessation
- electron transfer