Szkudelska Katarzyna, Szkudelski Tomasz
Department of Animal Physiology, Biochemistry and Biostructure, Poznań University of Life Sciences, Wołyńska 35, 60-637 Poznań, Poland.
Department of Animal Physiology, Biochemistry and Biostructure, Poznań University of Life Sciences, Wołyńska 35, 60-637 Poznań, Poland.
Biomed Pharmacother. 2022 Jun;150:112946. doi: 10.1016/j.biopha.2022.112946. Epub 2022 Apr 9.
Betaine (N, N, N-trimethylglycine) is an amino-acid derivative exerting numerous beneficial effects on the organism. This compound is found in human and animal diets but is also endogenously generated. However, its synthesis may be insufficient to maintain or improve health. Moreover, the tissue content of betaine reduces under some pathological conditions, such as type 2 diabetes. This decrease may be, however, easily alleviated by dietary betaine supplementation. Rodent studies provided evidence that betaine effectively limits many diabetes-related disturbances. Betaine therapy improves glucose tolerance and insulin action, which is strongly associated with changes in insulin-sensitive tissues, such as skeletal muscle, adipose tissue, and liver. Betaine supplementation positively affects multiple genes, which expression is dysregulated in diabetes. AMP-activated protein kinase is thought to play a central role in the mechanism underlying the anti-diabetic betaine action. Moreover, studies with animal models of type 2 diabetes have shown that betaine exerts anti-inflammatory and anti-oxidant effects, and also alleviates endoplasmic reticulum stress. These changes contribute to improved insulin sensitivity and better blood glucose clearance. The results of animal studies encourage the exploration of the therapeutic betaine efficacy in humans with type 2 diabetes.
甜菜碱(N,N,N-三甲基甘氨酸)是一种氨基酸衍生物,对机体具有多种有益作用。这种化合物存在于人类和动物的饮食中,但也可内源性生成。然而,其合成可能不足以维持或改善健康。此外,在某些病理状况下,如2型糖尿病,甜菜碱的组织含量会降低。不过,通过膳食补充甜菜碱,这种降低很容易得到缓解。啮齿动物研究提供了证据,表明甜菜碱能有效限制许多与糖尿病相关的紊乱。甜菜碱疗法可改善葡萄糖耐量和胰岛素作用,这与胰岛素敏感组织(如骨骼肌、脂肪组织和肝脏)的变化密切相关。补充甜菜碱对多种基因有积极影响,这些基因的表达在糖尿病中失调。AMP激活的蛋白激酶被认为在甜菜碱抗糖尿病作用的潜在机制中起核心作用。此外,对2型糖尿病动物模型的研究表明,甜菜碱具有抗炎和抗氧化作用,还能减轻内质网应激。这些变化有助于改善胰岛素敏感性和更好地清除血糖。动物研究结果促使人们探索甜菜碱对2型糖尿病患者的治疗效果。