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胰腺β细胞中葡萄糖的代谢命运以及候选信号传导和过量燃料解毒途径

Metabolic fate of glucose and candidate signaling and excess-fuel detoxification pathways in pancreatic β-cells.

作者信息

Mugabo Yves, Zhao Shangang, Lamontagne Julien, Al-Mass Anfal, Peyot Marie-Line, Corkey Barbara E, Joly Erik, Madiraju S R Murthy, Prentki Marc

机构信息

From the Montreal Diabetes Research Center and Centre de Recherche du Centre Hospitalier de l'Université de Montréal, Montréal, Québec H2X 0A9, Canada.

Departments of Nutrition, Biochemistry and Molecular Medicine, Faculty of Medicine, University of Montréal, Montreal, Québec H3C 3J7, Canada, and.

出版信息

J Biol Chem. 2017 May 5;292(18):7407-7422. doi: 10.1074/jbc.M116.763060. Epub 2017 Mar 9.

Abstract

Glucose metabolism promotes insulin secretion in β-cells via metabolic coupling factors that are incompletely defined. Moreover, chronically elevated glucose causes β-cell dysfunction, but little is known about how cells handle excess fuels to avoid toxicity. Here we sought to determine which among the candidate pathways and coupling factors best correlates with glucose-stimulated insulin secretion (GSIS), define the fate of glucose in the β-cell, and identify pathways possibly involved in excess-fuel detoxification. We exposed isolated rat islets for 1 h to increasing glucose concentrations and measured various pathways and metabolites. Glucose oxidation, oxygen consumption, and ATP production correlated well with GSIS and saturated at 16 mm glucose. However, glucose utilization, glycerol release, triglyceride and glycogen contents, free fatty acid (FFA) content and release, and cholesterol and cholesterol esters increased linearly up to 25 mm glucose. Besides being oxidized, glucose was mainly metabolized via glycerol production and release and lipid synthesis (particularly FFA, triglycerides, and cholesterol), whereas glycogen production was comparatively low. Using targeted metabolomics in INS-1(832/13) cells, we found that several metabolites correlated well with GSIS, in particular some Krebs cycle intermediates, malonyl-CoA, and lower ADP levels. Glucose dose-dependently increased the dihydroxyacetone phosphate/glycerol 3-phosphate ratio in INS-1(832/13) cells, indicating a more oxidized state of NAD in the cytosol upon glucose stimulation. Overall, the data support a role for accelerated oxidative mitochondrial metabolism, anaplerosis, and malonyl-CoA/lipid signaling in β-cell metabolic signaling and suggest that a decrease in ADP levels is important in GSIS. The results also suggest that excess-fuel detoxification pathways in β-cells possibly comprise glycerol and FFA formation and release extracellularly and the diversion of glucose carbons to triglycerides and cholesterol esters.

摘要

葡萄糖代谢通过尚未完全明确的代谢偶联因子促进β细胞分泌胰岛素。此外,长期高血糖会导致β细胞功能障碍,但对于细胞如何处理过量营养物质以避免毒性却知之甚少。在此,我们试图确定候选途径和偶联因子中哪些与葡萄糖刺激的胰岛素分泌(GSIS)最相关,明确β细胞中葡萄糖的去向,并识别可能参与过量营养物质解毒的途径。我们将分离的大鼠胰岛暴露于逐渐升高的葡萄糖浓度下1小时,并测量各种途径和代谢产物。葡萄糖氧化、耗氧量和ATP生成与GSIS密切相关,在16 mM葡萄糖时达到饱和。然而,葡萄糖利用、甘油释放、甘油三酯和糖原含量、游离脂肪酸(FFA)含量和释放以及胆固醇和胆固醇酯在高达25 mM葡萄糖时呈线性增加。除了被氧化外,葡萄糖主要通过甘油生成和释放以及脂质合成(特别是FFA、甘油三酯和胆固醇)进行代谢,而糖原生成相对较低。通过对INS-1(832/13)细胞进行靶向代谢组学分析,我们发现几种代谢产物与GSIS密切相关,特别是一些三羧酸循环中间体、丙二酰辅酶A和较低的ADP水平。葡萄糖剂量依赖性地增加了INS-1(832/13)细胞中磷酸二羟丙酮/3-磷酸甘油的比值,表明葡萄糖刺激后细胞质中NAD处于更氧化的状态。总体而言,这些数据支持加速的线粒体氧化代谢、回补反应以及丙二酰辅酶A/脂质信号在β细胞代谢信号传导中的作用,并表明ADP水平的降低在GSIS中很重要。结果还表明,β细胞中过量营养物质的解毒途径可能包括甘油和FFA的形成并释放到细胞外,以及将葡萄糖碳转移到甘油三酯和胆固醇酯中。

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