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葡萄糖代谢:β细胞复制和存活的关键内源性调节因子。

Glucose metabolism: key endogenous regulator of β-cell replication and survival.

机构信息

Department of Developmental Biology and Cancer Research, The Institute for Medical Research Israel-Canada, The Hebrew University-Hadassah Medical School, Jerusalem, Israel.

出版信息

Diabetes Obes Metab. 2012 Oct;14 Suppl 3:101-8. doi: 10.1111/j.1463-1326.2012.01646.x.

Abstract

Recent studies in mice have shown that pancreatic β-cells have a significant potential for regeneration, suggesting that regenerative therapy for diabetes is feasible. Genetic lineage tracing studies indicate that β-cell regeneration is based on the replication of fully differentiated, insulin-positive β-cells. Thus, a major challenge for this field is to identify and enhance the molecular pathways that control β-cell replication and mass. We review evidence, from human genetics and mouse models, that glucose is a major signal for β-cell replication. The mitogenic effect of blood glucose is transmitted via glucose metabolism within β-cells, and through a signalling cascade that resembles the pathway for glucose-stimulated insulin secretion. We introduce the concept that the individual β-cell workload, defined as the amount of insulin that an individual β-cell must secrete to maintain euglycaemia, is the primary determinant of replication, survival and mass. We also propose that a cell-autonomous pathway, similar to that regulating replication, appears to be responsible for at least some of the toxic effects of glucose on β-cells. Understanding and uncoupling the mitogenic and toxic effects of glucose metabolism on β-cells may allow for the development of effective regenerative therapies for diabetes.

摘要

最近在小鼠中的研究表明,胰腺β细胞具有显著的再生潜力,这表明糖尿病的再生疗法是可行的。遗传谱系追踪研究表明,β细胞再生是基于完全分化的、胰岛素阳性的β细胞的复制。因此,该领域的主要挑战是鉴定和增强控制β细胞复制和质量的分子途径。我们回顾了来自人类遗传学和小鼠模型的证据,证明葡萄糖是β细胞复制的主要信号。血糖的促有丝分裂作用是通过β细胞内的葡萄糖代谢传递的,并且通过类似于葡萄糖刺激胰岛素分泌途径的信号级联传递。我们提出了这样的概念,即个体β细胞的工作量,定义为个体β细胞必须分泌的胰岛素量以维持血糖正常,是决定复制、存活和质量的主要因素。我们还提出,类似于调节复制的细胞自主途径,似乎负责葡萄糖对β细胞的至少一些毒性作用。了解和分离葡萄糖代谢对β细胞的有丝分裂和毒性作用,可能为糖尿病的有效再生疗法的发展提供机会。

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