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胰腺β细胞的生理调节:对糖尿病理解与治疗的功能见解

Physiological regulation of the pancreatic {beta}-cell: functional insights for understanding and therapy of diabetes.

作者信息

McClenaghan Neville H

机构信息

School of Biomedical Sciences, University of Ulster, Coleraine BT52 1SA, UK.

出版信息

Exp Physiol. 2007 May;92(3):481-96. doi: 10.1113/expphysiol.2006.034835. Epub 2007 Feb 1.

Abstract

Knowledge about the sites and actions of the numerous physiological and pharmacological factors affecting insulin secretion and pancreatic beta-cell function has been derived from the use of bioengineered insulin-producing cell lines. Application of an innovative electrofusion approach has generated novel glucose-responsive insulin-secreting cells for pharmaceutical and experimental research, including popular BRIN-BD11 beta-cells. This review gives an overview of the establishment and core characteristics of clonal electrofusion-derived BRIN-BD11 beta-cells. As discussed, BRIN-BD11 cells have facilitated studies aimed at dissecting important pathways by which nutrients and other bioactive molecules regulate the complex mechanisms regulating insulin secretion, and highlight the future potential of novel and diverse bioengineering approaches to provide a cell-based insulin-replacement therapy for diabetes. Clonal BRIN-BD11 beta-cells have been instrumental in: (a) characterization of K(ATP) channel-dependent and -independent actions of nutrients and established and emerging insulinotropic antidiabetic drugs, and the understanding of drug-induced beta-cell desensitization; (b) tracing novel metabolic and beta-cell secretory pathways, including use of state-of-the-art NMR approaches to provide new insights into the relationships between glucose and amino acid handling and insulin secretion; and (c) determination of the chronic detrimental actions of nutrients and the diabetic environment on pancreatic beta-cells, including the recent discovery that homocysteine, a risk factor for metabolic syndrome, may play a role in the progressive demise of insulin secretion and pancreatic beta-cell function in diabetes. Collectively, the studies discussed in this review highlight the importance of innovative experimental beta-cell physiology in the discovery and characterization of new and improved drugs and therapeutic strategies to help tackle the emerging diabetes epidemic.

摘要

关于影响胰岛素分泌和胰腺β细胞功能的众多生理和药理因素的作用部位及作用机制的知识,来源于对生物工程改造的胰岛素分泌细胞系的研究。一种创新的电融合方法的应用,已产生了用于药物和实验研究的新型葡萄糖反应性胰岛素分泌细胞,包括广为人知的BRIN-BD11β细胞。本综述概述了克隆电融合衍生的BRIN-BD11β细胞的建立及其核心特性。如文中所讨论的,BRIN-BD11细胞有助于开展相关研究,旨在剖析营养物质和其他生物活性分子调节胰岛素分泌复杂机制的重要途径,并突出了新颖多样的生物工程方法在为糖尿病提供基于细胞的胰岛素替代疗法方面的未来潜力。克隆的BRIN-BD11β细胞在以下方面发挥了重要作用:(a) 对营养物质以及已确立和新出现的促胰岛素分泌抗糖尿病药物的K(ATP) 通道依赖性和非依赖性作用进行表征,并理解药物诱导的β细胞脱敏;(b) 追踪新的代谢和β细胞分泌途径,包括使用最先进的核磁共振方法,以深入了解葡萄糖和氨基酸处理与胰岛素分泌之间的关系;(c) 确定营养物质和糖尿病环境对胰腺β细胞的慢性有害作用,包括最近发现同型半胱氨酸(代谢综合征的一个风险因素)可能在糖尿病患者胰岛素分泌和胰腺β细胞功能的渐进性衰退中起作用。总体而言,本综述中讨论的研究突出了创新的实验性β细胞生理学在发现和表征新的及改良的药物和治疗策略以应对新出现的糖尿病流行方面的重要性。

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