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胰腺特异性信号转导子和转录激活因子-3 敲除小鼠存在葡萄糖耐量异常和胰岛素分泌受损,与胰腺微血管改变有关。

Glucose intolerance and impaired insulin secretion in pancreas-specific signal transducer and activator of transcription-3 knockout mice are associated with microvascular alterations in the pancreas.

机构信息

Singapore Bioimaging Consortium, Agency for Science, Technology, and Research, Singapore 138667.

出版信息

Endocrinology. 2010 May;151(5):2050-9. doi: 10.1210/en.2009-1199. Epub 2010 Mar 9.

Abstract

Maintenance of glucose homeostasis depends on adequate amount and precise pattern of insulin secretion, which is determined by both beta-cell secretory processes and well-developed microvascular network within endocrine pancreas. The development of highly organized microvasculature and high degrees of capillary fenestrations in endocrine pancreas is greatly dependent on vascular endothelial growth factor-A (VEGF-A) from islet cells. However, it is unclear how VEGF-A production is regulated in endocrine pancreas. To understand whether signal transducer and activator of transcription (STAT)-3 is involved in VEGF-A regulation and subsequent islet and microvascular network development, we generated a mouse line carrying pancreas-specific deletion of STAT3 (p-KO) and performed physiological analyses both in vivo and using isolated islets, including glucose and insulin tolerance tests, and insulin secretion measurements. We also studied microvascular network and islet development by using immunohistochemical methods. The p-KO mice exhibited glucose intolerance and impaired insulin secretion in vivo but normal insulin secretion in isolated islets. Microvascular density in the pancreas was reduced in p-KO mice, along with decreased expression of VEGF-A, but not other vasotropic factors in islets in the absence of pancreatic STAT3 signaling. Together, our study suggests that pancreatic STAT3 signaling is required for the normal development and maintenance of endocrine pancreas and islet microvascular network, possibly through its regulation of VEGF-A.

摘要

葡萄糖内稳态的维持依赖于胰岛素分泌的充足量和精确模式,这取决于β细胞的分泌过程和内分泌胰腺内发达的微血管网络。内分泌胰腺中高度组织化的微血管和高毛细血管窗孔度的发育在很大程度上依赖于胰岛细胞中的血管内皮生长因子-A(VEGF-A)。然而,目前尚不清楚内分泌胰腺中 VEGF-A 的产生是如何调节的。为了了解信号转导和转录激活因子(STAT)-3是否参与 VEGF-A 的调节以及随后的胰岛和微血管网络的发育,我们生成了一种携带胰腺特异性 STAT3 缺失(p-KO)的小鼠品系,并在体内和使用分离的胰岛进行了生理分析,包括葡萄糖和胰岛素耐量试验以及胰岛素分泌测量。我们还使用免疫组织化学方法研究了微血管网络和胰岛的发育。p-KO 小鼠表现出体内葡萄糖不耐受和胰岛素分泌受损,但在分离的胰岛中胰岛素分泌正常。p-KO 小鼠的胰腺中的微血管密度降低,同时 VEGF-A 的表达减少,但在没有胰腺 STAT3 信号的情况下,胰岛中没有其他血管活性因子的表达减少。总之,我们的研究表明,胰腺 STAT3 信号对于内分泌胰腺和胰岛微血管网络的正常发育和维持是必需的,可能是通过其对 VEGF-A 的调节。

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