Bailey Kathleen A, Savic Daniel, Zielinski Mark, Park Soo-Young, Wang Ling-Jia, Witkowski Piotr, Brady Matthew, Hara Manami, Bell Graeme I, Nobrega Marcelo A
Department of Human Genetics.
Department of Medicine.
Hum Mol Genet. 2015 Mar 15;24(6):1646-54. doi: 10.1093/hmg/ddu577. Epub 2014 Nov 14.
Non-coding variation within TCF7L2 remains the strongest genetic determinant of type 2 diabetes risk in humans. A considerable effort has been placed in understanding the functional roles of TCF7L2 in pancreatic beta cells, despite evidence of TCF7L2 expression in various peripheral tissues important in glucose homeostasis. Here, we use a humanized mouse model overexpressing Tcf7l2, resulting in glucose intolerance, to infer the contribution of Tcf7l2 overexpression in beta cells and in other tissues to the metabolic phenotypes displayed by these mice. Restoring Tcf7l2 expression specifically in beta cells to endogenous levels, in face of its overexpression elsewhere, results in impaired insulin secretion, reduced beta cell number and islet area, corroborating data obtained in humans showing similar phenotypes as a result of manipulations leading to Tcf7l2 loss of function. Interestingly, the persistent overexpression of Tcf7l2 in non-pancreatic tissues results in a significant worsening in glucose tolerance in vivo, indicating that Tcf7l2 overexpression in beta cells does not account for the glucose intolerance in the Tcf7l2 overexpression mouse model. Collectively, these data posit that Tcf7l2 plays key roles in glucose metabolism through actions beyond pancreatic beta cells, and further points to functionally opposing cell-type specific effects for Tcf7l2 on the maintenance of balanced glucose metabolism, thereby urging a careful examination of its role in non-pancreatic tissues as well as its composite metabolic effects across distinct tissues. Uncovering these roles may lead to new therapeutic targets for type 2 diabetes.
TCF7L2基因内的非编码变异仍然是人类2型糖尿病风险最强的遗传决定因素。尽管有证据表明TCF7L2在葡萄糖稳态中起重要作用的各种外周组织中表达,但人们已经付出了相当大的努力来了解TCF7L2在胰腺β细胞中的功能作用。在这里,我们使用一种过表达Tcf7l2的人源化小鼠模型(该模型会导致葡萄糖不耐受)来推断β细胞和其他组织中Tcf7l2过表达对这些小鼠所表现出的代谢表型的贡献。在其他地方Tcf7l2过表达的情况下,将β细胞中的Tcf7l2表达特异性恢复到内源性水平,会导致胰岛素分泌受损、β细胞数量和胰岛面积减少,这证实了在人类中获得的数据,即由于导致Tcf7l2功能丧失的操作而出现了类似的表型。有趣的是,Tcf7l2在非胰腺组织中的持续过表达会导致体内葡萄糖耐量显著恶化,这表明β细胞中Tcf7l2过表达并不能解释Tcf7l2过表达小鼠模型中的葡萄糖不耐受现象。总的来说,这些数据表明Tcf7l2通过胰腺β细胞以外的作用在葡萄糖代谢中发挥关键作用,并进一步指出Tcf7l2对维持葡萄糖代谢平衡具有功能相反的细胞类型特异性作用,从而促使人们仔细研究其在非胰腺组织中的作用以及其在不同组织中的复合代谢效应。揭示这些作用可能会为2型糖尿病带来新的治疗靶点。