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转化生长因子β超家族对Pax基因的自我调节表达及调控

Self-regulated Pax gene expression and modulation by the TGFbeta superfamily.

作者信息

Frost Victoria, Grocott Timothy, Eccles Michael R, Chantry Andrew

机构信息

School of Biological Sciences, University of East Anglia, Norwich, UK.

出版信息

Crit Rev Biochem Mol Biol. 2008 Nov-Dec;43(6):371-91. doi: 10.1080/10409230802486208.

Abstract

The mammalian Pax gene family encode a set of paired-domain transcription factors which play essential roles in regulating proliferation, differentiation, apoptosis, cell migration, and stem-cell maintenance. Pax gene expression is necessarily tightly controlled and is associated with the demarcation of boundaries during tissue development and specification. Auto- and inter-regulation are mechanisms frequently employed to achieve precise control of Pax expression domains in a variety of tissues including the eye, central nervous system, kidney, pancreas, skeletal system, muscle, tooth, and thymus. Furthermore, aberrant Pax expression is linked to several diseases and causally associated with certain tumors. An increasing number of studies also relate patterns of Pax expression to signaling by members of the TGFbeta superfamily and, in some instances, this is due to disruption of Pax gene auto-regulation. Here, we review the current evidence highlighting functional and mechanistic overlap between TGFbeta signaling and Pax-mediated gene transcription. We conclude that self-regulation of Pax gene expression coupled with modulation by the TGFbeta superfamily represents a signaling axis that is frequently employed during development and disease to drive normal tissue growth, differentiation and homeostasis.

摘要

哺乳动物的Pax基因家族编码一组配对结构域转录因子,它们在调节细胞增殖、分化、凋亡、细胞迁移和干细胞维持中发挥着重要作用。Pax基因的表达必须受到严格控制,并且与组织发育和特化过程中的边界划分相关。自我调节和相互调节是在包括眼睛、中枢神经系统、肾脏、胰腺、骨骼系统、肌肉、牙齿和胸腺在内的多种组织中实现对Pax表达域精确控制的常用机制。此外,Pax表达异常与多种疾病相关,并与某些肿瘤存在因果关系。越来越多的研究还将Pax表达模式与TGFβ超家族成员的信号传导联系起来,在某些情况下,这是由于Pax基因自我调节的破坏所致。在此,我们综述了当前的证据,突出了TGFβ信号传导与Pax介导的基因转录之间的功能和机制重叠。我们得出结论,Pax基因表达的自我调节以及TGFβ超家族的调节代表了一个信号轴,在发育和疾病过程中经常被用来驱动正常组织的生长、分化和稳态。

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