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Msx1 基因突变:它们如何导致牙齿缺失?

Msx1 mutations: how do they cause tooth agenesis?

机构信息

Department of Biomedical Sciences, Texas A&M University Health Science Center Baylor College of Dentistry, 3302 Gaston Ave., Dallas, TX 75246, USA.

出版信息

J Dent Res. 2011 Mar;90(3):311-6. doi: 10.1177/0022034510387430.

Abstract

Mutations in the transcription factors PAX9 and MSX1 cause selective tooth agenesis in humans. In tooth bud mesenchyme of mice, both proteins are required for the expression of Bmp4, which is the key signaling factor for progression to the next step of tooth development. We have previously shown that Pax9 can transactivate a 2.4-kb Bmp4 promoter construct, and that most tooth-agenesis-causing PAX9 mutations impair DNA binding and Bmp4 promoter activation. We also found that Msx1 by itself represses transcription from this proximal Bmp4 promoter, and that, in combination with Pax9, it acts as a potentiator of Pax9-induced Bmp4 transactivation. This synergism of Msx1 with Pax9 is significant, because it is currently the only documented mechanism for Msx1-mediated activation of Bmp4. In this study, we investigated whether the 5 known tooth-agenesis-causing MSX1 missense mutations disrupt this Pax9-potentiation effect, or if they lead to deficiencies in protein stability, protein-protein interactions, nuclear translocation, and DNA-binding. We found that none of the studied molecular mechanisms yielded a satisfactory explanation for the pathogenic effects of the Msx1 mutations, calling for an entirely different approach to the investigation of this step of odontogenesis on the molecular level.

摘要

转录因子 PAX9 和 MSX1 的突变导致人类选择性牙齿缺失。在小鼠牙芽间质中,这两种蛋白都需要表达 Bmp4,Bmp4 是牙齿发育进入下一步的关键信号因子。我们之前已经表明,PAX9 可以转录激活 2.4kb 的 Bmp4 启动子构建体,并且大多数导致牙齿缺失的 PAX9 突变会损害 DNA 结合和 Bmp4 启动子激活。我们还发现,Msx1 本身会抑制这个近端 Bmp4 启动子的转录,并且与 Pax9 结合时,它作为 Pax9 诱导的 Bmp4 转录激活的增强剂。这种 Msx1 与 Pax9 的协同作用非常重要,因为它是目前唯一有记录的 Msx1 介导 Bmp4 激活的机制。在这项研究中,我们研究了 5 种已知的导致牙齿缺失的 MSX1 错义突变是否会破坏这种 Pax9 增强作用,或者它们是否导致蛋白稳定性、蛋白-蛋白相互作用、核转位和 DNA 结合的缺陷。我们发现,所研究的分子机制都没有对 Msx1 突变的致病效应提供令人满意的解释,这就需要在分子水平上对牙齿发生的这一步骤进行完全不同的研究。

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