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Hox功能多样性:来自灵活基序折叠和可塑性蛋白质相互作用的新见解。

Hox functional diversity: Novel insights from flexible motif folding and plastic protein interaction.

作者信息

Ortiz-Lombardia Miguel, Foos Nicolas, Maurel-Zaffran Corinne, Saurin Andrew J, Graba Yacine

机构信息

Aix-Marseille-Université, CNRS UMR 7257, AFMB, Marseille, France.

Aix-Marseille-Université, CNRS UMR 7256, AFMB, Marseille, France.

出版信息

Bioessays. 2017 Apr;39(4). doi: 10.1002/bies.201600246. Epub 2017 Jan 16.

Abstract

How the formidable diversity of forms emerges from developmental and evolutionary processes is one of the most fascinating questions in biology. The homeodomain-containing Hox proteins were recognized early on as major actors in diversifying animal body plans. The molecular mechanisms underlying how this transcription factor family controls a large array of context- and cell-specific biological functions is, however, still poorly understood. Clues to functional diversity have emerged from studies exploring how Hox protein activity is controlled through interactions with PBC class proteins, also evolutionary conserved HD-containing proteins. Recent structural data and molecular dynamic simulations add further mechanistic insights into Hox protein mode of action, suggesting that flexible folding of protein motifs allows for plastic protein interaction. As we discuss in this review, these findings define a novel type of Hox-PBC interaction, weak and dynamic instead of strong and static, hence providing novel clues to understanding Hox transcriptional specificity and diversity.

摘要

形态的惊人多样性是如何从发育和进化过程中产生的,这是生物学中最引人入胜的问题之一。含同源异型结构域的Hox蛋白很早就被认为是使动物身体结构多样化的主要因素。然而,这个转录因子家族如何控制大量依赖于环境和细胞特异性的生物学功能的分子机制,仍然知之甚少。通过研究探索Hox蛋白活性如何通过与PBC类蛋白相互作用来控制,已经出现了功能多样性的线索,PBC类蛋白也是进化上保守的含同源异型结构域的蛋白。最近的结构数据和分子动力学模拟为Hox蛋白的作用模式提供了进一步的机制见解,表明蛋白质基序的灵活折叠允许可塑性的蛋白质相互作用。正如我们在本综述中所讨论的,这些发现定义了一种新型的Hox-PBC相互作用,即弱相互作用和动态相互作用,而非强相互作用和静态相互作用,从而为理解Hox转录特异性和多样性提供了新线索。

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