大自然的学校II.跨膜信号传递中的蛋白质有序性、无序性和寡聚性。

Self/nonself Pub Date : 2010-04-01 Epub Date: 2010-02-22 DOI:10.4161/self.1.2.11590
Alexander B Sigalov
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引用次数: 0

摘要

最近的报告显示,许多蛋白质在原生条件下不具有球状结构,因此被称为内在无序蛋白(IDPs),它们参与了细胞信号传导。耐人寻味的是,最近观察到了 IDPs 的生理相关寡聚化,并显示出独特的生物物理特征,包括结合时化学位移和峰值强度没有显著变化。在这项工作中,我总结了与受体介导的跨膜信号转导有关的蛋白质紊乱的几个独特特征,这些特征尤为重要。我还假设,IDP 与其蛋白质或脂质伙伴的相互作用代表了一个普遍的双相过程,即 "无序到有序 "的快速相互作用,根据相互作用伙伴的不同,可能会也可能不会伴随着二级结构的缓慢形成。此外,我还提出了蛋白质有序性、无序性和寡聚性之间与信号相关的功能联系,并假设细胞外配体结合时诱导或调整的受体寡聚化可跨膜转化为细胞内的蛋白质寡聚化,从而为受体介导的信号转导提供了一个通用平台,即信号链HOmoOLigomerization(SCHOOL)平台。这构建了我们目前对识别与信号转导和细胞反应耦合机制的多学科知识和观点。重要的是,这种方法不仅揭示了众多功能各异、互不相关的表面膜受体的基本功能机制原理中以前未曾认识到的惊人相似之处,而且还提示了治疗靶点之间的相似性,从而为基础研究和临床相关研究开辟了新天地。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

The SCHOOL of nature: II. Protein order, disorder and oligomericity in transmembrane signaling.

The SCHOOL of nature: II. Protein order, disorder and oligomericity in transmembrane signaling.

The SCHOOL of nature: II. Protein order, disorder and oligomericity in transmembrane signaling.

The SCHOOL of nature: II. Protein order, disorder and oligomericity in transmembrane signaling.

Recent reports have revealed that many proteins that do not adopt globular structures under native conditions, thus termed intrinsically disordered proteins (IDPs), are involved in cell signaling. Intriguingly, physiologically relevant oligomerization of IDPs has been recently observed and shown to exhibit unique biophysical characteristics, including the lack of significant changes in chemical shift and peak intensity upon binding. In this work, I summarize several distinct features of protein disorder that are especially important as related to receptor-mediated transmembrane signal transduction. I also hypothesize that interactions of IDPs with their protein or lipid partners represent a general biphasic process with the "no disorder-to-order" fast interaction which, depending on the interacting partner, may or may not be accompanied by the slow formation of a secondary structure. Further, I suggest signaling-related functional connections between protein order, disorder, and oligomericity and hypothesize that receptor oligomerization induced or tuned upon ligand binding outside the cell is translated across the membrane into protein oligomerization inside the cell, thus providing a general platform, the Signaling Chain HOmoOLigomerization (SCHOOL) platform, for receptor-mediated signaling. This structures our current multidisciplinary knowledge and views of the mechanisms governing the coupling of recognition to signal transduction and cell response. Importantly, this approach not only reveals previously unrecognized striking similarities in the basic mechanistic principles of function of numerous functionally diverse and unrelated surface membrane receptors, but also suggests the similarity between therapeutic targets, thus opening new horizons for both fundamental and clinically relevant studies.

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