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蛋白质变构、信号转导与动力学:变构机制的分类方案

Protein allostery, signal transmission and dynamics: a classification scheme of allosteric mechanisms.

作者信息

Tsai Chung-Jung, Del Sol Antonio, Nussinov Ruth

机构信息

Basic Research Program, SAIC-Frederick, Inc., Center for Cancer Research Nanobiology Program, NCI-Frederick, Frederick, MD 21702, USA.

出版信息

Mol Biosyst. 2009 Mar;5(3):207-16. doi: 10.1039/b819720b. Epub 2009 Jan 6.

Abstract

Allostery has come of age; the number, breadth and functional roles of documented protein allostery cases are rising quickly. Since all dynamic proteins are potentially allosteric and allostery plays crucial roles in all cellular pathways, sorting and classifying allosteric mechanisms in proteins should be extremely useful in understanding and predicting how the signals are regulated and transmitted through the dynamic multi-molecular cellular organizations. Classification organizes the complex information thereby unraveling relationships and patterns in molecular activation and repression. In signaling, current classification schemes consider classes of molecules according to their functions; for example, epinephrine and norepinephrine secreted by the central nervous system are classified as neurotransmitters. Other schemes would account for epinephrine when secreted by the adrenal medulla to be hormone-like. Yet, such classifications account for the global function of the molecule; not for the molecular mechanism of how the signal transmission initiates and how it is transmitted. Here we provide a unified view of allostery and the first classification framework. We expect that a classification scheme would assist in comprehension of allosteric mechanisms, in prediction of signaling on the molecular level, in better comprehension of pathways and regulation of the complex signals, in translating them to the cascading events, and in allosteric drug design. We further provide a range of examples illustrating mechanisms in protein allostery and their classification from the cellular functional standpoint.

摘要

变构作用已步入成熟阶段;已记录的蛋白质变构案例的数量、广度和功能作用正在迅速增加。由于所有动态蛋白质都可能具有变构性,且变构作用在所有细胞途径中都起着关键作用,因此对蛋白质中的变构机制进行分类和整理对于理解和预测信号如何通过动态多分子细胞组织进行调节和传递极为有用。分类能够组织复杂信息,从而揭示分子激活和抑制中的关系及模式。在信号传导方面,当前的分类方案根据分子的功能对分子类别进行划分;例如,中枢神经系统分泌的肾上腺素和去甲肾上腺素被归类为神经递质。而当肾上腺素由肾上腺髓质分泌时,其他分类方案会将其视为类似激素。然而,此类分类考虑的是分子的整体功能,而非信号传递如何启动以及如何进行的分子机制。在此,我们提供了一个关于变构作用的统一观点以及首个分类框架。我们期望一个分类方案能够有助于理解变构机制、预测分子水平的信号传导、更好地理解复杂信号的途径和调节、将其转化为级联事件以及进行变构药物设计。我们还进一步提供了一系列示例,从细胞功能角度说明蛋白质变构机制及其分类。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/af31/2898650/3195c9516386/b819720b-f1.jpg

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