配体结合机制。

IF 2.9 Q2 BIOPHYSICS Biophysics reviews Pub Date : 2020-12-01 DOI:10.1063/5.0020997
Enrico Di Cera
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引用次数: 0

摘要

化学和生物学中的许多过程都涉及配体与其分子目标的相互作用。一个多世纪以来,对这种相互作用机理的兴趣一直主导着理论和实验分析。对分子识别的解释已从配体与其目标物的简单刚体结合发展到对构象转变所起关键作用的认识。两种概念上截然不同的描述对我们理解配体结合机制产生了深远的影响。第一种描述被称为诱导配合(induced fit),假定构象变化是在初始结合步骤之后发生的,目的是优化配体与其靶标之间的复合物。第二种描述被称为构象选择,假定自由靶标在平衡状态下存在多种构象,配体选择最佳构象进行结合。这两种描述可以合并成更复杂的反应方案,从而更好地描述大分子系统的功能范围。本综述论述配体结合的基本机制,特别强调诱导配合、构象选择及其数学基础,为分析和解释实验数据提供严谨的背景。我们表明,构象选择是一种令人惊讶的多功能机制,它包括作为数学特例的诱导拟合,甚至能捕捉到更复杂反应方案的动力学特性。这些特点使得构象选择成为生物学中分子识别的主要机制,这与结构生物学正在揭示的生物大分子的丰富构象景观是一致的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Mechanisms of ligand binding.

Many processes in chemistry and biology involve interactions of a ligand with its molecular target. Interest in the mechanism governing such interactions has dominated theoretical and experimental analysis for over a century. The interpretation of molecular recognition has evolved from a simple rigid body association of the ligand with its target to appreciation of the key role played by conformational transitions. Two conceptually distinct descriptions have had a profound impact on our understanding of mechanisms of ligand binding. The first description, referred to as induced fit, assumes that conformational changes follow the initial binding step to optimize the complex between the ligand and its target. The second description, referred to as conformational selection, assumes that the free target exists in multiple conformations in equilibrium and that the ligand selects the optimal one for binding. Both descriptions can be merged into more complex reaction schemes that better describe the functional repertoire of macromolecular systems. This review deals with basic mechanisms of ligand binding, with special emphasis on induced fit, conformational selection, and their mathematical foundations to provide rigorous context for the analysis and interpretation of experimental data. We show that conformational selection is a surprisingly versatile mechanism that includes induced fit as a mathematical special case and even captures kinetic properties of more complex reaction schemes. These features make conformational selection a dominant mechanism of molecular recognition in biology, consistent with the rich conformational landscape accessible to biological macromolecules being unraveled by structural biology.

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CiteScore
3.60
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