Whitten Steven T, García-Moreno E Bertrand, Hilser Vincent J
Department of Human Biological Chemistry and Genetics, University of Texas Medical Branch, Galveston, TX 77555, USA.
Proc Natl Acad Sci U S A. 2005 Mar 22;102(12):4282-7. doi: 10.1073/pnas.0407499102. Epub 2005 Mar 14.
Local conformational fluctuations in proteins can affect the coupling between ligand binding and global structural transitions. This finding was established by monitoring quantitatively how the population distribution in the ensemble of microstates of staphylococcal nuclease was affected by proton binding. Analysis of acid unfolding and proton-binding data with an ensemble-based model suggests that local fluctuations: (i) can be effective modulators of ligand-binding affinities, (ii) are important determinants of the cooperativity of ligand-driven global structural transitions, and (iii) are well represented thermodynamically as local unfolding processes. These studies illustrate how an ensemble-based description of proteins can be used to describe quantitatively the interdependence of local conformational fluctuations, ligand-binding processes, and global structural transitions. This level of understanding of the relationship between conformation, energy, and dynamics is required for a detailed mechanistic understanding of allostery, cooperativity, and other complex functional and regulatory properties of macromolecules.
蛋白质中的局部构象波动会影响配体结合与整体结构转变之间的耦合。这一发现是通过定量监测葡萄球菌核酸酶微状态集合中的种群分布如何受到质子结合的影响而确立的。用基于集合的模型对酸解折叠和质子结合数据进行分析表明,局部波动:(i)可以是配体结合亲和力的有效调节剂,(ii)是配体驱动的整体结构转变协同性的重要决定因素,(iii)在热力学上可很好地表示为局部解折叠过程。这些研究说明了基于集合的蛋白质描述如何能够用于定量描述局部构象波动、配体结合过程和整体结构转变之间的相互依存关系对于详细地从机制上理解变构、协同性以及大分子的其他复杂功能和调节特性而言,需要对构象、能量和动力学之间的关系达到这种理解水平。