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High-Dimensional Mutant and Modular Thermodynamic Cycles, Molecular Switching, and Free Energy Transduction
Annual Review of Biophysics ( IF 10.4 ) Pub Date : 2017-05-22 00:00:00 , DOI: 10.1146/annurev-biophys-070816-033811
Charles W. Carter 1
Affiliation  

Understanding how distinct parts of proteins produce coordinated behavior has driven and continues to drive advances in protein science and enzymology. However, despite consensus about the conceptual basis for allostery, the idiosyncratic nature of allosteric mechanisms resists general approaches. Computational methods can identify conformational transition states from structural changes, revealing common switching mechanisms that impose multistate behavior. Thermodynamic cycles use factorial perturbations to measure coupling energies between side chains in molecular switches that mediate shear during domain motion. Such cycles have now been complemented by modular cycles that measure energetic coupling between separable domains. For one model system, energetic coupling between domains has been shown to be quantitatively equivalent to that between dynamic side chains. Linkages between domain motion, switching residues, and catalysis make nucleoside triphosphate hydrolysis conditional on domain movement, confirming an essential yet neglected aspect of free energy transduction and suggesting the potential generality of these studies.

中文翻译:


高维突变和模块化热力学循环,分子转换和自由能转换

了解蛋白质的不同部分如何产生协调的行为已经推动并将继续推动蛋白质科学和酶学的发展。然而,尽管就变构的概念基础达成了共识,但变构机制的特质性质却抵制了一般方法。计算方法可以从结构变化中识别构象转变状态,从而揭示了施加多态行为的常见转换机制。热力学循环使用阶乘摄动来测量分子开关中在域运动过程中介导剪切的侧链之间的耦合能。现在,这种循环已经通过测量可分离域之间的能量耦合的模块化循环得到了补充。对于一个模型系统,已经显示,域之间的能量耦合在数量上等同于动态侧链之间的能量耦合。域运动,转换残基和催化之间的联系使三磷酸核苷水解取决于域运动,这证实了自由能转导的一个基本但被忽略的方面,并暗示了这些研究的潜在普遍性。

更新日期:2017-05-22
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