首页> 外文期刊>Journal of Molecular Biology >Coarse-grained simulations of transitions in the E2-to-E1 conformations for Ca ATPase (SERCA) show entropy-enthalpy compensation
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Coarse-grained simulations of transitions in the E2-to-E1 conformations for Ca ATPase (SERCA) show entropy-enthalpy compensation

机译:Ca ATPase(SERCA)的E2到E1构象过渡的粗粒度模拟显示了熵-焓补偿

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摘要

SERCA is a membrane transport protein that has been extensively studied. There are a large number of highly resolved X-ray structures and several hundred mutations that have been characterized functionally. Despite this, the molecular details of the catalytic cycle, a cycle that includes large conformational changes, is not fully understood. In this computational study, we provide molecular dynamics descriptions of conformational changes during the E2 → E1 transitions. The motivating point for these calculations was a series of insertion mutants in the A-M3 linker region that led to significant shifts in measured rates between the E2 and E1 states, as shown by experimental characterization. Using coarse-grained dynamic importance sampling within the context of a population shift framework, we sample on the intermediates along the transition pathway to address the mechanism for the conformational changes and the effects of the insertion mutations on the kinetics of the transition. The calculations define an approximation for the relative changes in entropy and enthalpy along the transition. These are found to be important for understanding the experimentally observed differences in rates. In particular, the interactions between cytoplasmic domains, water interactions, and the shifts in protein degrees of freedom with the insertion mutations show mutual compensation for the E2 → E1 transitions in wild-type and mutant systems.
机译:SERCA是已广泛研究的膜转运蛋白。功能上已鉴定出大量高度解析的X射线结构和数百个突变。尽管如此,还没有完全理解催化循环的分子细节,该循环包括大的构象变化。在此计算研究中,我们提供了E2→E1跃迁期间构象变化的分子动力学描述。这些计算的动机是在A-M3接头区域中出现了一系列插入突变,这导致了E2和E1状态之间测得速率的重大变化,如实验表征所示。在人口迁移框架的背景下使用粗粒度动态重要性抽样,我们沿着过渡途径对中间体进行抽样,以解决构象变化的机制以及插入突变对过渡动力学的影响。这些计算为沿过渡过程的熵和焓的相对变化定义了一个近似值。发现这些对于理解实验观察到的速率差异很重要。特别是,细胞质结构域之间的相互作用,水相互作用以及具有插入突变的蛋白质自由度的变化显示出对野生型和突变型系统中E2→E1过渡的相互补偿。

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