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Insights into the Cooperative Nature of ATP Hydrolysis in Actin Filaments

机译:肌动蛋白丝中ATP水解的合作性质的见解

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摘要

Actin filaments continually assemble and disassemble within a cell. Assembled filaments “age” as a bound nucleotide ATP within each actin subunit quickly hydrolyzes followed by a slower release of the phosphate Pi, leaving behind a bound ADP. This subtle change in nucleotide state of actin subunits affects filament rigidity as well as its interactions with binding partners. We present here a systematic multiscale ultra-coarse-graining approach that provides a computationally efficient way to simulate a long actin filament undergoing ATP hydrolysis and phosphate-release reactions while systematically taking into account available atomistic details. The slower conformational changes and their dependence on the chemical reactions are simulated with the ultra-coarse-graining model by assigning internal states to the coarse-grained sites. Each state is represented by a unique potential surface of a local heterogeneous elastic network. Internal states undergo stochastic transitions that are coupled to conformations of the underlying molecular system. The model reproduces mechanical properties of the filament and allows us to study whether conformational fluctuations in actin subunits produce cooperative filament aging. We find that the nucleotide states of neighboring subunits modulate the reaction kinetics, implying cooperativity in ATP hydrolysis and Pi release. We further systematically coarse grain the system into a Markov state model that incorporates assembly and disassembly, facilitating a direct comparison with previously published models. We find that cooperativity in ATP hydrolysis and Pi release significantly affects the filament growth dynamics only near the critical G-actin concentration, whereas far from it, both cooperative and random mechanisms show similar growth dynamics. In contrast, filament composition in terms of the bound nucleotide distribution varies significantly at all monomer concentrations studied. These results provide new insights, to our knowledge, into the cooperative nature of ATP hydrolysis and Pi release and the implications it has for actin filament properties, providing novel predictions for future experimental studies.
机译:肌动蛋白丝在细胞内不断组装和拆卸。每个肌动蛋白亚基中作为结合核苷酸ATP的已组装细丝“老化”迅速水解,随后磷酸盐Pi的释放缓慢,留下结合的ADP。肌动蛋白亚基核苷酸状态的细微变化会影响细丝的刚度及其与结合伴侣的相互作用。我们在此介绍一种系统的多尺度超粗粒度方法,该方法提供了一种计算有效的方式来模拟经历ATP水解和磷酸盐释放反应的长肌动蛋白丝,同时系统地考虑了可用的原子细节。通过将内部状态分配给粗粒位点,使用超粗粒模型模拟了较慢的构象变化及其对化学反应的依赖性。每个状态由局部异构弹性网络的唯一潜在表面表示。内部状态经历随机转变,其与基础分子系统的构象耦合。该模型再现了细丝的机械性能,并允许我们研究肌动蛋白亚基的构象波动是否产生协同的细丝老化。我们发现,相邻亚基的核苷酸状态调节反应动力学,暗示在ATP水解和Pi释放中的协同作用。我们进一步系统地粗化系统,使其成为包含组装和拆卸的马尔可夫状态模型,从而可以与以前发布的模型进行直接比较。我们发现,ATP水解和Pi释放中的协同作用仅在临界G-肌动蛋白浓度附近才显着影响细丝的生长动力学,而远非如此,合作和随机机制都显示出相似的生长动力学。相反,就所研究的所有单体浓度而言,就结合的核苷酸分布而言,长丝组成显着变化。这些结果,就我们所知,为ATP水解和Pi释放的协同性质及其对肌动蛋白丝特性的影响提供了新的见解,为未来的实验研究提供了新颖的预测。

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