论文标题

自然激活过程中的反应性涡旋:过渡状态下的非扩散旋转通量,持续的同源性发现

Reactive Vortexes in a Naturally Activated Process: Non-Diffusive Rotational Fluxes at Transition State Uncovered by Persistent Homology

论文作者

Manuchehrfar, Farid, Li, Huiyu, Ma, Ao, Liang, Jie

论文摘要

屏障横断过程中反应坐标的动力学是了解复杂系统(例如蛋白质)中激活过程的关键。 Kramers物理直觉的默认假设是扩散过程。但是,天然复合物分子中屏障横断的动力学在很大程度上尚未探索。在这里,我们研究了丙氨酸 - 二肽异构化的过渡动力学,这是最简单的复合系统,具有大量的非反应坐标,可以用作适当的热浴喂养能将到反应坐标中。我们沿时间轴分离构象,并构建反应的动态概率表面。我们使用持续的同源性和差异形式量化其拓扑结构和旋转通量。我们的结果发现了在配置时间空间中具有强反应性涡旋的区域,其中最高概率峰和过渡状态合奏所在。该反应性区域包含强烈的旋转通量:在两个最重要的反应坐标的子空间中,大多数反应性轨迹在该区域周围多次旋转。此外,旋转通量是由沿等强度表面和正交屏障横断的合作运动引起的。总体而言,我们的发现提供了对反应性涡流区域的首次瞥见,这些区域表征了自然发生的激活过程的屏障横断性的非排除动力学。

Dynamics of reaction coordinates during barrier-crossing are key to understand activated processes in complex systems such as proteins. The default assumption from Kramers physical intuition is that of a diffusion process. However, the dynamics of barrier-crossing in natural complex molecules are largely unexplored. Here we investigate the transition dynamics of alanine-dipeptide isomerization, the simplest complex system with a large number of non-reaction coordinates that can serve as an adequate thermal bath feeding energy into the reaction coordinates. We separate conformations along the time axis and construct the dynamic probability surface of reaction. We quantify its topological structure and rotational flux using persistent homology and differential form. Our results uncovered a region with strong reactive vortex in the configuration-time space, where the highest probability peak and the transition state ensemble are located. This reactive region contains strong rotational fluxes: Most reactive trajectories swirl multiple times around this region in the subspace of the two most-important reaction coordinates. Furthermore, the rotational fluxes result from cooperative movement along the isocommitter surfaces and orthogonal barrier-crossing. Overall, our findings offer a first glimpse into the reactive vortex regions that characterize the non-diffusive dynamics of barrier-crossing of a naturally occurring activation process.

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