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Integrating Stochasticity into Biomolecular Mechanisms: A New Direction for Biomolecular Modeling

Integrating Stochasticity into Biomolecular Mechanisms: A New Direction for Biomolecular Modeling
将随机性整合到生物分子机制中:生物分子建模的新方向
批准号:
10490365
负责人:
Jessica Swanson
金额:
$37.6万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
2021
资助国家:
美国
项目状态:
未结题
起止时间:
2021-09-18 至 2026-08-31

项目摘要

项目成果

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中文摘要
翻译
将随机性融入生物分子机制:研究的新方向 生物分子建模 摘要 越来越明显的是,动力学选择在生物学中扮演着重要的角色。然而,我们才刚刚开始 有必要的工具来量化、描述和理解它。对于涉及到的生物分子过程 多个罕见事件转变,规范假设是机制遵循一致的 转变的顺序(遵循单一路径)。然而,越来越多的证据表明,从单个分子 实验和生物物理测量表明,多种途径不仅是可能的,而且是必要的。 这项研究的目标是开发一种实验导向的随机模拟 绘制机械异质性的框架。作为应用程序,我首先将重点放在次要的 ClC-/H+逆向转运蛋白的主动转运和ATP水解酶驱动的几种AAA+的易位 ATPase,两个涉及化学反应的过程,因此需要多尺度的方法来连接 从量子到经典领域。 所提出的多尺度动力学建模方法侧重于多步生物分子转化, 这使得它对于已建立的动力学建模的许多其他领域是独一无二的。因此,新的方法将是 将采用来自其他领域的发展和最佳做法。它结合了自下而上的费率计算 来自多尺度模拟的动力学相关过渡的系数,具有自上而下的参数细化 基于实验数据。提出了用贝叶斯参数精化动力学解空间的创新方法 估计、全局灵敏度分析、不确定性量化、反应路径分析和机器学习 方法:研究方法。这些方法将被用来更好地表征ClC-EC1中的Cl-/H+交换机制 与梅里特·马杜克(斯坦福大学)合作推出的《逆向搬运工》。野生型系统的动态景观将是 研究目的是解决途径异质性的作用,非积分2.2:1Cl-:H+化学计量比的起源, 以及交替访问机制的相关性。 与二次主动转运类似,ATP驱动的过程本质上涉及多个影响速率的步骤 (ATP结合、水解、PI释放、ADP释放以及所有相关的构象变化)。一个 多尺度反应分子动力学方法将被用来描述三磷酸腺苷的降解。另外, 增强的自由能采样将用于表征其他转变,多尺度动力学模型将 被开发来探索动力学选择性的作用,并测试有争议的随机与序列 与克里斯·希尔(犹他大学)合作提出的AAA+ATPase机制。
英文摘要
Integrating Stochasticity into Biomolecular Mechanisms: A New Direction for Biomolecular Modeling Abstract It is increasingly apparent that kinetic selection plays an important role in biology. However, we are just beginning to have the tools necessary to quantify, characterize and understand it. For biomolecular processes involving multiple rare-event transitions, the canonical assumption is that mechanisms proceed following a consistent order of transitions (following a single-pathway). However, increasing evidence from single molecule experiments and biophysical measurements suggests that multiple pathways are not only possible, but essential. The goal of the proposed research is to develop an experimentally-directed stochastic simulation framework for mapping out mechanistic heterogeneity. As applications, I will focus, first, on secondary active transport in the ClC Cl-/H+ antiporter and ATP hydrolysis driven translocation in several AAA+ ATPases, two processes involving chemical reactions and thus requiring multiscale methods that bridge the quantum to classical realms. The proposed approach to multiscale kinetic modeling is focused on multistep biomolecular transformations, which makes it unique to many other domains of established kinetic modeling. Thus, new methods will be developed and best practices from other domains will be adapted. It combines a bottom-up calculation of rate coefficients for kinetically relevant transitions from multiscale simulations, with a top-down parameter refinement based on experimental data. Innovation is proposed to refine the kinetic solution space with Bayesian parameter estimation, global sensitivity analysis, uncertainty quantification, reaction path analysis and machine learning methods. These methods will be used to better characterize the Cl-/H+ exchange mechanism in the ClC-ec1 antiporter in collaboration with Merritt Maduke (Stanford). The kinetic landscape for the wildtype system will be studied to address the role of pathway heterogeneity, the origin of the non-integral 2.2:1 Cl-:H+ stoichiometry, and the relevance of the alternating access mechanism. Similar to secondary active transport, ATP-driven processes inherently involve multiple rate-influencing steps (ATP binding, hydrolysis, Pi release, ADP release, and all of the associated conformational changes). A multiscale reactive molecular dynamics method will be developed to describe ATP hydrolysis. Additionally, enhanced free energy sampling will be used to characterize other transitions and multiscale kinetic models will be developed to probe the role of kinetic selectivity and to test the controversial stochastic versus sequential proposed mechanisms in AAA+ ATPases in collaboration with Chris Hill (University of Utah).
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Integrating Stochasticity into Biomolecular Mechanisms: A New Direction for Biomolecular Modeling
  • 批准号:
    10277296
  • 项目类别:
  • 资助金额:
    $36.45万
  • 财政年份:
    2021
  • 负责人:
    Jessica Swanson
  • 依托单位:
Proton Pumping in Cytochrome c Oxidase
  • 批准号:
    7157286
  • 项目类别:
  • 资助金额:
    $4.4万
  • 财政年份:
    2006
  • 负责人:
    Jessica Swanson
  • 依托单位:
Proton Pumping in Cytochrome c Oxidase
  • 批准号:
    7286253
  • 项目类别:
  • 资助金额:
    $4.6万
  • 财政年份:
    2006
  • 负责人:
    Jessica Swanson
  • 依托单位:
Proton Pumping in Cytochrome c Oxidase
  • 批准号:
    7496423
  • 项目类别:
  • 资助金额:
    $4.88万
  • 财政年份:
    2006
  • 负责人:
    Jessica Swanson
  • 依托单位: