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CAREER: Molecular Simulation Methods to Probe RNA Dynamics, Thermodynamics, and Interfacial Interactions

CAREER: Molecular Simulation Methods to Probe RNA Dynamics, Thermodynamics, and Interfacial Interactions
职业:探测 RNA 动力学、热力学和界面相互作用的分子模拟方法
批准号:
1554558
负责人:
Harish Vashisth
金额:
$50.0万
依托单位:
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2016
资助国家:
美国
项目状态:
已结题
起止时间:
2016-03-01 至 2023-02-28

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中文摘要
翻译
摘要:核糖核酸(RNA)分子不是被动的信息载体,而是具有多种化学和物理性质的分子,可用于治疗、合成生物学、材料、生物传感和工程应用。所有这些应用的基础是动力学,其中包括大量的模式,跨越巨大的时空尺度,并连接到内在的结构特征(如碱基配对)和一些外在因素(如配体结合)。虽然生物分子(如RNA)的平衡波动是固有的,但在生物分子识别等界面过程中起主导作用的是大规模构象转变。这样的动态特性编码在生物分子的物理自由能景观,其强大的采样可以提供关键的热力学和动力学信息的RNA分子的功能构象合奏。PI计划研究小RNA分子中的构象动力学和界面相互作用,以使其能够用于上述应用。拟议的研究主要涉及两个问题:(1)哪些物理变量负责RNA分子中的局部和全局构象转变?以及(2)这些构象转变如何促进RNA与不同配体(小分子、短肽和球状蛋白质)的界面相互作用?为了全面了解动态和相互作用,建模和模拟工作将与光谱(核磁共振)和成像(电子冷冻显微镜)数据相结合。了解生物分子如何经历大规模结构变化以引发功能的细节是一个尚未解决的问题。众所周知,生物分子是灵活的,了解它们的动力学可以深入了解它们的功能。然而,它是具有挑战性的,因为没有一个单一的计算或实验技术可以解决在所有时空尺度的运动,以描述这种动态运动。所提出的计算方法使用物理自由能景观在一组减少的坐标(同时保持所有原子表示),而不是所有自由度。计算和实验技术的结合可以建立新的方法来研究这些动态在广泛的时间和长度尺度。教育计划将带来分子理论,数值算法和可视化工具,以广泛的STEM学生和教育工作者。它可以影响和满足下一代科学标准,并扩大对工程和生物物理学的参与,通过一个更广泛的教育倡议,致力于传授“视觉空间”思维作为一项关键技能,通过免费提供的软件工具的讲习班,将进一步开发和传播,通过培训广泛的STEM人群(学生,教师和教职员工)。学生将前往区域和国家会议,并将通过与印度旗舰工程学校的合作伙伴关系接触国际指导和多元文化的经验。
英文摘要
Abstract - Vashisth - 1554558Ribonucleic acid (RNA) molecules are not passive information carriers but molecules with versatile chemical and physical properties that can be exploited for therapeutic, synthetic biology, materials, bio-sensing, and engineering applications. Underlying all these applications are the dynamics which encompass a large number of modes, span vast spatiotemporal scales, and are connected to the intrinsic structural features (e.g. base-pairing) and some extrinsic factors (e.g. ligand binding). While equilibrium fluctuations in biomolecules such as RNA are inherent, it is the large-scale conformational transitions that play a dominant role in interfacial processes such as biomolecular recognition. Such dynamic properties are encoded in the physical free energy landscapes of biomolecules, the robust sampling of which can provide key thermodynamic and kinetic information on functional conformational ensembles of RNA molecules. The PI plans to look at conformational dynamics and interfacial interactions in small RNA molecules to enable their use for the above mentioned applications.The research proposed is broadly concerned with two questions: (1) What physical variables are responsible for local and global conformational transitions in RNA molecules? and (2) How do these conformational transitions facilitate interfacial interactions of RNA with a diverse group of ligands (small molecules, short peptides, and globular proteins)? To gain a holistic view of the dynamics and interactions, the modeling and simulation effort will be integrated with spectroscopic (nucleic magnetic resonance) and imaging (electron cryo-microscopy) data. Understanding the details of how biomolecules undergo large-scale structural changes to elicit function is an unsolved problem. It is known that biomolecules are flexible and understanding their dynamics may provide insights into their function. Though, it is challenging to characterize such dynamic motions because no single computational or experimental technique can resolve motions at all spatiotemporal scales. The proposed computational approaches use physical free-energy landscapes in a reduced set of coordinates (while maintaining the all atom representation) as opposed to all degrees-of-freedom. The combination of computational and experimental techniques could establish new approaches to study these dynamics at a wide spectrum of time and length scales.The educational plan will bring molecular theories, numerical algorithms, and visualization tools to a broad spectrum of STEM students and educators. It could impact and meet the Next Generation Science Standards and broaden participation in engineering and biophysics, through a broader educational initiative devoted to impart "visuospatial" thinking as a key skill via workshops on a freely-available software tool that will be further developed and disseminated via training of a wide spectrum of STEM population (students, teachers, and faculty). The students will travel to regional and national conferences, and will be exposed to international mentoring and multicultural experiences through partnerships with flagship engineering schools in India.
期刊论文(9)
专著(0)
科研奖励(0)
会议论文
DOI: 10.1021/acs.chemmater.9b04092
发表时间: 2020-03
期刊: Chemistry of Materials
影响因子: 8.6
作者: [Shambhavi Tannir;Lev Levintov;M. Townley;Brian M. Leonard;J. Kubelka;Harish Vashisth;K. Varga;M. Balaz]
通讯作者: Shambhavi Tannir;Lev Levintov;M. Townley;Brian M. Leonard;J. Kubelka;Harish Vashisth;K. Varga;M. Balaz
DOI: 10.1080/08927022.2019.1634268
发表时间: 2019-06-29
期刊: MOLECULAR SIMULATION
影响因子: 2.1
作者: [Paul, Sanjib, Nair, Nisanth N., Vashisth, Harish]
通讯作者: Vashisth, Harish
DOI: 10.1021/acs.jpclett.0c01390
发表时间: 2020-07-16
期刊: JOURNAL OF PHYSICAL CHEMISTRY LETTERS
影响因子: 5.7
作者: [Levintov, Lev, Vashisth, Harish]
通讯作者: Vashisth, Harish
DOI: 10.1021/acs.jctc.0c01199
发表时间: 2021-02-17
期刊: JOURNAL OF CHEMICAL THEORY AND COMPUTATION
影响因子: 5.5
作者: [Levintov, Lev, Paul, Sanjib, Vashisth, Harish]
通讯作者: Vashisth, Harish
共 6 条
    Collaborative Research: Small molecules as chemical probes of protein dynamics and protein-protein interactions
    • 批准号:
      1508595
    • 项目类别:
      Standard Grant
    • 资助金额:
      $21.05万
    • 财政年份:
      2015
    • 负责人:
      Harish Vashisth
    • 依托单位:
    国内基金
    海外基金
    Kidney injury molecular(KIM-1)介导肾小管上皮细胞自噬在糖尿病肾病肾间质纤维化中的作用
    • 批准号:
      81300605
    • 项目类别:
      青年科学基金项目
    • 资助金额:
      23.0万元
    • 批准年份:
      2013
    • 负责人:
      唐琳
    • 依托单位:
    Molecular Plant
    Molecular Interaction Reconstruction of Rheumatoid Arthritis Therapies Using Clinical Data
    Molecular Plant