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中文摘要
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描述(由申请人提供):该项目代表了现有计算实验室和实验实验室之间的合作,以结合生物物理方法来产生、评估和验证用于研究RNA分子的下一代生物分子模拟方法。在过去的十年里,我们对RNA分子广泛不同的功能作用的了解已经爆炸式增长;RNA分子可以是调节性的或催化的,可以作为传感器,可以上调和下调基因的表达,并且在所有门中作为外源配体控制的靶标具有巨大的潜力。RNA的结构是模块化的,包含一系列结构元素,包括短双链区、发夹环、内部凸起、四向连接和受体位点。这些结构元素,以及它们的构象变化和动力学,是RNA功能的关键。然而,这些功能上重要的结构、动力学和能量特性还不能可靠地预测或通过实验完全理解。为了表征RNA结构、它们的结构转变以及它们的局部和全局动力学,模拟和实验的协同是必要的。该项目的目标是利用理论和实验生物物理方法,更全面地开发生物分子模拟工具,以准确描述RNA分子,特别是它们如何与小分子、离子和蛋白质相互作用,并以实验数据为基准来评估、验证和改进模型。AIM 1是围绕Varkud卫星核酶干环V RNA(SL5)构建的。这个小的RNA发夹有一个灵活的环,当它与离子结合时,它会经历构象变化,并作为一个模型系统来测试静电学、采样、结构精度以及模拟离子对结构和动力学的微妙影响的能力。基于最新的琥珀核酸力场(ff99+parmbsc0)的新的分子动力学模拟将评估力场参数,并应用新的有偏增强采样方法来更丰富地采样RNA环的构型空间。同时,核磁共振将进一步细化溶液结构,13C核磁共振弛豫实验将测量SL5在不同离子存在下的动力学。目的2将RNA模型系统扩展到核糖体的GTP酶中心(GAC),以模拟离子结合、静电作用和抗生素结合。核磁共振用于结构和动力学测定,2-氨基嘌呤荧光报告GAC的折叠,MD从58个核苷酸的GAC的晶体结构开始。这两个目标是协同的:从MD模拟中反向计算原始核磁共振数据,通过与测量的核磁共振数据直接比较来评估计算方法的准确性和精确度。目标3采用比较研究的结果,以找出不足之处并实施改进。通过哈密顿副本交换分子动力学实现力场的修饰和构象采样,最终应用于GAC RNA的三级折叠。
英文摘要
DESCRIPTION (provided by applicant): This project represents collaboration between established computational and experimental labs to combine biophysical methods to produce, assess, and validate the next generation of biomolecular simulation methods to study RNA molecules. In the past decade our knowledge of the widely varied functional roles of RNA molecules has exploded; RNA molecules can be regulatory or catalytic, can act as sensors, can both up- and down- regulate gene expression, and have great potential as targets for control by exogenous ligands in all phyla. The structures of RNA are modular and contain a mix of structural elements including short duplex regions, hairpin loops, internal bulges, four-way junctions, and receptor sites. These structural elements, along with their conformational changes and dynamics, are the keys to RNA function. However, these functionally important structural, dynamic, and energetic properties cannot yet be reliably predicted or fully experimentally understood. To characterize RNA structures, their structural transitions, and their local and global dynamics, a synergy of simulation and experiment is necessary. The goal of this project is to use theoretical and experimental biophysical methods to more fully develop biomolecular simulation tools to accurately describe RNA molecules, especially how they interact with small molecules, ions, and proteins, using experimental data as a benchmark to assess, validate and improve the models. Aim 1 is built around the Varkud satellite ribozyme Stem loop V RNA (SL5). This small RNA hairpin has a flexible loop that undergoes a conformational change when it binds to ions, and acts as a model system to test electrostatics, sampling, structural accuracy, and the ability of the simulations to model the subtle influences of ions on the structure and dynamics. New molecular dynamics simulations based on the latest AMBER nucleic acid force fields (ff99+parmbsc0) will assess the force field parameters and apply novel biased enhanced sampling methods to more richly sample the configurational space of the RNA loop. At the same time, NMR will further refine the solution structure, and 13C NMR relaxation experiments will measure dynamics of SL5 in the presence of different ions. Aim 2 expands the RNA model systems to the GTPase center (GAC) of the ribosome, to model ion binding, electrostatics, and antibiotic binding. NMR is used for structure and dynamics determination, 2-aminopurine fluorescence reports on folding of the GAC, and MD begins with crystal structures of the 58 nucleotide GAC. These two aims are synergistic: primary NMR data are back- calculated from the MD simulations to assess the accuracy and precision of the computational methods through direct comparison to the measured NMR data. Aim 3 takes the outcome of the comparative study to identify deficiencies and implement improvements. Force field modifications and conformational sampling will be facilitated through Hamiltonian replica exchange molecular dynamics and finally applied to the tertiary folding of the GAC RNA.
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From genomics to natural language processing: A protected environment for research computing in the health science
  • 批准号:
    9274445
  • 项目类别:
  • 资助金额:
    $49.36万
  • 财政年份:
    2017
  • 负责人:
    Thomas E. Cheatham
  • 依托单位:
RNA-ligand interactions: simulation and experiment
  • 批准号:
    8737909
  • 项目类别:
  • 资助金额:
    $52.48万
  • 财政年份:
    2011
  • 负责人:
    Thomas E. Cheatham
  • 依托单位:
RNA-ligand interactions: simulation and experiment
  • 批准号:
    8075344
  • 项目类别:
  • 资助金额:
    $56.03万
  • 财政年份:
    2011
  • 负责人:
    Thomas E. Cheatham
  • 依托单位:
RNA-ligand interactions: simulation and experiment
  • 批准号:
    8337323
  • 项目类别:
  • 资助金额:
    $50.73万
  • 财政年份:
    2011
  • 负责人:
    Thomas E. Cheatham
  • 依托单位:
海外基金