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Modeling the Molecular Forces Driving the Structure, Folding, and Misfolding of Nucleic Acids

Modeling the Molecular Forces Driving the Structure, Folding, and Misfolding of Nucleic Acids
模拟驱动核酸结构、折叠和错误折叠的分子力
批准号:
1664801
负责人:
Chi Mak
金额:
$40.5万
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2017
资助国家:
美国
项目状态:
已结题
起止时间:
2017-08-01 至 2023-07-31

项目摘要

项目成果

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中文摘要
翻译
池海南加州大学的Mak获得了化学系化学理论、模型和计算方法项目的一个奖项的支持,以研究决定核酸结构的分子驱动力。核酸DNA和RNA是细胞生命周期的核心。双螺旋在人类基因组中普遍存在,但尽管遗传数据以双链形式受到保护,但DNA在复制、转录、重组和修复过程中也呈现多样的、瞬时的单链结构。在细胞中,DNA和RNA与周围的带电物质如Mg+2一起浸入周围的水溶剂环境中。该项目的重点是开发和应用一个准确有效的模型,以了解和量化这种环境在确定驱动DNA和RNA折叠和错误折叠的力量中的作用。该模型被用来设计一种新的计算算法,可以直接模拟折叠和展开过程的原子级精度和显着提高数值效率。这使得全尺度的结构动力学模拟能够研究DNA,RNA及其杂交体在双链和单链形式之间的转换过程中的错误折叠,这对于理解它们在细胞中的功能和调控至关重要。该项目的教育和推广部分旨在恢复一些自然的兴奋发现为基础的科学到本科化学课程。正在开发一个可扩展的数字数据共享和学生协作虚拟平台,以增强和提高学生的亲身实验室体验。作为该项目的一部分设计的一个移动的应用程序将在iOS和Android设备以及标准Web浏览器上运行,该应用程序将为基于云的协作环境提供一个接口。该平台将用于向当地南加州地区的初中和高中学生进行宣传,并将提供实验设计,这些设计采用低成本,易于获得,非危险材料的可扩展的虚拟协作和互动的学生和他们的老师。这个项目的目标是制定严格的理论和有效的计算策略,以了解基本的驱动力决定了核酸如何折叠,以及当它们错误折叠时导致的异常功能。基于麦教授开发的糖-磷酸骨架构象自由能的解析公式,该项目开发的折叠算法使用解析和半解析模型来描述溶剂和反离子介导的决定核酸结构的力,产生一个计算效率高且高度遍历的数值平台,用于从头开始折叠DNA和RNA。 这些研究的重点是理解和量化三种特定类型的溶剂和反离子诱导的相互作用:碱基堆积力,背配对相互作用和互补识别机制,来自他们,和离子诱导的特定和非特异性链内吸引力。分析理论和数值模拟都被用来解开和量化这些力量。通过将这些相互作用模型集成到新的Monte Carlo折叠算法中,该项目重点研究与ssDNA和RNA生理学相关的两个具体问题:(1)从基因组中过度扩展的三核苷酸(CNG)或六核苷酸(GGGGCC)重复转录的mRNA上的非规范二级结构,和(2)R-环的过度积累作为置换的单链DNA的序列和环长度以及RNA的稳定性的函数,DNA杂交和超螺旋在上游或下游的双链DNA边界这些R-环。教育和推广活动包括开发一个可通过网络访问的、可扩展的虚拟环境,以实现实验设计和数据的共享,并促进学生和教师之间的协作互动,以鼓励和发展化学实验室课程和课程中基于探究的科学的兴奋。
英文摘要
Chi H. Mak of the University of Southern California is supported by an award from the Chemical Theory, Models and Computational Methods program in the Chemistry Division to study the molecular driving forces that determine the structures of nucleic acids. The nucleic acids DNA and RNA are central to the life cycle of the cell. The double helix is ubiquitous in the human genome, but while genetic data is safeguarded in double-stranded form, DNA also assumes diverse, transient, single-stranded structures during replication, transcription, recombination, and repair processes. In the cell, DNA and RNA are immersed in a surrounding water solvent environment, together with ambient charged species such as Mg+2. This project focuses on developing and applying an accurate and efficient model to understand and quantify the role of this environment in determining the forces that drive the folding and misfolding of DNA and RNA. The model is used to design a new computational algorithm that can directly simulate folding and unfolding processes with atomic-level accuracy and significantly improved numerical efficiency. This enables full-scale structural dynamical simulations to study misfolding of DNAs, RNAs and their hybrids during transitions between double-stranded and single-stranded forms, processes critical to understanding their function and regulation in the cell. The education and outreach component of the project is aimed at restoring some of the natural excitement of discovery-based science into the undergraduate chemistry curriculum. A scalable virtual platform for digital data-sharing and student collaboration is being developed to augment and enhance the student in-person laboratory experience. A mobile app designed as part of the project and running on iOS and Android devices and standard web browsers will provide an interface to the cloud-based collaborative environment. The platform will be utilized in outreach efforts to middle school and high school students in the local Southern California region, and will make available experimental designs that employ low-cost, readily-available, non-hazardous materials for scalable virtual collaboration and interactions among students and their teachers.The goal of this project is to formulate rigorous theories and efficient computational strategies to understand the fundamental driving forces that dictate how nucleic acids fold, and the aberrant functions that result when they misfold. Based on an analytical formula for the conformational free energy of the sugar-phosphate backbone developed by Professor Mak, the folding algorithm developed in the project uses analytical and semi-analytical models to describe solvent- and counterion-mediated forces dictating the structures of nucleic acids, yielding a computationally efficient and highly ergodic numerical platform for folding DNAs and RNAs from scratch. These studies focus on understanding and quantifying three specific types of solvent- and counterion-induced interactions: base stacking forces, back pairing interactions and complementary recognition mechanisms derived from them, and ion-induced specific and nonspecific intra-chain attractions. Both analytical theories and numerical simulations are being used to unravel and quantify these forces. With these interaction models integrated into a new Monte Carlo folding algorithm, the project focuses on studying two specific problems related to ssDNA and RNA physiology: (1) noncanonical secondary structures on mRNAs transcribed from overexpanded trinucleotide (CNG) or hexanucleotide (GGGGCC) repeats in the genome, and (2) the overaccumulation of R-loops as a function of sequence and loop length of the displaced single-stranded DNA as well as stability of the RNA/DNA hybrid and supercoiling in the upstream or downstream double-stranded DNA bounding these R-loops. Educational and outreach activities include the development of a web-accessible, scalable virtual environment to enable sharing of experimental designs and data, and facilitate collaborative interactions among students and instructors, to encourage and develop the excitement of inquiry-based science within chemistry laboratory courses and curricula.
期刊论文(13)
专著(0)
科研奖励(0)
会议论文
Nucleic acid folding simulations using a physics-based atomistic free energy model
使用基于物理的原子自由能模型进行核酸折叠模拟
DOI: 10.1063/5.0086304
发表时间: 2022
期刊: The Journal of Chemical Physics
影响因子: --
作者: [Mak, Chi H.]
通讯作者: Mak, Chi H.
Random Walk Enzymes: Information Theory, Quantum Isomorphism, and Entropy Dispersion
随机游走酶:信息论、量子同构和熵色散
DOI: 10.1021/acs.jpca.9b00910
发表时间: 2019
期刊: The Journal of Physical Chemistry A
影响因子: --
作者: [Mak, Chi H., Pham, Phuong, Goodman, Myron F.]
通讯作者: Goodman, Myron F.
DOI: 10.1021/acs.jpcb.0c03069
发表时间: 2020-07-09
期刊: JOURNAL OF PHYSICAL CHEMISTRY B
影响因子: 3.3
作者: [Li, Rongpeng, Mak, Chi H.]
通讯作者: Mak, Chi H.
DOI: 10.1021/acs.jchemed.0c00483
发表时间: 2020-07-14
期刊: JOURNAL OF CHEMICAL EDUCATION
影响因子: 3
作者: [Andrews, Jessica L., de Los Rios, Juan Pablo, Mak, Chi H.]
通讯作者: Mak, Chi H.
共 8 条
    Stochastic Decomposition: A New Monte Carlo Algorithm for High-Efficiency Sampling and Applications to Quantum and Classical Problems
    • 批准号:
      0713981
    • 项目类别:
      Continuing Grant
    • 资助金额:
      $37.2万
    • 财政年份:
      2007
    • 负责人:
      Chi Mak
    • 依托单位:
    New Approaches to Path Integral Simulations of Condensed-Phase Quantum Dynamics
    • 批准号:
      9970766
    • 项目类别:
      Continuing Grant
    • 资助金额:
      $47.94万
    • 财政年份:
      1999
    • 负责人:
      Chi Mak
    • 依托单位:
    Path Integral Theory of Electron Transport in Chemical and Biological Systems
    • 批准号:
      9528121
    • 项目类别:
      Continuing Grant
    • 资助金额:
      $23.3万
    • 财政年份:
      1996
    • 负责人:
      Chi Mak
    • 依托单位:
    Path Integral Theory of Electron Transfer in Chemical and Biological Systems
    • 批准号:
      9216221
    • 项目类别:
      Continuing Grant
    • 资助金额:
      $12.0万
    • 财政年份:
      1993
    • 负责人:
      Chi Mak
    • 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