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CAREER: Theoretical Approaches to Single-molecule Biophysics

CAREER: Theoretical Approaches to Single-molecule Biophysics
职业:单分子生物物理学的理论方法
批准号:
0845099
负责人:
Olga Dudko
金额:
$79.36万
依托单位国家:
美国
项目类别:
Continuing Grant
财政年份:
2009
资助国家:
美国
项目状态:
已结题
起止时间:
2009-01-15 至 2014-12-31

项目摘要

项目成果

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中文摘要
翻译
这个职业项目的目标是了解在单分子水平上控制生物大分子的结构形成和功能的基本物理原理。该策略是利用非平衡态物理学的强大解释力来解决分子和细胞生物学中难以解决的问题,反过来,通过在单个生物分子水平上探索生物过程来激发新的物理概念。研究计划包括四个相互关联的项目:(1)从单分子操作中揭示活细胞过程的机制。该项目解决了从实验输出中提取新信息的挑战性任务。(2)分析实验变量对单分子操作的影响。该项目将建立从有关感兴趣的生物分子的信息中分离实验装置中的因素的方法。(3)单分子力谱的多态理论公式。该项目将使研究和预测新的现象,可能出现在更高层次的复杂性。(4)理解多维自由能景观在复杂生物分子的机械展开中的作用。这一方法将有助于设计研究复杂生物分子的二级和三级结构的实验。这一研究计划将为实现PI的长期目标奠定基础,即将单分子生物物理理论扩展到细胞水平,并进入活细胞的机制。卓越教育的基础将建立在以下贡献之上。(1)将研究活动纳入本科课程,旨在模仿研究人员撰写可编辑的研究论文并与同行一起捍卫其手稿内容的过程。(2)教学创新有可能改变人们学习科学的方式。其中包括使用个人响应系统点击器(可用的最强大、最灵活的学生响应系统),以及越来越多地使用计算机模拟来创建交互式“虚拟”物理实验。3)将代表性不足的群体纳入本科阶段的研究管道。加州州立大学圣马科斯将是努力将前沿生物物理学扩展到教学大学课程的主要合作伙伴。由于推广仍然是物理学界的一个重大挑战,将利用对生命系统的广泛兴趣,以确保这一挑战得到满足。PI认为,生物物理学必须成为所有物理系的主流课程。设计的创新课程与研究、培训和外联活动相结合,将能够培训一批新的科学家,他们在高级物理学和计算方面的能力与在生化反应、实验规程和生物数据库方面的能力相同。这种方法将被用来作为一种手段,以创造一个国家和国际生物物理学和物理学前沿研究的认识,并使UCSD在物理学的原理,语言和工具与生物学相结合的世界领导者,从而在我们的生活过程的理解产生革命。该项目由分子和细胞生物科学部的分子生物物理学和物理学部的生命系统物理学项目共同支持。
英文摘要
The objective of this CAREER project is to understand the fundamental physical principles that govern the structure formation and functioning of biological macromolecules at the single-molecule level. The strategy is to use the great explanatory power of non-equilibrium physics to tackle otherwise intractable problems in molecular and cell biology, and conversely to motivate new physical concepts through the exploration of biological processes at the level of individual biomolecules. The research plan includes four interrelated projects: (1) Revealing mechanisms of living cell processes from single-molecule manipulations. The project addresses the challenging task of extracting novel information from experimental outputs. (2) Analyzing the effect of experimental variables on single-molecule manipulations. The project will establish the ways to disentangle the factors in the experimental setup from the information about the biomolecule of interest. (3) Formulating multistate theory of single-molecule force spectroscopy. This project will enable the study and prediction of new phenomena that can emerge at higher levels of complexity. (4) Understanding the role of multidimensional free energy landscapes in the mechanical unfolding of complex biomolecules. This approach will help design experiments that examine secondary and tertiary structure in complicated biomolecules.This research plan will build a foundation for achieving the PI's long-term goals of extending single-molecule biophysical theory to the cellular level and accessing the machinery of a living cell. The foundation for excellence in education will be built upon the following contributions. (1) Incorporating research activities into undergraduate courses, which are designed to mimic the processes an investigator undertakes in writing a publishable research paper and defending the content of their manuscript with peers. (2) Innovations in teaching that have the potential to transform how people learn science. These include the use of Personal Response System clickers, the most powerful and flexible student response system available, as well as making increasing use of computer simulations for creating interactive "virtual" physics experiments. 3) Bringing underrepresented groups into the research pipeline at the undergraduate level. California State University San Marcos will be the lead partner in efforts to extend leading-edge biological physics into the curriculum at teaching universities. As outreach remains a significant challenge for the physics community, advantage will be taken of the widespread interest in living systems to ensure this challenge has been met. The PI believes that biological physics must become a mainstream course in all physics departments. The designed innovative curriculum, integrated with research, training and outreach activities, will enable training of a new cadre of scientists equally competent in advanced physics and computation as in biochemical reactions, experimental protocols and biological databases. This approach will be used as a means to create a national and international awareness of biological physics and physics frontiers research, and to make UCSD the world leader in combining the principles, language and tools of physics with those of biology, so as to engender a revolution in our understanding of living processes. This project is jointly supported by Molecular Biophysics in the Division of Molecular and Cellular Biosciences and by the Physics of Living Systems program in the Physics Division.
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EAGER: Toward unifying theories of living systems
  • 批准号:
    2232049
  • 项目类别:
    Standard Grant
  • 资助金额:
    $30.0万
  • 财政年份:
    2022
  • 负责人:
    Olga Dudko
  • 依托单位:
The unifying principles of biomolecular interactions as a predictive framework for biological mechanisms
  • 批准号:
    1411884
  • 项目类别:
    Continuing Grant
  • 资助金额:
    $90.41万
  • 财政年份:
    2014
  • 负责人:
    Olga Dudko
  • 依托单位:
Graduate Training in the Physics of Living Systems (PoLS) - A one-day workshop at the NSF; Arlington, VA
  • 批准号:
    0935934
  • 项目类别:
    Standard Grant
  • 资助金额:
    $0.0万
  • 财政年份:
    2009
  • 负责人:
    Olga Dudko
  • 依托单位:
海外基金