Spin Labeling Studies of Biomolecular Flexibility and Hydration
Spin Labeling Studies of Biomolecular Flexibility and Hydration
批准号:
1715384
负责人:
Gail Fanucci
金额:
$79.58万
依托单位:
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
中文摘要
生命的过程涉及折叠和未展开的大型生物分子之间的无数相互作用。此外,生物分子的特定折叠形状和形状变化可以调节细胞周期事件和重要的细胞功能。传统上,分子之间的所有相互作用都被认为是像锁和钥匙一样结合在一起的。然而,最近的研究表明,近30%的生物分子是未折叠的,未折叠的生物分子之间的相互作用可以是“特异性的”和“短暂的”。许多这些短暂的相互作用涉及相分离(如油和水),以形成亚细胞结构,负责聚集生命和复制所需的细胞功能所需的必要成分。这项工作旨在了解这些生物分子表面的水浓度和运动如何改变它们的形状、结构波动和相分离;从而揭示了细胞控制和调节的重要方面。该项目还将为研究生、本科生和高中生提供独特的培训机会,包括与合作者交流经验,参加会议和研讨会。将招募不同的本科生进行研究体验,使他们能够将本科课程工作融入研究环境。来自贫困家庭的高中生将被招募到佛罗里达大学暑期科学教学计划中。新型RNA及其独特的多面细胞功能的不断发现,为RNA生物学、化学和生物物理学提供了丰富的研究领域。内在无序蛋白(IDPs)也发现其通过形成无膜亚核细胞器来调节细胞功能的作用越来越受到重视。具体来说,这项工作利用定点自旋标记(SDSL)电子顺磁共振方法来表征甘氨酸核糖开关的构象采样、动力学和水合环境;一个大的,动态的RNA,调节基因表达和选择IDP蛋白/肽。结果将揭示溶液环境条件如何调节构象灵活性和水合环境,并阐明构象平衡模型的细节,该模型描述了配体结合时适配体间相互作用导致调节功能(在本例中为基因表达)。这项工作还将促进自旋标记磁共振在大rna中的应用的发展;从而为其他RNA系统的研究奠定了基础。对环境对国内流离失所者影响的调查将提供环境参数(盐、浓度和其他分子)如何调节水合作用、结构和相分离的分子水平细节。该项目的一个辅助方面是继续优化奥弗豪瑟动态核极化(ODNP)技术,用于研究无膜细胞器(如核体)内分子浓度的大分子水合环境。
英文摘要
The process of life involves numerous interactions between folded and unfolded large biological molecules. Additionally, the specific folded shape and changes in the shapes of biological molecules can regulate cell cycle events and important cellular functions. Traditionally, all interactions between molecules were thought to fit together like a lock-and-key. However, recent research has shown that nearly 30% of biological molecules are unfolded and interactions between unfolded biological molecules can be "specific" and "transient". Many of these transient interactions involve phase separation (like oil and water) to form sub-cellular structures responsible for clustering the necessary ingredients necessary for cellular functions required for life and replication. This work aims to understand how water concentration and movement at the surface of these biological molecules can alter their shape, structural fluctuations, and phase separation; thus shedding light on important aspects of cellular control and regulation. The project will also provide unique training opportunities for graduate, undergraduate and high school students that include exchange experiences with collaborators and attendance at conferences and workshops. Diverse undergraduate students will be recruited for research experiences that will enable them to integrate their undergraduate course work into a research environment. High school students from underprivileged backgrounds will be recruited into the University of Florida Summer Science Teaching Program. The expanding discovery of novel RNAs and their unique multifaceted cellular capabilities has resulted in a rich arena of research interfacing RNA biology, chemistry, and biophysics. Intrinsically disordered proteins (IDPs) have also found a growing appreciation for their role in regulating cellular function through the formation of membraneless sub-nuclear organelles. Specifically, this work utilizes site-directed spin-labeling (SDSL) electron paramagnetic resonance approaches to characterize conformational sampling, dynamics and hydration environments of the glycine riboswitch; a large, dynamic RNA that modulates gene expression and select IDP proteins/peptides. The results will reveal how solution environmental conditions modulate conformational flexibility and hydration environment and clarify details of a model of conformational equilibrium that describes interaptamer interactions upon ligand binding that lead to regulatory function (in this case gene expression). This work will also add to the development of spin-labeling magnetic resonance applications in large RNAs; thus laying the foundation for work that can be utilized in other RNA systems. Investigations on the impact of environment on IDPs will provide molecular level details of how environmental parameters (salt, concentration and other molecules) can modulate hydration, structure and phase separation. An ancillary aspect of this project is to continue to optimize Overhauser dynamic nuclear polarization (ODNP) technologies for investigations of macromolecular hydration environment at molecular concentrations found within membraneless organelles such as the nuclear bodies.
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Hydrogen Bonding Compensation on the Convex Solvent-Exposed Helical Face of IA 3 , an Intrinsically Disordered Protein
本质无序蛋白质 IA 3 暴露于溶剂的凸螺旋面上的氢键补偿
DOI:
10.1021/acs.biochem.3c00169
发表时间:
2023
期刊:
Biochemistry
影响因子:
2.9
作者:
[Dunleavy, Katie M., Oi, Collin, Li, Tianyan, Secunda, Andrew, Jaufer, Afnan M., Zhu, Yinlu, Friedman, Lee, Kim, Alexander, Fanucci, Gail E.]
通讯作者:
Fanucci, Gail E.
DOI:
10.3934/biophy.2018.3.166
发表时间:
2018-01-01
期刊:
AIMS BIOPHYSICS
影响因子:
1.5
作者:
[Dunleavy, Katie M., Milshteyn, Eugene, Fanucci, Gail E.]
通讯作者:
Fanucci, Gail E.
DOI:
10.1007/s00723-023-01624-w
发表时间:
2023-10-09
期刊:
APPLIED MAGNETIC RESONANCE
影响因子:
1
作者:
[Jaiswal,Mohit, Tran,Trang T., Fanucci,Gail E.]
通讯作者:
Fanucci,Gail E.
DOI:
10.1016/j.bbrc.2019.06.105
发表时间:
2019-08-27
期刊:
BIOCHEMICAL AND BIOPHYSICAL RESEARCH COMMUNICATIONS
影响因子:
3.1
作者:
[Ehrenberger, Michelle A., Vieyra, Aleida, Fanucci, Gail E.]
通讯作者:
Fanucci, Gail E.
DOI:
10.1016/j.bbrc.2020.08.030
发表时间:
2020-11-05
期刊:
BIOCHEMICAL AND BIOPHYSICAL RESEARCH COMMUNICATIONS
影响因子:
3.1
作者:
[Tran,Trang T., Liu,Zhanglong, Fanucci,Gail E.]
通讯作者:
Fanucci,Gail E.
共 7 条
Thermodynamics and Chain Dynamics in Spin-labeled Peptide Block Copolymer Assemblies
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批准号:2003366
-
项目类别:Standard Grant
-
资助金额:$60.0万
-
财政年份:2020
-
负责人:Gail Fanucci
-
依托单位:
Spin Labeling Insights into Hydration Effects on Macromolecular Flexibility and Function
-
批准号:1329467
-
项目类别:Continuing Grant
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资助金额:$51.8万
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财政年份:2013
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负责人:Gail Fanucci
-
依托单位:
CAREER: Site-Directed Spin Labeling EPR Applications in Intrinsically Unstructured Proteins
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批准号:0746533
-
项目类别:Continuing Grant
-
资助金额:$60.4万
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财政年份:2008
-
负责人:Gail Fanucci
-
依托单位:
海外基金