Single-molecule studies of hyaluronic acid
Single-molecule studies of hyaluronic acid
批准号:
1611497
负责人:
Omar Saleh
金额:
$39.0万
依托单位国家:
美国
项目类别:
Continuing Grant
财政年份:
2016
资助国家:
美国
项目状态:
已结题
起止时间:
2016-08-15 至 2020-07-31
中文摘要
非技术性:该奖项由加州大学圣巴巴拉分校材料研究部的生物材料项目颁发,旨在研究透明质酸(透明质酸,HA)在盐和其他与这种聚合物结合的分子存在下的大小、形状和溶液性质。透明质酸,或透明质酸(HA),是一种巨大的聚合物分子,定义了人体许多空间的结构和力学,如组织水化、伤口愈合、某些生物界面的润滑,并有助于定义关节和功能的力学。此外,HA正在积极研究用于生物材料应用,特别是用作细胞/组织工程基质的功能化HA凝胶。HA的这些功能依赖于其聚合物的随机行走结构,该结构受溶液条件的调节,包括盐浓度、其他生物聚合物的拥挤以及HA结合分子的存在。因此,由于生物和化学原因,对HA构象和溶液行为的微观基础有详细的了解是非常重要的。预计拟议的研究将使人们更好地了解HA的各种生物学作用,并允许合理地设计基于HA的生物材料。此外,实施这一项目将产生各种重要的更广泛的影响,包括加强大学/国家实验室的伙伴关系,以及在具有良好长期潜力的跨学科科学领域培养本科生和研究生的青年科学家。国际传播和科学交流是该项目的一部分,这些独特的活动对于实现更广泛的科学影响非常重要。技术:透明质酸(HA)是一种几乎存在于所有哺乳动物组织中的多糖。由于各种氢键相互作用,HA具有较大的阴离子电荷密度、构象灵活性和多晶性。这些特征,加上它与某些配体的联系,使它定义了细胞外空间的机械和粘弹性性质,如细胞周围基质、眼玻璃体和滑液。羟基磷灰石在临床应用以及作为生物材料用于细胞和组织生长的凝胶基质方面具有更大的应用价值。在所有这些生物和生物材料的应用中,普遍需要彻底了解HA的微观结构和功能,特别是包括机械性能及其与主导渗透和粘弹性性能的离子效应的关系。通过之前的NSF项目,这位研究人员已经确定,低力的单分子弹性测量是了解复杂溶液中聚电解质结构的强大工具。在这里,“低力”指的是张力小到足以在链中形成环状、随机行走的结构;这种力对于标准的力谱学方法来说是无法获得的,这些力谱方法只能访问近直链的构型。较低的作用力允许对弱的、远程的相互作用敏感,从而量化对HA的生物和生物材料功能至关重要的影响,例如静电排斥、直接和水介导的氢键以及自我避免。在这里,建议的研究是应用低力方法来严格检查HA的溶液介导的构象和力学性质。本研究将通过以下两个目标进行。在目标1中,将研究通过静电筛选、水结构(使用CHO/Kosmotrol盐)和在聚集物存在下调节HA的构象。在目标2中,将研究特定生物配体对HA构象的影响,重点是引起溶胀和交联效应的蛋白聚糖。国际传播和科学交流在实现科学更广泛影响的背景下是独特和重要的,是该奖项的一部分。
英文摘要
Non-technical: This award by the Biomaterials program in the Division of Materials Research to University of California-Santa Barbara is to study the size, shape and solution properties of hyaluronic acid (hyaluronan, HA) in the presence of salts and other molecules that binds with this polymer. Hyaluronan, or hyaluronic acid (HA), is a huge polymer molecule that defines the structure and mechanics of many spaces in the human body such as tissue hydration, wound healing, lubrication of certain biological interfaces, and helps to define the mechanics of joints and functionality. Further, HA is under active investigation for use in biomaterials applications, notably functionalized HA gels that act as cell/tissue engineering substrates. These functions of HA rely on its polymeric, random-walk structure, which is modulated by solution conditions, including salt concentration, crowding by other biological polymers, and the presence of HA-binding molecules. It is thus of basic importance, for both biological and chemical reasons, to have a detailed understanding of the microscopic basis of HA conformation and solution behavior. The proposed studies are expected to lead to a better understanding of HA's various biological roles, as well as to permit rational engineering of HA-based biomaterials. Further, carrying out this project would have a variety of important broader impacts, including strengthening university/national lab partnerships, and training young scientists, at both undergraduate and graduate levels in an interdisciplinary scientific area with excellent long-term potential. International dissemination and scientific exchanges are parts of this project, and these unique activities are important in achieving scientific broader impacts. Technical: Hyaluronic acid (HA) is a polysaccharide present in nearly all mammalian tissues. HA is characterized by a large anionic charge density, conformational flexibility, and polymorphism due to a variety of hydrogen-bonding interactions. These features, along with its association with certain ligands, lead it to define the mechanical and viscoelastic properties of extracellular spaces, such as the pericellular matrix, eye vitreous, and synovial fluid. HA is of further interest for clinical applications, and as a biomaterial used to create gel substrates for cell and tissue growth. In all these biological and biomaterials applications, there is a common need for a thorough understanding of HA's microscopic structure and functions, particularly including mechanical properties and their relation to the ionic effects that dominate osmotic and viscoelastic properties. With the prior NSF project, this researcher has established that low-force single-molecule elasticity measurements are powerful tools to understand polyelectrolyte structure in complex solutions. Here, 'low force' means tensions small enough to permit looped, random-walk structure in the chain; such forces are inaccessible to standard force spectroscopy approaches that only access nearly-straight chain configurations. Low forces permit sensitivity to weak, long range interactions, and thus quantification of the effects that are key to HA's biological and biomaterials functions, such as electrostatic repulsion, direct and water-mediated hydrogen bonding, and self-avoidance. Here, the proposed studies are to apply the low-force approach to a rigorous examination of HA's solution-mediated conformational and mechanical properties. This research will proceed through the following two goals. In goal 1, HA conformation will be studied as modulated by electrostatic screening, water structure (using chao/kosmotropic salts), and in the presence of crowders. In goal 2, the effects of specific biological ligands on HA conformation will be studied, with emphasis on proteogylcans that cause swelling and crosslinking effects. International dissemination and scientific exchange that are unique and important in the context of achieving broader impact of the sciences are part of this awards.
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NSF/MCB-BSF: Direct force measurements and analysis of intrinsically disordered proteins
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批准号:2113302
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项目类别:Continuing Grant
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资助金额:$83.5万
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财政年份:2021
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负责人:Omar Saleh
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依托单位:
Ion and ligand interactions of hyaluronic acid
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批准号:2005189
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财政年份:2020
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负责人:Omar Saleh
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依托单位:
Isostatic Elasticity in a Biomolecular Network
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批准号:1935400
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项目类别:Standard Grant
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资助金额:$46.25万
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财政年份:2020
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负责人:Omar Saleh
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依托单位:
NSF/MCB BSF: Direct Force measurements and analysis of intrinsically disordered proteins
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批准号:1715627
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项目类别:Standard Grant
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资助金额:$76.42万
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财政年份:2017
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负责人:Omar Saleh
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依托单位:
Mechanics of Deformation of Flexible Fibrous Networks
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批准号:1363135
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项目类别:Standard Grant
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资助金额:$40.0万
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财政年份:2014
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负责人:Omar Saleh
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依托单位:
Investigating the Structure of Flexible Polyelectrolytes
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批准号:1309414
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项目类别:Continuing Grant
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资助金额:$42.0万
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财政年份:2013
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负责人:Omar Saleh
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依托单位:
Single-Molecule Study of Biopolymers in Complex Solutions
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批准号:1006737
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项目类别:Continuing Grant
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项目类别:Continuing Grant
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财政年份:2008
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依托单位:
国内基金
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