Bioinspired, Single-molecule Based Shear Switchable Nanomaterials
Bioinspired, Single-molecule Based Shear Switchable Nanomaterials
批准号:
2004475
负责人:
Xuanhong Cheng
金额:
$40.36万
依托单位:
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2020
资助国家:
美国
项目状态:
未结题
起止时间:
2020-06-01 至 2025-05-31
中文摘要
非技术概述:剪切流广泛存在于生理环境中,并对各种正常和病理过程有重要影响,特别是在循环系统中。因此,结构和功能可通过剪切调节的生物材料是检测和纠正体内异常血流引起的病理过程的强大工具。在过去的几十年里,剪切响应型水凝胶和分子组装得到了广泛的探索。然而,基于单生物分子的剪切响应器仍然是一个开发较少的课题,尽管这种材料可以更好地模拟循环中的自然功能,提供更准确的空间和时间响应,具有功能可逆性。该项目将设计和表征具有可切换结构和功能的新型单分子材料,以响应剪切流(Smores)。由于模块化设计,材料概念可以推广到其他结构,能够对循环系统中的异常流动做出反应,从而为心血管疾病的长期诊断和治疗提供新的方法。这个项目将为配体和流动环境影响下的聚合物装置的生物力学提供基本的见解,这些观点以前还没有深入研究过。合理设计包含生物和非生物功能的生物材料,以实现可预测的流动响应,将推动材料科学、生物力学、生物偶联、分子工程和生物传输等领域的发展。这项工作的知识将使新的诊断和止血应用成为可能,促进国民健康。PIS将积极招募代表性不足的学生参与他们的研究,并通过各种K12外展计划向公众广泛传播研究成果。技术总结:该设计的灵感来自循环中的一种凝血分子--von Willebrand因子(VWF),它以每秒5000的剪切率将血小板与受损的血管壁进行交联。该功能是通过在高剪切下的构象变化来启动的,并由一个极其复杂的分子结构实现:VWF由数十到数百个单体单元组成,每个单体单元包含十个以上的结构域。为了证明模块化设计的人工材料可以实现与vWF相似的功能,即在高剪切力下结合细胞,我们提出了在剪切力控制下抑制或促进vWF的血小板结合域的细胞结合活性的结构。通过单分子力谱、微流体成像实验和计算机模拟,将表征与所提议材料结合的剪切依赖细胞,并与分子构象相关联。除了展示材料设计概念外,拟议的工作还将强调在不同生化环境下的单分子生物力学行为的基础研究,特别是配体的存在和不存在。该奖项反映了NSF的法定使命,并通过使用基金会的智力优势和更广泛的影响审查标准进行评估,被认为值得支持。
英文摘要
Nontechnical Summary: Shear flow is widely present in physiological environments and contributes significantly to various normal and pathological processes, especially in the circulatory system. Consequently, biomaterials with structure and function tunable by shear represent powerful tools to detect and rectify pathological processes induced by abnormal flows in the body. For the past few decades, shear-responsive hydrogels and molecular assemblies have been widely explored. However, single-biomolecule based shear responders remains a poorly-tapped subject, despite such materials could better mimic natural functions in circulation, delivering more accurate spatial and temporal responses with function reversibility. This project will design and characterize novel Single-MOlecule based materials with switchable structures and functions REsponsive to Shear flows (SMORES). Owing to the modular design, the material concept can be generalized to other constructs capable of responding to abnormal flows in the circulatory system towards novel diagnostics and therapeutics for cardiovascular diseases in the long term. This project will provide fundamental insights into biomechanics of polymer devices under the influence of ligands and the flow environment, perspectives that have not been studied in depth before. Rational design of biomaterials containing both bio- and nonbio- functionalities to achieve predictable flow responses will advance the fields of materials science, biomechanics, bio-conjugation, molecular engineering and bio-transport. Knowledge from this work will enable new diagnostics and theranostics for hemostatic applications, advancing the national health. The PIs will actively recruit underrepresented students to their research and disseminated discoveries from the research broadly to the general public through various K12 outreach programs.Technical Summary: The design is inspired by a coagulation molecule in circulation, the von Willebrand Factor (vWF), which executes its function of crosslinking platelets to damaged blood vessel wall at shear rates 5,000 per sec. The function is switched on by conformational changes under high shear and is enabled by an extremely complicated molecular structure: vWF is comprised of tens to hundreds of monomer units, each of which contains more than ten domains. To demonstrate that an artificial material of modular design could achieve a similar function to vWF, i.e. binding cells at high shear, we propose the construction SMORES to inhibit or promote the cell binding activity of the vWF’s platelet binding domain under shear control. Shear dependent cell binding to the proposed material will be characterized and correlated with molecular conformations studied by single-molecular force spectroscopy, microfluidic imaging experiments and computer modeling. Besides demonstrating the material design concept, the proposed work will emphasize fundamental studies of single-molecule biomechanical behaviors in different biochemical environment, especially the presence and absence of ligands.This award reflects NSF's statutory mission and has been deemed worthy of support through evaluation using the Foundation's intellectual merit and broader impacts review criteria.
期刊论文(3)
专著(0)
科研奖励(0)
会议论文
DOI:
10.1111/aor.14456
发表时间:
2022-11
期刊:
Artificial organs
影响因子:
2.4
作者:
[G. Giridharan;Ian C. Berg;Esraa Ismail;Khanh T Nguyen;Jana Hecking;J. Kirklin;Xuanhong Cheng;P. Sethu]
通讯作者:
G. Giridharan;Ian C. Berg;Esraa Ismail;Khanh T Nguyen;Jana Hecking;J. Kirklin;Xuanhong Cheng;P. Sethu
Effect of pulsatility on shear-induced extensional behavior of Von Willebrand factor.
脉动性对剪切诱导的von Willebrand因子延伸行为的影响。
DOI:
10.1111/aor.14133
发表时间:
2022-05
期刊:
Artificial organs
影响因子:
2.4
作者:
[]
通讯作者:
Broadband Electrical Sensing of Nuclear Morphology and DNA Content in a Single Live Cell
-
批准号:1809623
-
项目类别:Standard Grant
-
资助金额:$35.97万
-
财政年份:2018
-
负责人:Xuanhong Cheng
-
依托单位:
I-Corps: Commercialization of a Nanoparticle Concentration Apparatus
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批准号:1624030
-
项目类别:Standard Grant
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资助金额:$5.0万
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财政年份:2016
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负责人:Xuanhong Cheng
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依托单位:
UNS:Coupling Thermophoresis with Engineered Convection for Label free, Continuous Bionanoparticle Concentration in Microfluidic Devices
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批准号:1511284
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项目类别:Standard Grant
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资助金额:$30.58万
-
财政年份:2015
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负责人:Xuanhong Cheng
-
依托单位:
国内基金
海外基金
MYB转录因子SINGLE FLOWER调控番茄果实数目的分子机制
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批准号:32072577
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资助金额:59.0万元
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负责人:肖晗
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依托单位:
基于Single Cell RNA-seq的斑马鱼神经干细胞不对称分裂调控机制研究
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负责人:刘畅
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甲醇合成汽油工艺中烯烃催化聚合过程的单元步骤(single event)微动力学理论研究
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批准号:21306143
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项目类别:青年科学基金项目
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资助金额:25.0万元
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批准年份:2013
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负责人:金放
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依托单位: