Investigating the Balance of Passive and Active Mechanics in Vascular Remodeling: An Integrated Experimental and Computational Approach
Investigating the Balance of Passive and Active Mechanics in Vascular Remodeling: An Integrated Experimental and Computational Approach
批准号:
1760906
负责人:
Susan Lessner
金额:
$42.38万
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2018
资助国家:
美国
项目状态:
已结题
起止时间:
2018-08-15 至 2022-07-31
中文摘要
为了保持健康,身体的血管经常发生变化。这一过程被称为“血管重塑”,是成人血管在结构、几何形状或机械特性上的长期改变。过多和过少的重塑会发生在不同的疾病中,例如,高血压和动脉瘤的形成。除了血液对血管的作用力外,细胞也对血管施加拉力以维持其功能。研究人员最近表明,即使在血液力量没有改变的情况下,细胞也会根据饮食和年龄改变对细胞壁的拉动方式。由细胞引起的血管壁变化的实验结果成功地模拟了正常小鼠,并预测了在血管中缺少重要化学信息的实验小鼠(一氧化氮缺乏小鼠)血管将如何变化。本项目是对模型预测进行实验检验,以确定模型是否正确。该项目的教育和推广方面包括生物力学和机械生物学的本科生和研究生培训,课程开发,高中生的研究经验,以及通过project Lead The Way向高中教师推广STEM科目。血管重构是常见血管疾病的重要组成部分。该研究项目将提高预测疾病进展和改善公众健康的能力。使用连续介质力学分析血管重构的理论和计算方法常常缺乏实验数据来提供对重构的活性生物贡献的定量描述,例如活化的平滑肌细胞的贡献。通过提供一个创新的、紧密集成的框架,结合实验和数学分析,这一不足将在年龄相关血管重塑及其对内皮功能障碍的反应的背景下得到解决。这项工作具有潜在的变革性,因为它能够识别和表征与年龄相关的血管重构的新机制,独立于血流动力学的变化,并提供一个理论和计算框架,以预测广泛的重构结果,包括胶原纤维的重新定向,以及它们对血管生物力学的影响。主动脉重构的时间进程将以血管几何形状、组成和胶原纤维取向的变化为特征。血流动力学对重塑的贡献将通过测量血压和容量流速来跟踪。一氧化氮合酶3蛋白的表达和主动脉段一氧化氮的产生将被用来衡量内皮功能。研究人员将开发并独立验证一个数学框架,该框架结合了动脉组织的被动和主动组成模型,以解释在没有显著血流动力学变化的情况下,平滑肌细胞收缩收缩张力变化驱动血管重构的过程。该奖项反映了美国国家科学基金会的法定使命,并通过使用基金会的知识价值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
The blood vessels of the body often change in order to maintain health. This process, called "vascular remodeling" is a long-lasting alteration in structure, geometry, or mechanical properties of adult blood vessels. Both too much and too little remodeling occur in different diseases, for example, in high blood pressure and in the formation of an aneurysm. In addition to the forces of blood on the vessels, the cells also pull on the vessel to maintain function. The investigators recently showed that the cells change how they pull on the cell walls in response to diet and age even when the blood forces aren't changed. The experimental results of changes in the vessels walls caused by the cells was successfully modeled for normal mice and makes a prediction on how the blood vessels will change in experimental mice missing an important chemical message in the blood vessels (nitric oxide deficient mice). This project is to experimentally test the model prediction to determine whether the model is correct. The educational and outreach aspects of the project include undergraduate and graduate training in biomechanics and mechanobiology, course development, research experiences for high school students, and outreach to high school teachers in STEM subjects through Project Lead the Way. Blood vessel remodeling is a key part of common vascular diseases. The research project will improve the ability to predict disease progression and improve public health.Theoretical and computational approaches to analyze vascular remodeling using continuum mechanics have often suffered from a lack of experimental data to provide quantitative descriptions of active biological contributions to remodeling, such as the contribution of activated smooth muscle cells. By providing an innovative, tightly integrated framework incorporating both experimental and mathematical analysis, this shortfall will be addressed in the context of age-related vascular remodeling and its response to endothelial dysfunction. This work is potentially transformative in its ability to identify and characterize a novel mechanism of age-related vascular remodeling independent of hemodynamic changes, and to provide a theoretical and computational framework with the power to predict a wide spectrum of remodeling outcomes, including reorientation of collagen fibers, and their effects on vascular biomechanics. The time course of aortic remodeling will be characterized in terms of changes in vessel geometry, composition, and collagen fiber orientation. Hemodynamic contributions to remodeling will be tracked by measuring blood pressures and volumetric flow rates. Nitric oxide synthase 3 protein expression and nitric oxide production by aortic segments will be used as measures of endothelial function. The researchersa will develop and independently validate a mathematical framework that incorporates a combined passive and active constitutive model of arterial tissue to explain the process by which changes in smooth muscle cell contraction contractile tone drive vascular remodeling in the absence of significant hemodynamic changes.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.
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The Effect of Endothelial Dysfunction on Aortic Mechanics and Extracellular Matrix Microstructure during Age-related Vascular Remodeling
年龄相关血管重塑过程中内皮功能障碍对主动脉力学和细胞外基质微结构的影响
DOI:
--
发表时间:
2021
期刊:
and Biotransport Conference (SB3C
影响因子:
--
作者:
[Rodgers, J, Shazly, T, Eberth, JF, Lessner, SM]
通讯作者:
Lessner, SM
Age-Related Collagen Remodeling Occurs in the Absence of Hypertension in Aortas of NOS3 Heterozygous Mice
NOS3 杂合子小鼠主动脉在不存在高血压的情况下发生与年龄相关的胶原重塑
DOI:
--
发表时间:
2020
期刊:
and Biotransport Conference (SB3C
影响因子:
--
作者:
[Du, Liya, Azar, Dara, Eliadorani, Dorsa, Shazly, Tarek, Lessner, Susan M.]
通讯作者:
Lessner, Susan M.
DOI:
10.1007/s11340-020-00683-5
发表时间:
2021
期刊:
Experimental Mechanics
影响因子:
2.4
作者:
[Wenk, J. F., Lessner, S. M.]
通讯作者:
Lessner, S. M.
Diet alters age-related remodeling of aortic collagen in mice susceptible to atherosclerosis
饮食改变易患动脉粥样硬化的小鼠与年龄相关的主动脉胶原蛋白重塑
DOI:
10.1152/ajpheart.00420.2020
发表时间:
2021
期刊:
American Journal of Physiology-Heart and Circulatory Physiology
影响因子:
4.8
作者:
[Watson, Shana R., Cooper, Kara M., Liu, Piaomu, Gharraee, Nazli, Du, Liya, Han, Savannah M., Peña, Edsel A., Sutton, Michael A., Eberth, John F., Lessner, Susan M.]
通讯作者:
Lessner, Susan M.
Impact of Endothelial Dysfunction on Hemodynamics and Collagen Fiber Orientation During Age-related Vascular Remodeling
年龄相关血管重塑过程中内皮功能障碍对血流动力学和胶原纤维取向的影响
DOI:
--
发表时间:
2020
期刊:
Proceedings of the 2020 SEM Annual Conference & Exposition on Experimental and Applied Mechanics
影响因子:
--
作者:
[Azar, D, Eliadorani, D, Shazly, T, Lessner, SM]
通讯作者:
Lessner, SM
共 10 条
Biomechanics of Arterial Tissue Failure at Multiple Length Scales
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批准号:1200358
-
项目类别:Standard Grant
-
资助金额:$39.89万
-
财政年份:2012
-
负责人:Susan Lessner
-
依托单位:
Novel Experimental and Theoretical Approaches to Understand Biomechanics of Atherosclerotic Plaque Rupture
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批准号:0926301
-
项目类别:Standard Grant
-
资助金额:$32.36万
-
财政年份:2009
-
负责人:Susan Lessner
-
依托单位:
海外基金