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主动脉瓣疾病与治疗:对天然工程解决方案的需求。

Aortic valve disease and treatment: the need for naturally engineered solutions.

机构信息

Department of Biomedical Engineering, Cornell University, Ithaca, NY 14853, USA.

出版信息

Adv Drug Deliv Rev. 2011 Apr 30;63(4-5):242-68. doi: 10.1016/j.addr.2011.01.008. Epub 2011 Jan 31.

Abstract

The aortic valve regulates unidirectional flow of oxygenated blood to the myocardium and arterial system. The natural anatomical geometry and microstructural complexity ensures biomechanically and hemodynamically efficient function. The compliant cusps are populated with unique cell phenotypes that continually remodel tissue for long-term durability within an extremely demanding mechanical environment. Alteration from normal valve homeostasis arises from genetic and microenvironmental (mechanical) sources, which lead to congenital and/or premature structural degeneration. Aortic valve stenosis pathobiology shares some features of atherosclerosis, but its final calcification endpoint is distinct. Despite its broad and significant clinical significance, very little is known about the mechanisms of normal valve mechanobiology and mechanisms of disease. This is reflected in the paucity of predictive diagnostic tools, early stage interventional strategies, and stagnation in regenerative medicine innovation. Tissue engineering has unique potential for aortic valve disease therapy, but overcoming current design pitfalls will require even more multidisciplinary effort. This review summarizes the latest advancements in aortic valve research and highlights important future directions.

摘要

主动脉瓣调节含氧血液向心肌和动脉系统的单向流动。其天然解剖几何形状和微观结构的复杂性确保了生物力学和血流动力学的高效功能。顺应性的瓣叶充满了独特的细胞表型,这些细胞表型不断重塑组织,以在极其苛刻的机械环境中保持长期的耐久性。从正常瓣膜动态平衡的改变源于遗传和微环境(机械)的来源,这导致了先天性和/或过早的结构退化。主动脉瓣狭窄的病理生物学与动脉粥样硬化有一些共同的特征,但它的最终钙化终点是不同的。尽管其具有广泛而重要的临床意义,但对于正常瓣膜生物力学机制和疾病机制的了解却很少。这反映在缺乏预测性诊断工具、早期介入策略以及再生医学创新的停滞上。组织工程具有治疗主动脉瓣疾病的独特潜力,但要克服当前的设计缺陷,还需要更多的多学科努力。这篇综述总结了主动脉瓣研究的最新进展,并强调了重要的未来方向。

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