Mechanical considerations for polymeric heart valve development: Biomechanics, materials, design and manufacturing

被引:87
作者
Li, Richard L. [1 ,5 ]
Russ, Jonathan [2 ]
Paschalides, Costas [1 ]
Ferrari, Giovanni [3 ]
Waisman, Haim [2 ]
Kysar, Jeffrey W. [1 ,4 ]
David, Kalfa [5 ]
机构
[1] Columbia Univ, Dept Mech Engn, Fu Fdn Sch Engn & Appl Sci, New York, NY 10027 USA
[2] Columbia Univ, Dept Civil Engn & Engn Mech, Fu Fdn Sch Engn & Appl Sci, New York, NY 10027 USA
[3] Columbia Univ, Med Ctr, Dept Surg & Biomed Engn, New York, NY USA
[4] Columbia Univ, Med Ctr, Dept Otolaryngol Head & Neck Surg, New York, NY USA
[5] Columbia Univ, New York Presbyterian Morgan Stanley Childrens Ho, Sect Pediat & Congenital Cardiac Surg, Div Cardiac Thorac & Vasc Surg,Med Ctr, New York, NY USA
基金
美国国家卫生研究院;
关键词
Native heart valves; Polymeric heart valves; Soft tissue mechanics; Mechanobiology; Mechanical testing; INTERNAL SHEAR PROPERTIES; AORTIC-VALVE; MITRAL-VALVE; VISCOELASTIC PROPERTIES; INTERSTITIAL-CELLS; STRESS-ANALYSIS; IN-VITRO; GLUTARALDEHYDE FIXATION; STRUCTURAL-PROPERTIES; HYDRODYNAMIC FUNCTION;
D O I
10.1016/j.biomaterials.2019.119493
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
The native human heart valve leaflet contains a layered microstructure comprising a hierarchical arrangement of collagen, elastin, proteoglycans and various cell types. Here, we review the various experimental methods that have been employed to probe this intricate microstructure and which attempt to elucidate the mechanisms that govern the leaflet's mechanical properties. These methods include uniaxial, biaxial, and flexural tests, coupled with microstructural characterization techniques such as small angle X-ray scattering (SAXS), small angle light scattering (SALS), and polarized light microscopy. These experiments have revealed complex elastic and viscoelastic mechanisms that are highly directional and dependent upon loading conditions and biochemistry. Of all engineering materials, polymers and polymer-based composites are best able to mimic the tissue-level mechanical behavior of the native leaflet. This similarity to native tissue permits the fabrication of polymeric valves with physiological flow patterns, reducing the risk of thrombosis compared to mechanical valves and in some cases surpassing the in vivo durability of bioprosthetic valves. Earlier work on polymeric valves simply assumed the mechanical properties of the polymer material to be linear elastic, while more recent studies have considered the full hyperelastic stress-strain response. These material models have been incorporated into computational models for the optimization of valve geometry, with the goal of minimizing internal stresses and improving durability. The latter portion of this review recounts these developments in polymeric heart valves, with a focus on mechanical testing of polymers, valve geometry, and manufacturing methods.
引用
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页数:29
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