New polyurethane heart valve prosthesis: Design, manufacture and evaluation

被引:90
作者
Mackay, TG
Wheatley, DJ
Bernacca, GM
Fisher, AC
Hindle, CS
机构
[1] UNIV STRATHCLYDE, BIOENGN UNIT, GLASGOW, LANARK, SCOTLAND
[2] NAPIER UNIV, DEPT APPL CHEM & PHYS SCI, EDINBURGH EH14 1DJ, MIDLOTHIAN, SCOTLAND
关键词
heart valves; prostheses; tri-leaflet; polyurethane;
D O I
10.1016/0142-9612(95)00242-1
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
In light of the thrombogenicity of mechanical valves and the limited durability of bioprosthetic valves, alternative designs and materials are being considered for prosthetic heart valves. A new tri-leaflet valve, made entirely from polyurethane, has been developed. The valve comprises three thin polyurethane leaflets (approximately 100 mu m thick) suspended from the inside of a flexible polyurethane frame. The closed leaflet geometry is elliptical in the radial direction and hyperbolic in the circumferential direction. Valve leaflets are formed and integrated with their support frame in a si ng le dip coating operation. The dipping process consistently gives rise to tolerably uniform leaflet thickness distributions. in hydrodynamic tests, the polyurethane valve exhibits pressure gradients similar to those for a bioprosthetic valve (St Jude Bioimplant), and levels of regurgitation and leakage are considerably less than those for either a bi-leaflet mechanical valve (St Jude Medical) or the bioprosthetic valve. Six out of six consecutively manufactured polyurethane valves have exceeded the equivalent of 10 years function without failure in accelerated fatigue tests. The only failure to date occurred after the equivalent of approximately 12 years cycling, and three valves have reached 527 million cycles (approximately 13 years equivalent). The simplicity of valve manufacture, combined with promising results from in vitro testing, indicate that further evaluation is warranted. (C) 1996 Elsevier Science Limited
引用
收藏
页码:1857 / 1863
页数:7
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