首页> 外文期刊>Journal of biomedical materials research. Part B, Applied biomaterials. >Mechanisms of bioprosthetic heart valve failure: fatigue causes collagen denaturation and glycosaminoglycan loss.
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Mechanisms of bioprosthetic heart valve failure: fatigue causes collagen denaturation and glycosaminoglycan loss.

机译:生物人工心脏瓣膜衰竭的机制:疲劳会导致胶原蛋白变性和糖胺聚糖损失。

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摘要

Bioprosthetic heart valve (BPHV) degeneration, characterized by extracellular matrix deterioration, remodeling, and calcification, is an important clinical problem accounting for thousands of surgeries annually. Here we report for the first time, in a series of in vitro accelerated fatigue studies (5-500 million cycles) with glutaraldehyde fixed porcine aortic valve bioprostheses, that the mechanical function of cardiac valve cusps caused progressive damage to the molecular structure of type I collagen as assessed by Fourier transform IR spectroscopy (FTIR). The cyclic fatigue caused a progressive loss of helicity of the bioprosthetic cuspal collagen, which was evident from FTIR spectral changes in the amide I carbonyl stretching region. Furthermore, cardiac valve fatigue in these studies also led to loss of glycosaminoglycans (GAGs) from the cuspal extracellular matrix. The GAG levels in glutaraldehyde crosslinked porcine aortic valve cusps were 65.2 +/- 8.66 microg uronic acid/10 mg of dry weight for control and 7.91 +/- 1.1 microg uronic acid/10 mg of dry weight for 10-300 million cycled cusps. Together, these molecular changes contribute to a significant gradual decrease in cuspal bending strength as documented in a biomechanical bending assay measuring three point deformation. We conclude that fatigue-induced damage to type I collagen and loss of GAGs are major contributing factors to material degeneration in bioprosthetic cardiac valve deterioration.
机译:生物假体心脏瓣膜(BPHV)变性以细胞外基质变质,重塑和钙化为特征,是一个重要的临床问题,每年要解决数千例外科手术。在这里,我们首次用戊二醛固定的猪主动脉瓣生物假体进行一系列体外加速疲劳研究(5-5亿个循环),表明心脏瓣膜尖的机械功能逐渐破坏了I型分子结构通过傅立叶变换红外光谱(FTIR)评估的胶原蛋白。周期性疲劳导致生物修复pro骨胶原的螺旋性逐渐丧失,这从酰胺I羰基拉伸区的FTIR光谱变化可以明显看出。此外,在这些研究中,心脏瓣膜疲劳还导致from骨细胞外基质中的糖胺聚糖(GAG)丢失。对于对照,戊二醛交联的猪主动脉瓣尖中的GAG水平为65.2 +/- 8.66微克糖醛酸/ 10mg干重,对于10-300百万个循环的尖端,为7.91 +/-1.1μg糖醛酸/ 10mg干重。在一起,这些分子的变化有助于逐渐降低的decrease骨弯曲强度,如在测量三点变形的生物力学弯曲试验中记录的那样。我们得出的结论是,疲劳引起的I型胶原损伤和GAG丢失是生物人工心脏瓣膜退化中材料变性的主要促成因素。

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