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Neomycin and pentagalloyl glucose enhanced cross-linking for elastin and glycosaminoglycans preservation in bioprosthetic heart valves

机译:新霉素和戊糖基葡萄糖增强了生物假体心脏瓣膜中弹性蛋白和糖胺聚糖保存的交联

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摘要

Glutaraldehyde cross-linked bioprosthetic heart valves fail within 12–15 years of implantation due to limited durability. Glutaraldehyde does not adequately stabilize extracellular matrix components such as glycosaminoglycans and elastin, and loss of these components could be a major cause of degeneration of valve after implantation. We have shown earlier that neomycin-based cross-linking stabilizes glycosaminoglycans in the tissue but fails to stabilize elastin component. Here, we report a new treatment where neomycin and pentagalloyl glucose (PGG) were incorporated into glutaraldehyde cross-linking neomycin-PGG-Glutaraldehyde (NPG) to stabilize both glycosaminoglycans and elastin in porcine aortic valves. In vitro studies demonstrated a marked increase in extracellular matrix stability against enzymatic degradation after cross-linking and 10 month storage in NPG group when compared to glutaraldehyde controls. Tensile properties showed increased lower elastic modulus in both radial and circumferential directions in NPG group as compared to glutaraldehyde, probably due to increased elastin stabilization with no changes in upper elastic modulus and extensibility. The enhanced extracellular matrix stability was further maintained in NPG-treated tissues after rat subdermal implantation for three weeks. NPG group also showed reduced calcification when compared to glutaraldehyde controls. We conclude that NPG cross-linking would be an excellent alternative to glutaraldehyde cross-linking of bioprosthetic heart valves to improve its durability.
机译:戊二醛交联的生物人工心脏瓣膜由于有限的耐用性,在植入后的12-15年内会失效。戊二醛不能充分稳定细胞外基质成分,例如糖胺聚糖和弹性蛋白,这些成分的损失可能是植入后瓣膜变性的主要原因。早先我们已经表明基于新霉素的交联稳定了组织中的糖胺聚糖,但未能稳定弹性蛋白成分。在这里,我们报告了一种新的治疗方法,其中新霉素和戊二酰葡萄糖(PGG)被掺入戊二醛交联的新霉素-PGG-戊二醛(NPG)中,以稳定猪主动脉瓣中的糖胺聚糖和弹性蛋白。体外研究表明,与戊二醛对照组相比,NPG组中交联后的细胞外基质稳定性对酶促降解的稳定性显着提高,并且可以保存10个月。与戊二醛相比,NPG组的拉伸性能显示其在径向和圆周方向上的较低弹性模量均增加,这可能是由于弹性蛋白稳定性提高而上弹性模量和可扩展性不变。大鼠皮下植入三周后,在NPG处理的组织中进一步保持增强的细胞外基质稳定性。与戊二醛对照组相比,NPG组的钙化也降低。我们得出的结论是,NPG交联将是生物假体心脏瓣膜戊二醛交联的绝佳替代品,以提高其耐用性。

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