非酶糖基化胶原交联增加兔跟腱基质刚度。

G Kesava Reddy
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引用次数: 216

摘要

结缔组织基质蛋白的非酶糖基化是糖尿病和衰老病理的主要因素。此前,作者及其同事已经证明,非酶糖基化可显著增强跟腱基质的稳定性(Reddy et al., 2002, Arch。物化学。Biophys。, 399, 174-180)。本研究旨在进一步了解糖基化诱导的胶原交联及其与兔跟腱基质刚度的关系。通过在含有核糖的磷酸盐缓冲盐水中培养跟腱(n = 6)来启动糖基化过程,而对照肌腱(n = 6)在没有核糖的磷酸盐缓冲盐水中孵育。糖基化8周后,测定生物力学属性以及胶原交联程度,以检查基质刚度和胶原分子特性之间的潜在关联。与未糖化肌腱相比,糖化肌腱的最大载荷、应力、应变、杨氏弹性模量和韧性均有所增加,表明糖化增加了肌腱的基质刚度。肌腱糖基化导致可溶性胶原含量显著降低,不溶性胶原和戊苷含量显著增加。对基质刚度和胶原交联程度之间潜在关联的分析表明,不溶性胶原和戊苷与最大载荷、应力和应变、杨氏弹性模量和韧性(r值范围从。61到94)在跟腱中。然而,在中性盐缓冲液、醋酸缓冲液和含有胃蛋白酶的醋酸缓冲液中存在的可溶性胶原含量与所测试的各种生物力学属性呈反比关系(r值从。22到84)在跟腱。研究结果表明,糖基化诱导的胶原交联与肌腱的基质刚度和其他力学属性的增加直接相关。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Cross-linking in collagen by nonenzymatic glycation increases the matrix stiffness in rabbit achilles tendon.

Nonenzymatic glycation of connective tissue matrix proteins is a major contributor to the pathology of diabetes and aging. Previously the author and colleagues have shown that nonenzymatic glycation significantly enhances the matrix stability in the Achilles tendon (Reddy et al., 2002, Arch. Biochem. Biophys., 399, 174-180). The present study was designed to gain further insight into glycation-induced collagen cross-linking and its relationship to matrix stiffness in the rabbit Achilles tendon. The glycation process was initiated by incubating the Achilles tendons (n = 6) in phosphate-buffered saline containing ribose, whereas control tendons (n = 6) were incubated in phosphate-buffered saline without ribose. Eight weeks following glycation, the biomechanical attributes as well as the degree of collagen cross-linking were determined to examine the potential associations between matrix stiffness and molecular properties of collagen. Compared to nonglycated tendons, the glycated tendons showed increased maximum load, stress, strain, Young's modulus of elasticity, and toughness indicating that glycation increases the matrix stiffness in the tendons. Glycation of tendons resulted in a considerable decrease in soluble collagen content and a significant increase in insoluble collagen and pentosidine. Analysis of potential associations between the matrix stiffness and degree of collagen cross-linking showed that both insoluble collagen and pentosidine exhibited a significant positive correlation with the maximum load, stress, and strain, Young's modulus of elasticity, and toughness (r values ranging from.61 to.94) in the Achilles tendons. However, the soluble collagen content present in neutral salt buffer, acetate buffer, and acetate buffer containing pepsin showed an inverse relation with the various biomechanical attributes tested (r values ranging from.22 to.84) in the Achilles tendons. The results of the study demonstrate that glycation-induced collagen cross-linking is directly associated with the increased matrix stiffness and other mechanical attributes of the tendon.

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