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首页> 外文期刊>American Journal of Physiology >Differences in collagen cross-linking between the four valves of the bovine heart: a possible role in adaptation to mechanical fatigue.
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Differences in collagen cross-linking between the four valves of the bovine heart: a possible role in adaptation to mechanical fatigue.

机译:牛牛心脏四个阀之间的胶原交联的差异:适应机械疲劳的可能作用。

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Hydrothermal isometric tension (HIT) testing and high-performance liquid chromatography were used to assess the molecular stability and cross-link population of collagen in the four valves of the adult bovine heart. Untreated and NaBH(4)-treated tissues under isometric tension were heated in a water bath to a 90 degrees C isotherm that was sustained for 5 h. The denaturation temperature (T(d)), associated with hydrogen bond rupture and molecular stability, and the half-time of load decay (t(1/2)), associated with peptide bond hydrolysis and intermolecular cross-linking, were calculated from acquired load/temperature/time data. An unpaired group of samples of the same population was biochemically assayed for the types and quantities of enzymatic cross-links present. Tissues known to endure higher in vivo transvalvular pressures had lower T(d) values, suggesting that molecular stability is inversely related to in vivo loading. The treated inflow valves (mitral and tricuspid) had significantly lower t(1/2) values than did treated outflow valves (aortic and pulmonary), suggesting lower overall cross-linking in the inflow valves. Inflow valves were also found to fail during HIT testing significantly more often than outflow valves, also suggestive of a decreased cross-link population. Inflow valves may be remodeling at a faster rate and may be at an earlier state of molecular "maturity
机译:水热等距张力(击中)测试和高效液相色谱法用于评估成人牛心脏四个阀中胶原蛋白的分子稳定性和交联群。在等距张力下未经处理的和NaBH(4)的组织在水浴中加热至90摄氏度,其持续5小时。与氢键破裂和分子稳定性相关的变性温度(T(D)),以及与肽键水解和分子间交联相关的负载衰减(T(1/2))的半级衰减(T(1/2))获取的负载/温度/时间数据。对于存在的酶联交联的类型和数量,对相同群体的不配对样品进行生物化学测定。已知在体内经细胞压力下持续的组织具有较低的T(d)值,表明分子稳定性与体内负载相反。经过处理的流入阀(二尖瓣和三尖瓣)显着降低T(1/2)值,而不是经过处理的流出阀(主动脉和肺部),表明在流入阀中较低总交联。还发现流入阀门在击中测试期间比流出阀更频繁地失败,还提出了减少的交叉链路群体。流入阀可以以更快的速率进行重塑,并且可以处于早期的分子“成熟状态

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