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13C 2H NMR Studies of Structural and Dynamical Modifications of Glucose-Exposed Porcine Aortic Elastin

机译:葡萄糖暴露的猪主动脉弹性蛋白的结构和动力学修饰的13 C2 H NMR研究

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摘要

Elastin, the principal component of the elastic fiber of the extracellular matrix, imparts to vertebrate tissues remarkable resilience and longevity. This work focuses on elucidating dynamical and structural modifications of porcine aortic elastin exposed to glucose by solid-state NMR spectroscopic and relaxation methodologies. Results from macroscopic stress-strain tests are also presented and indicate that glucose-treated elastin is mechanically stiffer than the same tissue without glucose treatment. These measurements show a large hysteresis in the stress-strain behavior of glucose-treated elastin—a well-known signature of viscoelasticity. Two-dimensional relaxation NMR methods were used to investigate the correlation time, distribution, and population of water in these samples. Differences are observed between the relative populations of water, whereas the measured correlation times of tumbling motion of water across the samples were similar. 13C magic-angle-spinning NMR methods were applied to investigate structural and dynamical modifications after glucose treatment. Although some overall structure is preserved, the process of glucose exposure results in more heterogeneous structures and slower mobility. The correlation times of tumbling motion of the 13C-1H internuclear vectors in the glucose-treated sample are larger than in untreated samples, pointing to their more rigid structure. The 13C cross-polarization spectra reveal a notably increased α-helical character in the alanine motifs after glucose exposure. Results from molecular dynamics simulations are provided that add further insight into dynamical and structural changes of a short repeat, [VPGVG]5, an alanine pentamer, desmosine, and isodesmosine sites with and without glucose. The simulations point to changes in the entropic and energetic contributions in the retractive forces of VPGVG and AAAAA motifs. The most notable change is the increase of the energetic contribution in the retractive force due to peptide-glucose interactions of the VPGVG motif, which may play an important role in the observed stiffening in glucose-treated elastin.
机译:弹性蛋白是细胞外基质弹性纤维的主要成分,赋予脊椎动物组织非凡的弹性和寿命。这项工作致力于通过固态NMR光谱和弛豫方法阐明暴露于葡萄糖的猪主动脉弹性蛋白的动力学和结构修饰。还提供了宏观应力应变测试的结果,表明葡萄糖处理的弹性蛋白比未经葡萄糖处理的相同组织在机械上更坚硬。这些测量结果显示,葡萄糖处理的弹性蛋白的应力应变行为存在较大的滞后现象,这是众所周知的粘弹性特征。二维弛豫NMR方法用于研究这些样品中水的相关时间,分布和种群。在水的相对种群之间观察到差异,而水在样品之间滚动运动的相关时间测量结果相似。采用 13 C魔角旋转核磁共振方法研究了葡萄糖处理后的结构和动力学修饰。尽管保留了一些总体结构,但葡萄糖暴露的过程导致结构更加异质,移动性降低。葡萄糖处理过的样品中 13 C- 1 H核间载体的翻滚运动相关时间大于未处理样品,表明它们的刚性更高。葡萄糖暴露后, 13 C交叉极化光谱显示丙氨酸基序中的α-螺旋特性显着增加。提供了分子动力学模拟的结果,可以进一步了解短重复序列[VPGVG] 5,有或没有葡萄糖的丙氨酸五聚体,desmosine和isodesmosine部位的动力学和结构变化。模拟表明,VPGVG和AAAAA图案的回缩力在熵和能量上的变化。最显着的变化是由于VPGVG基序的肽-葡萄糖相互作用引起的回弹力中能量的增加,这可能在观察到的葡萄糖处理弹性蛋白的硬化中起重要作用。

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