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Water magnetic relaxation dispersion in biological systems: The contribution of proton exchange and implications for the noninvasive detection of cartilage degradation

机译:水磁弛豫在生物系统中的分散:质子交换的贡献及其对软骨降解的非侵入性检测的意义

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摘要

Magnetic relaxation has been used extensively to study and characterize biological tissues. In particular, spin-lattice relaxation in the rotating frame (T1ρ) of water in protein solutions has been demonstrated to be sensitive to macromolecular weight and composition. However, the nature of the contribution from low frequency processes to water relaxation remains unclear. We have examined this problem by studying the water T1ρ dispersion in peptide solutions (14N- and 15N-labeled), glycosaminoglycan solutions, and samples of bovine articular cartilage before and after proteoglycan degradation. We find in model systems and tissue that hydrogen exchange from NH and OH groups to water dominates the low frequency water T1ρ dispersion, in the context of the model used to interpret the relaxation data. Further, low frequency dispersion changes are correlated with loss of proteoglycan from the extra-cellular matrix of articular cartilage. This finding has significance for the noninvasive detection of matrix degradation.
机译:磁弛豫已被广泛用于研究和表征生物组织。特别地,已经证明蛋白质溶液中水的旋转框架(T1ρ)中的自旋晶格弛豫对大分子分子量和组成敏感。然而,低频过程对水松弛的贡献的性质仍不清楚。我们通过研究肽溶液( 14 N-和 15 N标记),糖胺聚糖溶液以及牛关节软骨样品之前和之后的水T1ρ分散性来研究此问题。蛋白聚糖降解后。在用于解释弛豫数据的模型的背景下,我们在模型系统和组织中发现,从NH和OH基团到水的氢交换主导着低频水T1ρ弥散。此外,低频分散变化与关节软骨细胞外基质中蛋白聚糖的损失有关。这一发现对于无创检测基质降解具有重要意义。

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