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Disuse Impairs the Mechanical Competence of Bone by Regulating the Characterizations of Mineralized Collagen Fibrils in Cortical Bone

机译:通过调节皮质骨矿化胶原蛋白原纤维的特性废弃会损害骨骼的机械能力

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摘要

Bones are made of complex material comprising organic components and mineral hydroxyapatite, both of which formulate the unique hierarchical structure of bone and its mechanical properties. Bones are capable of optimizing their structure and mechanical properties according to the mechanical environment. Mineral loss is a well-known consequence of skeleton disuse. By contrast, the response of the non-mineral phase of bone, i.e., the collagen network, during disuse remain largely unknown. In this study, a tail-suspension mice model was used to induce bone loss. Atomic force microscopy-based imaging and indentation approaches were adopted to investigate the influence of disuse on the morphology and in situ mechanical behavior of the collagen fibrils, under both non-loaded and load-bearing conditions, in the cortical tibia of mice. The results indicate that disuse induced by hindlimb unloading did not alter the orientation and D-periodic spacing of the collagen fibril, but results in decreased collagen crosslinking which correlates with decreased elasticity and increased susceptibility to mechanical damage. More concretely, the collagen fibrils in the disused tibia were misaligned under mechanical loading. It therefore indicates that the disordered arrangement of the mineralized collagen fibrils is one of the characteristics of the weakened bone during elastic deformation. These findings reveals the unique adaptation regimes of the collagen fibrils in the cortical bone to disuse, as well as the deformation mechanisms of bone in the relevant pathological process at different scales.
机译:骨头由包含有机成分和矿物羟基磷灰石的复杂材料制成,两者均形成了骨骼的独特层次结构及其机械性能。骨骼能够根据机械环境优化其结构和机械性能。矿物质流失是骨骼废弃的众所周知的后果。相比之下,在使用过程中,骨骼的非矿物质相(即胶原网络)的响应仍是未知的。在这项研究中,使用尾巴悬吊小鼠模型诱导骨质流失。采用基于原子力显微镜的成像和压痕方法,研究了在无负荷和负重条件下,废料对小鼠皮质胫骨中胶原原纤维的形态和原位力学行为的影响。结果表明,由后肢卸载引起的废用并没有改变胶原原纤维的取向和D-周期间隔,但导致胶原交联减少,这与弹性降低和对机械损伤的敏感性增加相关。更具体地,废弃的胫骨中的胶原原纤维在机械载荷下未对准。因此,表明矿化的胶原蛋白原纤维的无序排列是在弹性变形期间骨骼变弱的特征之一。这些发现揭示了皮质骨中胶原纤维原本要废弃的独特适应机制,以及骨骼在不同病理过程中的变形机制。

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