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The multiscale structural and mechanical effects of mouse supraspinatus muscle unloading on the mature enthesis

机译:MultiScale Supraspinatus肌肉卸载成熟休息的结构和机械效应

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The musculoskeletal system is sensitive to its loading environment; this is of particular concern under conditions such as disuse, paralysis, and extended-duration space flight. Although structural and mechanical changes to tendon and bone following paralysis and disuse are well understood, there is a pressing need to understand how this unloading affects the bone-tendon interface (enthesis); the location most prone to tears and injury. We therefore elucidated these effects of unloading in the entheses of adult mice shoulders that were paralyzed for 21 days by treatment with botulinum toxin A. Unloading significantly increased the extent of mechanical failure and was associated with structural changes across hierarchical scales. At the millimeter scale, unloading caused bone loss. At the micrometer scale, unloading decreased bioapatite crystal size and crystallographic alignment in the enthesis. At the nanometer scale, unloading induced compositional changes that stiffened the bioapatite/collagen composite tissue. Mathematical modeling and mechanical testing indicated that these factors combined to increase local elevations of stress while decreasing the ability of the tissue to absorb energy prior to failure, thereby increasing injury risk. These first observations of the multiscale effects of unloading on the adult enthesis provide new insight into the hierarchical features of structure and composition that endow the enthesis with increased resistance to failure. (C) 2018 Acta Materialia Inc. Published by Elsevier Ltd. All rights reserved.
机译:肌肉骨骼系统对其装载环境敏感;这在诸如废弃,瘫痪和延长持续时间空间等条件下特别关注。虽然对瘫痪和骨折的结构和机械变化很好地理解,但是有必要了解该卸载如何影响骨骼衔接界面(禁止);最容易发生泪水和伤害的位置。因此,我们阐明了通过用肉毒杆菌毒素A治疗瘫痪21天的成人小鼠肩部诱饵中卸载的这些影响。卸载显着增加了机械故障的程度,并且与等级尺度的结构变化有关。在毫米刻度下,卸载导致骨质损失。在微米刻度下,卸下诱饵中的生物肽晶体尺寸和晶体对准。在纳米级,卸载诱导的组成变化,使生物磷灰石/胶原复合组织加强。数学建模和机械测试表明这些因素组合以增加应力的局部升高,同时降低组织在发生故障之前吸收能量的能力,从而增加伤害风险。这些首次观察卸载在成人诊断上的多尺度效果提供了进入结构和组合物的等级特征的新洞察,这些特征是赋予禁止的抗衰力抗性增加。 (c)2018 Acta Materialia Inc.出版的Althervier Ltd.保留所有权利。

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