Department of Biomedical Engineering, University of Connecticut, Farmington, CT, USA.
Department of Orthopaedic Surgery, Washington University, St. Louis, MO, USA.
Acta Biomater. 2019 Jan 1;83:302-313. doi: 10.1016/j.actbio.2018.10.024. Epub 2018 Oct 17.
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. STATEMENT OF SIGNIFICANCE: 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 changes to tendon and bone following paralysis are understood, there is a pressing need to clarify how unloading affects the bone-tendon interface (enthesis), which is the location most prone to tears and injury. We elucidated the effects of enthesis unloading in adult mice shoulders showing, for the first time, that unloading significantly increased the risk and extent of mechanical failure and was associated with structural changes across hierarchical scales. These observations provide new insight into the hierarchical features of structure and composition that endow the enthesis with resilience. This knowledge can be used to develop more targeted treatments to improve mobility and function.
骨骼肌肉系统对外界的加载环境很敏感,尤其是在长期不活动、瘫痪和长时间太空飞行等情况下。尽管已经了解了瘫痪后肌腱和骨骼的结构和力学变化,但目前迫切需要了解卸载对骨骼-肌腱交界处(骨-腱结合部)的影响,因为此处是最容易发生撕裂和损伤的部位。因此,我们研究了在成年小鼠肩部由于接受肉毒杆菌毒素 A 治疗而瘫痪 21 天后,骨-腱结合部的这种卸载效应。结果发现,卸载显著增加了机械故障的程度,并与各层次的结构变化有关。在毫米尺度上,卸载导致骨量丢失。在微米尺度上,卸载降低了骨-腱结合部生物磷灰石晶体的大小和结晶取向。在纳米尺度上,卸载导致生物磷灰石/胶原复合组织的成分发生变化,使其变得更硬。数学建模和力学测试表明,这些因素共同导致了局部应力的升高,同时降低了组织在失效前吸收能量的能力,从而增加了受伤的风险。这些关于卸载对成年骨-腱结合部多尺度影响的首次观察结果,为我们提供了新的认识,即了解了赋予骨-腱结合部更高抗断裂能力的结构和组成的层次特征。
骨骼肌肉系统对外界的加载环境很敏感,尤其是在长期不活动、瘫痪和长时间太空飞行等情况下。尽管已经了解了瘫痪后肌腱和骨骼的结构和力学变化,但目前迫切需要澄清卸载对骨骼-肌腱交界处(骨-腱结合部)的影响,因为此处是最容易发生撕裂和损伤的部位。我们阐明了成年小鼠肩部骨-腱结合部卸载的影响,首次表明卸载显著增加了机械故障的风险和程度,并与各层次的结构变化有关。这些观察结果为赋予骨-腱结合部弹性的结构和组成的层次特征提供了新的认识。这些知识可以用于开发更有针对性的治疗方法,以提高运动能力和功能。