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机械生物学在肩袖肌萎缩和退变进展中的作用。

The role of mechanobiology in progression of rotator cuff muscle atrophy and degeneration.

作者信息

Gibbons Michael C, Singh Anshuman, Engler Adam J, Ward Samuel R

机构信息

Department of Bioengineering, University of California San Diego, La Jolla, 92093, California.

Department of Orthopedic Surgery, Kaiser Permanente, San Diego, California.

出版信息

J Orthop Res. 2018 Feb;36(2):546-556. doi: 10.1002/jor.23662. Epub 2017 Aug 11.

Abstract

Rotator cuff (RC) muscles undergo several detrimental changes following mechanical unloading resulting from RC tendon tear. In this review, we highlight the pathological causes and consequences of mechanical alterations at the whole muscle, muscle fiber, and muscle resident cell level as they relate to RC disease progression. In brief, the altered mechanical loads associated with RC tear lead to architectural, structural, and compositional changes at the whole-muscle and muscle fiber level. At the cellular level, these changes equate to direct disruption of mechanobiological signaling, which is exacerbated by mechanically regulated biophysical and biochemical changes to the cellular and extra-cellular environment (also known as the stem cell "niche"). Together, these data have important implications for both pre-clinical models and clinical practice. In pre-clinical models, it is important to recapitulate both the atrophic and degenerative muscle loss found in humans using clinically relevant modes of injury. Clinically, understanding the mechanics and underlying biology of the muscle will impact both surgical decision-making and rehabilitation protocols, as interventions that may be good for atrophic muscle will have a detrimental effect on degenerating muscle, and vice versa. © 2017 Orthopaedic Research Society. Published by Wiley Periodicals, Inc. J Orthop Res 36:546-556, 2018.

摘要

肩袖(RC)肌腱撕裂导致机械卸载后,肩袖(RC)肌肉会发生多种有害变化。在本综述中,我们重点阐述了在全肌、肌纤维和肌肉驻留细胞水平上机械改变的病理原因及后果,这些与肩袖疾病进展相关。简而言之,与肩袖撕裂相关的机械负荷改变会导致全肌和肌纤维水平上的结构、构造和成分变化。在细胞水平上,这些变化等同于机械生物学信号的直接破坏,而细胞和细胞外环境(也称为干细胞“生态位”)的机械调节生物物理和生化变化会加剧这种破坏。总之,这些数据对临床前模型和临床实践都具有重要意义。在临床前模型中,使用临床相关损伤模式来重现人类中发现的萎缩性和退行性肌肉损失很重要。在临床上,了解肌肉的力学和潜在生物学特性将影响手术决策和康复方案,因为对萎缩性肌肉有益的干预措施可能会对退化性肌肉产生有害影响,反之亦然。© 2017骨科研究协会。由威利期刊公司出版。《矫形外科学研究》36:546 - 556,2018年。

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