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肌腱生物力学和机械生物学——基础概念和最新进展的简述。

Tendon biomechanics and mechanobiology--a minireview of basic concepts and recent advancements.

机构信息

MechanoBiology Laboratory, Department of Orthopaedic Surgery, University of Pittsburgh, Pittsburgh, Pennsylvania 15213, USA.

出版信息

J Hand Ther. 2012 Apr-Jun;25(2):133-40; quiz 141. doi: 10.1016/j.jht.2011.07.004. Epub 2011 Sep 17.

Abstract

Due to their unique hierarchical structure and composition, tendons possess characteristic biomechanical properties, including high mechanical strength and viscoelasticity, which enable them to carry and transmit mechanical loads (muscular forces) effectively. Tendons are also mechanoresponsive by adaptively changing their structure and function in response to altered mechanical loading conditions. In general, mechanical loading at physiological levels is beneficial to tendons, but excessive loading or disuse of tendons is detrimental. This mechanoadaptability is due to the cells present in tendons. Tendon fibroblasts (tenocytes) are the dominant tendon cells responsible for tendon homeostasis and repair. Tendon stem cells (TSCs), which were recently discovered, also play a vital role in tendon maintenance and repair by virtue of their ability to self-renew and differentiate into tenocytes. TSCs may also be responsible for chronic tendon injury, or tendinopathy, by undergoing aberrant differentiation into nontenocytes in response to excessive mechanical loading. Thus, it is necessary to devise optimal rehabilitation protocols to enhance tendon healing while reducing scar tissue formation and tendon adhesions. Moreover, along with scaffolds that can mimic tendon matrix environments and platelet-rich plasma, which serves as a source of growth factors, TSCs may be the optimal cell type for enhancing repair of injured tendons.

摘要

由于其独特的层次结构和组成,肌腱具有特征性的生物力学特性,包括高强度和粘弹性,这使它们能够有效地承载和传递机械负荷(肌肉力量)。肌腱还具有机械响应性,可通过适应机械加载条件的变化来改变其结构和功能。一般来说,生理水平的机械加载对肌腱有益,但过度的加载或肌腱的废用对肌腱有害。这种机械适应性归因于肌腱中的细胞。肌腱成纤维细胞(tenocytes)是主要的肌腱细胞,负责肌腱的稳态和修复。最近发现的肌腱干细胞(TSCs)也通过自我更新和分化为 tenocytes 的能力,在肌腱的维持和修复中发挥着至关重要的作用。TSCs 也可能通过对过度机械加载的异常分化为非 tenocytes 而导致慢性肌腱损伤,即肌腱病。因此,有必要制定最佳的康复方案,以促进肌腱愈合,同时减少疤痕组织形成和肌腱粘连。此外,随着能够模拟肌腱基质环境的支架和富含血小板的血浆(作为生长因子的来源)的出现,TSCs 可能是增强受损肌腱修复的最佳细胞类型。

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