Department of Orthopaedics, University Hospital Balgrist, Lengghalde 5, CH-8008 Zurich, Switzerland; Institute for Biomechanics, ETH Zurich, Lengghalde 5, CH-8008 Zurich, Switzerland.
Department of Biomedical Engineering, Eindhoven University of Technology, Eindhoven, The Netherlands; Institute for Complex Molecular Systems, Eindhoven University of Technology, Eindhoven, Netherlands.
Acta Biomater. 2017 Nov;63:18-36. doi: 10.1016/j.actbio.2017.08.032. Epub 2017 Sep 1.
Tendon is an intricately organized connective tissue that efficiently transfers muscle force to the bony skeleton. Its structure, function, and physiology reflect the extreme, repetitive mechanical stresses that tendon tissues bear. These mechanical demands also lie beneath high clinical rates of tendon disorders, and present daunting challenges for clinical treatment of these ailments. This article aims to provide perspective on the most urgent frontiers of tendon research and therapeutic development. We start by broadly introducing essential elements of current understanding about tendon structure, function, physiology, damage, and repair. We then introduce and describe a novel paradigm explaining tendon disease progression from initial accumulation of damage in the tendon core to eventual vascular recruitment from the surrounding synovial tissues. We conclude with a perspective on the important role that biomaterials will play in translating research discoveries to the patient.
Tendon and ligament problems represent the most frequent musculoskeletal complaints for which patients seek medical attention. Current therapeutic options for addressing tendon disorders are often ineffective, and the need for improved understanding of tendon physiology is urgent. This perspective article summarizes essential elements of our current knowledge on tendon structure, function, physiology, damage, and repair. It also describes a novel framework to understand tendon physiology and pathophysiology that may be useful in pushing the field forward.
肌腱是一种错综复杂的结缔组织,能够有效地将肌肉力量传递到骨骼骨架上。它的结构、功能和生理学反映了肌腱组织承受的极端、重复的机械应力。这些机械需求也是肌腱疾病高临床发病率的根源,并对这些疾病的临床治疗提出了严峻的挑战。本文旨在提供关于肌腱研究和治疗发展最紧迫前沿的观点。我们首先广泛介绍了当前关于肌腱结构、功能、生理学、损伤和修复的基本理解。然后,我们介绍并描述了一个新的范例,该范例解释了从肌腱核心最初的损伤积累到最终从周围滑膜组织招募血管的肌腱疾病进展。最后,我们对生物材料在将研究发现转化为患者治疗方面的重要作用进行了展望。
肌腱和韧带问题是患者寻求医疗关注的最常见的肌肉骨骼疾病。目前治疗肌腱疾病的方法往往效果不佳,迫切需要更好地了解肌腱生理学。本文综述了我们目前对肌腱结构、功能、生理学、损伤和修复的基本认识。它还描述了一个新的框架来理解肌腱的生理学和病理生理学,这可能有助于推动该领域的发展。