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束间基质可使肌腱中的纤维束滑动并恢复原状,且在储能肌腱中表现出更大的弹性。

The interfascicular matrix enables fascicle sliding and recovery in tendon, and behaves more elastically in energy storing tendons.

作者信息

Thorpe Chavaunne T, Godinho Marta S C, Riley Graham P, Birch Helen L, Clegg Peter D, Screen Hazel R C

机构信息

Institute of Bioengineering, School of Engineering and Materials Science, Queen Mary University of London, Mile End Road, London E1 4NS UK.

Institute of Bioengineering, School of Engineering and Materials Science, Queen Mary University of London, Mile End Road, London E1 4NS UK.

出版信息

J Mech Behav Biomed Mater. 2015 Dec;52:85-94. doi: 10.1016/j.jmbbm.2015.04.009. Epub 2015 Apr 16.

Abstract

While the predominant function of all tendons is to transfer force from muscle to bone and position the limbs, some tendons additionally function as energy stores, reducing the cost of locomotion. Energy storing tendons experience extremely high strains and need to be able to recoil efficiently for maximum energy storage and return. In the equine forelimb, the energy storing superficial digital flexor tendon (SDFT) has much higher failure strains than the positional common digital extensor tendon (CDET). However, we have previously shown that this is not due to differences in the properties of the SDFT and CDET fascicles (the largest tendon subunits). Instead, there is a greater capacity for interfascicular sliding in the SDFT which facilitates the greater extensions in this particular tendon (Thorpe et al., 2012). In the current study, we exposed fascicles and interfascicular matrix (IFM) from the SDFT and CDET to cyclic loading followed by a test to failure. The results show that IFM mechanical behaviour is not a result of irreversible deformation, but the IFM is able to withstand cyclic loading, and is more elastic in the SDFT than in the CDET. We also assessed the effect of ageing on IFM properties, demonstrating that the IFM is less able to resist repetitive loading as it ages, becoming stiffer with increasing age in the SDFT. These results provide further indications that the IFM is important for efficient function in energy storing tendons, and age-related alterations to the IFM may compromise function and predispose older tendons to injury.

摘要

虽然所有肌腱的主要功能是将力量从肌肉传递到骨骼并定位肢体,但一些肌腱还具有能量储存功能,可降低运动成本。能量储存肌腱会经历极高的应变,并且需要能够高效回弹以实现最大程度的能量储存和恢复。在马的前肢中,能量储存的指浅屈肌腱(SDFT)的破坏应变远高于起定位作用的指总伸肌腱(CDET)。然而,我们之前已经表明,这并不是由于SDFT和CDET束(最大的肌腱亚单位)的特性差异所致。相反,SDFT中束间滑动的能力更强,这有助于该特定肌腱实现更大程度的伸展(Thorpe等人,2012年)。在本研究中,我们将SDFT和CDET的束和束间基质(IFM)暴露于循环加载下,随后进行破坏试验。结果表明,IFM的力学行为并非不可逆变形的结果,而是IFM能够承受循环加载,并且在SDFT中比在CDET中更具弹性。我们还评估了老化对IFM特性的影响,结果表明,随着年龄的增长,IFM抵抗重复加载的能力下降,在SDFT中随着年龄的增加而变得更硬。这些结果进一步表明,IFM对于能量储存肌腱的高效功能很重要,并且与年龄相关的IFM改变可能会损害功能,并使老年肌腱更容易受伤。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d7a5/4655227/975d64d2ecda/gr1.jpg

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