Thorpe Chavaunne T, Riley Graham P, Birch Helen L, Clegg Peter D, Screen Hazel R C
Institute of Bioengineering, School of Engineering and Materials Science, Queen Mary University of London, Mile End Road, London E1 4NS, UK.
School of Biological Sciences, University of East Anglia, Norwich Research Park, Norwich NR4 7TJ, UK.
Acta Biomater. 2017 Jul 1;56:58-64. doi: 10.1016/j.actbio.2017.03.024. Epub 2017 Mar 16.
Tendon is composed of rope-like fascicles bound together by interfascicular matrix (IFM). The IFM is critical for the function of energy storing tendons, facilitating sliding between fascicles to allow these tendons to cyclically stretch and recoil. This capacity is required to a lesser degree in positional tendons. We have previously demonstrated that both fascicles and IFM in energy storing tendons have superior fatigue resistance compared with positional tendons, but the effect of ageing on the fatigue properties of these different tendon subunits has not been determined. Energy storing tendons become more injury-prone with ageing, indicating reduced fatigue resistance, hence we tested the hypothesis that the decline in fatigue life with ageing in energy storing tendons would be more pronounced in the IFM than in fascicles. We further hypothesised that tendon subunit fatigue resistance would not alter with ageing in positional tendons. Fascicles and IFM from young and old energy storing and positional tendons were subjected to cyclic fatigue testing until failure, and mechanical properties were calculated. The results show that both IFM and fascicles from the SDFT exhibit a similar magnitude of reduced fatigue life with ageing. By contrast, the fatigue life of positional tendon subunits was unaffected by ageing. The age-related decline in fatigue life of tendon subunits in energy storing tendons is likely to contribute to the increased risk of injury in aged tendons. Full understanding of the mechanisms resulting in this reduced fatigue life will aid in the development of treatments and interventions to prevent age-related tendinopathy.
Understanding the effect of ageing on tendon-structure function relationships is crucial for the development of effective preventative measures and treatments for age-related tendon injury. In this study, we demonstrate for the first time that the fatigue resistance of the interfascicular matrix decreases with ageing in energy storing tendons. This is likely to contribute to the increased risk of injury in aged tendons. Full understanding of the mechanisms that result in this reduced fatigue resistance will aid in the development of treatments and interventions to prevent age-related tendinopathy.
肌腱由绳状的束状结构组成,这些束状结构由束间基质(IFM)捆绑在一起。IFM对于储能肌腱的功能至关重要,它促进束状结构之间的滑动,使这些肌腱能够周期性地伸展和回缩。这种能力在定位肌腱中所需程度较低。我们之前已经证明,与定位肌腱相比,储能肌腱中的束状结构和IFM都具有更强的抗疲劳能力,但衰老对这些不同肌腱亚单位疲劳特性的影响尚未确定。随着年龄增长,储能肌腱更容易受伤,这表明其抗疲劳能力下降,因此我们测试了这样一个假设:在储能肌腱中,随着年龄增长疲劳寿命的下降在IFM中比在束状结构中更明显。我们进一步假设,定位肌腱的亚单位抗疲劳能力不会随年龄增长而改变。对年轻和年老的储能肌腱及定位肌腱的束状结构和IFM进行循环疲劳测试直至失效,并计算力学性能。结果表明,来自浅层趾深屈肌腱(SDFT)的IFM和束状结构随着年龄增长疲劳寿命下降幅度相似。相比之下,定位肌腱亚单位的疲劳寿命不受年龄影响。储能肌腱亚单位与年龄相关的疲劳寿命下降可能导致老年肌腱受伤风险增加。全面了解导致这种疲劳寿命降低的机制将有助于开发预防与年龄相关肌腱病的治疗方法和干预措施。
了解衰老对肌腱结构-功能关系的影响对于开发针对与年龄相关肌腱损伤的有效预防措施和治疗方法至关重要。在本研究中,我们首次证明,储能肌腱中束间基质的抗疲劳能力随年龄增长而下降。这可能导致老年肌腱受伤风险增加。全面了解导致这种抗疲劳能力降低的机制将有助于开发预防与年龄相关肌腱病的治疗方法和干预措施。