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预测低负荷水平和细胞浸润对跟腱时空愈合的影响。

Predicting the effect of reduced load level and cell infiltration on spatio-temporal Achilles tendon healing.

机构信息

Department of Biomedical Engineering, Lund University, BMC D13, 22184 Lund, Sweden.

Department of Biomedical Engineering, Lund University, BMC D13, 22184 Lund, Sweden.

出版信息

J Biomech. 2022 Jun;139:110853. doi: 10.1016/j.jbiomech.2021.110853. Epub 2021 Nov 11.

Abstract

Mechanobiology plays an important role in tendon healing. However, the relationship between mechanical loading and spatial and temporal evolution of tendon properties during healing is not well understood. This study builds on a recently presented mechanoregulatory computational framework that couples mechanobiological tendon healing to tissue production and collagen orientation. In this study, we investigated how different magnitudes of mechanical stimulation (principal strain) affect the spatio-temporal evolution of tissue production and the temporal evolution of elastic and viscoelastic mechanical parameters. Specifically, we examined the effect of cell infiltration (mimicking migration and proliferation) in the callus on the resulting tissue production by modeling production to depend on local cell density. The model predictions were carefully compared with experimental data from Achilles tendons in rats, at 1, 2 and 4 weeks of healing. In the experiments, the rat tendons had been subjected to free cage activity or reduced load levels through intramuscular botox injections. The simulations that included cell infiltration and strain-regulated collagen production predicted spatio-temporal tissue distributions and mechanical properties similarly to that observed experimentally. In addition, lack of matrix-producing cells in the tendon core during early healing may result in reduced collagen content, regardless of the daily load level. This framework is the first to computationally investigate mechanobiological mechanisms underlying spatial and temporal variations during tendon healing for various magnitudes of loading. This framework will allow further characterization of biomechanical, biological, or mechanobiological processes underlying tendon healing.

摘要

力学生物学在肌腱愈合中起着重要作用。然而,机械加载与愈合过程中肌腱特性的空间和时间演变之间的关系还不是很清楚。本研究基于最近提出的机械调节计算框架,该框架将力学生物学肌腱愈合与组织产生和胶原取向耦合在一起。在这项研究中,我们研究了不同大小的机械刺激(主应变)如何影响组织产生的时空演变和弹性和粘弹性力学参数的时间演变。具体来说,我们通过模拟生产依赖于局部细胞密度,研究了细胞浸润(模拟迁移和增殖)对骨痂中产生的组织的影响。模型预测与在 1、2 和 4 周愈合时从大鼠跟腱获得的实验数据进行了仔细比较。在实验中,通过肌肉内肉毒杆菌毒素注射,大鼠的跟腱经历了自由笼活动或减少负荷水平。包括细胞浸润和应变调节胶原产生的模拟预测了与实验观察到的相似的时空组织分布和力学性能。此外,在早期愈合过程中,肌腱核心中缺乏基质产生细胞可能会导致胶原含量减少,而与每日负荷水平无关。该框架是第一个针对各种加载幅度的肌腱愈合过程中的空间和时间变化的力学生物学机制进行计算研究的框架。该框架将允许进一步表征肌腱愈合的生物力学、生物学或力学生物学过程。

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