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Increased stiffness of collagen fibrils following cyclic tensile loading

机译:循环拉伸载荷后胶原型原纤维的刚度增加

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摘要

Alterations in mechanical loading can induce growth and remodeling in soft connective tissues. Numerous studies have measured changes in the collagen structure and mechanical properties of cellularized native and engineered tissues in response to cyclic mechanical loading. However, a recent experimental study demonstrated that cyclic loading also caused significant stiffening and strengthening of acellular collagen constructs. In this work, we developed an anisotropic hyperelastic model of the collagen constructs to investigate whether the measured changes in the tissue -level properties can be attributed to changes in the anisotropic collagen structure or mechanical properties of the collagen fibrils. The model parameters describing the elastic properties, damage properties, and morphology of the fibril were fit to the stress-stretch response measured for the constructs subjected to different preconditioning strains and cycles. The results showed that the changes in the collagen anisotropy measured in experiments were insufficient to explain the increase in the stiffness and strength of the collagen constructs with cyclic loading and that the increase in the strength of the collagen constructs may be attributed mainly to the increase in the effective stiffness of the fibrils. These findings suggest that mechanical loading can induce changes in the stiffness and failure properties of the collagen fibril network through passive chemomechanical processes in addition to active cellular processes.
机译:机械负载的改变可以在软结缔组织中诱导生长和重塑。响应于循环机械负载,许多研究已经测量了细胞化天然和工程组织的胶原结构和机械性能的变化。然而,最近的实验研究表明,循环负载也引起了无细胞胶原构建体的显着加强和强化。在这项工作中,我们开发了胶原蛋白构建体的各向异性超弹性模型,以研究组织 - 葡萄球菌的测量变化是否归因于胶原型原纤维的各向异性胶原结构或机械性能的变化。描述原纤维的弹性性质,损伤性能和形态的模型参数适合测量对经受不同预处理菌株和循环的构建体测量的应力拉伸响应。结果表明,在实验中测量的胶原蛋白各向异性的变化不足以解释胶原蛋白构建体的刚度和强度的增加,并且胶原构建体的强度的增加可能主要归因于增加原纤维的有效刚度。这些发现表明,除活性细胞过程外,机械负载还可以通过被动化学机械过程诱导胶原纤维网络的刚度和故障特性的变化。

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