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A structural model of passive skeletal muscle shows two reinforcement processes in resisting deformation

机译:被动骨骼肌的结构模型显示了抵抗变形的两个增强过程

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Passive skeletal muscle derives its structural response from the combination of the titin filaments in the muscle fibres, the collagen fibres in the connective tissue and incompressibility due to the high fluid content. Experiments have shown that skeletal muscle tissue presents a highly asymmetrical three-dimensional behaviour when passively loaded in tension or compression, but structural models predicting this are not available. The objective of this paper is to develop a mathematical model to study the internal mechanisms which resist externally applied deformation in skeletal muscle bulk. One cylindrical muscle fibre surrounded by connective tissue was considered. The collagenous fibres of the endomysium and perimysium were grouped and modelled as tension-only oriented wavy helices wrapped around the muscle fibre. The titin filaments are represented as non-linear tension-only springs. The model calculates the force developed by the titin molecules and the collagen network when the muscle fibre undergoes an isochoric along-fibre stretch. The model was evaluated using a range of literature based input parameters and compared to the experimental fibre-direction stress-stretch data available. Results show the fibre direction non-linearity and tension/compression asymmetry are partially captured by this structural model. The titin filament load dominates at low tensile stretches, but for higher stretches the collagen network was responsible for most of the stiffness. The oblique and initially wavy collagen fibres account for the non-linear tensile response since, as the collagen fibres are being recruited, they straighten and re-orient. The main contribution of the model is that it shows that the overall compression/tension response is strongly influenced by a pressure term induced by the radial component of collagen fibre stretch acting on the incompressible muscle fibre. Thus for along-fibre tension or compression the model predicts that the collagen network contributes to overall muscle stiffness through two different mechanisms: (1) a longitudinal force directly opposing tension and (2) a pressure force on the muscle fibres resulting in an indirect longitudinal load. Although the model presented considers only a single muscle fibre and evaluation is limited to along-fibre loading, this is the first model to propose these two internal mechanisms for resisting externally applied deformation of skeletal muscle tissue.
机译:被动骨骼肌的结构响应来自肌肉纤维中的肌动蛋白丝,结缔组织中的胶原蛋白纤维和高流体含量导致的不可压缩性。实验表明,当被动加载张力或压缩时,骨骼肌组织表现出高度不对称的三维行为,但无法预测这种结构。本文的目的是建立一个数学模型来研究抵抗骨骼肌体积外加变形的内部机制。考虑了一种被结缔组织包围的圆柱肌纤维。肌内膜和肌膜的胶原纤维被分组并建模为缠绕肌肉纤维的仅拉伸取向的波浪状螺旋。钛纤丝表示为仅非线性拉伸弹簧。该模型计算肌纤维经历等速的沿纤维拉伸时,由肌动蛋白分子和胶原网络产生的力。使用一系列基于文献的输入参数评估模型,并将其与可用的实验性纤维方向应力拉伸数据进行比较。结果表明,该结构模型部分捕获了纤维方向的非线性和拉伸/压缩不对称性。在较低的拉伸伸长率下,纤丝长丝负荷占主导地位,但对于较高的拉伸伸长率,胶原网络是造成大部分硬度的原因。倾斜的且最初为波浪形的胶原纤维是非线性拉伸响应的原因,因为随着胶原纤维被募集,它们会拉直并重新定向。该模型的主要贡献在于,它表明,总体压缩/拉伸响应受胶原纤维拉伸部分作用在不可压缩的肌肉纤维上的径向分量引起的压力项的强烈影响。因此,对于沿纤维的拉伸或压缩,该模型预测胶原蛋白网络通过两种不同的机制促进整体肌肉的僵硬:(1)与拉伸力直接相反的纵向力;(2)在肌肉纤维上的压力导致间接的纵向拉伸加载。尽管提出的模型仅考虑单个肌肉纤维并且评估仅限于沿纤维的负载,但这是第一个提出这两种内部机制来抵抗骨骼肌组织的外部施加变形的模型。

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