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首页> 外文期刊>Biochimica et biophysica acta. Molecular cell research >Inelastic mechanics: A unifying principle in biomechanics
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Inelastic mechanics: A unifying principle in biomechanics

机译:非弹性力学:生物力学的统一原理

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Many soft materials are classified as viscoelastic. They behave mechanically neither quite fluid-like nor quite solid-like - rather a bit of both. Biomaterials are often said to fall into this class. Here, we argue that this misses a crucial aspect, and that biomechanics is essentially damage mechanics, at heart. When deforming an animal cell or tissue, one can hardly avoid inducing the unfolding of protein domains, the unbinding of cytoskeletal crosslinkers, the breaking of weak sacrificial bonds, and the disruption of transient adhesions. We classify these activated structural changes as inelastic. They are often to a large degree reversible and are therefore not plastic in the proper sense, but they dissipate substantial amounts of elastic energy by structural damping. We review recent experiments involving biological materials on all scales, from single biopolymers over cells to model tissues, to illustrate the unifying power of this paradigm. A deliberately minimalistic yet phenomenologically very rich mathematical modeling framework for inelastic biomechanics is proposed. It transcends the conventional viscoelastic paradigm and suggests itself as a promising candidate for a unified description and interpretation of a wide range of experimental data. This article is part of a Special Issue entitled: Mechanobiology. (C) 2015 Elsevier B.V. All rights reserved.
机译:许多柔软的材料被归类为粘弹性的。它们在机械上既不像流体一样也不像固体一样-两者兼而有之。人们常说生物材料属于这一类。在这里,我们认为这遗漏了一个至关重要的方面,而生物力学本质上是破坏力学。使动物细胞或组织变形时,几乎无法避免诱导蛋白质结构域的解折叠,细胞骨架交联剂的解离,弱的牺牲性键的破坏以及瞬时黏附的破坏。我们将这些激活的结构变化分类为无弹性的。它们通常在很大程度上是可逆的,因此在适当的意义上不是塑性的,但是它们通过结构阻尼耗散了大量的弹性能。我们回顾了近期涉及各种规模的生物材料的实验,从细胞上的单一生物聚合物到模型组织,以说明这种范例的统一力量。提出了一个针对非弹性生物力学的极简主义但现象学上非常丰富的数学建模框架。它超越了常规的粘弹性范式,并建议自己作为对广泛的实验数据进行统一描述和解释的有前途的候选者。本文是《机械生物学》特刊的一部分。 (C)2015 Elsevier B.V.保留所有权利。

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