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Thin Bio-Artificial Tissues in Plane Stress: The Relationship between Cell and Tissue Strain and an Improved Constitutive Model

机译:平面应力中的薄生物人工组织:细胞与组织应变之间的关系以及改进的本构模型

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摘要

Constitutive models are needed to relate the active and passive mechanical properties of cells to the overall mechanical response of bio-artificial tissues. The Zahalak model attempts to explicitly describe this link for a class of bio-artificial tissues. A fundamental assumption made by Zahalak is that cells stretch in perfect registry with a tissue. We show this assumption to be valid only for special cases, and we correct the Zahalak model accordingly. We focus on short-term and very long-term behavior, and therefore consider tissue constituents that are linear in their loading response (although not necessarily linear in unloading). In such cases, the average strain in a cell is related to the macroscopic tissue strain by a scalar we call the “strain factor”. We incorporate a model predicting the strain factor into the Zahalak model, and then reinterpret experiments reported by Zahalak and co-workers to determine the in situ stiffness of cells in a tissue construct. We find that, without the modification in this article, the Zahalak model can underpredict cell stiffness by an order of magnitude.
机译:需要本构模型来将细胞的主动和被动机械性能与生物人工组织的整体机械响应联系起来。 Zahalak模型试图明确描述一类生物人工组织的这种联系。扎哈拉克(Zahalak)做出的一个基本假设是,细胞可以与组织完美地融合在一起。我们证明此假设仅对特殊情况有效,并且我们相应地校正了Zahalak模型。我们关注短期和非常长期的行为,因此考虑组织组成在其负荷响应中呈线性(尽管在卸载中不一定呈线性)。在这种情况下,细胞中的平均应变与宏观组织应变之间的关系就是标量,我们称其为“应变因子”。我们将预测应变因子的模型合并到Zahalak模型中,然后重新解释Zahalak和同事报告的实验,以确定组织构建物中细胞的原位刚度。我们发现,在没有本文修改的情况下,Zahalak模型可以将单元刚度低估一个数量级。

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