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Mechanical Properties of Collagen, Fibrin and Collagen-Fibrin Networks

机译:胶原蛋白,纤维蛋白和胶原蛋白纤维网的力学性能

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The macroscopic mechanical properties of bio-engineered tissues are inextricably linked to their microstructure. Often, their microstructure is a complex arrangement of several different components (e.g. collagen, fibrin) that interact with each other to give a tissue its overall properties. These microstructural complexities are further compounded by the dynamic cell interactions with the extracellular matrix (ECM). Our group [1] uses fibrin as the starting scaffold material for cell seeding and tissue growth; over time, the underlying microstructure undergoes dynamic remodeling as the fibrin network is degraded and gradually replaced with collagen. Currently, we have a modeling framework that incorporates a single-component microstructure network to predict the mechanical properties of the engineered tissue [2]. However, this model is unable to capture the transient intermediate stages of tissue growth, during which the tissue is composed of interpenetrating collagen and fibrin networks at varying compositions. In this work, we have incorporated a second network into our model and compared these modeling results with experimental data obtained from uniaxial tests on acellular collagen-fibrin co-gels. This work represents one step in the progression of our model to capture better the relationships between tissue microstructure and macroscopic mechanical properties, with the ultimate goal of developing a comprehensive model framework for rational design of functional engineered tissues.
机译:生物工程组织的宏观机械性能与其微观结构密不可分。通常,它们的微观结构是几种不同成分(例如胶原蛋白,纤维蛋白)的复杂排列,它们相互影响以赋予组织整体性能。这些微结构的复杂性通过与细胞外基质(ECM)的动态细胞相互作用而进一步加重。我们的研究小组[1]使用纤维蛋白作为细胞播种和组织生长的起始支架材料。随着时间的流逝,随着纤维蛋白网络的降解并逐渐被胶原蛋白取代,其下层的微结构将经历动态重塑。当前,我们有一个建模框架,该框架结合了单组分微结构网络来预测工程组织的机械性能[2]。但是,该模型无法捕获组织生长的过渡中间阶段,在此过程中,组织由互穿的胶原蛋白和血纤蛋白网络组成不同。在这项工作中,我们将第二个网络合并到我们的模型中,并将这些建模结果与从无细胞胶原蛋白纤维蛋白共凝胶单轴测试获得的实验数据进行了比较。这项工作代表了我们模型发展的一个步骤,可以更好地捕获组织微观结构与宏观机械性能之间的关系,最终目的是为功能性工程组织的合理设计开发一个全面的模型框架。

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  • 会议地点 Naples, FL(US);Naples, FL(US)
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    Department of Chemical Engineering andMaterials ScienceUniversity of MinnesotaMinneapolis MN;

    Department of Biomedical EngineeringUniversity of MinnesotaMinneapolis MN;

    Department of Chemical Engineering andMaterials ScienceUniversity of MinnesotaMinneapolis MNDepartment of Biomedical EngineeringUniversity of MinnesotaMinneapolis MN;

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