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压缩状态下纤维聚合物网络的孔隙弹性与渗透性

Poroelasticity and permeability of fibrous polymer networks under compression.

作者信息

Mollenkopf Paul, Kochanowski Jakub A, Ren Yifei, Vining Kyle H, Janmey Paul A, Purohit Prashant K

机构信息

Department of Physiology, University of Pennsylvania, Philadelphia, PA, 19104, USA.

Department of Mechanical Engineering and Applied Mechanics, University of Pennsylvania, Philadelphia, PA 19104, USA.

出版信息

Soft Matter. 2025 Mar 26;21(13):2400-2412. doi: 10.1039/d4sm01223b.

Abstract

Soft biopolymer networks play pivotal roles in governing cellular mechanics, tissue structure, and physiological processes such as blood coagulation. Understanding their permeability and mechanical responses under compression is crucial for elucidating mass transport phenomena and their impact on extra- and intra-cellular behavior as well as processes affecting functionality of blood clots, cartilage and other fibrous tissues. The nonlinear responses of these networks to mechanical stresses prevent application of established linear poro-elasticity models. Despite extensive studies of fibrous network viscoelastic properties under shear deformations, their dynamic responses to compressive deformations remain poorly understood, particularly in physiological contexts of growth and collective migration of solid bodies. Conventional experimental techniques face challenges in accurately evaluating the permeability of these networks, hindering comprehensive understanding of their poromechanical behavior. In this study, we employ a novel poroelastic hybrid approach combining rheometer-based compression rheology with camera-facilitated sample shape detection to directly measure fluid flux and network permeability under controlled compressive strains. Accompanying experimental investigations, a continuum model implemented in finite elements, and an analytical model are developed to interpret the findings. The experimental data align well with the analytical model, revealing the emergence and disappearance of distinct densification regimes within the gel under mechanical stress. This study advances our understanding of the intricate interplay between mechanical forces, fluid flow, and structural properties in soft biopolymer networks, with a specific focus on fibrin- and collagen-based gels which represent the most abundant protein networks in the extracellular environment.

摘要

软生物聚合物网络在控制细胞力学、组织结构以及血液凝固等生理过程中起着关键作用。了解它们在压缩下的渗透性和力学响应对于阐明质量传输现象及其对细胞外和细胞内行为的影响,以及对影响血凝块、软骨和其他纤维组织功能的过程至关重要。这些网络对机械应力的非线性响应使得已有的线性多孔弹性模型无法应用。尽管对纤维网络在剪切变形下的粘弹性特性进行了广泛研究,但它们对压缩变形的动态响应仍知之甚少,尤其是在固体生长和集体迁移的生理背景下。传统实验技术在准确评估这些网络的渗透性方面面临挑战,阻碍了对其孔隙力学行为的全面理解。在本研究中,我们采用了一种新颖的多孔弹性混合方法,将基于流变仪的压缩流变学与相机辅助的样品形状检测相结合,以直接测量在受控压缩应变下的流体通量和网络渗透性。伴随着实验研究,还开发了一个在有限元中实现的连续介质模型和一个解析模型来解释研究结果。实验数据与解析模型吻合良好,揭示了凝胶在机械应力下不同致密化状态的出现和消失。这项研究推进了我们对软生物聚合物网络中机械力、流体流动和结构特性之间复杂相互作用的理解,特别关注基于纤维蛋白和胶原蛋白的凝胶,它们代表了细胞外环境中最丰富的蛋白质网络。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f542/11841696/558772af2e32/d4sm01223b-f1.jpg

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