计算机模拟研究细胞在生物相容性材料上的扩散

A. Robu, L. Stoicu-Tivadar, A. Neagu
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引用次数: 3

摘要

组织工程的目标是创造可植入人体组织的功能性组织结构。组织工程的一种经典方法是将细胞培养在由生物相容性和可生物降解材料制成的多孔支架上。这种方法的一个重要步骤是支架的细胞播种。研究表明,与不均匀播种相比,均匀播种能使组织结构发育更快,力学性能更好。播种的成功取决于细胞在支架材料上的扩散。本文提出了一个生物系统的计算模型,用于细胞在生物材料上的扩散实验。该模型描述了放置在浸泡在细胞培养基中的生物材料平行六面体板上的细胞聚集体。实验表明,细胞扩散是细胞-细胞之间的竞争和细胞-生物材料相互作用的结果,这与斯坦伯格的差异粘附假说一致,该假说认为细胞系统向最小粘附能量状态进化。利用Metropolis蒙特卡罗方法模拟了细胞在生物材料上的扩散,得到了细胞-细胞和细胞-生物材料相互作用的不同值,发现细胞扩散受细胞-细胞内聚能和细胞-生物材料粘附能的一半差的支配。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Cell spreading on biocompatible materials studied by computer simulations
The goal of tissue engineering is to create functional tissue constructs that can be implanted into the human organism. A classical approach to tissue engineering consists in the culturing of cells on porous scaffolds made of biocompatible and biodegradable materials. An important step in this approach is the cell seeding of scaffolds. It has been shown that uniform seeding leads to faster development of the tissue construct and superior mechanical properties in comparison to non-uniform seeding. The success of seeding depends on cell spreading on the scaffold's material. This paper presents a computational model of a biological system used in experiments on cell spreading on biomaterials. The model describes a cell aggregate placed on a parallelepipedic slab of biomaterial bathed in cell culture medium. Experiments suggest that cell spreading results from a competition between cell-cell and cell-biomaterial interactions, in accord with Steinberg's differential adhesion hypothesis, which considers that the cellular system evolves towards the state of minimum energy of adhesion. Using the Metropolis Monte Carlo method, we simulated cell spreading on a biomaterial for different values of the cell-cell and cell-biomaterial interactions and found that cell spreading is governed by the difference between half the cell-cell cohesion energy and the cell-biomaterial adhesion energy.
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