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一种基于细胞的模型,用于研究血管生成过程中细胞外基质引导的内皮细胞迁移。

A cell-based model of extracellular-matrix-guided endothelial cell migration during angiogenesis.

机构信息

Centrum Wiskunde & Informatica, Science Park 123, 1098 XG, Amsterdam, The Netherlands.

出版信息

Bull Math Biol. 2013 Aug;75(8):1377-99. doi: 10.1007/s11538-013-9826-5. Epub 2013 Mar 15.

Abstract

Angiogenesis, the formation of new blood vessels sprouting from existing ones, occurs in several situations like wound healing, tissue remodeling, and near growing tumors. Under hypoxic conditions, tumor cells secrete growth factors, including VEGF. VEGF activates endothelial cells (ECs) in nearby vessels, leading to the migration of ECs out of the vessel and the formation of growing sprouts. A key process in angiogenesis is cellular self-organization, and previous modeling studies have identified mechanisms for producing networks and sprouts. Most theoretical studies of cellular self-organization during angiogenesis have ignored the interactions of ECs with the extra-cellular matrix (ECM), the jelly or hard materials that cells live in. Apart from providing structural support to cells, the ECM may play a key role in the coordination of cellular motility during angiogenesis. For example, by modifying the ECM, ECs can affect the motility of other ECs, long after they have left. Here, we present an explorative study of the cellular self-organization resulting from such ECM-coordinated cell migration. We show that a set of biologically-motivated, cell behavioral rules, including chemotaxis, haptotaxis, haptokinesis, and ECM-guided proliferation suffice for forming sprouts and branching vascular trees.

摘要

血管生成,即新血管从现有血管中萌芽形成,发生在几种情况下,如伤口愈合、组织重塑和生长中的肿瘤附近。在缺氧条件下,肿瘤细胞分泌生长因子,包括 VEGF。VEGF 激活附近血管中的内皮细胞(EC),导致 EC 从血管中迁移并形成生长的芽。血管生成中的一个关键过程是细胞的自我组织,先前的建模研究已经确定了产生网络和芽的机制。血管生成过程中细胞自我组织的大多数理论研究都忽略了 EC 与细胞外基质(ECM)的相互作用,即细胞生活的果冻状或硬材料。除了为细胞提供结构支撑外,ECM 在血管生成过程中协调细胞运动方面可能起着关键作用。例如,通过修饰 ECM,EC 可以在它们离开很久之后影响其他 EC 的运动。在这里,我们对这种 ECM 协调的细胞迁移所导致的细胞自我组织进行了探索性研究。我们表明,一组基于生物学的细胞行为规则,包括趋化性、贴壁性、趋触性和 ECM 引导的增殖,足以形成芽和分支血管树。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4be4/3738846/059900ee04bb/11538_2013_9826_Fig1_HTML.jpg

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