III型胶原促进假足驱动的细胞迁移

Ruiwen Fu, Kuangzheng Zhu, Zhouyang Li, Liqun Lei, Ming Li*, Xuye Lang* and Yuan Yao*, 
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引用次数: 0

摘要

细胞外基质(ECM),特别是胶原蛋白,被认为对细胞迁移有重要影响。然而,其影响假足形成和细胞运动的详细机制尚不完全清楚。本研究深入研究了重组人III型胶原蛋白(hCOL3)对细胞迁移的影响,特别关注假足的动力学及其对细胞运动的贡献。该研究利用单细胞和集体细胞迁移试验,评估了为研究而设计的hCOL3片段形式对细胞运动和伪足行为的影响。结果表明,在单细胞和集体迁移环境下,hCOL3均能促进细胞迁移速度,增加有效扩散系数,增强方向性。扫描电镜观察显示,hCOL3处理增加了丝状足的数量和长度,这对于细胞迁移和与ECM的相互作用至关重要。该研究表明,hCOL3促进了更有针对性和快速的迁移。经hCOL3处理的表面上丝状足数量的增加增强了细胞检测环境线索和范围的能力,从而增强了其迁移能力。这一发现可能会提高伤口愈合过程的效率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Type III Collagen Promotes Pseudopodium-Driven Cell Migration

The extracellular matrix (ECM), particularly collagen, is acknowledged for its significant impact on cell migration. However, the detailed mechanisms through which it influences pseudopodium formation and cell motility are not yet fully understood. This study delves into the impact of recombinant human type III collagen (hCOL3) on cell migration, specifically focusing on the dynamics of pseudopodia and their contribution to cell motility. The research evaluates the impact of a fragmented form of hCOL3, engineered for the study, on cell motility and pseudopodium behavior using both single-cell and collective-cell migration assays. The results demonstrate that hCOL3 promotes cell migration velocity, augments the effective diffusion coefficient, and enhances directionality in both single-cell and collective migration contexts. Observations from scanning electron microscopy reveal that treatment with hCOL3 increases both the number and length of filopodia, which are crucial for cell migration and interaction with the ECM. The study suggests that hCOL3 facilitates a more targeted and rapid migration. The presence of an increased number of filopodia on surfaces treated with hCOL3 enhances the cell’s ability to detect environmental cues and extent, thereby augmenting its migratory capacity. This discovery could potentially lead to greater efficiency in wound healing processes.

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