柔性三维明胶管结构中细胞集体迁移的主要几何因素。

IF 2.4 Q3 BIOPHYSICS Biophysical reports Pub Date : 2022-07-22 eCollection Date: 2022-09-14 DOI:10.1016/j.bpr.2022.100063
Mitsuru Sentoku, Kento Iida, Hiromichi Hashimoto, Kenji Yasuda
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引用次数: 0

摘要

集体细胞迁移是一种动态的和相互作用的细胞群的行为至关重要的不同生理发育的生物体。最近的研究揭示了三维(3D)地形约束在管状约束中调节细胞群迁移模式的重要性。然而,传统的体外实验无法观察到细胞对三维结构变化的响应行为,而这对于研究集体迁移的几何调节因素是必要的。在这里,我们介绍了一种新开发的方法,用于制造毛细血管微隧道的柔性3D结构,以检查血管内皮细胞(ECs)在通过宽管或窄管结构的连续过渡时的行为。利用聚焦红外激光的微米级光热蚀刻,在明胶-凝胶块内形成直径改变的微隧道。ECs在明胶毛细管微通道内表面呈单层二维迁移和扩散,而不是填充整个毛细管。在直圆柱形地形约束下,前导ECs对最大峰迁移速度没有明显的直径依赖性。在窄宽结构中,加宽直径导致迁移速度降低,且与直径增加比成正比,而在宽窄微隧道中,缩小直径会增加迁移速度,但速度变化与直径变化没有明显的相关性。结果证明了新开发的柔性3D明胶管结构具有集体细胞迁移的能力,并且该发现为内皮细胞迁移新出现的迁移模式的主要几何因素提供了见解,即无边界圆柱形细胞片中的不对称流体流动行为。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Dominant geometrical factors of collective cell migration in flexible 3D gelatin tube structures.

Collective cell migration is a dynamic and interactive behavior of cell cohorts essential for diverse physiological developments in living organisms. Recent studies have revealed the importance of three-dimensional (3D) topographical confinements to regulate the migration modes of cell cohorts in tubular confinement. However, conventional in vitro assays fail to observe cells' behavior in response to 3D structural changes, which is necessary for examining the geometric regulation factors of collective migration. Here, we introduce a newly developed assay for fabricating flexible 3D structures of capillary microtunnels to examine the behavior of vascular endothelial cells (ECs) as they progress through the successive transition across wide or narrow tube structures. The microtunnels with altered diameters were formed inside gelatin-gel blocks by photo-thermal etching with micrometer-sized spot heating of the focused infrared laser absorption. The ECs migrated and spread two-dimensionally on the inner surface of gelatin capillary microtunnels as a monolayer instead of filling the entire capillary. In the straight cylindrical topographical constraint, leading ECs exhibited no apparent diameter dependence for the maximum peak migration velocity. However, widening the diameter in the narrow-wide structures caused a decrease in migration velocity following in direct proportion to the diameter increase ratio, whereas narrowing the diameter in wide-narrow microtunnels increased the speed without obvious correlation between velocity change and diameter change. The results demonstrated the ability of the newly developed flexible 3D gelatin tube structures for collective cell migration, and the findings provide insights into the dominant geometric factor of the emerging migratory modes for endothelial migration as asymmetric fluid flow-like behavior in the borderless cylindrical cell sheets.

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来源期刊
Biophysical reports
Biophysical reports Biophysics
CiteScore
2.40
自引率
0.00%
发文量
0
审稿时长
75 days
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