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Curvotaxis directs cell migration through cell-scale curvature landscapes

机译:弯曲通过细胞尺度的曲率景观指导细胞迁​​移

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摘要

Cells have evolved multiple mechanisms to apprehend and adapt finely to their environment. Here we report a new cellular ability, which we term “curvotaxis” that enables the cells to respond to cell-scale curvature variations, a ubiquitous trait of cellular biotopes. We develop ultra-smooth sinusoidal surfaces presenting modulations of curvature in all directions, and monitor cell behavior on these topographic landscapes. We show that adherent cells avoid convex regions during their migration and position themselves in concave valleys. Live imaging combined with functional analysis shows that curvotaxis relies on a dynamic interplay between the nucleus and the cytoskeleton—the nucleus acting as a mechanical sensor that leads the migrating cell toward concave curvatures. Further analyses show that substratum curvature affects focal adhesions organization and dynamics, nuclear shape, and gene expression. Altogether, this work identifies curvotaxis as a new cellular guiding mechanism and promotes cell-scale curvature as an essential physical cue.
机译:细胞已经进化出多种机制来理解和适应环境。在这里,我们报告了一种新的细胞功能,我们称之为“曲线坐标系”,它使细胞能够响应细胞尺度曲率变化,这是细胞生物群落普遍存在的特征。我们开发了超光滑的正弦曲面,可在所有方向上呈现曲率调制,并监控这些地形景观上的细胞行为。我们表明贴壁细胞在其迁移过程中避免了凸区域,并将其自身定位在凹谷中。实时成像与功能分析相结合,表明曲线运动依赖于细胞核与细胞骨架之间的动态相互作用,细胞核充当机械传感器,将迁移的细胞引导至凹曲率。进一步的分析表明,基质曲率会影响粘着斑的组织和动力学,核形状和基因表达。总而言之,这项工作将曲线坐标识别为一种新的细胞导向机制,并将细胞尺度的曲率提升为必不可少的物理提示。

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