Carlin Gildas, Manifacier Ian, Cao Dang Khoa, Pieuchot Laurent, Luchnikov Valeriy, Milan Jean-Louis
Aix Marseille Univ, CNRS, ISM, Marseille, France.
Aix Marseille Univ, APHM, CNRS, ISM, Sainte-Marguerite Hospital, Institute for Locomotion, Department of Orthopaedics and Traumatology, Marseille, France.
Sci Rep. 2025 Jun 4;15(1):19629. doi: 10.1038/s41598-025-02804-3.
Cell migration is an important cellular process to study, as it plays a fundamental role in tissue structuring and development, while abnormal cell migration may be the cause of certain diseases. Among the known factors influencing cell migration, substrate curvature is one, with cells naturally moving towards concave areas while avoiding convex ones. The underlying causes of migration guidance by curvature remain unclear, and in particular, the way in which cell persistence is affected is still not well understood. We introduce an anisotropic persistent random walk model which includes cell heterogeneity to simulate T-cell migration across various corrugate landscapes. We compared the trajectories generated by the model with in vitro T-cells trajectories over the same topographies. The model accurately captures key features of cell trajectories on flat surfaces as well as on curved surfaces, such as a directional bias toward concave regions. The model also reveals a superdiffusive behavior on curvature, demonstrating more efficient movement compared to flat surfaces. The anisotropic randomness incorporated in the model appears as a critical feature which shapes T-cells persistence mechanisms by increasing cellular activity in the axis of concave valleys and promoting migration towards concave areas.
细胞迁移是一个重要的细胞过程,值得深入研究。这是因为它在组织构建和发育中起着基础性作用,而异常的细胞迁移可能是某些疾病的病因。在已知影响细胞迁移的因素中,底物曲率是其中之一,细胞通常会自然地向凹面区域移动,同时避开凸面区域。曲率引导迁移的潜在原因仍不明确,特别是细胞持续性受到影响的方式仍未得到很好的理解。我们引入了一个各向异性持续随机游走模型,该模型包含细胞异质性,用于模拟T细胞在各种波纹状地形上的迁移。我们将该模型生成的轨迹与相同地形上的体外T细胞轨迹进行了比较。该模型准确地捕捉了平面和曲面上细胞轨迹的关键特征,例如对凹面区域的方向偏向。该模型还揭示了曲率上的超扩散行为,表明与平面相比,细胞运动更高效。模型中纳入的各向异性随机性似乎是一个关键特征,它通过增加细胞在凹谷轴向上的活性并促进向凹面区域的迁移,塑造了T细胞的持续性机制。