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利用快速-QI 模式下的原子力显微镜动态绘制迁移细胞前缘的形貌和硬度。

Dynamically Mapping the Topography and Stiffness of the Leading Edge of Migrating Cells Using AFM in Fast-QI Mode.

机构信息

Université Paris-Saclay, Univ Evry, CY Cergy Paris Université, CNRS, LAMBE, 91025 Evry-Courcouronnes, France.

出版信息

ACS Biomater Sci Eng. 2024 Mar 11;10(3):1364-1378. doi: 10.1021/acsbiomaterials.3c01254. Epub 2024 Feb 8.

DOI:10.1021/acsbiomaterials.3c01254
PMID:38330438
Abstract

Cell migration profoundly influences cellular function, often resulting in adverse effects in various pathologies including cancer metastasis. Directly assessing and quantifying the nanoscale dynamics of living cell structure and mechanics has remained a challenge. At the forefront of cell movement, the flat actin modules─the lamellipodium and the lamellum─interact to propel cell migration. The lamellipodium extends from the lamellum and undergoes rapid changes within seconds, making measurement of its stiffness a persistent hurdle. In this study, we introduce the fast-quantitative imaging (fast-QI) mode, demonstrating its capability to simultaneously map both the lamellipodium and the lamellum with enhanced spatiotemporal resolution compared with the classic quantitative imaging (QI) mode. Specifically, our findings reveal nanoscale stiffness gradients in the lamellipodium at the leading edge, where it appears to be slightly thinner and significantly softer than the lamellum. Additionally, we illustrate the fast-QI mode's accuracy in generating maps of height and effective stiffness through a streamlined and efficient processing of force-distance curves. These results underscore the potential of the fast-QI mode for investigating the role of motile cell structures in mechanosensing.

摘要

细胞迁移深刻地影响着细胞功能,在包括癌症转移在内的各种病理学中经常导致不良影响。直接评估和量化活细胞结构和力学的纳米级动力学仍然是一个挑战。在细胞运动的前沿,扁平肌动蛋白模块——片状伪足和片层——相互作用以推动细胞迁移。片状伪足从片层延伸,并在几秒钟内发生快速变化,使得测量其刚度成为一个持续的障碍。在这项研究中,我们引入了快速定量成像(fast-QI)模式,证明其能够以比经典定量成像(QI)模式更高的时空分辨率同时对片状伪足和片层进行映射。具体来说,我们的发现揭示了在片状伪足的前缘存在纳米级的刚度梯度,在那里它似乎比片层略薄,明显更软。此外,我们通过对力-距离曲线进行简化和高效的处理,说明了 fast-QI 模式在生成高度和有效刚度图方面的准确性。这些结果强调了 fast-QI 模式在研究运动细胞结构在机械传感中的作用的潜力。

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