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首页> 外文期刊>Histochemistry and cell biology >Dynamics of leading lamellae of living fibroblasts visualized by high-speed scanning probe microscopy.
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Dynamics of leading lamellae of living fibroblasts visualized by high-speed scanning probe microscopy.

机译:高速扫描探针显微镜观察活的成纤维细胞前片层的动力学。

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In this study, we aimed at improving the temporal resolution of scanning probe microscopy (SPM) for observing living cells by introducing soft cantilevers, low feedback-gain operations, and cantilever deflection imaging. We achieved visualization of the mechanical architecture in leading lamellae of living fibroblasts at a temporal resolution of around 10 s, which is higher than that of conventional contact-mode SPM. Time-lapse SPM could be used to monitor not only cytoskeletal dynamics but also the dynamics of numerous microgranules. Statistical analysis of microgranular motion revealed that the microgranules have superdiffusive behaviors and significant directional order of motion. We also found that the direction of their motion is correlated with the direction of growing actin stress fibers. The combination of SPM with fluorescence microscopy showed that vinculin, a component of cell-substratum adhesion sites, localizes at the microgranules. Our experimental data provides a new insight into the intracellular mechanical architecture and its structural dynamics, suggesting that high-speed live-cell SPM has great potential for investigating the structural origin of cellular dynamics.
机译:在这项研究中,我们旨在通过引入软悬臂梁,低反馈增益操作和悬臂梁偏转成像来提高用于观察活细胞的扫描探针显微镜(SPM)的时间分辨率。我们以大约10 s的时间分辨率实现了活体成纤维细胞前片中机械结构的可视化,该分辨率高于传统的接触模式SPM。延时SPM不仅可以用于监测细胞骨架动力学,而且可以用于监测众多微粒的动力学。对微颗粒运动的统计分析表明,微颗粒具有超扩散行为和明显的运动方向顺序。我们还发现,它们的运动方向与肌动蛋白应力纤维的生长方向相关。 SPM与荧光显微镜的结合表明,纽蛋白(一种细胞基质粘附位点的成分)位于微粒中。我们的实验数据提供了对细胞内机械结构及其结构动力学的新见解,表明高速活细胞SPM具有研究细胞动力学结构起源的巨大潜力。

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