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Cell membrane deformations under magnetic force modulation characterized by optical tracking and non-interferometric widefield profilometry

机译:磁力调制下的细胞膜变形,其特征在于光学跟踪和非干涉式宽视野轮廓仪

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We measured cell membrane deformations under the modulation of piconewton magnetic force by using optical tracking and noninterferometric widefield optical profilometry. The magnetic force was applied to fibronectin-coated paramagnetic beads that bound to transmembrane protein integrins. At an image-acquisition rate of 20 frame/min, optical tracking provided positioning accuracy better than 70 nm for bead displacements on cell membranes, and optical profilometry obtained membrane topography with 20 nm depth resolution. We elucidated the correlation between the bead movements and membrane deformations. When the magnetic force dominated the bead movements, the membrane arose in front of the bead and the height increased with the bead velocity. On the other hand, when the bead was mainly driven by the cytoskeletons, the membrane profiles showed no relevance to the motion of the bead. In this case, the bead moved faster on smooth membranes. A model based on the dynamics of actin cytoskeletons is proposed to explain these observation results.
机译:我们通过使用光学跟踪和非干涉式宽视野光学轮廓测定法,在微微磁力的调制下测量了细胞膜的变形。将磁力施加到与跨膜蛋白整合素结合的纤连蛋白包被的顺磁珠上。在20帧/分钟的图像采集速率下,光学跟踪提供的定位精度优于细胞膜上的珠子位移,其定位精度优于70 nm,并且光学轮廓测定法可获得20 nm深度分辨率的膜形貌。我们阐明了珠子运动和膜变形之间的相关性。当磁力主导胎圈运动时,膜会出现在胎圈前面,并且高度随胎圈速度而增加。另一方面,当珠子主要由细胞骨架驱动时,膜的分布与珠子的运动无关。在这种情况下,珠子在光滑的膜上移动得更快。提出了基于肌动蛋白细胞骨架动力学的模型来解释这些观察结果。

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