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通过自动五维单粒子追踪揭示的杆状货物的特征旋转行为。

Characteristic rotational behaviors of rod-shaped cargo revealed by automated five-dimensional single particle tracking.

作者信息

Chen Kuangcai, Gu Yan, Sun Wei, Wang Gufeng, Fan Xinxin, Xia Tian, Fang Ning

机构信息

Department of Chemistry, Georgia State University, Atlanta, GA, 30303, USA.

Department of Chemistry, Iowa State University, Ames, IA, 50011, USA.

出版信息

Nat Commun. 2017 Oct 12;8(1):887. doi: 10.1038/s41467-017-01001-9.

Abstract

We report an automated single particle tracking technique for tracking the x, y, z coordinates, azimuthal and elevation angles of anisotropic plasmonic gold nanorod probes in live cells. These five spatial coordinates are collectively referred to as 5D. This method overcomes a long-standing challenge in distinguishing rotational motions from translational motions in the z-axis in differential interference contrast microscopy to result in full disclosure of nanoscale motions with high accuracy. Transferrin-coated endocytic gold nanorod cargoes initially undergo active rotational diffusion and display characteristic rotational motions on the membrane. Then as the cargoes being enclosed in clathrin-coated pits, they slow down the active rotation and experience a quiet period before they restore active rotational diffusion after fission and eventually being transported away from the original entry spots. Finally, the 3D trajectories and the accompanying rotational motions of the cargoes are resolved accurately to render the intracellular transport process in live cells.Distinguishing rotational motions from translational motions in the z-axis has been a long-standing challenge. Here the authors develop a five-dimensional single particle tracking method to detect rotational behaviors of nanocargos during clathrin-mediated endocytosis and intracellular transport.

摘要

我们报告了一种自动单粒子跟踪技术,用于跟踪活细胞中各向异性等离子体金纳米棒探针的x、y、z坐标、方位角和仰角。这五个空间坐标统称为5D。该方法克服了在微分干涉对比显微镜中区分z轴上的旋转运动和平移运动这一长期存在的挑战,从而能够高精度地全面揭示纳米级运动。转铁蛋白包被的内吞金纳米棒货物最初经历活跃的旋转扩散,并在膜上显示出特征性的旋转运动。然后,当货物被包裹在网格蛋白包被的小窝中时,它们会减慢活跃旋转速度,并经历一段静止期,之后在裂变后恢复活跃的旋转扩散,最终从原始进入点被运走。最后,准确解析货物的三维轨迹及其伴随的旋转运动,以呈现活细胞中的细胞内运输过程。区分z轴上的旋转运动和平移运动一直是一个长期存在的挑战。在这里,作者开发了一种五维单粒子跟踪方法,以检测网格蛋白介导的内吞作用和细胞内运输过程中纳米货物的旋转行为。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bd2b/5638882/0309b79537e4/41467_2017_1001_Fig1_HTML.jpg

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