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首页> 外文期刊>Journal of Turbulence >Coordinated Movement of Vesicles and Actin Bundles during Nerve Growth Revealed by Superresolution Microscopy
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Coordinated Movement of Vesicles and Actin Bundles during Nerve Growth Revealed by Superresolution Microscopy

机译:囊泡和肌动蛋白束的协调运动在神经生长期间通过超级化显微镜显示出来

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摘要

The growth cone is an essential structure for nerve growth. Although its membrane and cytoskeleton are likely to interact coordinately during nerve growth, the mechanisms are unknown due to their close proximity. Here, we used superresolution microscopy to simultaneously observe vesicles and F-actin in growth cones. We identified a novel vesicular generation mechanism that is independent of clathrin and dependent on endophilin-3-and dynamin-1 and that occurs proximal to the leading edge simultaneously with fascin-1-dependent F-actin bundling. In contrast to conventional clathrin-dependent endocytosis, which occurs distal from the leading edge at the basal surfaces of growth cones, this mechanism was distinctly observed at the apical surface using 3D imaging and was involved in mediating axon growth. Reduced endophilin or fascin inhibited this endocytic mechanism. These results suggest that, at the leading edge, vesicles are coordinately generated and transported with actin bundling during nerve growth.
机译:生长锥是神经生长的必要结构。虽然其膜和细胞骨架在神经生长期间可能相互作用,但由于它们的近距离而未使机制未知。在这里,我们使用超级化学显微镜观察生长锥中的囊泡和F-肌动蛋白。我们鉴定了一种独立于克拉肽的新型囊泡产生机制,并依赖于内心素-3-和发动机-1,并且在与FASCIN-1依赖性F型肌动蛋白捆扎束同时发生近端的前缘。与常规的克拉林依赖性内吞作用,其发生在生长锥的基础表面上的前缘远离前缘,使用3D成像在顶端表面明显地观察到该机制,并且参与介导的轴突生长。减少的内皮蛋白或梭菌抑制这种内吞作用。这些结果表明,在前缘边缘,在神经生长期间与肌动蛋白捆绑的囊泡进行协调和运输。

著录项

  • 来源
    《Journal of Turbulence》 |2017年第9期|共14页
  • 作者单位

    Niigata Univ Grad Sch Med &

    Dent Sci Dept Neurochem &

    Mol Cell Biol Chuo Ku Niigata 9518510 Japan;

    Niigata Univ Grad Sch Med &

    Dent Sci Dept Neurochem &

    Mol Cell Biol Chuo Ku Niigata 9518510 Japan;

    Natl Inst Adv Ind Sci &

    Technol Biomed Res Inst Tsukuba Ibaraki 3058566 Japan;

    Niigata Univ Grad Sch Med &

    Dent Sci Dept Neurochem &

    Mol Cell Biol Chuo Ku Niigata 9518510 Japan;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 流体力学;
  • 关键词

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