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在乌贼巨大轴突中,大型运输复合体中的寡聚微管蛋白通过驱动蛋白进行运输。

Oligomeric tubulin in large transporting complex is transported via kinesin in squid giant axons.

作者信息

Terada S, Kinjo M, Hirokawa N

机构信息

Department of Cell Biology and Anatomy, The University of Tokyo Graduate School of Medicine, Japan.

出版信息

Cell. 2000 Sep 29;103(1):141-55. doi: 10.1016/s0092-8674(00)00094-5.

Abstract

Slow axonal transport depends on an active mechanism that conveys cytosolic proteins. To investigate its molecular mechanism, we now constructed an in vitro experimental system for observation of tubulin transport, using squid giant axons. After injecting fluorescence-labeled tubulin into the axons, we monitored the movement of fluorescence by confocal laser scanning microscopy and fluorescence correlation spectroscopy. Here, from the pharmacological experiments and the functional blocking of kinesin motor protein by anti-kinesin antibody, we show that the directional movement of fluorescent profile was dependent on kinesin motor function. The fluorescent correlation function and estimated translational diffusion time revealed that tubulin molecule was transported in a unique form of large transporting complex distinct from those of stable polymers or other cytosolic protein.

摘要

慢速轴突运输依赖于一种转运胞质蛋白的活性机制。为了研究其分子机制,我们构建了一个利用鱿鱼巨大轴突观察微管蛋白运输的体外实验系统。将荧光标记的微管蛋白注入轴突后,我们通过共聚焦激光扫描显微镜和荧光相关光谱法监测荧光的移动。在此,通过药理学实验以及抗驱动蛋白抗体对驱动蛋白运动蛋白的功能阻断,我们表明荧光轮廓的定向移动依赖于驱动蛋白的运动功能。荧光相关函数和估计的平移扩散时间表明,微管蛋白分子以一种独特的大型运输复合体形式进行运输,这与稳定聚合物或其他胞质蛋白的运输复合体不同。

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