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首页> 外文期刊>Molecular biology of the cell >Single-particle tracking localization microscopy reveals nonaxonemal dynamics of intraflagellar transport proteins at the base of mammalian primary cilia
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Single-particle tracking localization microscopy reveals nonaxonemal dynamics of intraflagellar transport proteins at the base of mammalian primary cilia

机译:单粒子跟踪定位显微镜揭示哺乳动物鞭毛基部鞭毛内转运蛋白的非轴突动力学。

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摘要

Primary cilia play a vital role in cellular sensing and signaling. An essential component of ciliogenesis is intraflagellar transport (IFT), which is involved in IFT protein recruitment, axonemal engagement of IFT protein complexes, and so on. The mechanistic understanding of these processes at the ciliary base was largely missing, because it is challenging to observe the motion of IFT proteins in this crowded region using conventional microscopy. Here, we report short-trajectory tracking of IFT proteins at the base of mammalian primary cilia by optimizing single-particle tracking photoactivated localization microscopy for IFT88-mEOS4b in live human retinal pigment epithelial cells. Intriguingly, we found that mobile IFT proteins “switched gears” multiple times from the distal appendages (DAPs) to the ciliary compartment (CC), moving slowly in the DAPs, relatively fast in the proximal transition zone (TZ), slowly again in the distal TZ, and then much faster in the CC. They could travel through the space between the DAPs and the axoneme without following DAP structures. We further revealed that BBS2 and IFT88 were highly populated at the distal TZ, a potential assembly site. Together, our live-cell single-particle tracking revealed region-dependent slowdown of IFT proteins at the ciliary base, shedding light on staged control of ciliary homeostasis.
机译:原发纤毛在细胞感测和信号传导中起着至关重要的作用。睫毛发生的重要组成部分是鞭毛内运输(IFT),它参与IFT蛋白募集,IFT蛋白复合物的轴突结合等。在睫状体基部对这些过程的机械理解已大大缺失,因为使用常规显微镜观察该拥挤区域中IFT蛋白的运动具有挑战性。在这里,我们报告了通过优化活人视网膜色素上皮细胞中的IFT88-mEOS4b的单粒子跟踪光激活定位显微镜,在哺乳动物原发纤毛的基础上对IFT蛋白进行了短轨迹跟踪。有趣的是,我们发现移动IFT蛋白从远侧附件(DAP)到睫状区(CC)多次“切​​换”,在DAP中缓慢移动,在近端过渡区(TZ)相对快速,然后在鼻中缓慢移动远端TZ,然后在CC中快得多。它们可以在不遵循DAP结构的情况下穿过DAP与轴突之间的空间。我们进一步发现BBS2和IFT88在TZ远端(潜在的组装地点)的人口众多。在一起,我们的活细胞单粒子跟踪揭示了睫毛基底处IFT蛋白的区域依赖性减慢,为逐步控制睫状体内稳态提供了依据。

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