Department of Cell and Tissue Biology, University of California, San Francisco, San Francisco, United States.
Department of Cell Biology, Erasmus MC, Rotterdam, Netherlands.
Elife. 2023 Jan 30;12:e84143. doi: 10.7554/eLife.84143.
A challenge in analyzing dynamic intracellular cell biological processes is the dearth of methodologies that are sufficiently fast and specific to perturb intracellular protein activities. We previously developed a light-sensitive variant of the microtubule plus end-tracking protein EB1 by inserting a blue light-controlled protein dimerization module between functional domains. Here, we describe an advanced method to replace endogenous EB1 with this light-sensitive variant in a single genome editing step, thereby enabling this approach in human induced pluripotent stem cells (hiPSCs) and hiPSC-derived neurons. We demonstrate that acute and local optogenetic EB1 inactivation in developing cortical neurons induces microtubule depolymerization in the growth cone periphery and subsequent neurite retraction. In addition, advancing growth cones are repelled from areas of blue light exposure. These phenotypes were independent of the neuronal EB1 homolog EB3, revealing a direct dynamic role of EB1-mediated microtubule plus end interactions in neuron morphogenesis and neurite guidance.
分析动态细胞内细胞生物学过程的一个挑战是缺乏足够快速和特异的方法来干扰细胞内蛋白质的活性。我们之前通过在微管正端追踪蛋白 EB1 的功能结构域之间插入一个蓝光控制的蛋白二聚化模块,开发了一种光敏感的 EB1 变体。在这里,我们描述了一种在单个基因组编辑步骤中用这种光敏感变体替代内源性 EB1 的先进方法,从而使该方法能够应用于人类诱导多能干细胞(hiPSC)和 hiPSC 衍生的神经元。我们证明,在发育中的皮质神经元中急性和局部光遗传学 EB1 失活会诱导生长锥外围微管的解聚,随后轴突回缩。此外,正在推进的生长锥会从暴露在蓝光下的区域被排斥。这些表型与神经元 EB1 同源物 EB3 无关,揭示了 EB1 介导的微管正端相互作用在神经元形态发生和轴突导向中的直接动态作用。