'Mitotic' kinesin-5 is a dynamic brake for axonal growth

Wen Lu, Brad S. Lee, Helen Deng, Margot Lakonishok, Enrique Martin-Blanco, Vladimir I Gelfand
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Abstract

During neuronal development, neurons undergo significant microtubule reorganization to shape axons and dendrites, establishing the framework for efficient wiring of the nervous system. Previous studies from our laboratory demonstrated the key role of kinesin-1 in driving microtubule-microtubule sliding, which provides the mechanical forces necessary for early axon outgrowth and regeneration in Drosophila melanogaster. In this study, we reveal the critical role of kinesin-5, a mitotic motor, in modulating the development of postmitotic neurons. Kinesin-5, a conserved homotetrameric motor, typically functions in mitosis by sliding antiparallel microtubules apart in the spindle. Here, we demonstrate that the Drosophila kinesin-5 homolog, Klp61F, is expressed in larval brain neurons, with high levels in ventral nerve cord (VNC) neurons. Knockdown of Klp61F using a pan-neuronal driver leads to severe locomotion defects and complete lethality in adult flies, mainly due to the absence of kinesin-5 in VNC motor neurons during early larval development. Klp61F depletion results in significant axon growth defects, both in cultured and in vivo neurons. By imaging individual microtubules, we observe a significant increase in microtubule motility, and excessive penetration of microtubules into the axon growth cone in Klp61F-depleted neurons. Adult lethality and axon growth defects are fully rescued by a chimeric human-Drosophila kinesin-5 motor, which accumulates at the axon tips, suggesting a conserved role of kinesin-5 in neuronal development. Altogether, our findings show that at the growth cone, kinesin-5 acts as a brake on kinesin-1-driven microtubule sliding, preventing premature microtubule entry into the growth cone. This regulatory role of kinesin-5 is essential for precise axon pathfinding during nervous system development.
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有丝分裂 "驱动蛋白-5是轴突生长的动态制动器
在神经元发育过程中,神经元经历了大量的微管重组以形成轴突和树突,从而建立了神经系统有效布线的框架。我们实验室以前的研究证明了驱动蛋白-1 在驱动微管-微管滑动中的关键作用,它为黑腹果蝇的早期轴突生长和再生提供了必要的机械力。在这项研究中,我们揭示了有丝分裂马达驱动蛋白-5 在调控有丝分裂后神经元发育中的关键作用。驱动蛋白-5 是一种保守的同源四聚体马达,通常在有丝分裂中通过在纺锤体中将反平行的微管滑动开来发挥作用。在这里,我们发现果蝇驱动蛋白-5 的同源物 Klp61F 在幼虫脑神经元中表达,在腹侧神经索(VNC)神经元中表达水平较高。使用泛神经元驱动程序敲除 Klp61F 会导致成蝇出现严重的运动缺陷和完全致死,这主要是由于幼虫早期发育过程中 VNC 运动神经元中驱动蛋白-5 的缺失。Klp61F 缺失会导致培养和体内神经元轴突生长的严重缺陷。通过对单个微管成像,我们观察到微管的运动性显著增加,在Klp61F缺失的神经元中,微管过度穿透轴突生长锥。我们的研究结果表明,在生长锥处,驱动蛋白-5 对驱动蛋白-1 驱动的微管滑动起到了制动作用,从而防止了微管过早进入生长锥。驱动蛋白-5 的这种调节作用对于神经系统发育过程中轴突的精确定位至关重要。
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