Max Planck Institute of Molecular Cell Biology and Genetics, Dresden 01307, Germany.
B CUBE-Center for Molecular Bioengineering, Technische Universität Dresden, Dresden 01307, Germany; Institute of Biotechnology CAS, BIOCEV, Vestec 25250, Czech Republic.
Cell Rep. 2017 Sep 5;20(10):2304-2312. doi: 10.1016/j.celrep.2017.08.042.
Non-centrosomal microtubule bundles play important roles in cellular organization and function. Although many diverse proteins are known that can bundle microtubules, biochemical mechanisms by which cells could locally control the nucleation and formation of microtubule bundles are understudied. Here, we demonstrate that the concentration of tubulin into a condensed, liquid-like compartment composed of the unstructured neuronal protein tau is sufficient to nucleate microtubule bundles. We show that, under conditions of macro-molecular crowding, tau forms liquid-like drops. Tubulin partitions into these drops, efficiently increasing tubulin concentration and driving the nucleation of microtubules. These growing microtubules form bundles, which deform the drops while remaining enclosed by diffusible tau molecules exhibiting a liquid-like behavior. Our data suggest that condensed compartments of microtubule bundling proteins could promote the local formation of microtubule bundles in neurons by acting as non-centrosomal microtubule nucleation centers and that liquid-like tau encapsulation could provide both stability and plasticity to long axonal microtubule bundles.
非中心微管束在细胞组织和功能中发挥着重要作用。尽管已经有许多不同的蛋白质被证实可以束集微管,但细胞如何局部控制微管束的成核和形成的生化机制仍研究不足。在这里,我们证明了微管蛋白在由未折叠的神经元蛋白 tau 组成的浓缩、液态隔间中浓缩成束集的微管。我们表明,在大分子拥挤的条件下,tau 形成液态滴。微管蛋白分配到这些液滴中,有效地增加了微管蛋白浓度并驱动微管的成核。这些生长的微管形成束集,在被扩散的表现出液态行为的 tau 分子包围的同时,使液滴变形。我们的数据表明,微管束集蛋白的浓缩隔室可以通过充当非中心微管成核中心来促进神经元中局部微管束的形成,并且液态 tau 包封可以为长轴突微管束提供稳定性和可塑性。