Department of Neuroscience, University of Wisconsin-Madison, Madison, Wisconsin 53705.
Department of Neuroscience, University of Wisconsin-Madison, Madison, Wisconsin 53705
J Neurosci. 2018 Jan 10;38(2):291-307. doi: 10.1523/JNEUROSCI.2281-17.2017. Epub 2017 Nov 22.
Proper organization and dynamics of the actin and microtubule (MT) cytoskeleton are essential for growth cone behaviors during axon growth and guidance. The MT-associated protein tau is known to mediate actin/MT interactions in cell-free systems but the role of tau in regulating cytoskeletal dynamics in living neurons is unknown. We used cultures of cortical neurons from postnatal day (P)0-P2 golden Syrian hamsters () of either sex to study the role of tau in the organization and dynamics of the axonal growth cone cytoskeleton. Here, using super resolution microscopy of fixed growth cones, we found that tau colocalizes with MTs and actin filaments and is also located at the interface between actin filament bundles and dynamic MTs in filopodia, suggesting that tau links these two cytoskeletons. Live cell imaging in concert with shRNA tau knockdown revealed that reducing tau expression disrupts MT bundling in the growth cone central domain, misdirects trajectories of MTs in the transition region and prevents single dynamic MTs from extending into growth cone filopodia along actin filament bundles. Rescue experiments with human tau expression restored MT bundling, MT penetration into the growth cone periphery and close MT apposition to actin filaments in filopodia. Importantly, we found that tau knockdown reduced axon outgrowth and growth cone turning in Wnt5a gradients, likely due to disorganized MTs that failed to extend into the peripheral domain and enter filopodia. These results suggest an important role for tau in regulating cytoskeletal organization and dynamics during growth cone behaviors. Growth cones are the motile tips of growing axons whose guidance behaviors require interaction of the dynamic actin and microtubule cytoskeleton. Tau is a microtubule-associated protein that stabilizes microtubules in neurons and in cell-free systems regulates actin-microtubule interaction. Here, using super resolution microscopy, live-cell imaging, and tau knockdown, we show for the first time in living axonal growth cones that tau is important for microtubule bundling and microtubule exploration of the actin-rich growth cone periphery. Importantly tau knockdown reduced axon outgrowth and growth cone turning, due to disorganized microtubules that fail to enter filopodia and co-align with actin filaments. Understanding normal tau functions will be important for identifying mechanisms of tau in neurodegenerative diseases such as Alzheimer's.
适当的肌动蛋白和微管(MT)细胞骨架的组织和动态对于轴突生长和导向期间生长锥的行为是必不可少的。已知微管相关蛋白 tau 在无细胞系统中介导肌动蛋白/MT 相互作用,但 tau 在调节活神经元中细胞骨架动力学的作用尚不清楚。我们使用来自金黄仓鼠()出生后第 0-2 天(P)的皮质神经元培养物来研究 tau 在轴突生长锥细胞骨架的组织和动态中的作用。在这里,我们使用固定生长锥的超分辨率显微镜,发现 tau 与 MT 和肌动蛋白丝共定位,并且还位于丝状伪足中的肌动蛋白丝束和动态 MT 之间的界面处,表明 tau 将这两种细胞骨架连接在一起。活细胞成像与 shRNA tau 敲低相结合的研究表明,降低 tau 的表达会破坏生长锥中央域中的 MT 束,使 MT 在过渡区的轨迹发生偏差,并阻止单个动态 MT 沿着肌动蛋白丝束延伸到生长锥丝状伪足中。用人类 tau 表达的挽救实验恢复了 MT 束,MT 渗透到生长锥的外围以及丝状伪足中的 MT 与肌动蛋白丝的紧密接近。重要的是,我们发现 tau 敲低减少了 Wnt5a 梯度中的轴突生长和生长锥的转向,可能是由于组织紊乱的 MT 未能延伸到外围区域并进入丝状伪足。这些结果表明 tau 在调节生长锥行为期间的细胞骨架组织和动态中起着重要作用。生长锥是生长轴突的运动尖端,其导向行为需要动态肌动蛋白和微管细胞骨架的相互作用。tau 是一种微管相关蛋白,可稳定神经元中的微管,并在无细胞系统中调节肌动蛋白-微管相互作用。在这里,我们首次使用超分辨率显微镜、活细胞成像和 tau 敲低,在活体轴突生长锥中表明 tau 对于微管束和微管对富含肌动蛋白的生长锥外围的探索很重要。重要的是,tau 敲低减少了轴突生长和生长锥的转向,这是由于组织紊乱的微管无法进入丝状伪足并与肌动蛋白丝平行对齐。了解正常的 tau 功能对于鉴定 tau 在神经退行性疾病(如阿尔茨海默病)中的作用机制将非常重要。