Panda D, Goode B L, Feinstein S C, Wilson L
Department of Biological Sciences, University of California, Santa Barbara 93106, USA.
Biochemistry. 1995 Sep 5;34(35):11117-27. doi: 10.1021/bi00035a017.
Tau is a neuronal microtubule-associated protein that plays an important role in stabilizing axonal microtubules and maintaining neuronal processes. To investigate the mechanisms by which tau performs these functions, we have determined the actions of full-length adult tau and tau peptides corresponding to two different microtubule-binding domains of tau (the first repeat, R1, VRSKIGSTENLKHQPGGG, and the first interrepeat, R1-R2 IR, KVQIINKK) on the growing and shortening dynamics at the plus ends of individual microtubules at steady state. Tau suppressed steady-state microtubule dynamics at very low molar ratios of tau to tubulin. At the lowest ratios examined (tau:tubulin ratios of 1:175 and 1:85), suppression of dynamics occurred in the absence of a detectable change in polymer mass. Tau reduced the mean rate and extent of shortening and, in contrast to previous work carried out under conditions of net polymer gain, tau also suppressed the mean rate and extent of growing. Tau also strongly increased the rescue frequency, it moderately suppressed the catastrophe frequency and it strongly increased the percentage of total time that the microtubules spent in an attenuated (pause) state, neither growing nor shortening detectably. In addition, both the R1 and R1-R2 IR tau peptides suppressed steady-state microtubule dynamics in a sequence-specific manner and in a manner that was qualitatively indistinguishable from full-length tau. The data provide significant support for a mechanism in which the binding of tau to individual tubulin subunits in microtubules induces a conformational change that strengthens inter-tubulin bonding.
Tau是一种与神经元微管相关的蛋白质,在稳定轴突微管和维持神经元突起方面发挥着重要作用。为了研究tau执行这些功能的机制,我们确定了全长成年tau以及与tau的两个不同微管结合结构域相对应的tau肽(第一个重复序列,R1,VRSKIGSTENLKHQPGGG,和第一个重复序列间区域,R1-R2 IR,KVQIINKK)对单个微管正端在稳态下生长和缩短动力学的影响。在tau与微管蛋白的摩尔比非常低时,tau抑制了稳态微管动力学。在所检测的最低比例下(tau:微管蛋白比例为1:175和1:85),在聚合物质量没有可检测变化的情况下发生了动力学抑制。Tau降低了缩短的平均速率和程度,并且与先前在净聚合物增加条件下进行的工作相反,tau还抑制了生长的平均速率和程度。Tau还强烈增加了拯救频率,适度抑制了灾难频率,并强烈增加了微管处于衰减(暂停)状态(既不生长也不可检测地缩短)的总时间百分比。此外,R1和R1-R2 IR tau肽均以序列特异性方式抑制稳态微管动力学,其方式与全长tau在质量上无法区分。这些数据为一种机制提供了重要支持,即tau与微管中单个微管蛋白亚基的结合会诱导构象变化,从而加强微管蛋白间的结合。