Manna Tapas, Honnappa Srinivas, Steinmetz Michel O, Wilson Leslie
Department of Molecular, Cellular, and Developmental Biology and the Neuroscience Research Institute, University of California Santa Barbara, Santa Barbara, California 93106, USA.
Biochemistry. 2008 Jan 15;47(2):779-86. doi: 10.1021/bi701912g. Epub 2007 Dec 15.
The EB1+TIP protein family and its binding partners track growing plus ends of microtubules in cells and are thought to regulate their dynamics. Here we determined the effects of EB1 and the N-terminal CAP-Gly domain (p150n) of one of its major binding partners, p150Glued, both separately and together, on the dynamic instability parameters at plus ends of purified steady-state microtubules. With EB1 alone, the shortening rate, the extent of shortening, and the catastrophe frequency were suppressed in the absence of significant effects on the growth rate or rescue frequency. The effects of EB1 on dynamics were significantly different when p150n was added together with EB1. The rate and extent of shortening and the catastrophe frequency were suppressed 3-4 times more strongly than with EB1 alone. In addition, the EB1-p150n complex increased the rescue frequency and the mean length the microtubules grew, parameters that were not significantly affected by EB1 alone. Similarly, deletion of EB1's C-terminal tail, which is a crucial binding region for p150n, significantly increased the ability of EB1 to suppress shortening dynamics. EB1 by itself bound along the length of the microtubules with 1 mol of EB1 dimer bound per approximately 12 mol of tubulin dimer. Approximately twice the amount of EB1 was recruited to the microtubules in the presence of p150n. Our results indicate that inactivation of EB1's flexible C-terminal tail significantly changes EB1's ability to modulate microtubule dynamics. They further suggest that p150Glued may activate and thereby facilitate the recruitment of EB1 to the tips of microtubules to regulate their dynamics.
EB1+TIP蛋白家族及其结合伴侣追踪细胞中微管不断生长的正端,并被认为可调节其动力学。在此,我们分别及共同测定了EB1及其主要结合伴侣之一p150Glued的N端CAP-Gly结构域(p150n)对纯化的稳态微管正端动态不稳定性参数的影响。单独使用EB1时,缩短速率、缩短程度和灾变频率受到抑制,而对生长速率或救援频率无显著影响。当p150n与EB1一起添加时,EB1对动力学的影响显著不同。缩短的速率和程度以及灾变频率的抑制比单独使用EB1时强3-4倍。此外,EB1-p150n复合物增加了救援频率和微管生长的平均长度,而这些参数单独使用EB1时无显著影响。同样,缺失EB1的C端尾巴(p150n的关键结合区域)显著增强了EB1抑制缩短动力学的能力。EB1自身沿着微管长度结合,每约12摩尔微管蛋白二聚体结合1摩尔EB1二聚体。在存在p150n的情况下,募集到微管上的EB1量约为原来的两倍。我们的结果表明,EB1灵活的C端尾巴失活会显著改变EB1调节微管动力学的能力。结果还表明,p150Glued可能激活并因此促进EB1募集到微管尖端以调节其动力学。