Maddox Paul S, Stemple Jennifer K, Satterwhite Lisa, Salmon E D, Bloom Kerry
Department of Biology, University of North Carolina, Chapel Hill, Chapel Hill, NC 27599-3280, USA.
Curr Biol. 2003 Aug 19;13(16):1423-8. doi: 10.1016/s0960-9822(03)00547-5.
The budding yeast shmoo tip is a model system for analyzing mechanisms coupling force production to microtubule plus-end polymerization/depolymerization. Dynamic plus ends of astral microtubules interact with the shmoo tip in mating yeast cells, positioning nuclei for karyogamy. We have used live-cell imaging of GFP fusions to identify proteins that couple dynamic microtubule plus ends to the shmoo tip. We find that Kar3p, a minus end-directed kinesin motor protein, is required, whereas the other cytoplasmic motors, dynein and the kinesins Kip2p and Kip3p, are not. In the absence of Kar3p, attached microtubule plus ends released from the shmoo tip when they switched to depolymerization. Furthermore, microtubules in cells expressing kar3-1, a mutant that results in rigor binding to microtubules [2], were stabilized specifically at shmoo tips. Imaging of Kar3p-GFP during mating revealed that fluorescence at the shmoo tip increased during periods of microtubule depolymerization. These data are the first to localize the activity of a minus end-directed kinesin at the plus ends of microtubules. We propose a model in which Kar3p couples depolymerizing microtubule plus ends to the cell cortex and the Bim1p-Kar9p protein complex maintains attachment during microtubule polymerization. In support of this model, analysis of Bim1p-GFP at the shmoo tip results in a localization pattern complementary to that of Kar3p-GFP.
出芽酵母的shmoo尖端是用于分析将力产生与微管正端聚合/解聚相耦合机制的模型系统。星状微管的动态正端与交配酵母细胞中的shmoo尖端相互作用,为核融合定位细胞核。我们利用绿色荧光蛋白(GFP)融合蛋白的活细胞成像来鉴定将动态微管正端与shmoo尖端耦合的蛋白质。我们发现,负端定向驱动蛋白Kar3p是必需的,而其他细胞质驱动蛋白,动力蛋白以及驱动蛋白Kip2p和Kip3p则不是。在没有Kar3p的情况下,附着的微管正端在转变为解聚时会从shmoo尖端释放。此外,在表达kar3-1(一种导致与微管紧密结合的突变体)的细胞中,微管在shmoo尖端特异性地稳定下来。交配过程中对Kar3p-GFP的成像显示,在微管解聚期间,shmoo尖端的荧光增加。这些数据首次将负端定向驱动蛋白的活性定位在微管的正端。我们提出了一个模型,其中Kar3p将解聚的微管正端与细胞皮层耦合,而Bim1p-Kar9p蛋白复合物在微管聚合期间维持附着。为支持该模型,对shmoo尖端的Bim1p-GFP分析产生了与Kar3p-GFP互补的定位模式。