Brown K D, Coulson R M, Yen T J, Cleveland D W
Department of Biological Chemistry, Johns Hopkins University School of Medicine, Baltimore, Maryland 21205.
J Cell Biol. 1994 Jun;125(6):1303-12. doi: 10.1083/jcb.125.6.1303.
CENP-E is a kinesin-like protein that binds to kinetochores through the early stages of mitosis, but after initiation of anaphase, it relocalizes to the overlapping microtubules in the midzone, ultimately concentration in the developing midbody. By immunoblotting of cells separated at various positions in the cell cycle using centrifugal elutriation, we show that CENP-E levels increase progressively across the cycle peaking at approximately 22,000 molecules/cell early in mitosis, followed by an abrupt (> 10 fold) loss at the end of mitosis. Pulse-labeling with [35S]methionine reveals that beyond a twofold increase in synthesis between G1 and G2, interphase accumulation results primarily from stabilization of CENP-E during S and G2. Despite localizing in the midbody during normal cell division, CENP-E loss at the end of mitosis is independent of cytokinesis, since complete blockage of division with cytochalasin has no affect on CENP-E loss at the M/G1 transition. Thus, like mitotic cyclins, CENP-E accumulation peaks before cell division, and it is specifically degraded at the end of mitosis. However, CENP-E degradation kinetically follows proteolysis of cyclin B in anaphase. Combined with cyclin A destruction before the end of metaphase, degradation of as yet unidentified components at the metaphase/anaphase transition, and cyclin B degradation at or after the anaphase transition, CENP-E destruction defines a fourth point in a mitotic cascade of timed proteolysis.
着丝粒蛋白E(CENP-E)是一种类似驱动蛋白的蛋白质,在有丝分裂早期通过与动粒结合,但在后期开始后,它重新定位于中区重叠的微管中,最终集中在发育中的中间体。通过使用离心淘析法对处于细胞周期不同位置的细胞进行免疫印迹分析,我们发现CENP-E水平在整个细胞周期中逐渐增加,在有丝分裂早期达到约22,000个分子/细胞的峰值,随后在有丝分裂结束时急剧下降(>10倍)。用[35S]甲硫氨酸脉冲标记显示,除了在G1期和G2期之间合成增加两倍外,间期积累主要是由于CENP-E在S期和G2期的稳定。尽管在正常细胞分裂过程中CENP-E定位于中间体,但有丝分裂结束时CENP-E的丢失与胞质分裂无关,因为用细胞松弛素完全阻断分裂对M/G1期转换时CENP-E的丢失没有影响。因此,与有丝分裂周期蛋白一样,CENP-E在细胞分裂前积累达到峰值,并在有丝分裂结束时被特异性降解。然而,CENP-E的降解在动力学上跟随后期细胞周期蛋白B的蛋白水解。结合中期结束前细胞周期蛋白A的降解、中期/后期转换时尚未鉴定成分的降解以及后期转换时或之后细胞周期蛋白B的降解,CENP-E的降解定义了有丝分裂定时蛋白水解级联中的第四个点。