粘蛋白
减数分裂
生物
染色体分离
姐妹染色单体
遗传学
减数分裂II
同源染色体
细胞生物学
动细胞
染色单体
染色体交叉
有丝分裂
染色体
基因
作者
Stefan Galander,Rachael Barton,Weronika E. Borek,Christos Spanos,David A. Kelly,Daniel Robertson,Juri Rappsilber,Adèle L. Marston
标识
DOI:10.1016/j.devcel.2019.04.003
摘要
Meiosis produces gametes through a specialized, two-step cell division, which is highly error prone in humans. Reductional meiosis I, where maternal and paternal chromosomes (homologs) segregate, is followed by equational meiosis II, where sister chromatids separate. Uniquely during meiosis I, sister kinetochores are monooriented and pericentromeric cohesin is protected. Here, we demonstrate that these key adaptations for reductional chromosome segregation are achieved through separable control of multiple kinases by the meiosis-I-specific budding yeast Spo13 protein. Recruitment of Polo kinase to kinetochores directs monoorientation, while independently, cohesin protection is achieved by containing the effects of cohesin kinases. Therefore, reductional chromosome segregation, the defining feature of meiosis, is established by multifaceted kinase control by a master regulator. The recent identification of Spo13 orthologs, fission yeast Moa1 and mouse MEIKIN, suggests that kinase coordination by a meiosis I regulator may be a general feature in the establishment of reductional chromosome segregation.
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