McGory Jessica M, Barcelos Dylan M, Verma Vikash, Maresca Thomas J
bioRxiv. 2023 May 9:2023.05.07.539709. doi: 10.1101/2023.05.07.539709.
Kinetochores connect chromosomes and spindle microtubules to maintain genomic integrity through cell division. Crosstalk between the minus-end directed motor dynein and kinetochore-microtubule attachment factors promotes accurate chromosome segregation through a poorly understood pathway. Here we identify a physical linkage between the intrinsically disordered protein Spc105 (KNL1 orthologue) and dynein using an optogenetic oligomerization assay. Core pools of the checkpoint protein BubR1 and the adaptor complex RZZ mediate the connection of Spc105 to dynein. Furthermore, a minimal segment of Spc105 that contains regions with a propensity to multimerize and binding motifs for Bub1 and BubR1 is sufficient to functionally link Spc105 to RZZ and dynein. Deletion of the minimal region from Spc105 reduces recruitment of its binding partners to bioriented kinetochores and causes chromosome mis-segregation. Restoration of normal chromosome segregation and localization of BubR1 and RZZ requires both protein binding motifs and higher-order oligomerization of Spc105. Together, our results reveal that higher-order multimerization of Spc105 is required to recruit a core pool of RZZ that modulates microtubule attachment stability to promote accurate chromosome segregation.
动粒连接染色体和纺锤体微管,以在细胞分裂过程中维持基因组完整性。负端定向马达动力蛋白与动粒-微管附着因子之间的相互作用通过一条尚不清楚的途径促进精确的染色体分离。在这里,我们使用光遗传学寡聚化分析确定了内在无序蛋白Spc105(KNL1直系同源物)与动力蛋白之间的物理联系。检查点蛋白BubR1和衔接复合体RZZ的核心库介导了Spc105与动力蛋白的连接。此外,Spc105的一个最小片段,包含有倾向于多聚化的区域以及Bub1和BubR1的结合基序,足以在功能上将Spc105与RZZ和动力蛋白连接起来。从Spc105中删除最小区域会减少其结合伙伴向双定向动粒的募集,并导致染色体错误分离。恢复正常的染色体分离以及BubR1和RZZ的定位需要Spc105的蛋白质结合基序和高阶寡聚化。总之,我们的结果表明,Spc105的高阶多聚化是募集RZZ核心库所必需的,RZZ可调节微管附着稳定性以促进精确的染色体分离。