Kwon Hye Jin, Park Ji Eun, Song Haiyu, Jang Chang-Young
Research Center for Cell Fate Control, College of Pharmacy, Sookmyung Women's University, Seoul 140-742, Republic of Korea.
Research Center for Cell Fate Control, College of Pharmacy, Sookmyung Women's University, Seoul 140-742, Republic of Korea
J Cell Sci. 2016 Jul 15;129(14):2719-25. doi: 10.1242/jcs.180109. Epub 2016 Jun 9.
Active turnover of spindle microtubules (MTs) for the formation of a bi-orientated spindle, chromosome congression and proper chromosome segregation is regulated by MT depolymerases such as the kinesin-13 family and the plus-end-tracking proteins (+TIPs). However, the control mechanisms underlying the spindle MT dynamics that are responsible for poleward flux at the minus end of MTs are poorly understood. Here, we show that Mdp3 (also known as MAP7D3) forms a complex with DDA3 (also known as PSRC1) and controls spindle dynamics at the minus end of MTs by inhibiting DDA3-mediated Kif2a recruitment to the spindle. Aberrant Kif2a activity at the minus end of spindle MTs in Mdp3-depleted cells decreased spindle stability and resulted in unaligned chromosomes in metaphase, lagging chromosomes in anaphase, and chromosome bridges in telophase and cytokinesis. Although they play opposing roles in minus-end MT dynamics, acting as an MT destabilizer and an MT stabilizer, respectively, DDA3 and Mdp3 did not affect the localization of each other. Thus, the DDA3 complex orchestrates MT dynamics at the MT minus end by fine-tuning the recruitment of Kif2a to regulate minus-end MT dynamics and poleward MT flux at the mitotic spindle.
纺锤体微管(MTs)的活跃周转对于形成双定向纺锤体、染色体汇聚和正确的染色体分离至关重要,这一过程受MT解聚酶(如驱动蛋白-13家族和正端追踪蛋白(+TIPs))的调控。然而,对于负责MT负端向极微管流的纺锤体MT动力学的控制机制,我们却知之甚少。在此,我们发现Mdp3(也称为MAP7D3)与DDA3(也称为PSRC1)形成复合物,并通过抑制DDA3介导的Kif2a向纺锤体的募集来控制MT负端的纺锤体动力学。在Mdp3缺失的细胞中,纺锤体MT负端的Kif2a活性异常降低了纺锤体的稳定性,导致中期染色体未对齐、后期染色体滞后以及末期和胞质分裂期出现染色体桥。尽管DDA3和Mdp3在负端MT动力学中发挥相反作用,分别作为MT去稳定剂和MT稳定剂,但它们并不影响彼此的定位。因此,DDA3复合物通过微调Kif2a的募集来协调MT负端的MT动力学,从而调节有丝分裂纺锤体的负端MT动力学和向极MT流。