Ebina Hirohisa, Ji Liang, Sato Masamitsu
Laboratory of Cytoskeletal Logistics, Department of Life Science and Medical Bioscience, Graduate School of Advanced Science and Engineering Waseda Research Institute for Science and Engineering, Waseda University, TWIns, 2-2 Wakamatsucho, Shinjuku-ku, Tokyo 162-8480, Japan.
Department of Biophysics and Biochemistry, Graduate School of Science, University of Tokyo, 7-3-1 Hongo, Bunkyo-ku, Tokyo 113-0033, Japan.
Biol Open. 2019 Oct 24;8(10):bio045716. doi: 10.1242/bio.045716.
Microtubules in the mitotic spindle are organised by microtubule-associated proteins. In the late stage of mitosis, spindle microtubules are robustly organised through bundling by the antiparallel microtubule bundler Ase1/PRC1. In early mitosis, however, it is not well characterised as to whether spindle microtubules are actively bundled, as Ase1 does not particularly localise to the spindle at that stage. Here we show that the conserved microtubule-associated protein CLASP (fission yeast Peg1/Cls1) facilitates bundling of spindle microtubules in early mitosis. The mutant displayed a fragile spindle with unbundled microtubules, which eventually resulted in collapse of the metaphase spindle and abnormal segregation of chromosomes. Peg1 is known to be recruited to the spindle by Ase1 to stabilise antiparallel microtubules in late mitosis. However, we demonstrate that the function of Peg1 in early mitosis does not rely on Ase1. The unbundled spindle phenotype of the mutant was not seen in the mutant, and Peg1 preferentially localised to the spindle even in early mitosis unlike Ase1. Moreover, artificial overexpression of Ase1 in the mutant partially suppressed unbundled microtubules. We thus conclude that Peg1 bundles microtubules in early mitosis, in a distinct manner from its conventional Ase1-dependent functions in other cell cycle stages.
有丝分裂纺锤体中的微管由微管相关蛋白组织。在有丝分裂后期,纺锤体微管通过反平行微管成束蛋白Ase1/PRC1的成束作用而得到稳固组织。然而,在有丝分裂早期,由于Ase1在该阶段并不特别定位于纺锤体,所以纺锤体微管是否被主动成束还没有得到很好的表征。在此我们表明,保守的微管相关蛋白CLASP(裂殖酵母Peg1/Cls1)在有丝分裂早期促进纺锤体微管的成束。该突变体显示出一个纺锤体脆弱且微管未成束的情况,最终导致中期纺锤体崩溃和染色体异常分离。已知Peg1在有丝分裂后期被Ase1招募到纺锤体以稳定反平行微管。然而,我们证明Peg1在有丝分裂早期的功能并不依赖于Ase1。该突变体的纺锤体微管未成束表型在该突变体中未出现,并且与Ase1不同,即使在有丝分裂早期Peg1也优先定位于纺锤体。此外,在该突变体中人工过表达Ase1可部分抑制微管未成束的情况。因此我们得出结论,Peg1在有丝分裂早期以一种与其在其他细胞周期阶段中传统的依赖Ase1的功能不同的方式使微管成束。