Yamamoto A, West R R, McIntosh J R, Hiraoka Y
Kansai Advanced Research Center, Communications Research Laboratory, Kobe 651-2401, Japan.
J Cell Biol. 1999 Jun 14;145(6):1233-49. doi: 10.1083/jcb.145.6.1233.
Meiotic recombination requires pairing of homologous chromosomes, the mechanisms of which remain largely unknown. When pairing occurs during meiotic prophase in fission yeast, the nucleus oscillates between the cell poles driven by astral microtubules. During these oscillations, the telomeres are clustered at the spindle pole body (SPB), located at the leading edge of the moving nucleus and the rest of each chromosome dangles behind. Here, we show that the oscillatory nuclear movement of meiotic prophase is dependent on cytoplasmic dynein. We have cloned the gene encoding a cytoplasmic dynein heavy chain of fission yeast. Most of the cells disrupted for the gene show no gross defect during mitosis and complete meiosis to form four viable spores, but they lack the nuclear movements of meiotic prophase. Thus, the dynein heavy chain is required for these oscillatory movements. Consistent with its essential role in such nuclear movement, dynein heavy chain tagged with green fluorescent protein (GFP) is localized at astral microtubules and the SPB during the movements. In dynein-disrupted cells, meiotic recombination is significantly reduced, indicating that the dynein function is also required for efficient meiotic recombination. In accordance with the reduced recombination, which leads to reduced crossing over, chromosome missegregation is increased in the mutant. Moreover, both the formation of a single cluster of centromeres and the colocalization of homologous regions on a pair of homologous chromosomes are significantly inhibited in the mutant. These results strongly suggest that the dynein-driven nuclear movements of meiotic prophase are necessary for efficient pairing of homologous chromosomes in fission yeast, which in turn promotes efficient meiotic recombination.
减数分裂重组需要同源染色体配对,但其机制在很大程度上仍不清楚。在裂殖酵母减数分裂前期发生配对时,细胞核在星状微管驱动下在细胞两极之间振荡。在这些振荡过程中,端粒聚集在位于移动细胞核前缘的纺锤体极体(SPB)处,每条染色体的其余部分则悬在后面。在这里,我们表明减数分裂前期的振荡性核运动依赖于细胞质动力蛋白。我们克隆了编码裂殖酵母细胞质动力蛋白重链的基因。大多数该基因被破坏的细胞在有丝分裂和完成减数分裂形成四个可存活孢子的过程中没有明显缺陷,但它们缺乏减数分裂前期的核运动。因此,动力蛋白重链是这些振荡运动所必需的。与其在这种核运动中的重要作用一致,标记有绿色荧光蛋白(GFP)的动力蛋白重链在运动过程中定位于星状微管和SPB。在动力蛋白被破坏的细胞中,减数分裂重组显著减少,这表明动力蛋白功能对于有效的减数分裂重组也是必需的。与重组减少导致交叉减少一致,突变体中染色体错分离增加。此外,突变体中着丝粒单簇的形成以及一对同源染色体上同源区域的共定位均受到显著抑制。这些结果强烈表明,减数分裂前期动力蛋白驱动的核运动对于裂殖酵母中同源染色体的有效配对是必要的,而这反过来又促进了有效的减数分裂重组。