Ishii R, Shimizu T
Graduate School of Science, Hokkaido University, Sapporo, 060, Japan.
Dev Biol. 1997 Sep 1;189(1):49-56. doi: 10.1006/dbio.1997.8653.
The first cleavage in the Tubifex egg is unequal and involves a monastral mitotic apparatus (MA), which remains at the egg's center from metaphase through telophase. The monastral form of the MA is thought to arise due to the involvement of a single maternal centrosome in the MA assembly (R. Ishii and T. Shimizu, Dev. Growth Differ. 37, 687-701, 1995). To investigate the mechanisms that generate asymmetry in this division, we have examined the cleavage patterns in eggs that are manipulated to inherit two centrosomes during the first mitosis. When eggs are prevented from extruding polar bodies, centrosomes located at both poles of the first meiotic spindle persist into the first mitosis without showing any sign of duplication and generate astral spindle poles. Eggs that inherit these centrosomes exhibit two types of MA configurations, viz., an amphiastral MA and twin monastral MAs. We found that eggs with amphiastral MAs undergo bipolar equal divisions, while those with twin MAs divide into three cells simultaneously (tripolar divisions). The amphiastral MAs are located at the egg's center and their astral poles are organized symmetrically, suggesting that Tubifex eggs are unable to generate asymmetry in the amphiastral MAs during the first mitosis. These results suggest that inheritance of a single centrosome during the first mitosis is critical for Tubifex eggs to undergo unequal cleavage. We propose that the cortical mechanisms for MA asymmetry are lacking in the Tubifex egg during the first mitosis.
颤蚓卵的第一次卵裂是不均等的,涉及一个单星有丝分裂器(MA),该有丝分裂器从前期到末期都位于卵的中心。MA的单星形式被认为是由于单个母体中心体参与了MA组装而产生的(石井润和清水隆,《发育、生长与分化》37卷,687 - 701页,1995年)。为了研究在这次分裂中产生不对称性的机制,我们检查了在第一次有丝分裂期间被操控继承两个中心体的卵的卵裂模式。当阻止卵排出极体时,位于第一次减数分裂纺锤体两极的中心体持续到第一次有丝分裂,没有显示出任何复制的迹象,并产生星体纺锤体极。继承这些中心体的卵表现出两种类型的MA构型,即双星体MA和双单星体MA。我们发现具有双星体MA的卵进行双极均等分裂,而具有双单星体MA的卵同时分裂成三个细胞(三极分裂)。双星体MA位于卵的中心,它们的星体极呈对称排列,这表明颤蚓卵在第一次有丝分裂期间无法在双星体MA中产生不对称性。这些结果表明,第一次有丝分裂期间单个中心体的遗传对于颤蚓卵进行不均等卵裂至关重要。我们提出,颤蚓卵在第一次有丝分裂期间缺乏MA不对称性的皮质机制。