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首页> 外文期刊>American Journal of Physiology >Cell cycle progression and cell division are sensitive to hypoxia in Drosophila melanogaster embryos.
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Cell cycle progression and cell division are sensitive to hypoxia in Drosophila melanogaster embryos.

机译:果蝇黑胚胚胎的细胞周期进程和细胞分裂对缺氧敏感。

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We and others recently demonstrated that Drosophila melanogaster embryos arrest development and embryonic cells cease dividing when they are deprived of O2. To further characterize the behavior of these embryos in response to O2 deprivation and to define the O2-sensitive checkpoints in the cell cycle, embryos undergoing nuclear cycles 3-13 were subjected to O2 deprivation and examined by confocal microscopy under control, hypoxic, and reoxygenation conditions. In vivo, real-time analysis of embryos carrying green fluorescent protein-kinesin demonstrated that cells arrest at two major points of the cell cycle, either at the interphase (before DNA duplication) or at metaphase, depending on the cell cycle phase at which O2 deprivation was induced. Immunoblot analysis of embryos whose cell divisions are synchronized by inducible String (cdc25 homolog) demonstrated that cyclin B was degraded during low O2 conditions in interphase-arrested embryos but not in those arrested in metaphase. Embryos resumed cell cycle activity within ~20 min of reoxygenation, with very little apparent change in cell cycle kinetics. We conclude that there are specific points during the embryonic cell cycle that are sensitive to the O2 level in D. melanogaster. Given the fact that O2 deprivation also influences the growth and development of other species, we suggest that similar hypoxia-sensitive cell cycle checkpoints may also exist in mammalian cells.
机译:我们和其他人最近表明,果蝇的果蝇胚胎发育受阻,而胚胎细胞被剥夺氧气后便停止分裂。为了进一步表征这些胚胎对O2剥夺的行为并定义细胞周期中对O2敏感的检查点,对经历了核周期3-13的胚胎进行O2剥夺,并在控制,低氧和复氧条件下进行共聚焦显微镜检查条件。在体内,对带有绿色荧光蛋白-驱动蛋白的胚胎的实时分析表明,细胞会在细胞周期的两个主要点停滞,无论是在中间期(DNA复制之前)还是中期,这取决于氧气在细胞周期的哪个阶段剥夺被诱导。免疫印迹分析了其细胞分裂被诱导型String(cdc25同源物)同步的胚胎,表明细胞周期蛋白B在低氧条件下在相间停滞的胚胎中降解,但在中期停滞的胚胎中未降解。胚胎在重新充氧后约20分钟内恢复了细胞周期活动,而细胞周期动力学几乎没有明显变化。我们得出结论,胚胎细胞周期中有一些特定点对黑腹果蝇中的O2水平敏感。鉴于O2剥夺也影响其他物种的生长和发育的事实,我们建议在哺乳动物细胞中也可能存在类似的对缺氧敏感的细胞周期检查点。

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