Mitotic spindle dynamics in Drosophila.

Ingrid Brust-Mascher, Jonathan M Scholey
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引用次数: 28

Abstract

Mitosis, the process by which the replicated chromosomes are segregated equally into daughter cells, has been studied for over a century. Drosophila melanogaster is an ideal organism for this research. Drosophila embryos are well suited to image mitosis, because during cycles 10-13 nuclei divide rapidly at the surface of the embryo, but mitotic cells during larval stages and spermatocytes are also used for the study of mitosis. Drosophila can be easily maintained, many mutant stocks exist, and transgenic flies expressing mutated or fluorescently labeled proteins can be made. In addition, the genome has been completed and RNA interference can be used in Drosophila tissue culture cells. Here, we review our current understanding of spindle dynamics, looking at the experiments and quantitative modeling on which it is based. Many molecular players in the Drosophila mitotic spindle are similar to those in mammalian spindles, so findings in Drosophila can be extended to other organisms.

果蝇有丝分裂纺锤体动力学。
有丝分裂,即复制的染色体平等地分离成子细胞的过程,已经被研究了一个多世纪。黑腹果蝇是这项研究的理想生物。果蝇胚胎非常适合图像有丝分裂,因为在周期10-13期间,细胞核在胚胎表面快速分裂,但幼虫期的有丝分裂细胞和精母细胞也用于有丝分裂的研究。果蝇很容易维持,存在许多突变体,并且可以制造表达突变或荧光标记蛋白的转基因果蝇。此外,基因组已经完成,RNA干扰可以在果蝇组织培养细胞中使用。在这里,我们回顾了我们目前对主轴动力学的理解,看看实验和定量建模的基础。果蝇有丝分裂纺锤体中的许多分子与哺乳动物的纺锤体相似,因此在果蝇中的发现可以推广到其他生物。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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