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首页> 外文期刊>Cytoskeleton >Automatic quantification of microtubule dynamics enables RNAi-screening of new mitotic spindle regulators.
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Automatic quantification of microtubule dynamics enables RNAi-screening of new mitotic spindle regulators.

机译:微管动态的自动量化使RNAi筛选新的有丝分裂主轴调节器。

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摘要

The genetic integrity of every organism depends on the faithful partitioning of its genome between two daughter cells in mitosis. In all eukaryotes, chromosome segregation requires the assembly of the mitotic spindle, a bipolar array of dynamic microtubules. Perturbations in microtubule dynamics affect spindle assembly and maintenance and ultimately result in aberrant cell divisions. To identify new regulators of microtubule dynamics within the hundreds of mitotic hits, reported in RNAi screens performed in C. elegans, Drosophila and mammalian tissue culture cells [Sonnichsen et al., 2005; Goshima et al., 2007; Neumann et al., 2010], we established a fast and quantitative assay to measure microtubule dynamics in living cells. Here we present a fully automated workflow from RNAi transfection, via image acquisition and data processing, to the quantitative characterization of microtubule behaviour. Candidate genes are knocked down by solid-phase reverse transfection with siRNA oligos in HeLa cells stably expressing EB3-EGFP, a microtubule plus end marker. Mitotic cells are selected using an automatic classifier [Conrad et al., 2011] and imaged on a spinning disk confocal microscope at high temporal and spatial resolution. The time-lapse movies are analysed using a multiple particle tracking software, developed in-house, that automatically detects microtubule plus ends, tracks microtubule growth events over consecutive frames and calculates growth speeds, lengths and lifetimes of the tracked microtubules. The entire assay provides a powerful tool to analyse the effect of essential mitotic genes on microtubule dynamics in living cells and to dissect their contribution in spindle assembly and maintenance.
机译:各种生物的遗传完整性取决于其在有丝分裂中两个子细胞之间的基因组的忠实分配。在所有真核生物中,染色体隔离需要组装有丝分裂主轴的动态微管的双极阵列。微管动力学的扰动会影响主轴组件和维护,最终导致异常的细胞分裂。为了识别数百种有丝分裂击中内的微管动态的新调节因子,在C.杆状杆菌,果蝇和哺乳动物组织培养细胞中进行的RNAi屏幕报告[Sonnichsen等,2005; Goshima等人,2007年; Neumann等人,2010],我们建立了一种快速和定量的测定来测量活细胞中的微管动态。在这里,我们通过图像采集和数据处理,从RNAi转染的完全自动化工作流程到微管行为的定量表征。通过用稳定表达EB3-EGFP的HeLa细胞中的SiRNA寡核苷酸通过固相逆转转染,通过表达EB3-EGFP,微管加上末端标记,通过固相逆转转染倒下候选基因。使用自动分类器[Conrad等人,2011]选择有丝分裂细胞并在高时和空间分辨率上在旋转盘共聚焦显微镜上成像。使用内部内部开发的多个粒子跟踪软件进行分析时间流逝电影,它自动检测微管加末端,在连续框架上追踪微管生长事件,并计算跟踪微管的生长速度,长度和寿命。整个测定提供了一种强大的工具,用于分析必需有丝分子基因对活细胞中微管动态的影响,并将其疏散在主轴组件和维护中的贡献。

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