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High-throughput gene expression analysis at the level of single proteins using a microfluidic turbidostat and automated cell tracking

机译:使用微流控和自动细胞跟踪在单个蛋白质水平上进行高通量基因表达分析

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摘要

We have developed a method combining microfluidics, time-lapsed single-molecule microscopy and automated image analysis allowing for the observation of an excess of 3000 complete cell cycles of exponentially growing Escherichia coli cells per experiment. The method makes it possible to analyse the rate of gene expression at the level of single proteins over the bacterial cell cycle. We also demonstrate that it is possible to count the number of non-specifically DNA binding LacI–Venus molecules using short excitation light pulses. The transcription factors are localized on the nucleoids in the cell and appear to be uniformly distributed on chromosomal DNA. An increase in the expression of LacI is observed at the beginning of the cell cycle, possibly because some gene copies are de-repressed as a result of partitioning inequalities at cell division. Finally, a size–growth rate uncertainty relation is observed where cells living in rich media vary more in the length at birth than in generation time, and the opposite is true for cells living in poorer media.
机译:我们已经开发出一种结合微流控技术,延时单分子显微镜和自动图像分析的方法,每个实验可以观察到超过3000个指数生长期大肠杆菌细胞的完整细胞周期。该方法使得可以分析整个细菌细胞周期中单个蛋白质水平的基因表达速率。我们还证明了使用短激发光脉冲可以计数非特异性结合DNA的LacI-金星分子的数量。转录因子位于细胞中的核苷上,似乎均匀分布在染色体DNA上。在细胞周期开始时观察到LacI表达的增加,可能是由于一些基因拷贝由于细胞分裂中的分配不均而受到抑制。最后,观察到大小增长速率不确定性关系,富媒体中生活的细胞出生时的长度变化比世代时间变化大,而贫媒体中生活的细胞则相反。

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