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Generation and filtering of gene expression noise by the bacterial cell cycle

机译:细菌细胞周期产生和过滤基因表达噪声

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Gene expression within cells is known to fluctuate stochastically in time. However, the origins of gene expression noise remain incompletely understood. The bacterial cell cycle has been suggested as one source, involving chromosome replication, exponential volume growth, and various other changes in cellular composition. Elucidating how these factors give rise to expression variations is important to models of cellular homeostasis, fidelity of signal transmission, and cell-fate decisions. Using single-cell time-lapse microscopy, we measured cellular growth as well as fluctuations in the expression rate of a fluorescent protein and its concentration. We found that, within the population, the mean expression rate doubles throughout the cell cycle with a characteristic cell cycle phase dependent shape which is different for slow and fast growth rates. At low growth rate, we find the mean expression rate was initially flat, and then rose approximately linearly by a factor two until the end of the cell cycle. The mean concentration fluctuated at low amplitude with sinusoidal-like dependence on cell cycle phase. Traces of individual cells were consistent with a sudden two-fold increase in expression rate, together with other non-cell cycle noise. A model was used to relate the findings and to explain the cell cycle-induced variations for different chromosomal positions. We found that the bacterial cell cycle contribution to expression noise consists of two parts: a deterministic oscillation in synchrony with the cell cycle and a stochastic component caused by variable timing of gene replication. Together, they cause half of the expression rate noise. Concentration fluctuations are partially suppressed by a noise cancelling mechanism that involves the exponential growth of cellular volume. A model explains how the functional form of the concentration oscillations depends on chromosome position.
机译:已知细胞内的基因表达随时间随机波动。但是,基因表达噪声的起源仍不完全了解。已经提出细菌细胞周期是一种来源,涉及染色体复制,指数体积增长以及细胞组成的各种其他变化。阐明这些因素如何引起表达变异对于细胞稳态,信号传递的保真度和细胞命运决定的模型很重要。使用单细胞延时显微镜,我们测量了细胞的生长以及荧光蛋白的表达速率及其浓度的波动。我们发现,在整个种群中,平均表达率在整个细胞周期中翻倍,具有特征性的细胞周期相位依赖性形状,这对于缓慢和快速的生长速率是不同的。在低的生长速率下,我们发现平均表达速率最初是平稳的,然后大约线性增加了两倍,直到细胞周期结束。平均浓度以正弦曲线样依赖于细胞周期相位以低幅度波动。单个细胞的痕迹与表达率突然增加两倍,以及其他非细胞周期噪声一致。使用模型关联发现结果并解释细胞周期诱导的针对不同染色体位置的变异。我们发现细菌细胞周期对表达噪声的贡献包括两个部分:与细胞周期同步的确定性振荡和由基因复制的可变时机引起的随机成分。它们一起造成了一半的表达速率噪声。通过涉及细胞体积指数增长的噪声消除机制,可以部分抑制浓度波动。一个模型解释了浓度振荡的功能形式如何取决于染色体位置。

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