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通过调节相对脉冲时间进行组合基因调控。

Combinatorial gene regulation by modulation of relative pulse timing.

作者信息

Lin Yihan, Sohn Chang Ho, Dalal Chiraj K, Cai Long, Elowitz Michael B

机构信息

Howard Hughes Medical Institute, California Institute of Technology, Pasadena, California 91125, USA.

Division of Biology and Biological Engineering, California Institute of Technology, Pasadena, California 91125, USA.

出版信息

Nature. 2015 Nov 5;527(7576):54-8. doi: 10.1038/nature15710. Epub 2015 Oct 14.

Abstract

Studies of individual living cells have revealed that many transcription factors activate in dynamic, and often stochastic, pulses within the same cell. However, it has remained unclear whether cells might exploit the dynamic interaction of these pulses to control gene expression. Here, using quantitative single-cell time-lapse imaging of Saccharomyces cerevisiae, we show that the pulsatile transcription factors Msn2 and Mig1 combinatorially regulate their target genes through modulation of their relative pulse timing. The activator Msn2 and repressor Mig1 showed pulsed activation in either a temporally overlapping or non-overlapping manner during their transient response to different inputs, with only the non-overlapping dynamics efficiently activating target gene expression. Similarly, under constant environmental conditions, where Msn2 and Mig1 exhibit sporadic pulsing, glucose concentration modulated the temporal overlap between pulses of the two factors. Together, these results reveal a time-based mode of combinatorial gene regulation. Regulation through relative signal timing is common in engineering and neurobiology, and these results suggest that it could also function broadly within the signalling and regulatory systems of the cell.

摘要

对单个活细胞的研究表明,许多转录因子在同一细胞内以动态且通常是随机的脉冲形式激活。然而,细胞是否可能利用这些脉冲的动态相互作用来控制基因表达仍不清楚。在这里,通过对酿酒酵母进行定量单细胞延时成像,我们表明脉动转录因子Msn2和Mig1通过调节它们的相对脉冲时间来组合调控其靶基因。激活剂Msn2和阻遏物Mig1在对不同输入的瞬时反应中以时间上重叠或不重叠的方式呈现脉冲激活,只有不重叠的动态变化才能有效地激活靶基因表达。同样,在恒定的环境条件下,Msn2和Mig1呈现出零星的脉冲,葡萄糖浓度调节了这两个因子脉冲之间的时间重叠。这些结果共同揭示了一种基于时间的组合基因调控模式。通过相对信号时间进行调控在工程学和神经生物学中很常见,这些结果表明它也可能在细胞的信号传导和调节系统中广泛发挥作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1037/4870307/78b312b49b93/nihms722821f1.jpg

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