Sainsbury Laboratory, University of Cambridge, Cambridge, CB2 1LR, UK.
Microsoft Research, 21 Station Rd, Cambridge, CB1 2FB, UK.
Nat Commun. 2020 Feb 19;11(1):950. doi: 10.1038/s41467-020-14431-9.
Stochastic pulsing of gene expression can generate phenotypic diversity in a genetically identical population of cells, but it is unclear whether it has a role in the development of multicellular systems. Here, we show how stochastic pulsing of gene expression enables spatial patterns to form in a model multicellular system, Bacillus subtilis bacterial biofilms. We use quantitative microscopy and time-lapse imaging to observe pulses in the activity of the general stress response sigma factor σ in individual cells during biofilm development. Both σ and sporulation activity increase in a gradient, peaking at the top of the biofilm, even though σ represses sporulation. As predicted by a simple mathematical model, increasing σ expression shifts the peak of sporulation to the middle of the biofilm. Our results demonstrate how stochastic pulsing of gene expression can play a key role in pattern formation during biofilm development.
基因表达的随机脉冲可以在遗传上相同的细胞群体中产生表型多样性,但尚不清楚它是否在多细胞系统的发育中起作用。在这里,我们展示了基因表达的随机脉冲如何使模型多细胞系统枯草芽孢杆菌细菌生物膜中形成空间模式。我们使用定量显微镜和延时成像来观察生物膜发育过程中单个细胞中普遍应激反应σ因子σ活性的脉冲。尽管σ抑制孢子形成,但σ和孢子形成活性都呈梯度增加,在生物膜的顶部达到峰值。正如一个简单的数学模型所预测的那样,增加σ表达会将孢子形成的峰值转移到生物膜的中间。我们的结果表明,基因表达的随机脉冲如何在生物膜发育过程中的模式形成中发挥关键作用。