Department of Biosystems Science and Engineering (D-BSSE), ETH-Zürich, Mattenstrasse 26, Basel, 4058, Switzerland.
Nat Commun. 2018 Aug 30;9(1):3521. doi: 10.1038/s41467-018-05882-2.
Many natural transcription factors are regulated in a pulsatile fashion, but it remains unknown whether synthetic gene expression systems can benefit from such dynamic regulation. Here we find, using a fast-acting, optogenetic transcription factor in Saccharomyces cerevisiae, that dynamic pulsatile signals reduce cell-to-cell variability in gene expression. We then show that by encoding such signals into a single input, expression mean and variability can be independently tuned. Further, we construct a light-responsive promoter library and demonstrate how pulsatile signaling also enables graded multi-gene regulation at fixed expression ratios, despite differences in promoter dose-response characteristics. Pulsatile regulation can thus lead to beneficial functional behaviors in synthetic biological systems, which previously required laborious optimization of genetic parts or the construction of synthetic gene networks.
许多天然转录因子以脉冲方式调节,但目前尚不清楚合成基因表达系统是否能受益于这种动态调节。在这里,我们使用酿酒酵母中的一种快速作用的光遗传学转录因子发现,动态脉冲信号降低了基因表达的细胞间变异性。然后,我们展示了如何通过将这种信号编码到单个输入中,独立地调整表达平均值和可变性。此外,我们构建了一个光响应启动子文库,并证明了尽管启动子剂量反应特性存在差异,脉冲信号如何也能够在固定表达比的情况下实现分级多基因调控。因此,脉冲调节可以在合成生物系统中产生有益的功能行为,而这些行为以前需要费力地优化遗传部件或构建合成基因网络。