School of Biological Sciences, University of Bristol, Bristol, UK.
Department of Biochemistry and Synthetic Metabolism, Max Planck Institute for Terrestrial Microbiology, Marburg, Germany.
Nat Commun. 2021 Mar 19;12(1):1738. doi: 10.1038/s41467-021-21995-7.
Strictly controlled inducible gene expression is crucial when engineering biological systems where even tiny amounts of a protein have a large impact on function or host cell viability. In these cases, leaky protein production must be avoided, but without affecting the achievable range of expression. Here, we demonstrate how the central dogma offers a simple solution to this challenge. By simultaneously regulating transcription and translation, we show how basal expression of an inducible system can be reduced, with little impact on the maximum expression rate. Using this approach, we create several stringent expression systems displaying >1000-fold change in their output after induction and show how multi-level regulation can suppress transcriptional noise and create digital-like switches between 'on' and 'off' states. These tools will aid those working with toxic genes or requiring precise regulation and propagation of cellular signals, plus illustrate the value of more diverse regulatory designs for synthetic biology.
当工程生物系统时,严格控制诱导基因表达至关重要,因为即使是少量的蛋白质也会对功能或宿主细胞活力产生重大影响。在这些情况下,必须避免漏蛋白产生,但又不能影响可实现的表达范围。在这里,我们展示了中心法则如何为这一挑战提供了一个简单的解决方案。通过同时调节转录和翻译,我们展示了如何降低诱导系统的基础表达水平,而对最大表达速率的影响很小。使用这种方法,我们创建了几个严格的表达系统,在诱导后其输出的变化超过 1000 倍,并展示了多级调节如何抑制转录噪声并在“开”和“关”状态之间创建类似数字的开关。这些工具将有助于那些处理有毒基因或需要精确调节和传播细胞信号的人,同时也说明了更具多样性的调控设计对于合成生物学的价值。