Department of Chemical and Biological Engineering, Princeton University, Princeton, New Jersey 08544, United States.
Department of Molecular Biology. Princeton University, Princeton, New Jersey 08544, United States.
ACS Synth Biol. 2021 Aug 20;10(8):2060-2075. doi: 10.1021/acssynbio.1c00229. Epub 2021 Aug 4.
Bidirectional optogenetic control of yeast gene expression has great potential for biotechnological applications. Our group has developed optogenetic inverter circuits that activate transcription using darkness, as well as amplifier circuits that reach high expression levels under limited light. However, because both types of circuits harness Gal4p and Gal80p from the galactose (GAL) regulon they cannot be used simultaneously. Here, we apply the Q System, a transcriptional activator/inhibitor system from , to build circuits in that are inducible using quinic acid, darkness, or blue light. We develop light-repressed OptoQ-INVRT circuits that initiate darkness-triggered transcription within an hour of induction, as well as light-activated OptoQ-AMP circuits that achieve up to 39-fold induction. The Q System does not exhibit crosstalk with the GAL regulon, allowing coutilization of OptoQ-AMP circuits with previously developed OptoINVRT circuits. As a demonstration of practical applications in metabolic engineering, we show how simultaneous use of these circuits can be used to dynamically control both growth and production to improve acetoin production, as well as enable light-tunable co-production of geraniol and linalool, two terpenoids implicated in the hoppy flavor of beer. OptoQ-AMP and OptoQ-INVRT circuits enable simultaneous optogenetic signal amplification and inversion, providing powerful additions to the yeast optogenetic toolkit.
酵母基因表达的双向光遗传学控制在生物技术应用中有很大的潜力。我们的小组开发了光遗传学反向电路,利用黑暗激活转录,以及在有限的光下达到高表达水平的放大器电路。然而,由于这两种类型的电路都利用了来自半乳糖(GAL)调控子的 Gal4p 和 Gal80p,因此它们不能同时使用。在这里,我们应用了来自 Q System,一种来自 的转录激活/抑制系统,在 中构建可以用奎尼酸、黑暗或蓝光诱导的电路。我们开发了光抑制的 OptoQ-INVRT 电路,该电路可以在诱导后一小时内启动由黑暗触发的转录,以及光激活的 OptoQ-AMP 电路,其诱导倍数高达 39 倍。Q System 与 GAL 调控子没有串扰,允许与先前开发的 OptoINVRT 电路同时使用 OptoQ-AMP 电路。作为代谢工程中实际应用的演示,我们展示了如何同时使用这些电路来动态控制生长和生产,以提高乙酰丁酮的产量,以及实现香叶醇和芳樟醇的光可调共生产,这两种萜类化合物与啤酒中的啤酒花风味有关。OptoQ-AMP 和 OptoQ-INVRT 电路能够同时进行光遗传学信号放大和反转,为酵母光遗传学工具包提供了强大的补充。