Kassaw Tessema K, Paton Andrew J, Peers Graham
Department of Biology, Colorado State University, Fort Collins, Colorado 80523, United States.
ACS Synth Biol. 2022 Jan 21;11(1):191-204. doi: 10.1021/acssynbio.1c00367. Epub 2022 Jan 11.
Chemically inducible gene expression systems have been an integral part of the advanced synthetic genetic circuit design and are employed for precise dynamic control over genetically engineered traits. However, the current systems for controlling transgene expression in most algae are limited to endogenous promoters that respond to different environmental factors. We developed a highly efficient, tunable, and reversible episome-based transcriptional control system in the model diatom alga, . We assessed the time- and dose-response dynamics of each expression system using a reporter protein (eYFP) as a readout. Using our circuit configuration, we found two inducible expression systems with a high dynamic range and confirmed the suitability of an episome expression platform for synthetic biological applications in diatoms. These systems are controlled by the presence of β-estradiol and digoxin. Addition of either chemical to transgenic strains activates transcription with a dynamic range of up to ∼180-fold and ∼90-fold, respectively. We demonstrated that our episome-based transcriptional control systems are tunable and reversible in a dose- and time-dependent manner. Using droplet digital polymerase chain reaction (PCR), we also confirmed that inducer-dependent transcriptional activation starts within minutes of inducer application without any detectable transcript in the uninduced controls. The system described here expands the molecular and synthetic biology toolkits in algae and will facilitate future gene discovery and metabolic engineering efforts.
化学诱导基因表达系统一直是先进的合成遗传电路设计的一个组成部分,并被用于对基因工程性状进行精确的动态控制。然而,目前大多数藻类中用于控制转基因表达的系统仅限于对内源性启动子的利用,这些启动子对不同的环境因素做出反应。我们在模式硅藻中开发了一种高效、可调且可逆的基于附加体的转录控制系统。我们使用报告蛋白(eYFP)作为读数评估了每个表达系统的时间和剂量响应动态。利用我们的电路配置,我们发现了两个具有高动态范围的诱导表达系统,并证实了附加体表达平台适用于硅藻中的合成生物学应用。这些系统由β-雌二醇和地高辛的存在来控制。向转基因菌株中添加任何一种化学物质都会激活转录,动态范围分别高达约180倍和约90倍。我们证明了我们基于附加体的转录控制系统在剂量和时间依赖性方面是可调且可逆的。使用液滴数字聚合酶链反应(PCR),我们还证实了诱导剂依赖性转录激活在施加诱导剂后的几分钟内开始,而在未诱导的对照中没有任何可检测到的转录本。这里描述的系统扩展了藻类中的分子和合成生物学工具包,并将促进未来的基因发现和代谢工程研究。