School of Pharmaceutical Science and Technology, Tianjin University.
School of Pharmaceutical Science and Technology, Tianjin University;
J Vis Exp. 2022 Oct 18(188). doi: 10.3791/64539.
Synthetic gene Boolean gates and digital circuits have a broad range of applications, from medical diagnostics to environmental care. The discovery of the CRISPR-Cas systems and their natural inhibitors-the anti-CRISPR proteins (Acrs)-provides a new tool to design and implement in vivo gene digital circuits. Here, we describe a protocol that follows the idea of the "Design-Build-Test-Learn" biological engineering cycle and makes use of dCas9/dCas12a together with their corresponding Acrs to establish small transcriptional networks, some of which behave like Boolean gates, in Saccharomyces cerevisiae. These results point out the properties of dCas9/dCas12a as transcription factors. In particular, to achieve maximal activation of gene expression, dSpCas9 needs to interact with an engineered scaffold RNA that collects multiple copies of the VP64 activation domain (AD). In contrast, dCas12a shall be fused, at the C terminus, with the strong VP64-p65-Rta (VPR) AD. Furthermore, the activity of both Cas proteins is not enhanced by increasing the amount of sgRNA/crRNA in the cell. This article also explains how to build Boolean gates based on the CRISPR-dCas-Acr interaction. The AcrIIA4 fused hormone-binding domain of the human estrogen receptor is the core of a NOT gate responsive to β-estradiol, whereas AcrVAs synthesized by the inducible GAL1 promoter permits to mimic both YES and NOT gates with galactose as an input. In the latter circuits, AcrVA5, together with dLbCas12a, showed the best logic behavior.
合成基因布尔门和数字电路具有广泛的应用,从医学诊断到环境保护。CRISPR-Cas 系统及其天然抑制剂——抗 CRISPR 蛋白(Acrs)的发现为设计和实现体内基因数字电路提供了新工具。在这里,我们描述了一个遵循“设计-构建-测试-学习”生物工程循环思想的方案,并利用 dCas9/dCas12a 及其相应的 Acrs 在酿酒酵母中建立了一些类似于布尔门的小型转录网络。这些结果指出了 dCas9/dCas12a 作为转录因子的特性。特别是,为了实现基因表达的最大激活,dSpCas9 需要与一个工程化的支架 RNA 相互作用,该 RNA 收集多个 VP64 激活域(AD)的拷贝。相比之下,dCas12a 的 C 末端应与强 VP64-p65-Rta(VPR)AD 融合。此外,Cas 蛋白的活性不会通过增加细胞中 sgRNA/crRNA 的数量而增强。本文还介绍了如何基于 CRISPR-dCas-Acr 相互作用构建布尔门。AcrIIA4 与人雌激素受体的激素结合域融合是对β-雌二醇有反应的 NOT 门的核心,而由诱导型 GAL1 启动子合成的 AcrVAs 允许用半乳糖作为输入模拟 YES 和 NOT 门。在后一种电路中,AcrVA5 与 dLbCas12a 一起表现出最佳的逻辑行为。