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Digital logic circuits in yeast with CRISPR-dCas9 NOR gates

机译:具有CRISPR-dCas9或非门的酵母中的数字逻辑电路

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摘要

Natural genetic circuits enable cells to make sophisticated digital decisions. Building equally complex synthetic circuits in eukaryotes remains difficult, however, because commonly used components leak transcriptionally, do not arbitrarily interconnect or do not have digital responses. Here, we designed dCas9-Mxi1-based NOR gates in Saccharomyces cerevisiae that allow arbitrary connectivity and large genetic circuits. Because we used the chromatin remodeller Mxi1, our gates showed minimal leak and digital responses. We built a combinatorial library of NOR gates that directly convert guide RNA (gRNA) inputs into gRNA outputs, enabling the gates to be ‘wired' together. We constructed logic circuits with up to seven gRNAs, including repression cascades with up to seven layers. Modelling predicted the NOR gates have effectively zero transcriptional leak explaining the limited signal degradation in the circuits. Our approach enabled the largest, eukaryotic gene circuits to date and will form the basis for large, synthetic, cellular decision-making systems.
机译:自然遗传电路使细胞能够做出复杂的数字决策。然而,在真核生物中建立同样复杂的合成电路仍然很困难,因为常用的组件会转录转录,不会随意互连或没有数字响应。在这里,我们在酿酒酵母中设计了基于dCas9-Mxi1的NOR门,该门允许任意连接和较大的遗传电路。因为我们使用了染色质重塑器Mxi1,所以我们的门显示出最小的泄漏和数字响应。我们建立了NOR门的组合库,可直接将指导RNA(gRNA)输入转换为gRNA输出,从而使门可以“连接”在一起。我们构建了多达七个gRNA的逻辑电路,包括多达七个层的阻抑级联。建模预测的NOR门实际上具有零转录泄漏,这说明了电路中有限的信号衰减。我们的方法使迄今为止最大的真核基因电路成为可能,并将成为大型合成细胞决策系统的基础。

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