Tuning Ultrasensitivity in Genetic Logic Gates using Antisense RNA Feedback

Nicolai Engelmann, Maik Molderings, Heinz Koeppl
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Abstract

This work provides a study of a possible improvement of existing inverting genetic logic gates by introduction of a common sequestration reaction between their input and output chemical species. As a mechanism of study, we use antisense RNAs (asRNAs). The asRNAs are expressed with the existing messenger RNA (mRNA) of a logic gate in a single transcript and target mRNAs of adjacent gates, creating a feedback of the protein-mediated repression that implements the core function of the logic gates. The extended transcripts then share a common sequestration reaction mediated by the cellular host's RNA metabolism. This sequestration consists of double-stranded RNA (dsRNA) formation by asRNA and adjacent mRNA and subsequent degradation by the host. Numerical and stochastic analysis suggests that the feedback increases the steepness of the gate's transition region, reduces the leakage, and can potentially be used to adjust the transition location. To leverage these effects, we demonstrate how design parameters can be tuned to obtain desired dose-response curves and how arbitrary circuits can be assembled using the improved gates.
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利用反义 RNA 反馈调节遗传逻辑门的超灵敏度
这项研究通过在输入和输出化学物质之间引入共同的螯合反应,对现有的反相遗传逻辑门进行了可能的改进。作为研究机制,我们使用了反义 RNA(asRNA)。反义 RNA 与逻辑门现有的信使 RNA(mRNA)一起以单个转录本的形式表达,并以相邻逻辑门的 mRNA 为目标,从而形成由蛋白质介导的抑制反馈,实现逻辑门的核心功能。然后,这些扩展的转录本在细胞宿主的 RNA 新陈代谢介导下发生共同的螯合反应。这种螯合反应包括由 asRNA 和相邻 mRNA 形成的双链 RNA(dsRNA)以及宿主随后进行的降解。数值和随机分析表明,反馈会增加门过渡区域的陡度,减少泄漏,并有可能用于调整过渡位置。为了充分利用这些效应,我们演示了如何调整设计参数以获得所需的剂量反应曲线,以及如何使用改进的门组装任意电路。
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