Computation-guided redesign of promoter specificity of a bacterial RNA polymerase.

Xiangyang Liu, Anthony T Meger, Thomas Gillis, Jonah O'Mara Schwartz, Balendra Sah, Robert Landick, Srivatsan Raman
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Abstract

The ability to regulate genetic circuits and metabolic pathways is central to cellular control. The existing toolkit is predominantly comprised of local transcription regulators that are unsuitable for exerting control at a global genome-wide scale. Bacterial sigma factors are ideal global regulators as together they direct the RNA polymerase to thousands of transcription sites. Here, we redesigned the promoter specificity of the E. coli housekeeping sigma factor, sigma-70, toward five orthogonal promoter targets not recognized by the native sigma-70. These orthogonal sigma-70 factors were developed by screening a pooled library of computationally designed variants of the -35 DNA recognition helix, each tailored to a specific target promoter. In the redesigned sigma factors new target-specific interactions facilitate new promoter recognition. Activity of the top performing redesigned sigma-70s varied across the promoter targets and ranged from 17% to 77% of native sigma-70 on its canonical active promoter. These orthogonal sigma factors represent a new suite of regulators for global transcriptional control.

一种细菌RNA聚合酶启动子特异性的计算引导重新设计。
调节遗传回路和代谢途径的能力是细胞控制的核心。现有的工具箱主要由局部转录调控因子组成,不适合在全球基因组范围内施加控制。细菌sigma因子是理想的全局调节因子,它们共同指导RNA聚合酶到数千个转录位点。在这里,我们重新设计了大肠杆菌管家sigma因子sigma-70的启动子特异性,针对5个不被天然sigma-70识别的正交启动子目标。这些正交sigma-70因子是通过筛选计算设计的-35 DNA识别螺旋变体的汇集库而开发的,每个变体都针对特定的目标启动子。在重新设计的sigma因子中,新的目标特异性相互作用促进了新的启动子识别。表现最好的重新设计的sigma-70的活性在不同的启动子目标上有所不同,其典型活性启动子的活性范围为原生sigma-70的17%至77%。这些正交的sigma因子代表了一套新的全球转录控制调控因子。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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