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- Synthetic Systems Biology I
- (116a) A Systems Strategy for Engineering Families of Orthogonal RNA Transcription Regulators for Engineering Gene Networks
The pT181 attenuator is an RNA sequence in the 5’ untranslated region of a transcript that regulates transcription elongation through structural changes mediated by antisense-RNA binding. This binding is initiated between a loop structure of the attenuator, and the complementary loop structure of the antisense RNA. Therefore, we hypothesized that new orthogonal chimeric attenuators could be engineered by replacing the RNA-loop sensing region of the pT181 attenuator with RNA-loop sensing regions from a number of naturally occurring antisense RNA-mediated translation regulatory mechanisms. A systematic investigation of fusion position with three different translation systems that utilize loop-loop interactions led to the addition of two orthogonal chimeric attenuators to the existing library. In addition, we created an orthogonal chimeric fusion from a translation mechanism that utilizes a loop-linear RNA-RNA interaction mechanism. Structural analysis of both functioning and non-functioning chimeric attenuators with a high-throughput chemical probing technique called SHAPE-Seq revealed insights into the structural requirements of the chimeric junction. This work is leading to the development of RNA structure/function design rules that will allow the creation of a bioinformatic systems approach to search through natural RNA networks to computationally design larger numbers of orthogonal RNA transcription regulators. This will expand our ability to construct larger synthetic RNA networks, as well as contribute to a systems-level understanding of RNA structure/function modularity that will lead to a deeper understanding of RNA’s role in biology.
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