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A novel synthetic sRNA promoting protein overexpression in cell-free systems
Authors:Imen Tanniche  Hadi Nazem-Bokaee  David M Scherr  Sara Schlemmer  Ryan S Senger
Institution:1. Department of Biological Systems Engineering, Virginia Tech, Blacksburg, Virginia, USA;2. Department of Biological Systems Engineering, Virginia Tech, Blacksburg, Virginia, USA

CSIRO, Black Mountain Science & Innovation Park, Canberra, Australia

Contribution: Conceptualization (equal), Formal analysis (equal), ​Investigation (equal), Methodology (equal), Writing - review & editing (supporting);3. Department of Biological Systems Engineering, Virginia Tech, Blacksburg, Virginia, USA

Contribution: ​Investigation (supporting);4. Department of Chemical Engineering, Virginia Tech, Blacksburg, Virginia, USA

Contribution: ​Investigation (supporting)

Abstract:Bacterial small RNAs (sRNAs) that regulate gene expression have been engineered for uses in synthetic biology and metabolic engineering. Here, we designed a novel non-Hfq-dependent sRNA scaffold that uses a modifiable 20 nucleotide antisense binding region to target mRNAs selectively and influence protein expression. The system was developed for regulation of a fluorescent reporter in vivo using Escherichia coli, but the system was found to be more responsive and produced statistically significant results when applied to protein synthesis using in vitro cell-free systems (CFS). Antisense binding sequences were designed to target not only translation initiation regions but various secondary structures in the reporter mRNA. Targeting a high-energy stem loop structure and the 3′ end of mRNA yielded protein expression knock-downs that approached 70%. Notably, targeting a low-energy stem structure near a potential RNase E binding site led to a statistically significant 65% increase in protein expression (p < 0.05). These results were not obtainable in vivo, and the underlying mechanism was translated from the reporter system to achieve better than 75% increase in recombinant diaphorase expression in a CFS. It is possible the designs developed here can be applied to improve/regulate expression of other proteins in a CFS.
Keywords:cell-free protein synthesis  cell-free system  diaphorase  high-energy stem loop  low-energy stem loop  RNA scaffold  RNase E binding site  small RNA
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