Rational design of eukaryotic riboswitches that up-regulate IRES-mediated translation initiation with high switching efficiency through a kinetic trapping mechanism in vitro

  1. Atsushi Ogawa
  1. Proteo-Science Center, Ehime University, Matsuyama, Ehime 790-8577, Japan
  1. Corresponding author: ogawa.atsushi.mf{at}ehime-u.ac.jp

Abstract

In general, riboswitches functioning through a cotranscriptional kinetic trapping mechanism (kt-riboswitches) show higher switching efficiencies in response to practical concentrations of their ligand molecules than eq-riboswitches, which function by an equilibrium mechanism. However, the former have been much more difficult to design due to their more complex mechanism. We here successfully developed a rational strategy for constructing eukaryotic kt-riboswitches that ligand-dependently enhance translation initiation mediated by an internal ribosome entry site (IRES). This was achieved both by utilizing some predicted structural features of a highly efficient bacterial kt-riboswitch identified through screening and by completely decoupling an aptamer domain from the IRES. Three kt-riboswitches optimized through this strategy, each responding to a different ligand, exhibited three- to sevenfold higher induction ratios (up to ∼90) than previously optimized eq-riboswitches regulating the same IRES-mediated translation in wheat germ extract. Because the IRES used functions well in various eukaryotic expression systems, these types of kt-riboswitches are expected to serve as major eukaryotic gene regulators based on RNA. In addition, the present strategy could be applied to the rational construction of other types of kt-riboswitches, including those functioning in bacterial expression systems.

Keywords

Footnotes

  • Abbreviations: UTR, untranslated region; EP, expression platform; IRES, internal ribosome entry site; eq-ON-riboswitch, up-regulating riboswitch functioning in an equilibrium mechanism; kt-ON-riboswitch, up-regulating riboswitch functioning in a kinetic trapping mechanism; RBS, ribosome binding site; IS, inhibitory stem; US, upper stem; LS, lower stem; PSIV, Plautia stali intestine virus; PC, positive control; WGE, wheat germ extract; cIVTT, coupled in vitro transcription/translation; aIRES, anti-IRES sequence; aaIRES, anti-aIRES sequence; MS, modulator sequence; 5SL, 5′ stem–loop; nLuc, nanoluciferase; FMN, flavin mononucleotide

  • Article is online at http://www.rnajournal.org/cgi/doi/10.1261/rna.079778.123.

  • Received July 20, 2023.
  • Accepted September 5, 2023.

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