CRISPR-RNAa: targeted activation of translation using dCas13 fusions to translation initiation factors

Author:

Otoupal Peter B123ORCID,Cress Brady F45ORCID,Doudna Jennifer A45678910,Schoeniger Joseph S11

Affiliation:

1. Biomanufacturing and Biomaterials Department, Sandia National Laboratories , Livermore, CA, USA

2. Deconstruction Division, Joint BioEnergy Institute, Lawrence Berkeley National Laboratory , Emeryville, CA, USA

3. Agile BioFoundry, Department of Energy , Emeryville, CA, USA

4. Innovative Genomics Institute, University of California , Berkeley, CA, USA

5. Department of Molecular and Cell Biology, University of California , Berkeley, CA, USA

6. California Institute for Quantitative Biosciences, University of California , Berkeley, CA, USA

7. Department of Chemistry, University of California , Berkeley, CA, USA

8. Howard Hughes Medical Institute, University of California , Berkeley, CA, USA

9. Molecular Biophysics & Integrated Bioimaging Division, Lawrence Berkeley National Laboratory , Berkeley, CA, USA

10. Gladstone Institutes, University of California , San Francisco, CA, USA

11. Systems Biology Department, Sandia National Laboratories , Livermore, CA, USA

Abstract

Abstract Tools for synthetically controlling gene expression are a cornerstone of genetic engineering. CRISPRi and CRISPRa technologies have been applied extensively for programmable modulation of gene transcription, but there are few such tools for targeted modulation of protein translation rates. Here, we employ CRISPR-Cas13 as a programmable activator of translation. We develop a novel variant of the catalytically-deactivated Cas13d enzyme dCasRx by fusing it to translation initiation factor IF3. We demonstrate dCasRx-IF3’s ability to enhance expression 21.3-fold above dCasRx when both are targeted to the start of the 5′ untranslated region of mRNA encoding red fluorescent protein in Escherichia coli. Activation of translation is location-dependent, and we show dCasRx-IF3 represses translation when targeted to the ribosomal binding site, rather than enhancing it. We provide evidence that dCasRx-IF3 targeting enhances mRNA stability relative to dCasRx, providing mechanistic insights into how this new tool functions to enhance gene expression. We also demonstrate targeted upregulation of native LacZ 2.6-fold, showing dCasRx-IF3’s ability to enhance expression of endogenous genes. dCasRx-IF3 requires no additional host modification to influence gene expression. This work outlines a novel approach, CRISPR-RNAa, for post-transcriptional control of translation to activate gene expression.

Funder

Genomic Science Program, Office of Biological and Environmental Research

U.S. Department of Energy

Publisher

Oxford University Press (OUP)

Subject

Genetics

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