eIF4A1-dependent mRNAs employ purine-rich 5’UTR sequences to activate localised eIF4A1-unwinding through eIF4A1-multimerisation to facilitate translation

Author:

Schmidt Tobias1ORCID,Dabrowska Adrianna1234ORCID,Waldron Joseph A1,Hodge Kelly1,Koulouras Grigorios1,Gabrielsen Mads5,Munro June1,Tack David C6,Harris Gemma7,McGhee Ewan1,Scott David789ORCID,Carlin Leo M12,Huang Danny12,Le Quesne John12,Zanivan Sara12,Wilczynska Ania12,Bushell Martin12

Affiliation:

1. Cancer Research UK Beatson Institute , Garscube Estate, Switchback Road , Glasgow  G61 1BD, UK

2. School of Cancer Sciences, University of Glasgow , Garscube Estate, Switchback Road , Glasgow  G61 1QH, UK

3. Department of Urology, University of California , San Francisco , CA  94158, USA

4. Helen Diller Family Comprehensive Cancer Center, University of California , San Francisco, San Francisco , CA  94158, USA

5. MVLS Structural Biology and Biophysical Characterisation Facility, University of Glasgow, University Avenue , Glasgow  G12 8QQ, UK

6. Spectrum Health Office of Research and Education, Spectrum Health System , 15 Michigan Street NE , Grand Rapids , MI  49503, USA

7. Research Complex at Harwell, Rutherford Appleton Laboratory , Harwell Campus , Didcot  OX11 0FA, UK

8. ISIS Spallation Neutron and Muon Source, Rutherford Appleton Laboratory , Harwell Campus , Didcot OX11 0QX , UK

9. School of Biosciences, University of Nottingham , Sutton Bonington Campus , Sutton Bonington  LE12 5RD, UK

Abstract

AbstractAltered eIF4A1 activity promotes translation of highly structured, eIF4A1-dependent oncogene mRNAs at root of oncogenic translational programmes. It remains unclear how these mRNAs recruit and activate eIF4A1 unwinding specifically to facilitate their preferential translation. Here, we show that single-stranded RNA sequence motifs specifically activate eIF4A1 unwinding allowing local RNA structural rearrangement and translation of eIF4A1-dependent mRNAs in cells. Our data demonstrate that eIF4A1-dependent mRNAs contain AG-rich motifs within their 5’UTR which specifically activate eIF4A1 unwinding of local RNA structure to facilitate translation. This mode of eIF4A1 regulation is used by mRNAs encoding components of mTORC-signalling and cell cycle progression, and renders these mRNAs particularly sensitive to eIF4A1-inhibition. Mechanistically, we show that binding of eIF4A1 to AG-rich sequences leads to multimerization of eIF4A1 with eIF4A1 subunits performing distinct enzymatic activities. Our structural data suggest that RNA-binding of multimeric eIF4A1 induces conformational changes in the RNA resulting in an optimal positioning of eIF4A1 proximal to the RNA duplex enabling efficient unwinding. Our data proposes a model in which AG-motifs in the 5’UTR of eIF4A1-dependent mRNAs specifically activate eIF4A1, enabling assembly of the helicase-competent multimeric eIF4A1 complex, and positioning these complexes proximal to stable localised RNA structure allowing ribosomal subunit scanning.

Funder

Cancer Research UK

CRUK

European Research Council

European Union's Horizon 2020 research and innovation programme

BBSRC

Science and Technology Funding Council

MRC Toxicology Unit programme

University of Glasgow

Publisher

Oxford University Press (OUP)

Subject

Genetics

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