RqcH and RqcP catalyze processive poly-alanine synthesis in a reconstituted ribosome-associated quality control system

Author:

Takada Hiraku123,Crowe-McAuliffe Caillan4,Polte Christine4,Sidorova Zhanna Yu56,Murina Victoriia23,Atkinson Gemma C7,Konevega Andrey L587,Ignatova Zoya4ORCID,Wilson Daniel N4ORCID,Hauryliuk Vasili23910ORCID

Affiliation:

1. Faculty of Life Sciences, Kyoto Sangyo University, Kamigamo, Motoyama, Kita-ku, Kyoto 603-8555, Japan

2. Department of Molecular Biology, Umeå University, 90187 Umeå, Sweden

3. Laboratory for Molecular Infection Medicine Sweden (MIMS), Umeå University, 90187 Umeå, Sweden

4. Institute for Biochemistry and Molecular Biology, University of Hamburg, 20146 Hamburg, Germany

5. Petersburg Nuclear Physics Institute named by B.P. Konstantinov of National Research Centre “Kurchatov Institute”, 188300 Gatchina, Russia

6. Russian Research Institute of Hematology and Transfusiology of FMBA, 191024 Saint Petersburg, Russia

7. National Research Centre “Kurchatov Institute”, 123182 Moscow, Russia

8. Peter the Great St. Petersburg Polytechnic University, 195251 Saint Petersburg, Russia

9. Department of Experimental Medical Science, Lund University, 221 00 Lund, Sweden

10. University of Tartu, Institute of Technology, 50411 Tartu, Estonia

Abstract

Abstract In the cell, stalled ribosomes are rescued through ribosome-associated protein quality-control (RQC) pathways. After splitting of the stalled ribosome, a C-terminal polyalanine ‘tail’ is added to the unfinished polypeptide attached to the tRNA on the 50S ribosomal subunit. In Bacillus subtilis, polyalanine tailing is catalyzed by the NEMF family protein RqcH, in cooperation with RqcP. However, the mechanistic details of this process remain unclear. Here we demonstrate that RqcH is responsible for tRNAAla selection during RQC elongation, whereas RqcP lacks any tRNA specificity. The ribosomal protein uL11 is crucial for RqcH, but not RqcP, recruitment to the 50S subunit, and B. subtilis lacking uL11 are RQC-deficient. Through mutational mapping, we identify critical residues within RqcH and RqcP that are important for interaction with the P-site tRNA and/or the 50S subunit. Additionally, we have reconstituted polyalanine-tailing in vitro and can demonstrate that RqcH and RqcP are necessary and sufficient for processivity in a minimal system. Moreover, the in vitro reconstituted system recapitulates our in vivo findings by reproducing the importance of conserved residues of RqcH and RqcP for functionality. Collectively, our findings provide mechanistic insight into the role of RqcH and RqcP in the bacterial RQC pathway.

Funder

Swedish Research Council

Deutsche Forschungsgemeinschaft

Ragnar Söderbergs stiftelse

Umeå Centre for Microbial Research

European Union

Horizon 2020

Estonian Research Council

Knut and Alice Wallenberg Foundation

Deutsche Zentrum für Luft- und Raumfahrt

Publisher

Oxford University Press (OUP)

Subject

Genetics

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