Ribosome-associated Complex Binds to Ribosomes in Close Proximity of Rpl31 at the Exit of the Polypeptide Tunnel in Yeast

Author:

Peisker Kristin123,Braun Daniel12,Wölfle Tina12,Hentschel Jendrik12,Fünfschilling Ursula4,Fischer Gunter4,Sickmann Albert5,Rospert Sabine12

Affiliation:

1. *Institute of Biochemistry and Molecular Biology, ZBMZ, University of Freiburg, D-79104 Freiburg, Germany;

2. Centre for Biological Signalling Studies (BIOSS), University of Freiburg, D-79104 Freiburg, Germany;

3. Fakultät für Biologie, University of Freiburg, D-79104 Freiburg, Germany;

4. Max Planck Research Unit for Enzymology of Protein Folding, D-06120 Halle/Saale, Germany;

5. Department of Proteomics, Institute for Analytical Sciences, D-44139 Dortmund, Germany

Abstract

Ribosome-associated complex (RAC) consists of the Hsp40 homolog Zuo1 and the Hsp70 homolog Ssz1. The chaperone participates in the biogenesis of newly synthesized polypeptides. Here we have identified yeast Rpl31, a component of the large ribosomal subunit, as a contact point of RAC at the polypeptide tunnel exit. Rpl31 is encoded by RPL31a and RPL31b, two closely related genes. Δrpl31aΔrpl31b displayed slow growth and sensitivity to low as well as high temperatures. In addition, Δrpl31aΔrpl31b was highly sensitive toward aminoglycoside antibiotics and suffered from defects in translational fidelity. With the exception of sensitivity at elevated temperature, the phenotype resembled yeast strains lacking one of the RAC subunits or Rpl39, another protein localized at the tunnel exit. Defects of Δrpl31aΔrpl31bΔzuo1 did not exceed that of Δrpl31aΔrpl31b or Δzuo1. However, the combined deletion of RPL31a, RPL31b, and RPL39 was lethal. Moreover, RPL39 was a multicopy suppressor, whereas overexpression of RAC failed to rescue growth defects of Δrpl31aΔrpl31b. The findings are consistent with a model in that Rpl31 and Rpl39 independently affect a common ribosome function, whereas Rpl31 and RAC are functionally interdependent. Rpl31, while not essential for binding of RAC to the ribosome, might be involved in proper function of the chaperone complex.

Publisher

American Society for Cell Biology (ASCB)

Subject

Cell Biology,Molecular Biology

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