Depletion of SNORA33 Abolishes ψ of 28S-U4966 and Affects the Ribosome Translational Apparatus

Author:

Chabronova Alzbeta1ORCID,van den Akker Guus1ORCID,Housmans Bas A. C.1,Caron Marjolein M. J.1ORCID,Cremers Andy1,Surtel Don A. M.1,Peffers Mandy J.2ORCID,van Rhijn Lodewijk W.1,Marchand Virginie3ORCID,Motorin Yuri34ORCID,Welting Tim J. M.15

Affiliation:

1. Laboratory for Experimental Orthopedics, Department of Orthopedic Surgery, Maastricht University, 6229 HX Maastricht, The Netherlands

2. Institute of Life Course and Medical Sciences, University of Liverpool, Liverpool L8 7TX, UK

3. UAR2008 IBSLor CNRS-INSERM-Université de Lorraine, F54000 Nancy, France

4. UMR7365 IMOPA, CNRS-Université de Lorraine, F54000 Nancy, France

5. Laboratory for Experimental Orthopedics, Department of Orthopedic Surgery, Maastricht University Medical Center+ (MUMC+), 6229 HX Maastricht, The Netherlands

Abstract

Eukaryotic ribosomes are complex molecular nanomachines translating genetic information from mRNAs into proteins. There is natural heterogeneity in ribosome composition. The pseudouridylation (ψ) of ribosomal RNAs (rRNAs) is one of the key sources of ribosome heterogeneity. Nevertheless, the functional consequences of ψ-based ribosome heterogeneity and its relevance for human disease are yet to be understood. Using HydraPsiSeq and a chronic disease model of non-osteoarthritic primary human articular chondrocytes exposed to osteoarthritic synovial fluid, we demonstrated that the disease microenvironment is capable of instigating site-specific changes in rRNA ψ profiles. To investigate one of the identified differential rRNA ψ sites (28S-ψ4966), we generated SNORA22 and SNORA33 KO SW1353 cell pools using LentiCRISPRv2/Cas9 and evaluated the ribosome translational capacity by 35S-Met/Cys incorporation, assessed the mode of translation initiation and ribosomal fidelity using dual luciferase reporters, and assessed cellular and ribosomal proteomes by LC-MS/MS. We uncovered that the depletion of SNORA33, but not SNORA22, reduced 28S-ψ4966 levels. The resulting loss of 28S-ψ4966 affected ribosomal protein composition and function and led to specific changes in the cellular proteome. Overall, our pioneering findings demonstrate that cells dynamically respond to disease-relevant changes in their environment by altering their rRNA pseudouridylation profiles, with consequences for ribosome function and the cellular proteome relevant to human disease.

Funder

Stichting de Weijerhorst (Bewegen zonder Pijn

ReumaNederland

Wellcome Trust Clinical Intermediate Fellowship

MRC Versus Arthritis Centre for Integrated Research into Musculoskeletal Ageing

Publisher

MDPI AG

Subject

Inorganic Chemistry,Organic Chemistry,Physical and Theoretical Chemistry,Computer Science Applications,Spectroscopy,Molecular Biology,General Medicine,Catalysis

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