2′-O-ribose methylation levels of ribosomal RNA distinguish different types of growth arrest in human dermal fibroblasts

Author:

Yang Guohuan123,Schmid-Siegel Maximilian45ORCID,Heissenberger Clemens23,Kos-Braun Isabelle C.1,Prechtl Martina4,Meca-Laguna Gabriel45ORCID,Rocha Marta45,Wagner-Schrittwieser Anja4ORCID,Pils Vera235,Meixner Barbara23,Tav Koray45,Hengstschläger Markus4ORCID,Grillari Johannes2367ORCID,Koš Martin1ORCID,Schosserer Markus23457ORCID

Affiliation:

1. , Heidelberg University 1 Biochemistry Center (BZH) , 69120 Heidelberg , Germany

2. Institute of Molecular Biotechnology 2 , Department of Biotechnology , , 1190 Vienna , Austria

3. University of Natural Resources and Life Sciences 2 , Department of Biotechnology , , 1190 Vienna , Austria

4. Institute of Medical Genetics, Center for Pathobiochemistry and Genetics, Medical University of Vienna 3 , 1090 Vienna , Austria

5. Christian Doppler Laboratory for Skin Multimodal Imaging of Aging and Senescence 4 , 1090 Vienna , Austria

6. Ludwig Boltzmann Institute of Traumatology 5 , 1200 Vienna , Austria

7. Austrian Cluster for Tissue Regeneration 6 , 1200 Vienna , Austria

Abstract

ABSTRACT The 2′-O-methylation (2′-O-Me) of ribosomal RNA (rRNA) shows plasticity that is potentially associated with cell phenotypes. We used RiboMeth-seq profiling to reveal growth arrest-specific 2′-O-Me patterns in primary human dermal fibroblasts from three different donors. We exposed cells to hydrogen peroxide to induce cellular senescence and to high cell densities to promote quiescence by contact inhibition. We compared both modes of cell cycle arrest to proliferating cells and could indeed distinguish these conditions by their overall 2′-O-Me patterns. Methylation levels at a small fraction of sites showed plasticity and correlated with the expression of specific small nucleolar RNAs (snoRNAs) but not with expression of fibrillarin. Moreover, we observed subtle senescence-associated alterations in ribosome biogenesis. Knockdown of the snoRNA SNORD87, which acts as a guide for modification of a hypermethylated position in non-proliferating cells, was sufficient to boost cell proliferation. Conversely, depletion of SNORD88A, SNORD88B and SNORD88C, which act as guides for modification of a hypomethylated site, caused decreased proliferation without affecting global protein synthesis or apoptosis. Taken together, our findings provide evidence that rRNA modifications can be used to distinguish and potentially influence specific growth phenotypes of primary cells.

Funder

China Scholarship Council

Deutsche Forschungsgemeinschaft

Herzfelder'sche Familienstiftung

Austrian Science Fund

Hevolution

American Foundation for Aging Research

Medical University of Vienna

National Foundation for Research, Technology and Development, Austria

Federal Ministry for Digital and Economic Affairs

CHANEL Parfums et Beauté

Christian Doppler Research Association

Publisher

The Company of Biologists

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