Cargando…

Concerted modification of nucleotides at functional centers of the ribosome revealed by single-molecule RNA modification profiling

Nucleotides in RNA and DNA are chemically modified by numerous enzymes that alter their function. Eukaryotic ribosomal RNA (rRNA) is modified at more than 100 locations, particularly at highly conserved and functionally important nucleotides. During ribosome biogenesis, modifications are added at va...

Descripción completa

Detalles Bibliográficos
Autores principales: Bailey, Andrew D, Talkish, Jason, Ding, Hongxu, Igel, Haller, Duran, Alejandra, Mantripragada, Shreya, Paten, Benedict, Ares, Manuel
Formato: Online Artículo Texto
Lenguaje:English
Publicado: eLife Sciences Publications, Ltd 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9045821/
https://www.ncbi.nlm.nih.gov/pubmed/35384842
http://dx.doi.org/10.7554/eLife.76562
_version_ 1784695399537180672
author Bailey, Andrew D
Talkish, Jason
Ding, Hongxu
Igel, Haller
Duran, Alejandra
Mantripragada, Shreya
Paten, Benedict
Ares, Manuel
author_facet Bailey, Andrew D
Talkish, Jason
Ding, Hongxu
Igel, Haller
Duran, Alejandra
Mantripragada, Shreya
Paten, Benedict
Ares, Manuel
author_sort Bailey, Andrew D
collection PubMed
description Nucleotides in RNA and DNA are chemically modified by numerous enzymes that alter their function. Eukaryotic ribosomal RNA (rRNA) is modified at more than 100 locations, particularly at highly conserved and functionally important nucleotides. During ribosome biogenesis, modifications are added at various stages of assembly. The existence of differently modified classes of ribosomes in normal cells is unknown because no method exists to simultaneously evaluate the modification status at all sites within a single rRNA molecule. Using a combination of yeast genetics and nanopore direct RNA sequencing, we developed a reliable method to track the modification status of single rRNA molecules at 37 sites in 18 S rRNA and 73 sites in 25 S rRNA. We use our method to characterize patterns of modification heterogeneity and identify concerted modification of nucleotides found near functional centers of the ribosome. Distinct, undermodified subpopulations of rRNAs accumulate upon loss of Dbp3 or Prp43 RNA helicases, suggesting overlapping roles in ribosome biogenesis. Modification profiles are surprisingly resistant to change in response to many genetic and acute environmental conditions that affect translation, ribosome biogenesis, and pre-mRNA splicing. The ability to capture single-molecule RNA modification profiles provides new insights into the roles of nucleotide modifications in RNA function.
format Online
Article
Text
id pubmed-9045821
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher eLife Sciences Publications, Ltd
record_format MEDLINE/PubMed
spelling pubmed-90458212022-04-28 Concerted modification of nucleotides at functional centers of the ribosome revealed by single-molecule RNA modification profiling Bailey, Andrew D Talkish, Jason Ding, Hongxu Igel, Haller Duran, Alejandra Mantripragada, Shreya Paten, Benedict Ares, Manuel eLife Cell Biology Nucleotides in RNA and DNA are chemically modified by numerous enzymes that alter their function. Eukaryotic ribosomal RNA (rRNA) is modified at more than 100 locations, particularly at highly conserved and functionally important nucleotides. During ribosome biogenesis, modifications are added at various stages of assembly. The existence of differently modified classes of ribosomes in normal cells is unknown because no method exists to simultaneously evaluate the modification status at all sites within a single rRNA molecule. Using a combination of yeast genetics and nanopore direct RNA sequencing, we developed a reliable method to track the modification status of single rRNA molecules at 37 sites in 18 S rRNA and 73 sites in 25 S rRNA. We use our method to characterize patterns of modification heterogeneity and identify concerted modification of nucleotides found near functional centers of the ribosome. Distinct, undermodified subpopulations of rRNAs accumulate upon loss of Dbp3 or Prp43 RNA helicases, suggesting overlapping roles in ribosome biogenesis. Modification profiles are surprisingly resistant to change in response to many genetic and acute environmental conditions that affect translation, ribosome biogenesis, and pre-mRNA splicing. The ability to capture single-molecule RNA modification profiles provides new insights into the roles of nucleotide modifications in RNA function. eLife Sciences Publications, Ltd 2022-04-06 /pmc/articles/PMC9045821/ /pubmed/35384842 http://dx.doi.org/10.7554/eLife.76562 Text en © 2022, Bailey et al https://creativecommons.org/licenses/by/4.0/This article is distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use and redistribution provided that the original author and source are credited.
spellingShingle Cell Biology
Bailey, Andrew D
Talkish, Jason
Ding, Hongxu
Igel, Haller
Duran, Alejandra
Mantripragada, Shreya
Paten, Benedict
Ares, Manuel
Concerted modification of nucleotides at functional centers of the ribosome revealed by single-molecule RNA modification profiling
title Concerted modification of nucleotides at functional centers of the ribosome revealed by single-molecule RNA modification profiling
title_full Concerted modification of nucleotides at functional centers of the ribosome revealed by single-molecule RNA modification profiling
title_fullStr Concerted modification of nucleotides at functional centers of the ribosome revealed by single-molecule RNA modification profiling
title_full_unstemmed Concerted modification of nucleotides at functional centers of the ribosome revealed by single-molecule RNA modification profiling
title_short Concerted modification of nucleotides at functional centers of the ribosome revealed by single-molecule RNA modification profiling
title_sort concerted modification of nucleotides at functional centers of the ribosome revealed by single-molecule rna modification profiling
topic Cell Biology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9045821/
https://www.ncbi.nlm.nih.gov/pubmed/35384842
http://dx.doi.org/10.7554/eLife.76562
work_keys_str_mv AT baileyandrewd concertedmodificationofnucleotidesatfunctionalcentersoftheribosomerevealedbysinglemoleculernamodificationprofiling
AT talkishjason concertedmodificationofnucleotidesatfunctionalcentersoftheribosomerevealedbysinglemoleculernamodificationprofiling
AT dinghongxu concertedmodificationofnucleotidesatfunctionalcentersoftheribosomerevealedbysinglemoleculernamodificationprofiling
AT igelhaller concertedmodificationofnucleotidesatfunctionalcentersoftheribosomerevealedbysinglemoleculernamodificationprofiling
AT duranalejandra concertedmodificationofnucleotidesatfunctionalcentersoftheribosomerevealedbysinglemoleculernamodificationprofiling
AT mantripragadashreya concertedmodificationofnucleotidesatfunctionalcentersoftheribosomerevealedbysinglemoleculernamodificationprofiling
AT patenbenedict concertedmodificationofnucleotidesatfunctionalcentersoftheribosomerevealedbysinglemoleculernamodificationprofiling
AT aresmanuel concertedmodificationofnucleotidesatfunctionalcentersoftheribosomerevealedbysinglemoleculernamodificationprofiling