Cargando…

The amino terminal end determines the stability and assembling capacity of eukaryotic ribosomal stalk proteins P1 and P2

The eukaryotic ribosomal proteins P1 and P2 bind to protein P0 through their N-terminal domain to form the essential ribosomal stalk. A mutational analysis points to amino acids at positions 2 and 3 as determinants for the drastic difference of Saccharomyces cerevisiae P1 and P2 half-life, and sugge...

Descripción completa

Detalles Bibliográficos
Autores principales: Camargo, Hendricka, Nusspaumer, Gretel, Abia, David, Briceño, Verónica, Remacha, Miguel, Ballesta, Juan P. G.
Formato: Texto
Lenguaje:English
Publicado: Oxford University Press 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3089481/
https://www.ncbi.nlm.nih.gov/pubmed/21247875
http://dx.doi.org/10.1093/nar/gkq1356
_version_ 1782203053208764416
author Camargo, Hendricka
Nusspaumer, Gretel
Abia, David
Briceño, Verónica
Remacha, Miguel
Ballesta, Juan P. G.
author_facet Camargo, Hendricka
Nusspaumer, Gretel
Abia, David
Briceño, Verónica
Remacha, Miguel
Ballesta, Juan P. G.
author_sort Camargo, Hendricka
collection PubMed
description The eukaryotic ribosomal proteins P1 and P2 bind to protein P0 through their N-terminal domain to form the essential ribosomal stalk. A mutational analysis points to amino acids at positions 2 and 3 as determinants for the drastic difference of Saccharomyces cerevisiae P1 and P2 half-life, and suggest different degradation mechanisms for each protein type. Moreover, the capacity to form P1/P2 heterodimers is drastically affected by mutations in the P2β four initial amino acids, while these mutations have no effect on P1β. Binding of P2β and, to a lesser extent, P1β to the ribosome is also seriously affected showing the high relevance of the amino acids in the first turn of the NTD α-helix 1 for the stalk assembly. The negative effect of some mutations on ribosome binding can be reversed by the presence of the second P1/P2 couple in the ribosome, indicating a stabilizing structural influence between the two heterodimers. Unexpectedly, some mutations totally abolish heterodimer formation but allow significant ribosome binding and, therefore, a previous P1 and P2 association seems not to be an absolute requirement for stalk assembly. Homology modeling of the protein complexes suggests that the mutated residues can affect the overall protein conformation.
format Text
id pubmed-3089481
institution National Center for Biotechnology Information
language English
publishDate 2011
publisher Oxford University Press
record_format MEDLINE/PubMed
spelling pubmed-30894812011-05-09 The amino terminal end determines the stability and assembling capacity of eukaryotic ribosomal stalk proteins P1 and P2 Camargo, Hendricka Nusspaumer, Gretel Abia, David Briceño, Verónica Remacha, Miguel Ballesta, Juan P. G. Nucleic Acids Res Molecular Biology The eukaryotic ribosomal proteins P1 and P2 bind to protein P0 through their N-terminal domain to form the essential ribosomal stalk. A mutational analysis points to amino acids at positions 2 and 3 as determinants for the drastic difference of Saccharomyces cerevisiae P1 and P2 half-life, and suggest different degradation mechanisms for each protein type. Moreover, the capacity to form P1/P2 heterodimers is drastically affected by mutations in the P2β four initial amino acids, while these mutations have no effect on P1β. Binding of P2β and, to a lesser extent, P1β to the ribosome is also seriously affected showing the high relevance of the amino acids in the first turn of the NTD α-helix 1 for the stalk assembly. The negative effect of some mutations on ribosome binding can be reversed by the presence of the second P1/P2 couple in the ribosome, indicating a stabilizing structural influence between the two heterodimers. Unexpectedly, some mutations totally abolish heterodimer formation but allow significant ribosome binding and, therefore, a previous P1 and P2 association seems not to be an absolute requirement for stalk assembly. Homology modeling of the protein complexes suggests that the mutated residues can affect the overall protein conformation. Oxford University Press 2011-05 2011-01-18 /pmc/articles/PMC3089481/ /pubmed/21247875 http://dx.doi.org/10.1093/nar/gkq1356 Text en © The Author(s) 2011. Published by Oxford University Press. http://creativecommons.org/licenses/by-nc/2.5 This is an Open Access article distributed under the terms of the Creative Commons Attribution Non-Commercial License (http://creativecommons.org/licenses/by-nc/2.5), which permits unrestricted non-commercial use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Molecular Biology
Camargo, Hendricka
Nusspaumer, Gretel
Abia, David
Briceño, Verónica
Remacha, Miguel
Ballesta, Juan P. G.
The amino terminal end determines the stability and assembling capacity of eukaryotic ribosomal stalk proteins P1 and P2
title The amino terminal end determines the stability and assembling capacity of eukaryotic ribosomal stalk proteins P1 and P2
title_full The amino terminal end determines the stability and assembling capacity of eukaryotic ribosomal stalk proteins P1 and P2
title_fullStr The amino terminal end determines the stability and assembling capacity of eukaryotic ribosomal stalk proteins P1 and P2
title_full_unstemmed The amino terminal end determines the stability and assembling capacity of eukaryotic ribosomal stalk proteins P1 and P2
title_short The amino terminal end determines the stability and assembling capacity of eukaryotic ribosomal stalk proteins P1 and P2
title_sort amino terminal end determines the stability and assembling capacity of eukaryotic ribosomal stalk proteins p1 and p2
topic Molecular Biology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3089481/
https://www.ncbi.nlm.nih.gov/pubmed/21247875
http://dx.doi.org/10.1093/nar/gkq1356
work_keys_str_mv AT camargohendricka theaminoterminalenddeterminesthestabilityandassemblingcapacityofeukaryoticribosomalstalkproteinsp1andp2
AT nusspaumergretel theaminoterminalenddeterminesthestabilityandassemblingcapacityofeukaryoticribosomalstalkproteinsp1andp2
AT abiadavid theaminoterminalenddeterminesthestabilityandassemblingcapacityofeukaryoticribosomalstalkproteinsp1andp2
AT bricenoveronica theaminoterminalenddeterminesthestabilityandassemblingcapacityofeukaryoticribosomalstalkproteinsp1andp2
AT remachamiguel theaminoterminalenddeterminesthestabilityandassemblingcapacityofeukaryoticribosomalstalkproteinsp1andp2
AT ballestajuanpg theaminoterminalenddeterminesthestabilityandassemblingcapacityofeukaryoticribosomalstalkproteinsp1andp2
AT camargohendricka aminoterminalenddeterminesthestabilityandassemblingcapacityofeukaryoticribosomalstalkproteinsp1andp2
AT nusspaumergretel aminoterminalenddeterminesthestabilityandassemblingcapacityofeukaryoticribosomalstalkproteinsp1andp2
AT abiadavid aminoterminalenddeterminesthestabilityandassemblingcapacityofeukaryoticribosomalstalkproteinsp1andp2
AT bricenoveronica aminoterminalenddeterminesthestabilityandassemblingcapacityofeukaryoticribosomalstalkproteinsp1andp2
AT remachamiguel aminoterminalenddeterminesthestabilityandassemblingcapacityofeukaryoticribosomalstalkproteinsp1andp2
AT ballestajuanpg aminoterminalenddeterminesthestabilityandassemblingcapacityofeukaryoticribosomalstalkproteinsp1andp2