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Solution structure of the dimerization domain of ribosomal protein P2 provides insights for the structural organization of eukaryotic stalk

The lateral stalk of ribosome is responsible for kingdom-specific binding of translation factors and activation of GTP hydrolysis that drives protein synthesis. In eukaryotes, the stalk is composed of acidic ribosomal proteins P0, P1 and P2 that constitute a pentameric P-complex in 1: 2: 2 ratio. We...

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Autores principales: Lee, Ka-Ming, Yu, Conny Wing-Heng, Chan, Denise So-Bik, Chiu, Teddy Yu-Hin, Zhu, Guang, Sze, Kong-Hung, Shaw, Pang-Chui, Wong, Kam-Bo
Formato: Texto
Lenguaje:English
Publicado: Oxford University Press 2010
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2926600/
https://www.ncbi.nlm.nih.gov/pubmed/20385603
http://dx.doi.org/10.1093/nar/gkq231
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author Lee, Ka-Ming
Yu, Conny Wing-Heng
Chan, Denise So-Bik
Chiu, Teddy Yu-Hin
Zhu, Guang
Sze, Kong-Hung
Shaw, Pang-Chui
Wong, Kam-Bo
author_facet Lee, Ka-Ming
Yu, Conny Wing-Heng
Chan, Denise So-Bik
Chiu, Teddy Yu-Hin
Zhu, Guang
Sze, Kong-Hung
Shaw, Pang-Chui
Wong, Kam-Bo
author_sort Lee, Ka-Ming
collection PubMed
description The lateral stalk of ribosome is responsible for kingdom-specific binding of translation factors and activation of GTP hydrolysis that drives protein synthesis. In eukaryotes, the stalk is composed of acidic ribosomal proteins P0, P1 and P2 that constitute a pentameric P-complex in 1: 2: 2 ratio. We have determined the solution structure of the N-terminal dimerization domain of human P2 (NTD-P2), which provides insights into the structural organization of the eukaryotic stalk. Our structure revealed that eukaryotic stalk protein P2 forms a symmetric homodimer in solution, and is structurally distinct from the bacterial counterpart L12 homodimer. The two subunits of NTD-P2 form extensive hydrophobic interactions in the dimeric interface that buries 2400 Å(2) of solvent accessible surface area. We have showed that P1 can dissociate P2 homodimer spontaneously to form a more stable P1/P2 1 : 1 heterodimer. By homology modelling, we identified three exposed polar residues on helix-3 of P2 are substituted by conserved hydrophobic residues in P1. Confirmed by mutagenesis, we showed that these residues on helix-3 of P1 are not involved in the dimerization of P1/P2, but instead play a vital role in anchoring P1/P2 heterodimer to P0. Based on our results, models of the eukaryotic stalk complex were proposed.
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spelling pubmed-29266002010-08-30 Solution structure of the dimerization domain of ribosomal protein P2 provides insights for the structural organization of eukaryotic stalk Lee, Ka-Ming Yu, Conny Wing-Heng Chan, Denise So-Bik Chiu, Teddy Yu-Hin Zhu, Guang Sze, Kong-Hung Shaw, Pang-Chui Wong, Kam-Bo Nucleic Acids Res Structural Biology The lateral stalk of ribosome is responsible for kingdom-specific binding of translation factors and activation of GTP hydrolysis that drives protein synthesis. In eukaryotes, the stalk is composed of acidic ribosomal proteins P0, P1 and P2 that constitute a pentameric P-complex in 1: 2: 2 ratio. We have determined the solution structure of the N-terminal dimerization domain of human P2 (NTD-P2), which provides insights into the structural organization of the eukaryotic stalk. Our structure revealed that eukaryotic stalk protein P2 forms a symmetric homodimer in solution, and is structurally distinct from the bacterial counterpart L12 homodimer. The two subunits of NTD-P2 form extensive hydrophobic interactions in the dimeric interface that buries 2400 Å(2) of solvent accessible surface area. We have showed that P1 can dissociate P2 homodimer spontaneously to form a more stable P1/P2 1 : 1 heterodimer. By homology modelling, we identified three exposed polar residues on helix-3 of P2 are substituted by conserved hydrophobic residues in P1. Confirmed by mutagenesis, we showed that these residues on helix-3 of P1 are not involved in the dimerization of P1/P2, but instead play a vital role in anchoring P1/P2 heterodimer to P0. Based on our results, models of the eukaryotic stalk complex were proposed. Oxford University Press 2010-08 2010-04-12 /pmc/articles/PMC2926600/ /pubmed/20385603 http://dx.doi.org/10.1093/nar/gkq231 Text en © The Author(s) 2010. 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 Structural Biology
Lee, Ka-Ming
Yu, Conny Wing-Heng
Chan, Denise So-Bik
Chiu, Teddy Yu-Hin
Zhu, Guang
Sze, Kong-Hung
Shaw, Pang-Chui
Wong, Kam-Bo
Solution structure of the dimerization domain of ribosomal protein P2 provides insights for the structural organization of eukaryotic stalk
title Solution structure of the dimerization domain of ribosomal protein P2 provides insights for the structural organization of eukaryotic stalk
title_full Solution structure of the dimerization domain of ribosomal protein P2 provides insights for the structural organization of eukaryotic stalk
title_fullStr Solution structure of the dimerization domain of ribosomal protein P2 provides insights for the structural organization of eukaryotic stalk
title_full_unstemmed Solution structure of the dimerization domain of ribosomal protein P2 provides insights for the structural organization of eukaryotic stalk
title_short Solution structure of the dimerization domain of ribosomal protein P2 provides insights for the structural organization of eukaryotic stalk
title_sort solution structure of the dimerization domain of ribosomal protein p2 provides insights for the structural organization of eukaryotic stalk
topic Structural Biology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2926600/
https://www.ncbi.nlm.nih.gov/pubmed/20385603
http://dx.doi.org/10.1093/nar/gkq231
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