Mass spectrometry reveals modularity and a complete subunit interaction map of the eukaryotic translation factor eIF3.

The eukaryotic initiation factor 3 (eIF3) plays an important role in translation initiation, acting as a docking site for several eIFs that assemble on the 40S ribosomal subunit. Here, we use mass spectrometry to probe the subunit interactions within the human eIF3 complex. Our results show that the...

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Библиографические подробности
Главные авторы: Zhou, M, Sandercock, A, Fraser, C, Ridlova, G, Stephens, E, Schenauer, MR, Yokoi-Fong, T, Barsky, D, Leary, J, Hershey, J, Doudna, J, Robinson, C
Формат: Journal article
Язык:English
Опубликовано: 2008
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author Zhou, M
Sandercock, A
Fraser, C
Ridlova, G
Stephens, E
Schenauer, MR
Yokoi-Fong, T
Barsky, D
Leary, J
Hershey, J
Doudna, J
Robinson, C
author_facet Zhou, M
Sandercock, A
Fraser, C
Ridlova, G
Stephens, E
Schenauer, MR
Yokoi-Fong, T
Barsky, D
Leary, J
Hershey, J
Doudna, J
Robinson, C
author_sort Zhou, M
collection OXFORD
description The eukaryotic initiation factor 3 (eIF3) plays an important role in translation initiation, acting as a docking site for several eIFs that assemble on the 40S ribosomal subunit. Here, we use mass spectrometry to probe the subunit interactions within the human eIF3 complex. Our results show that the 13-subunit complex can be maintained intact in the gas phase, enabling us to establish unambiguously its stoichiometry and its overall subunit architecture via tandem mass spectrometry and solution disruption experiments. Dissociation takes place as a function of ionic strength to form three stable modules eIF3(c:d:e:l:k), eIF3(f:h:m), and eIF3(a:b:i:g). These modules are linked by interactions between subunits eIF3b:c and eIF3c:h. We confirmed our interaction map with the homologous yeast eIF3 complex that contains the five core subunits found in the human eIF3 and supplemented our data with results from immunoprecipitation. These results, together with the 27 subcomplexes identified with increasing ionic strength, enable us to define a comprehensive interaction map for this 800-kDa species. Our interaction map allows comparison of free eIF3 with that bound to the hepatitis C virus internal ribosome entry site (HCV-IRES) RNA. We also compare our eIF3 interaction map with related complexes, containing evolutionarily conserved protein domains, and reveal the location of subunits containing RNA recognition motifs proximal to the decoding center of the 40S subunit of the ribosome.
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spelling oxford-uuid:1b574d7d-2e7d-4114-a9a0-4c352c7cf5bb2022-03-26T10:59:53ZMass spectrometry reveals modularity and a complete subunit interaction map of the eukaryotic translation factor eIF3.Journal articlehttp://purl.org/coar/resource_type/c_dcae04bcuuid:1b574d7d-2e7d-4114-a9a0-4c352c7cf5bbEnglishSymplectic Elements at Oxford2008Zhou, MSandercock, AFraser, CRidlova, GStephens, ESchenauer, MRYokoi-Fong, TBarsky, DLeary, JHershey, JDoudna, JRobinson, CThe eukaryotic initiation factor 3 (eIF3) plays an important role in translation initiation, acting as a docking site for several eIFs that assemble on the 40S ribosomal subunit. Here, we use mass spectrometry to probe the subunit interactions within the human eIF3 complex. Our results show that the 13-subunit complex can be maintained intact in the gas phase, enabling us to establish unambiguously its stoichiometry and its overall subunit architecture via tandem mass spectrometry and solution disruption experiments. Dissociation takes place as a function of ionic strength to form three stable modules eIF3(c:d:e:l:k), eIF3(f:h:m), and eIF3(a:b:i:g). These modules are linked by interactions between subunits eIF3b:c and eIF3c:h. We confirmed our interaction map with the homologous yeast eIF3 complex that contains the five core subunits found in the human eIF3 and supplemented our data with results from immunoprecipitation. These results, together with the 27 subcomplexes identified with increasing ionic strength, enable us to define a comprehensive interaction map for this 800-kDa species. Our interaction map allows comparison of free eIF3 with that bound to the hepatitis C virus internal ribosome entry site (HCV-IRES) RNA. We also compare our eIF3 interaction map with related complexes, containing evolutionarily conserved protein domains, and reveal the location of subunits containing RNA recognition motifs proximal to the decoding center of the 40S subunit of the ribosome.
spellingShingle Zhou, M
Sandercock, A
Fraser, C
Ridlova, G
Stephens, E
Schenauer, MR
Yokoi-Fong, T
Barsky, D
Leary, J
Hershey, J
Doudna, J
Robinson, C
Mass spectrometry reveals modularity and a complete subunit interaction map of the eukaryotic translation factor eIF3.
title Mass spectrometry reveals modularity and a complete subunit interaction map of the eukaryotic translation factor eIF3.
title_full Mass spectrometry reveals modularity and a complete subunit interaction map of the eukaryotic translation factor eIF3.
title_fullStr Mass spectrometry reveals modularity and a complete subunit interaction map of the eukaryotic translation factor eIF3.
title_full_unstemmed Mass spectrometry reveals modularity and a complete subunit interaction map of the eukaryotic translation factor eIF3.
title_short Mass spectrometry reveals modularity and a complete subunit interaction map of the eukaryotic translation factor eIF3.
title_sort mass spectrometry reveals modularity and a complete subunit interaction map of the eukaryotic translation factor eif3
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