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Suppression of a cold-sensitive mutation in ribosomal protein S5 reveals a role for RimJ in ribosome biogenesis

A specific mutation of Escherichia coli ribosomal protein S5, in which glycine is changed to aspartate at position 28 [S5(G28D)], results in cold sensitivity and defects in ribosome biogenesis and translational fidelity. In an attempt to understand the roles of S5 in these essential cellular functio...

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Autores principales: Roy-Chaudhuri, Biswajoy, Kirthi, Narayanaswamy, Kelley, Teresa, Culver, Gloria M
Formato: Texto
Lenguaje:English
Publicado: Blackwell Publishing Ltd 2008
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2440530/
https://www.ncbi.nlm.nih.gov/pubmed/18466225
http://dx.doi.org/10.1111/j.1365-2958.2008.06252.x
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author Roy-Chaudhuri, Biswajoy
Kirthi, Narayanaswamy
Kelley, Teresa
Culver, Gloria M
author_facet Roy-Chaudhuri, Biswajoy
Kirthi, Narayanaswamy
Kelley, Teresa
Culver, Gloria M
author_sort Roy-Chaudhuri, Biswajoy
collection PubMed
description A specific mutation of Escherichia coli ribosomal protein S5, in which glycine is changed to aspartate at position 28 [S5(G28D)], results in cold sensitivity and defects in ribosome biogenesis and translational fidelity. In an attempt to understand the roles of S5 in these essential cellular functions, we selected extragenic suppressors and identified rimJ as a high-copy suppressor of the cold-sensitive phenotype associated with the S5(G28D) mutation. Our studies indicate that RimJ overexpression suppresses the growth defects, anomalous ribosome profiles and mRNA misreading exhibited by the S5(G28D) mutant strain. Although previously characterized as the N-acetyltransferase of S5, our data indicate that RimJ, when devoid of acetyltransferase activity, can suppress S5(G28D) defects thus indicating that the suppression activity of RimJ is not dependent on its acetyltransferase activity. Additionally, RimJ appears to associate with pre-30S subunits indicating that it acts on the ribonucleoprotein particle. These findings suggest that RimJ has evolved dual functionality; it functions in r-protein acetylation and as a ribosome assembly factor in E. coli.
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spelling pubmed-24405302008-07-01 Suppression of a cold-sensitive mutation in ribosomal protein S5 reveals a role for RimJ in ribosome biogenesis Roy-Chaudhuri, Biswajoy Kirthi, Narayanaswamy Kelley, Teresa Culver, Gloria M Mol Microbiol Research Articles A specific mutation of Escherichia coli ribosomal protein S5, in which glycine is changed to aspartate at position 28 [S5(G28D)], results in cold sensitivity and defects in ribosome biogenesis and translational fidelity. In an attempt to understand the roles of S5 in these essential cellular functions, we selected extragenic suppressors and identified rimJ as a high-copy suppressor of the cold-sensitive phenotype associated with the S5(G28D) mutation. Our studies indicate that RimJ overexpression suppresses the growth defects, anomalous ribosome profiles and mRNA misreading exhibited by the S5(G28D) mutant strain. Although previously characterized as the N-acetyltransferase of S5, our data indicate that RimJ, when devoid of acetyltransferase activity, can suppress S5(G28D) defects thus indicating that the suppression activity of RimJ is not dependent on its acetyltransferase activity. Additionally, RimJ appears to associate with pre-30S subunits indicating that it acts on the ribonucleoprotein particle. These findings suggest that RimJ has evolved dual functionality; it functions in r-protein acetylation and as a ribosome assembly factor in E. coli. Blackwell Publishing Ltd 2008-06 /pmc/articles/PMC2440530/ /pubmed/18466225 http://dx.doi.org/10.1111/j.1365-2958.2008.06252.x Text en © 2008 The Authors Journal compilation © 2008 Blackwell Publishing Ltd
spellingShingle Research Articles
Roy-Chaudhuri, Biswajoy
Kirthi, Narayanaswamy
Kelley, Teresa
Culver, Gloria M
Suppression of a cold-sensitive mutation in ribosomal protein S5 reveals a role for RimJ in ribosome biogenesis
title Suppression of a cold-sensitive mutation in ribosomal protein S5 reveals a role for RimJ in ribosome biogenesis
title_full Suppression of a cold-sensitive mutation in ribosomal protein S5 reveals a role for RimJ in ribosome biogenesis
title_fullStr Suppression of a cold-sensitive mutation in ribosomal protein S5 reveals a role for RimJ in ribosome biogenesis
title_full_unstemmed Suppression of a cold-sensitive mutation in ribosomal protein S5 reveals a role for RimJ in ribosome biogenesis
title_short Suppression of a cold-sensitive mutation in ribosomal protein S5 reveals a role for RimJ in ribosome biogenesis
title_sort suppression of a cold-sensitive mutation in ribosomal protein s5 reveals a role for rimj in ribosome biogenesis
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2440530/
https://www.ncbi.nlm.nih.gov/pubmed/18466225
http://dx.doi.org/10.1111/j.1365-2958.2008.06252.x
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