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Quick change: post-transcriptional regulation in Pseudomonas
by
Grenga, Lucia
, Little, Richard H.
, Malone, Jacob G.
in
Biological evolution
/ Environmental effects
/ Environmental Microbiology
/ Gene expression
/ Gene regulation
/ Genomes
/ Information processing
/ Microbiology
/ Minireview
/ mRNA stability
/ Post-transcription
/ Pseudomonas
/ Reproductive fitness
/ Ribonucleic acid
/ RNA
2017
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Quick change: post-transcriptional regulation in Pseudomonas
by
Grenga, Lucia
, Little, Richard H.
, Malone, Jacob G.
in
Biological evolution
/ Environmental effects
/ Environmental Microbiology
/ Gene expression
/ Gene regulation
/ Genomes
/ Information processing
/ Microbiology
/ Minireview
/ mRNA stability
/ Post-transcription
/ Pseudomonas
/ Reproductive fitness
/ Ribonucleic acid
/ RNA
2017
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Do you wish to request the book?
Quick change: post-transcriptional regulation in Pseudomonas
by
Grenga, Lucia
, Little, Richard H.
, Malone, Jacob G.
in
Biological evolution
/ Environmental effects
/ Environmental Microbiology
/ Gene expression
/ Gene regulation
/ Genomes
/ Information processing
/ Microbiology
/ Minireview
/ mRNA stability
/ Post-transcription
/ Pseudomonas
/ Reproductive fitness
/ Ribonucleic acid
/ RNA
2017
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Quick change: post-transcriptional regulation in Pseudomonas
Journal Article
Quick change: post-transcriptional regulation in Pseudomonas
2017
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Overview
Abstract
Pseudomonas species have evolved dynamic and intricate regulatory networks to fine-tune gene expression, with complex regulation occurring at every stage in the processing of genetic information. This approach enables Pseudomonas to generate precise individual responses to the environment in order to improve their fitness and resource economy. The weak correlations we observe between RNA and protein abundance highlight the significant regulatory contribution of a series of intersecting post-transcriptional pathways, influencing mRNA stability, translational activity and ribosome function, to Pseudomonas environmental responses. This review examines our current understanding of three major post-transcriptional regulatory systems in Pseudomonas spp.; Gac/Rsm, Hfq and RimK, and presents an overview of new research frontiers, emerging genome-wide methodologies, and their potential for the study of global regulatory responses in Pseudomonas.
Pseudomonas species have evolved dynamic and intricate regulatory networks to quickly fine-tune gene expression in response to environmental stimuli.
Publisher
Oxford University Press
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