Directional RNA deep sequencing sheds new light on the transcriptional response of <it>Anabaena </it>sp. strain PCC 7120 to combined-nitrogen deprivation

<p>Abstract</p> <p>Background</p> <p>Cyanobacteria are potential sources of renewable chemicals and biofuels and serve as model organisms for bacterial photosynthesis, nitrogen fixation, and responses to environmental changes. <it>Anabaena </it>(<it>No...

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Main Authors: Head Steven R, Van Nieuwerburgh F, Flaherty Britt L, Golden James W
Format: Article
Language:English
Published: BMC 2011-06-01
Series:BMC Genomics
Online Access:http://www.biomedcentral.com/1471-2164/12/332
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spelling doaj-5749013afeb243939d32b81090a3b5eb2020-11-24T21:11:59ZengBMCBMC Genomics1471-21642011-06-0112133210.1186/1471-2164-12-332Directional RNA deep sequencing sheds new light on the transcriptional response of <it>Anabaena </it>sp. strain PCC 7120 to combined-nitrogen deprivationHead Steven RVan Nieuwerburgh FFlaherty Britt LGolden James W<p>Abstract</p> <p>Background</p> <p>Cyanobacteria are potential sources of renewable chemicals and biofuels and serve as model organisms for bacterial photosynthesis, nitrogen fixation, and responses to environmental changes. <it>Anabaena </it>(<it>Nostoc</it>) sp. strain PCC 7120 (hereafter <it>Anabaena</it>) is a multicellular filamentous cyanobacterium that can "fix" atmospheric nitrogen into ammonia when grown in the absence of a source of combined nitrogen. Because the nitrogenase enzyme is oxygen sensitive, <it>Anabaena </it>forms specialized cells called heterocysts that create a microoxic environment for nitrogen fixation. We have employed directional RNA-seq to map the <it>Anabaena </it>transcriptome during vegetative cell growth and in response to combined-nitrogen deprivation, which induces filaments to undergo heterocyst development. Our data provide an unprecedented view of transcriptional changes in <it>Anabaena </it>filaments during the induction of heterocyst development and transition to diazotrophic growth.</p> <p>Results</p> <p>Using the Illumina short read platform and a directional RNA-seq protocol, we obtained deep sequencing data for RNA extracted from filaments at 0, 6, 12, and 21 hours after the removal of combined nitrogen. The RNA-seq data provided information on transcript abundance and boundaries for the entire transcriptome. From these data, we detected novel antisense transcripts within the UTRs (untranslated regions) and coding regions of key genes involved in heterocyst development, suggesting that antisense RNAs may be important regulators of the nitrogen response. In addition, many 5' UTRs were longer than anticipated, sometimes extending into upstream open reading frames (ORFs), and operons often showed complex structure and regulation. Finally, many genes that had not been previously identified as being involved in heterocyst development showed regulation, providing new candidates for future studies in this model organism.</p> <p>Conclusions</p> <p>Directional RNA-seq data were obtained that provide comprehensive mapping of transcript boundaries and abundance for all transcribed RNAs in <it>Anabaena </it>filaments during the response to nitrogen deprivation. We have identified genes and noncoding RNAs that are transcriptionally regulated during heterocyst development. These data provide detailed information on the <it>Anabaena </it>transcriptome as filaments undergo heterocyst development and begin nitrogen fixation.</p> http://www.biomedcentral.com/1471-2164/12/332
collection DOAJ
language English
format Article
sources DOAJ
author Head Steven R
Van Nieuwerburgh F
Flaherty Britt L
Golden James W
spellingShingle Head Steven R
Van Nieuwerburgh F
Flaherty Britt L
Golden James W
Directional RNA deep sequencing sheds new light on the transcriptional response of <it>Anabaena </it>sp. strain PCC 7120 to combined-nitrogen deprivation
BMC Genomics
author_facet Head Steven R
Van Nieuwerburgh F
Flaherty Britt L
Golden James W
author_sort Head Steven R
title Directional RNA deep sequencing sheds new light on the transcriptional response of <it>Anabaena </it>sp. strain PCC 7120 to combined-nitrogen deprivation
title_short Directional RNA deep sequencing sheds new light on the transcriptional response of <it>Anabaena </it>sp. strain PCC 7120 to combined-nitrogen deprivation
title_full Directional RNA deep sequencing sheds new light on the transcriptional response of <it>Anabaena </it>sp. strain PCC 7120 to combined-nitrogen deprivation
title_fullStr Directional RNA deep sequencing sheds new light on the transcriptional response of <it>Anabaena </it>sp. strain PCC 7120 to combined-nitrogen deprivation
title_full_unstemmed Directional RNA deep sequencing sheds new light on the transcriptional response of <it>Anabaena </it>sp. strain PCC 7120 to combined-nitrogen deprivation
title_sort directional rna deep sequencing sheds new light on the transcriptional response of <it>anabaena </it>sp. strain pcc 7120 to combined-nitrogen deprivation
publisher BMC
series BMC Genomics
issn 1471-2164
publishDate 2011-06-01
description <p>Abstract</p> <p>Background</p> <p>Cyanobacteria are potential sources of renewable chemicals and biofuels and serve as model organisms for bacterial photosynthesis, nitrogen fixation, and responses to environmental changes. <it>Anabaena </it>(<it>Nostoc</it>) sp. strain PCC 7120 (hereafter <it>Anabaena</it>) is a multicellular filamentous cyanobacterium that can "fix" atmospheric nitrogen into ammonia when grown in the absence of a source of combined nitrogen. Because the nitrogenase enzyme is oxygen sensitive, <it>Anabaena </it>forms specialized cells called heterocysts that create a microoxic environment for nitrogen fixation. We have employed directional RNA-seq to map the <it>Anabaena </it>transcriptome during vegetative cell growth and in response to combined-nitrogen deprivation, which induces filaments to undergo heterocyst development. Our data provide an unprecedented view of transcriptional changes in <it>Anabaena </it>filaments during the induction of heterocyst development and transition to diazotrophic growth.</p> <p>Results</p> <p>Using the Illumina short read platform and a directional RNA-seq protocol, we obtained deep sequencing data for RNA extracted from filaments at 0, 6, 12, and 21 hours after the removal of combined nitrogen. The RNA-seq data provided information on transcript abundance and boundaries for the entire transcriptome. From these data, we detected novel antisense transcripts within the UTRs (untranslated regions) and coding regions of key genes involved in heterocyst development, suggesting that antisense RNAs may be important regulators of the nitrogen response. In addition, many 5' UTRs were longer than anticipated, sometimes extending into upstream open reading frames (ORFs), and operons often showed complex structure and regulation. Finally, many genes that had not been previously identified as being involved in heterocyst development showed regulation, providing new candidates for future studies in this model organism.</p> <p>Conclusions</p> <p>Directional RNA-seq data were obtained that provide comprehensive mapping of transcript boundaries and abundance for all transcribed RNAs in <it>Anabaena </it>filaments during the response to nitrogen deprivation. We have identified genes and noncoding RNAs that are transcriptionally regulated during heterocyst development. These data provide detailed information on the <it>Anabaena </it>transcriptome as filaments undergo heterocyst development and begin nitrogen fixation.</p>
url http://www.biomedcentral.com/1471-2164/12/332
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