Cargando…

Transcriptional Homeostasis of a Mangrove Species, Ceriops tagal, in Saline Environments, as Revealed by Microarray Analysis

BACKGROUND: Differential responses to the environmental stresses at the level of transcription play a critical role in adaptation. Mangrove species compose a dominant community in intertidal zones and form dense forests at the sea-land interface, and although the anatomical and physiological feature...

Descripción completa

Detalles Bibliográficos
Autores principales: Liang, Shan, Fang, Lu, Zhou, Renchao, Tang, Tian, Deng, Shulin, Dong, Suisui, Huang, Yelin, Zhong, Cairong, Shi, Suhua
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3344879/
https://www.ncbi.nlm.nih.gov/pubmed/22574172
http://dx.doi.org/10.1371/journal.pone.0036499
_version_ 1782232090866089984
author Liang, Shan
Fang, Lu
Zhou, Renchao
Tang, Tian
Deng, Shulin
Dong, Suisui
Huang, Yelin
Zhong, Cairong
Shi, Suhua
author_facet Liang, Shan
Fang, Lu
Zhou, Renchao
Tang, Tian
Deng, Shulin
Dong, Suisui
Huang, Yelin
Zhong, Cairong
Shi, Suhua
author_sort Liang, Shan
collection PubMed
description BACKGROUND: Differential responses to the environmental stresses at the level of transcription play a critical role in adaptation. Mangrove species compose a dominant community in intertidal zones and form dense forests at the sea-land interface, and although the anatomical and physiological features associated with their salt-tolerant lifestyles have been well characterized, little is known about the impact of transcriptional phenotypes on their adaptation to these saline environments. METHODOLOGY AND PRINCIPAL FINDINGS: We report the time-course transcript profiles in the roots of a true mangrove species, Ceriops tagal, as revealed by a series of microarray experiments. The expression of a total of 432 transcripts changed significantly in the roots of C. tagal under salt shock, of which 83 had a more than 2-fold change and were further assembled into 59 unigenes. Global transcription was stable at the early stage of salt stress and then was gradually dysregulated with the increased duration of the stress. Importantly, a pair-wise comparison of predicted homologous gene pairs revealed that the transcriptional regulations of most of the differentially expressed genes were highly divergent in C. tagal from that in salt-sensitive species, Arabidopsis thaliana. CONCLUSIONS/SIGNIFICANCE: This work suggests that transcriptional homeostasis and specific transcriptional regulation are major events in the roots of C. tagal when subjected to salt shock, which could contribute to the establishment of adaptation to saline environments and, thus, facilitate the salt-tolerant lifestyle of this mangrove species. Furthermore, the candidate genes underlying the adaptation were identified through comparative analyses. This study provides a foundation for dissecting the genetic basis of the adaptation of mangroves to intertidal environments.
format Online
Article
Text
id pubmed-3344879
institution National Center for Biotechnology Information
language English
publishDate 2012
publisher Public Library of Science
record_format MEDLINE/PubMed
spelling pubmed-33448792012-05-09 Transcriptional Homeostasis of a Mangrove Species, Ceriops tagal, in Saline Environments, as Revealed by Microarray Analysis Liang, Shan Fang, Lu Zhou, Renchao Tang, Tian Deng, Shulin Dong, Suisui Huang, Yelin Zhong, Cairong Shi, Suhua PLoS One Research Article BACKGROUND: Differential responses to the environmental stresses at the level of transcription play a critical role in adaptation. Mangrove species compose a dominant community in intertidal zones and form dense forests at the sea-land interface, and although the anatomical and physiological features associated with their salt-tolerant lifestyles have been well characterized, little is known about the impact of transcriptional phenotypes on their adaptation to these saline environments. METHODOLOGY AND PRINCIPAL FINDINGS: We report the time-course transcript profiles in the roots of a true mangrove species, Ceriops tagal, as revealed by a series of microarray experiments. The expression of a total of 432 transcripts changed significantly in the roots of C. tagal under salt shock, of which 83 had a more than 2-fold change and were further assembled into 59 unigenes. Global transcription was stable at the early stage of salt stress and then was gradually dysregulated with the increased duration of the stress. Importantly, a pair-wise comparison of predicted homologous gene pairs revealed that the transcriptional regulations of most of the differentially expressed genes were highly divergent in C. tagal from that in salt-sensitive species, Arabidopsis thaliana. CONCLUSIONS/SIGNIFICANCE: This work suggests that transcriptional homeostasis and specific transcriptional regulation are major events in the roots of C. tagal when subjected to salt shock, which could contribute to the establishment of adaptation to saline environments and, thus, facilitate the salt-tolerant lifestyle of this mangrove species. Furthermore, the candidate genes underlying the adaptation were identified through comparative analyses. This study provides a foundation for dissecting the genetic basis of the adaptation of mangroves to intertidal environments. Public Library of Science 2012-05-04 /pmc/articles/PMC3344879/ /pubmed/22574172 http://dx.doi.org/10.1371/journal.pone.0036499 Text en Liang et al. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Liang, Shan
Fang, Lu
Zhou, Renchao
Tang, Tian
Deng, Shulin
Dong, Suisui
Huang, Yelin
Zhong, Cairong
Shi, Suhua
Transcriptional Homeostasis of a Mangrove Species, Ceriops tagal, in Saline Environments, as Revealed by Microarray Analysis
title Transcriptional Homeostasis of a Mangrove Species, Ceriops tagal, in Saline Environments, as Revealed by Microarray Analysis
title_full Transcriptional Homeostasis of a Mangrove Species, Ceriops tagal, in Saline Environments, as Revealed by Microarray Analysis
title_fullStr Transcriptional Homeostasis of a Mangrove Species, Ceriops tagal, in Saline Environments, as Revealed by Microarray Analysis
title_full_unstemmed Transcriptional Homeostasis of a Mangrove Species, Ceriops tagal, in Saline Environments, as Revealed by Microarray Analysis
title_short Transcriptional Homeostasis of a Mangrove Species, Ceriops tagal, in Saline Environments, as Revealed by Microarray Analysis
title_sort transcriptional homeostasis of a mangrove species, ceriops tagal, in saline environments, as revealed by microarray analysis
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3344879/
https://www.ncbi.nlm.nih.gov/pubmed/22574172
http://dx.doi.org/10.1371/journal.pone.0036499
work_keys_str_mv AT liangshan transcriptionalhomeostasisofamangrovespeciesceriopstagalinsalineenvironmentsasrevealedbymicroarrayanalysis
AT fanglu transcriptionalhomeostasisofamangrovespeciesceriopstagalinsalineenvironmentsasrevealedbymicroarrayanalysis
AT zhourenchao transcriptionalhomeostasisofamangrovespeciesceriopstagalinsalineenvironmentsasrevealedbymicroarrayanalysis
AT tangtian transcriptionalhomeostasisofamangrovespeciesceriopstagalinsalineenvironmentsasrevealedbymicroarrayanalysis
AT dengshulin transcriptionalhomeostasisofamangrovespeciesceriopstagalinsalineenvironmentsasrevealedbymicroarrayanalysis
AT dongsuisui transcriptionalhomeostasisofamangrovespeciesceriopstagalinsalineenvironmentsasrevealedbymicroarrayanalysis
AT huangyelin transcriptionalhomeostasisofamangrovespeciesceriopstagalinsalineenvironmentsasrevealedbymicroarrayanalysis
AT zhongcairong transcriptionalhomeostasisofamangrovespeciesceriopstagalinsalineenvironmentsasrevealedbymicroarrayanalysis
AT shisuhua transcriptionalhomeostasisofamangrovespeciesceriopstagalinsalineenvironmentsasrevealedbymicroarrayanalysis