Cargando…

Cloning of Gossypium hirsutum Sucrose Non-Fermenting 1-Related Protein Kinase 2 Gene (GhSnRK2) and Its Overexpression in Transgenic Arabidopsis Escalates Drought and Low Temperature Tolerance

The molecular mechanisms of stress tolerance and the use of modern genetics approaches for the improvement of drought stress tolerance have been major focuses of plant molecular biologists. In the present study, we cloned the Gossypium hirsutum sucrose non-fermenting 1-related protein kinase 2 (GhSn...

Descripción completa

Detalles Bibliográficos
Autores principales: Bello, Babatunde, Zhang, Xueyan, Liu, Chuanliang, Yang, Zhaoen, Yang, Zuoren, Wang, Qianhua, Zhao, Ge, Li, Fuguang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4231032/
https://www.ncbi.nlm.nih.gov/pubmed/25393623
http://dx.doi.org/10.1371/journal.pone.0112269
_version_ 1782344367333179392
author Bello, Babatunde
Zhang, Xueyan
Liu, Chuanliang
Yang, Zhaoen
Yang, Zuoren
Wang, Qianhua
Zhao, Ge
Li, Fuguang
author_facet Bello, Babatunde
Zhang, Xueyan
Liu, Chuanliang
Yang, Zhaoen
Yang, Zuoren
Wang, Qianhua
Zhao, Ge
Li, Fuguang
author_sort Bello, Babatunde
collection PubMed
description The molecular mechanisms of stress tolerance and the use of modern genetics approaches for the improvement of drought stress tolerance have been major focuses of plant molecular biologists. In the present study, we cloned the Gossypium hirsutum sucrose non-fermenting 1-related protein kinase 2 (GhSnRK2) gene and investigated its functions in transgenic Arabidopsis. We further elucidated the function of this gene in transgenic cotton using virus-induced gene silencing (VIGS) techniques. We hypothesized that GhSnRK2 participates in the stress signaling pathway and elucidated its role in enhancing stress tolerance in plants via various stress-related pathways and stress-responsive genes. We determined that the subcellular localization of the GhSnRK2-green fluorescent protein (GFP) was localized in the nuclei and cytoplasm. In contrast to wild-type plants, transgenic plants overexpressing GhSnRK2 exhibited increased tolerance to drought, cold, abscisic acid and salt stresses, suggesting that GhSnRK2 acts as a positive regulator in response to cold and drought stresses. Plants overexpressing GhSnRK2 displayed evidence of reduced water loss, turgor regulation, elevated relative water content, biomass, and proline accumulation. qRT-PCR analysis of GhSnRK2 expression suggested that this gene may function in diverse tissues. Under normal and stress conditions, the expression levels of stress-inducible genes, such as AtRD29A, AtRD29B, AtP5CS1, AtABI3, AtCBF1, and AtABI5, were increased in the GhSnRK2-overexpressing plants compared to the wild-type plants. GhSnRK2 gene silencing alleviated drought tolerance in cotton plants, indicating that VIGS technique can certainly be used as an effective means to examine gene function by knocking down the expression of distinctly expressed genes. The results of this study suggested that the GhSnRK2 gene, when incorporated into Arabidopsis, functions in positive responses to drought stress and in low temperature tolerance.
format Online
Article
Text
id pubmed-4231032
institution National Center for Biotechnology Information
language English
publishDate 2014
publisher Public Library of Science
record_format MEDLINE/PubMed
spelling pubmed-42310322014-11-18 Cloning of Gossypium hirsutum Sucrose Non-Fermenting 1-Related Protein Kinase 2 Gene (GhSnRK2) and Its Overexpression in Transgenic Arabidopsis Escalates Drought and Low Temperature Tolerance Bello, Babatunde Zhang, Xueyan Liu, Chuanliang Yang, Zhaoen Yang, Zuoren Wang, Qianhua Zhao, Ge Li, Fuguang PLoS One Research Article The molecular mechanisms of stress tolerance and the use of modern genetics approaches for the improvement of drought stress tolerance have been major focuses of plant molecular biologists. In the present study, we cloned the Gossypium hirsutum sucrose non-fermenting 1-related protein kinase 2 (GhSnRK2) gene and investigated its functions in transgenic Arabidopsis. We further elucidated the function of this gene in transgenic cotton using virus-induced gene silencing (VIGS) techniques. We hypothesized that GhSnRK2 participates in the stress signaling pathway and elucidated its role in enhancing stress tolerance in plants via various stress-related pathways and stress-responsive genes. We determined that the subcellular localization of the GhSnRK2-green fluorescent protein (GFP) was localized in the nuclei and cytoplasm. In contrast to wild-type plants, transgenic plants overexpressing GhSnRK2 exhibited increased tolerance to drought, cold, abscisic acid and salt stresses, suggesting that GhSnRK2 acts as a positive regulator in response to cold and drought stresses. Plants overexpressing GhSnRK2 displayed evidence of reduced water loss, turgor regulation, elevated relative water content, biomass, and proline accumulation. qRT-PCR analysis of GhSnRK2 expression suggested that this gene may function in diverse tissues. Under normal and stress conditions, the expression levels of stress-inducible genes, such as AtRD29A, AtRD29B, AtP5CS1, AtABI3, AtCBF1, and AtABI5, were increased in the GhSnRK2-overexpressing plants compared to the wild-type plants. GhSnRK2 gene silencing alleviated drought tolerance in cotton plants, indicating that VIGS technique can certainly be used as an effective means to examine gene function by knocking down the expression of distinctly expressed genes. The results of this study suggested that the GhSnRK2 gene, when incorporated into Arabidopsis, functions in positive responses to drought stress and in low temperature tolerance. Public Library of Science 2014-11-13 /pmc/articles/PMC4231032/ /pubmed/25393623 http://dx.doi.org/10.1371/journal.pone.0112269 Text en © 2014 Bello 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
Bello, Babatunde
Zhang, Xueyan
Liu, Chuanliang
Yang, Zhaoen
Yang, Zuoren
Wang, Qianhua
Zhao, Ge
Li, Fuguang
Cloning of Gossypium hirsutum Sucrose Non-Fermenting 1-Related Protein Kinase 2 Gene (GhSnRK2) and Its Overexpression in Transgenic Arabidopsis Escalates Drought and Low Temperature Tolerance
title Cloning of Gossypium hirsutum Sucrose Non-Fermenting 1-Related Protein Kinase 2 Gene (GhSnRK2) and Its Overexpression in Transgenic Arabidopsis Escalates Drought and Low Temperature Tolerance
title_full Cloning of Gossypium hirsutum Sucrose Non-Fermenting 1-Related Protein Kinase 2 Gene (GhSnRK2) and Its Overexpression in Transgenic Arabidopsis Escalates Drought and Low Temperature Tolerance
title_fullStr Cloning of Gossypium hirsutum Sucrose Non-Fermenting 1-Related Protein Kinase 2 Gene (GhSnRK2) and Its Overexpression in Transgenic Arabidopsis Escalates Drought and Low Temperature Tolerance
title_full_unstemmed Cloning of Gossypium hirsutum Sucrose Non-Fermenting 1-Related Protein Kinase 2 Gene (GhSnRK2) and Its Overexpression in Transgenic Arabidopsis Escalates Drought and Low Temperature Tolerance
title_short Cloning of Gossypium hirsutum Sucrose Non-Fermenting 1-Related Protein Kinase 2 Gene (GhSnRK2) and Its Overexpression in Transgenic Arabidopsis Escalates Drought and Low Temperature Tolerance
title_sort cloning of gossypium hirsutum sucrose non-fermenting 1-related protein kinase 2 gene (ghsnrk2) and its overexpression in transgenic arabidopsis escalates drought and low temperature tolerance
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4231032/
https://www.ncbi.nlm.nih.gov/pubmed/25393623
http://dx.doi.org/10.1371/journal.pone.0112269
work_keys_str_mv AT bellobabatunde cloningofgossypiumhirsutumsucrosenonfermenting1relatedproteinkinase2geneghsnrk2anditsoverexpressionintransgenicarabidopsisescalatesdroughtandlowtemperaturetolerance
AT zhangxueyan cloningofgossypiumhirsutumsucrosenonfermenting1relatedproteinkinase2geneghsnrk2anditsoverexpressionintransgenicarabidopsisescalatesdroughtandlowtemperaturetolerance
AT liuchuanliang cloningofgossypiumhirsutumsucrosenonfermenting1relatedproteinkinase2geneghsnrk2anditsoverexpressionintransgenicarabidopsisescalatesdroughtandlowtemperaturetolerance
AT yangzhaoen cloningofgossypiumhirsutumsucrosenonfermenting1relatedproteinkinase2geneghsnrk2anditsoverexpressionintransgenicarabidopsisescalatesdroughtandlowtemperaturetolerance
AT yangzuoren cloningofgossypiumhirsutumsucrosenonfermenting1relatedproteinkinase2geneghsnrk2anditsoverexpressionintransgenicarabidopsisescalatesdroughtandlowtemperaturetolerance
AT wangqianhua cloningofgossypiumhirsutumsucrosenonfermenting1relatedproteinkinase2geneghsnrk2anditsoverexpressionintransgenicarabidopsisescalatesdroughtandlowtemperaturetolerance
AT zhaoge cloningofgossypiumhirsutumsucrosenonfermenting1relatedproteinkinase2geneghsnrk2anditsoverexpressionintransgenicarabidopsisescalatesdroughtandlowtemperaturetolerance
AT lifuguang cloningofgossypiumhirsutumsucrosenonfermenting1relatedproteinkinase2geneghsnrk2anditsoverexpressionintransgenicarabidopsisescalatesdroughtandlowtemperaturetolerance