Cargando…

Genome-wide transcriptional analysis of two soybean genotypes under dehydration and rehydration conditions

BACKGROUND: Soybean is an important crop that provides valuable proteins and oils for human use. Because soybean growth and development is extremely sensitive to water deficit, quality and crop yields are severely impacted by drought stress. In the face of limited water resources, drought-responsive...

Descripción completa

Detalles Bibliográficos
Autores principales: Chen, Li M, Zhou, Xin A, Li, Wen B, Chang, Wei, Zhou, Rong, Wang, Cheng, Sha, Ai H, Shan, Zhi H, Zhang, Chan J, Qiu, De Z, Yang, Zhong L, Chen, Shui L
Formato: Online Artículo Texto
Lenguaje:English
Publicado: BioMed Central 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3827939/
https://www.ncbi.nlm.nih.gov/pubmed/24093224
http://dx.doi.org/10.1186/1471-2164-14-687
_version_ 1782291168401293312
author Chen, Li M
Zhou, Xin A
Li, Wen B
Chang, Wei
Zhou, Rong
Wang, Cheng
Sha, Ai H
Shan, Zhi H
Zhang, Chan J
Qiu, De Z
Yang, Zhong L
Chen, Shui L
author_facet Chen, Li M
Zhou, Xin A
Li, Wen B
Chang, Wei
Zhou, Rong
Wang, Cheng
Sha, Ai H
Shan, Zhi H
Zhang, Chan J
Qiu, De Z
Yang, Zhong L
Chen, Shui L
author_sort Chen, Li M
collection PubMed
description BACKGROUND: Soybean is an important crop that provides valuable proteins and oils for human use. Because soybean growth and development is extremely sensitive to water deficit, quality and crop yields are severely impacted by drought stress. In the face of limited water resources, drought-responsive genes are therefore of interest. Identification and analysis of dehydration- and rehydration-inducible differentially expressed genes (DEGs) would not only aid elucidation of molecular mechanisms of stress response, but also enable improvement of crop stress tolerance via gene transfer. Using Digital Gene Expression Tag profiling (DGE), a new technique based on Illumina sequencing, we analyzed expression profiles between two soybean genotypes to identify drought-responsive genes. RESULTS: Two soybean genotypes—drought-tolerant Jindou21 and drought-sensitive Zhongdou33—were subjected to dehydration and rehydration conditions. For analysis of DEGs under dehydration conditions, 20 cDNA libraries were generated from roots and leaves at two different time points under well-watered and dehydration conditions. We also generated eight libraries for analysis under rehydration conditions. Sequencing of the 28 libraries produced 25,000–33,000 unambiguous tags, which were mapped to reference sequences for annotation of expressed genes. Many genes exhibited significant expression differences among the libraries. DEGs in the drought-tolerant genotype were identified by comparison of DEGs among treatments and genotypes. In Jindou21, 518 and 614 genes were differentially expressed under dehydration in leaves and roots, respectively, with 24 identified both in leaves and roots. The main functional categories enriched in these DEGs were metabolic process, response to stresses, plant hormone signal transduction, protein processing, and plant-pathogen interaction pathway; the associated genes primarily encoded transcription factors, protein kinases, and other regulatory proteins. The seven most significantly expressed (|log(2) ratio| ≥ 8) genes— Glyma15g03920, Glyma05g02470, Glyma15g15010, Glyma05g09070, Glyma06g35630, Glyma08g12590, and Glyma11g16000—are more likely to determine drought stress tolerance. The expression patterns of eight randomly-selected genes were confirmed by quantitative RT-PCR; the results of QRT-PCR analysis agreed with transcriptional profile data for 96 out of 128 (75%) data points. CONCLUSIONS: Many soybean genes were differentially expressed between drought-tolerant and drought-sensitive genotypes. Based on GO functional annotation and pathway enrichment analysis, some of these genes encoded transcription factors, protein kinases, and other regulatory proteins. The seven most significant DEGs are candidates for improving soybean drought tolerance. These findings will be helpful for analysis and elucidation of molecular mechanisms of drought tolerance; they also provide a basis for cultivating new varieties of drought-tolerant soybean.
format Online
Article
Text
id pubmed-3827939
institution National Center for Biotechnology Information
language English
publishDate 2013
publisher BioMed Central
record_format MEDLINE/PubMed
spelling pubmed-38279392013-11-20 Genome-wide transcriptional analysis of two soybean genotypes under dehydration and rehydration conditions Chen, Li M Zhou, Xin A Li, Wen B Chang, Wei Zhou, Rong Wang, Cheng Sha, Ai H Shan, Zhi H Zhang, Chan J Qiu, De Z Yang, Zhong L Chen, Shui L BMC Genomics Research Article BACKGROUND: Soybean is an important crop that provides valuable proteins and oils for human use. Because soybean growth and development is extremely sensitive to water deficit, quality and crop yields are severely impacted by drought stress. In the face of limited water resources, drought-responsive genes are therefore of interest. Identification and analysis of dehydration- and rehydration-inducible differentially expressed genes (DEGs) would not only aid elucidation of molecular mechanisms of stress response, but also enable improvement of crop stress tolerance via gene transfer. Using Digital Gene Expression Tag profiling (DGE), a new technique based on Illumina sequencing, we analyzed expression profiles between two soybean genotypes to identify drought-responsive genes. RESULTS: Two soybean genotypes—drought-tolerant Jindou21 and drought-sensitive Zhongdou33—were subjected to dehydration and rehydration conditions. For analysis of DEGs under dehydration conditions, 20 cDNA libraries were generated from roots and leaves at two different time points under well-watered and dehydration conditions. We also generated eight libraries for analysis under rehydration conditions. Sequencing of the 28 libraries produced 25,000–33,000 unambiguous tags, which were mapped to reference sequences for annotation of expressed genes. Many genes exhibited significant expression differences among the libraries. DEGs in the drought-tolerant genotype were identified by comparison of DEGs among treatments and genotypes. In Jindou21, 518 and 614 genes were differentially expressed under dehydration in leaves and roots, respectively, with 24 identified both in leaves and roots. The main functional categories enriched in these DEGs were metabolic process, response to stresses, plant hormone signal transduction, protein processing, and plant-pathogen interaction pathway; the associated genes primarily encoded transcription factors, protein kinases, and other regulatory proteins. The seven most significantly expressed (|log(2) ratio| ≥ 8) genes— Glyma15g03920, Glyma05g02470, Glyma15g15010, Glyma05g09070, Glyma06g35630, Glyma08g12590, and Glyma11g16000—are more likely to determine drought stress tolerance. The expression patterns of eight randomly-selected genes were confirmed by quantitative RT-PCR; the results of QRT-PCR analysis agreed with transcriptional profile data for 96 out of 128 (75%) data points. CONCLUSIONS: Many soybean genes were differentially expressed between drought-tolerant and drought-sensitive genotypes. Based on GO functional annotation and pathway enrichment analysis, some of these genes encoded transcription factors, protein kinases, and other regulatory proteins. The seven most significant DEGs are candidates for improving soybean drought tolerance. These findings will be helpful for analysis and elucidation of molecular mechanisms of drought tolerance; they also provide a basis for cultivating new varieties of drought-tolerant soybean. BioMed Central 2013-10-06 /pmc/articles/PMC3827939/ /pubmed/24093224 http://dx.doi.org/10.1186/1471-2164-14-687 Text en Copyright © 2013 Chen et al.; licensee BioMed Central Ltd. http://creativecommons.org/licenses/by/2.0 This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/2.0), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Chen, Li M
Zhou, Xin A
Li, Wen B
Chang, Wei
Zhou, Rong
Wang, Cheng
Sha, Ai H
Shan, Zhi H
Zhang, Chan J
Qiu, De Z
Yang, Zhong L
Chen, Shui L
Genome-wide transcriptional analysis of two soybean genotypes under dehydration and rehydration conditions
title Genome-wide transcriptional analysis of two soybean genotypes under dehydration and rehydration conditions
title_full Genome-wide transcriptional analysis of two soybean genotypes under dehydration and rehydration conditions
title_fullStr Genome-wide transcriptional analysis of two soybean genotypes under dehydration and rehydration conditions
title_full_unstemmed Genome-wide transcriptional analysis of two soybean genotypes under dehydration and rehydration conditions
title_short Genome-wide transcriptional analysis of two soybean genotypes under dehydration and rehydration conditions
title_sort genome-wide transcriptional analysis of two soybean genotypes under dehydration and rehydration conditions
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3827939/
https://www.ncbi.nlm.nih.gov/pubmed/24093224
http://dx.doi.org/10.1186/1471-2164-14-687
work_keys_str_mv AT chenlim genomewidetranscriptionalanalysisoftwosoybeangenotypesunderdehydrationandrehydrationconditions
AT zhouxina genomewidetranscriptionalanalysisoftwosoybeangenotypesunderdehydrationandrehydrationconditions
AT liwenb genomewidetranscriptionalanalysisoftwosoybeangenotypesunderdehydrationandrehydrationconditions
AT changwei genomewidetranscriptionalanalysisoftwosoybeangenotypesunderdehydrationandrehydrationconditions
AT zhourong genomewidetranscriptionalanalysisoftwosoybeangenotypesunderdehydrationandrehydrationconditions
AT wangcheng genomewidetranscriptionalanalysisoftwosoybeangenotypesunderdehydrationandrehydrationconditions
AT shaaih genomewidetranscriptionalanalysisoftwosoybeangenotypesunderdehydrationandrehydrationconditions
AT shanzhih genomewidetranscriptionalanalysisoftwosoybeangenotypesunderdehydrationandrehydrationconditions
AT zhangchanj genomewidetranscriptionalanalysisoftwosoybeangenotypesunderdehydrationandrehydrationconditions
AT qiudez genomewidetranscriptionalanalysisoftwosoybeangenotypesunderdehydrationandrehydrationconditions
AT yangzhongl genomewidetranscriptionalanalysisoftwosoybeangenotypesunderdehydrationandrehydrationconditions
AT chenshuil genomewidetranscriptionalanalysisoftwosoybeangenotypesunderdehydrationandrehydrationconditions