Effects of drought stress and water recovery on physiological responses and gene expression in maize seedlings

Abstract Background Drought is one of the major factors limiting global maize production. Exposure to long-term drought conditions inhibits growth and leads to yield losses. Although several drought-responsive genes have been identified and functionally analyzed, the mechanisms underlying responses...

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Main Authors: Xiangbo Zhang, Lei Lei, Jinsheng Lai, Haiming Zhao, Weibin Song
Format: Article
Language:English
Published: BMC 2018-04-01
Series:BMC Plant Biology
Subjects:
Online Access:http://link.springer.com/article/10.1186/s12870-018-1281-x
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spelling doaj-5644d2b786e9473f9fbdceafcfe124e62020-11-25T01:14:47ZengBMCBMC Plant Biology1471-22292018-04-0118111610.1186/s12870-018-1281-xEffects of drought stress and water recovery on physiological responses and gene expression in maize seedlingsXiangbo Zhang0Lei Lei1Jinsheng Lai2Haiming Zhao3Weibin Song4State Key Laboratory of Agrobiotechnology/National Maize Improvement Center of China/Key Laboratory of Crop Heterosis and Utilization of the Ministry of Education/Beijing Key Laboratory of Crop Genetic Improvement, China Agricultural UniversityState Key Laboratory of Agrobiotechnology/National Maize Improvement Center of China/Key Laboratory of Crop Heterosis and Utilization of the Ministry of Education/Beijing Key Laboratory of Crop Genetic Improvement, China Agricultural UniversityState Key Laboratory of Agrobiotechnology/National Maize Improvement Center of China/Key Laboratory of Crop Heterosis and Utilization of the Ministry of Education/Beijing Key Laboratory of Crop Genetic Improvement, China Agricultural UniversityState Key Laboratory of Agrobiotechnology/National Maize Improvement Center of China/Key Laboratory of Crop Heterosis and Utilization of the Ministry of Education/Beijing Key Laboratory of Crop Genetic Improvement, China Agricultural UniversityState Key Laboratory of Agrobiotechnology/National Maize Improvement Center of China/Key Laboratory of Crop Heterosis and Utilization of the Ministry of Education/Beijing Key Laboratory of Crop Genetic Improvement, China Agricultural UniversityAbstract Background Drought is one of the major factors limiting global maize production. Exposure to long-term drought conditions inhibits growth and leads to yield losses. Although several drought-responsive genes have been identified and functionally analyzed, the mechanisms underlying responses to drought and water recovery treatments have not been fully elucidated. To characterize how maize seedling respond to drought stress at the transcriptional level, we analyzed physiological responses and differentially expressed genes (DEGs) in the inbred line B73 under water deficit and recovery conditions. Results The data for relative leaf water content, leaf size, and photosynthesis-related parameters indicated that drought stress significantly repressed maize seedling growth. Further RNA sequencing analysis revealed that 6107 DEGs were responsive to drought stress and water recovery, with more down-regulated than up-regulated genes. Among the DEGs, the photosynthesis- and hormone-related genes were enriched in responses to drought stress and re-watering. Additionally, transcription factor genes from 37 families were differentially expressed among the three analyzed time-points. Gene ontology enrichment analyses of the DEGs indicated that 50 GO terms, including those related to photosynthesis, carbohydrate metabolism, oxidoreductase activities, nutrient metabolism and other drought-responsive pathways, were over-represented in the drought-treated seedlings. The content of gibberellin in drought treatment seedlings was decreased compared to that of control seedlings, while abscisic acid showed accumulated in the drought treated plants. The deep analysis of DEGs related to cell wall development indicated that these genes were prone to be down-regulated at drought treatment stage. Conclusions Many genes that are differentially expressed in responses to drought stress and water recovery conditions affect photosynthetic systems and hormone biosynthesis. The identified DEGs, especially those encoding transcription factors, represent potential targets for developing drought-tolerant maize lines.http://link.springer.com/article/10.1186/s12870-018-1281-xZea maysSeedlingDrought stressWater recoveryPhotosynthetic efficiencyTranscription factor
collection DOAJ
language English
format Article
sources DOAJ
author Xiangbo Zhang
Lei Lei
Jinsheng Lai
Haiming Zhao
Weibin Song
spellingShingle Xiangbo Zhang
Lei Lei
Jinsheng Lai
Haiming Zhao
Weibin Song
Effects of drought stress and water recovery on physiological responses and gene expression in maize seedlings
BMC Plant Biology
Zea mays
Seedling
Drought stress
Water recovery
Photosynthetic efficiency
Transcription factor
author_facet Xiangbo Zhang
Lei Lei
Jinsheng Lai
Haiming Zhao
Weibin Song
author_sort Xiangbo Zhang
title Effects of drought stress and water recovery on physiological responses and gene expression in maize seedlings
title_short Effects of drought stress and water recovery on physiological responses and gene expression in maize seedlings
title_full Effects of drought stress and water recovery on physiological responses and gene expression in maize seedlings
title_fullStr Effects of drought stress and water recovery on physiological responses and gene expression in maize seedlings
title_full_unstemmed Effects of drought stress and water recovery on physiological responses and gene expression in maize seedlings
title_sort effects of drought stress and water recovery on physiological responses and gene expression in maize seedlings
publisher BMC
series BMC Plant Biology
issn 1471-2229
publishDate 2018-04-01
description Abstract Background Drought is one of the major factors limiting global maize production. Exposure to long-term drought conditions inhibits growth and leads to yield losses. Although several drought-responsive genes have been identified and functionally analyzed, the mechanisms underlying responses to drought and water recovery treatments have not been fully elucidated. To characterize how maize seedling respond to drought stress at the transcriptional level, we analyzed physiological responses and differentially expressed genes (DEGs) in the inbred line B73 under water deficit and recovery conditions. Results The data for relative leaf water content, leaf size, and photosynthesis-related parameters indicated that drought stress significantly repressed maize seedling growth. Further RNA sequencing analysis revealed that 6107 DEGs were responsive to drought stress and water recovery, with more down-regulated than up-regulated genes. Among the DEGs, the photosynthesis- and hormone-related genes were enriched in responses to drought stress and re-watering. Additionally, transcription factor genes from 37 families were differentially expressed among the three analyzed time-points. Gene ontology enrichment analyses of the DEGs indicated that 50 GO terms, including those related to photosynthesis, carbohydrate metabolism, oxidoreductase activities, nutrient metabolism and other drought-responsive pathways, were over-represented in the drought-treated seedlings. The content of gibberellin in drought treatment seedlings was decreased compared to that of control seedlings, while abscisic acid showed accumulated in the drought treated plants. The deep analysis of DEGs related to cell wall development indicated that these genes were prone to be down-regulated at drought treatment stage. Conclusions Many genes that are differentially expressed in responses to drought stress and water recovery conditions affect photosynthetic systems and hormone biosynthesis. The identified DEGs, especially those encoding transcription factors, represent potential targets for developing drought-tolerant maize lines.
topic Zea mays
Seedling
Drought stress
Water recovery
Photosynthetic efficiency
Transcription factor
url http://link.springer.com/article/10.1186/s12870-018-1281-x
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