Expression patterns of members of the ethylene signaling-related gene families in response to dehydration stresses in cassava.

Drought is the one of the most important environment stresses that restricts crop yield worldwide. Cassava (Manihot esculenta Crantz) is an important food and energy crop that has many desirable traits such as drought, heat and low nutrients tolerance. However, the mechanisms underlying drought tole...

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Main Authors: Meng Yun Ren, Ren Jun Feng, Hou Rui Shi, Li Fang Lu, Tian Yan Yun, Ming Peng, Xiao Guan, Heng Zhang, Jing Yi Wang, Xi Yan Zhang, Cheng Liang Li, Yan Jun Chen, Peng He, Yin Dong Zhang, Jiang Hui Xie
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2017-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC5441607?pdf=render
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spelling doaj-864e0b1edc2145c786c2aa306d6de49f2020-11-25T02:27:40ZengPublic Library of Science (PLoS)PLoS ONE1932-62032017-01-01125e017762110.1371/journal.pone.0177621Expression patterns of members of the ethylene signaling-related gene families in response to dehydration stresses in cassava.Meng Yun RenRen Jun FengHou Rui ShiLi Fang LuTian Yan YunMing PengXiao GuanHeng ZhangJing Yi WangXi Yan ZhangCheng Liang LiYan Jun ChenPeng HeYin Dong ZhangJiang Hui XieDrought is the one of the most important environment stresses that restricts crop yield worldwide. Cassava (Manihot esculenta Crantz) is an important food and energy crop that has many desirable traits such as drought, heat and low nutrients tolerance. However, the mechanisms underlying drought tolerance in cassava are unclear. Ethylene signaling pathway, from the upstream receptors to the downstream transcription factors, plays important roles in environmental stress responses during plant growth and development. In this study, we used bioinformatics approaches to identify and characterize candidate Manihot esculenta ethylene receptor genes and transcription factor genes. Using computational methods, we localized these genes on cassava chromosomes, constructed phylogenetic trees and identified stress-responsive cis-elements within their 5' upstream regions. Additionally, we measured the trehalose and proline contents in cassava fresh leaves after drought, osmotic, and salt stress treatments, and then it was found that the regulation patterns of contents of proline and trehalose in response to various dehydration stresses were differential, or even the opposite, which shows that plant may take different coping strategies to deal with different stresses, when stresses come. Furthermore, expression profiles of these genes in different organs and tissues under non-stress and abiotic stress were investigated through quantitative real-time PCR (qRT-PCR) analyses in cassava. Expression profiles exhibited clear differences among different tissues under non-stress and various dehydration stress conditions. We found that the leaf and tuberous root tissues had the greatest and least responses, respectively, to drought stress through the ethylene signaling pathway in cassava. Moreover, tuber and root tissues had the greatest and least reponses to osmotic and salt stresses through ethylene signaling in cassava, respectively. These results show that these plant tissues had differential expression levels of genes involved in ethylene signaling in response to the stresses tested. Moreover, after several gene duplication events, the spatiotemporally differential expression pattern of homologous genes in response to abiotic and biotic stresses may imply their functional diversity as a mechanism for adapting to the environment. Our data provide a framework for further research on the molecular mechanisms of cassava resistance to drought stress and provide a foundation for breeding drought-resistant new cultivars.http://europepmc.org/articles/PMC5441607?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Meng Yun Ren
Ren Jun Feng
Hou Rui Shi
Li Fang Lu
Tian Yan Yun
Ming Peng
Xiao Guan
Heng Zhang
Jing Yi Wang
Xi Yan Zhang
Cheng Liang Li
Yan Jun Chen
Peng He
Yin Dong Zhang
Jiang Hui Xie
spellingShingle Meng Yun Ren
Ren Jun Feng
Hou Rui Shi
Li Fang Lu
Tian Yan Yun
Ming Peng
Xiao Guan
Heng Zhang
Jing Yi Wang
Xi Yan Zhang
Cheng Liang Li
Yan Jun Chen
Peng He
Yin Dong Zhang
Jiang Hui Xie
Expression patterns of members of the ethylene signaling-related gene families in response to dehydration stresses in cassava.
PLoS ONE
author_facet Meng Yun Ren
Ren Jun Feng
Hou Rui Shi
Li Fang Lu
Tian Yan Yun
Ming Peng
Xiao Guan
Heng Zhang
Jing Yi Wang
Xi Yan Zhang
Cheng Liang Li
Yan Jun Chen
Peng He
Yin Dong Zhang
Jiang Hui Xie
author_sort Meng Yun Ren
title Expression patterns of members of the ethylene signaling-related gene families in response to dehydration stresses in cassava.
title_short Expression patterns of members of the ethylene signaling-related gene families in response to dehydration stresses in cassava.
title_full Expression patterns of members of the ethylene signaling-related gene families in response to dehydration stresses in cassava.
title_fullStr Expression patterns of members of the ethylene signaling-related gene families in response to dehydration stresses in cassava.
title_full_unstemmed Expression patterns of members of the ethylene signaling-related gene families in response to dehydration stresses in cassava.
title_sort expression patterns of members of the ethylene signaling-related gene families in response to dehydration stresses in cassava.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2017-01-01
description Drought is the one of the most important environment stresses that restricts crop yield worldwide. Cassava (Manihot esculenta Crantz) is an important food and energy crop that has many desirable traits such as drought, heat and low nutrients tolerance. However, the mechanisms underlying drought tolerance in cassava are unclear. Ethylene signaling pathway, from the upstream receptors to the downstream transcription factors, plays important roles in environmental stress responses during plant growth and development. In this study, we used bioinformatics approaches to identify and characterize candidate Manihot esculenta ethylene receptor genes and transcription factor genes. Using computational methods, we localized these genes on cassava chromosomes, constructed phylogenetic trees and identified stress-responsive cis-elements within their 5' upstream regions. Additionally, we measured the trehalose and proline contents in cassava fresh leaves after drought, osmotic, and salt stress treatments, and then it was found that the regulation patterns of contents of proline and trehalose in response to various dehydration stresses were differential, or even the opposite, which shows that plant may take different coping strategies to deal with different stresses, when stresses come. Furthermore, expression profiles of these genes in different organs and tissues under non-stress and abiotic stress were investigated through quantitative real-time PCR (qRT-PCR) analyses in cassava. Expression profiles exhibited clear differences among different tissues under non-stress and various dehydration stress conditions. We found that the leaf and tuberous root tissues had the greatest and least responses, respectively, to drought stress through the ethylene signaling pathway in cassava. Moreover, tuber and root tissues had the greatest and least reponses to osmotic and salt stresses through ethylene signaling in cassava, respectively. These results show that these plant tissues had differential expression levels of genes involved in ethylene signaling in response to the stresses tested. Moreover, after several gene duplication events, the spatiotemporally differential expression pattern of homologous genes in response to abiotic and biotic stresses may imply their functional diversity as a mechanism for adapting to the environment. Our data provide a framework for further research on the molecular mechanisms of cassava resistance to drought stress and provide a foundation for breeding drought-resistant new cultivars.
url http://europepmc.org/articles/PMC5441607?pdf=render
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