Changes and Associations of Genomic Transcription and Histone Methylation with Salt Stress in Castor Bean

被引:38
作者
Han, Bing [1 ,2 ]
Xu, Wei [1 ]
Ahmed, Naeem [1 ]
Yu, Anmin [1 ]
Wang, Zaiqing [1 ,2 ]
Liu, Aizhong [3 ]
机构
[1] Chinese Acad Sci, Kunming Inst Bot, Key Lab Econ Plants & Biotechnol, Yunnan Key Lab Wild Plant Resources, Kunming 650201, Yunnan, Peoples R China
[2] Univ Chinese Acad Sci, Beijing 100049, Peoples R China
[3] Southwest Forestry Univ, Key Lab Forest Resources Conservat & Utilizat Sou, Minist Educ, Kunming 650224, Yunnan, Peoples R China
基金
中国国家自然科学基金;
关键词
Castor bean; Comparative transcriptome; Histone modification; H3K4me3; H3K27me3; Salt stress; RICINUS-COMMUNIS; ABIOTIC STRESS; GENE-EXPRESSION; TRANSPORT MECHANISM; PLANT-RESPONSES; SALINITY STRESS; K+ CHANNEL; RICE; TOLERANCE; GROWTH;
D O I
10.1093/pcp/pcaa037
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Soil salinity is a major source of abiotic plant stress, adversely affecting plant growth, development and productivity. Although the physiological and molecular mechanisms that underlie plant responses to salt stress are becoming increasingly understood, epigenetic modifications, such as histone methylations and their potential regulation of the transcription of masked genes at the genome level in response to salt stress, remain largely unclear. Castor bean, an important nonedible oil crop, has evolved the capacity to grow under salt stress. Here, based on high-throughput RNA-seq and ChIP-seq data, we systematically investigated changes in genomic transcription and histone methylation using typical histone H3 lysine 4 trimethylation (H3K4me3) and histone H3 tri-methylated lysine 27 (H3K27me3) markers in castor bean leaves subjected to salt stress. The results showed that gain or loss of histone methylation was closely associated with activated or repressed gene expression, though variations in both transcriptome and histone methylation modifications were relatively narrow in response to salt stress. Diverse salt responsive genes and switched histone methylation sites were identified in this study. In particular, we found for the first time that the transcription of the key salt-response regulator RADIALIS-LIKE SANT (RSM1), a MYB-related transcription factor involved in ABA(abscisic acid)-mediated salt stress signaling, was potentially regulated by bivalent H3K4me3-H3K27me3 modifications. Combining phenotypic variations with transcriptional and epigenetic changes, we provide a comprehensive profile for understanding histone modification, genomic transcription and their associations in response to salt stress in plants.
引用
收藏
页码:1120 / 1133
页数:14
相关论文
共 55 条
[1]   Plant responses to abiotic stress: The chromatin context of transcriptional regulation [J].
Asensi-Fabado, Maria-Amparo ;
Amtmann, Anna ;
Perrella, Giorgio .
BIOCHIMICA ET BIOPHYSICA ACTA-GENE REGULATORY MECHANISMS, 2017, 1860 (01) :106-122
[2]   The Progeny of Arabidopsis thaliana Plants Exposed to Salt Exhibit Changes in DNA Methylation, Histone Modifications and Gene Expression [J].
Bilichak, Andriy ;
Ilnystkyy, Yaroslav ;
Hollunder, Jens ;
Kovalchuk, Igor .
PLOS ONE, 2012, 7 (01)
[3]   CDPKs in immune and stress signaling [J].
Boudsocq, Marie ;
Sheen, Jen .
TRENDS IN PLANT SCIENCE, 2013, 18 (01) :30-40
[4]   The evolution of halophytes, glycophytes and crops, and its implications for food security under saline conditions [J].
Cheeseman, John M. .
NEW PHYTOLOGIST, 2015, 206 (02) :557-570
[5]   SOAPnuke: a MapReduce acceleration-supported software for integrated quality control and preprocessing of high-throughput sequencing data [J].
Chen, Yuxin ;
Chen, Yongsheng ;
Shi, Chunmei ;
Huang, Zhibo ;
Zhang, Yong ;
Li, Shengkang ;
Li, Yan ;
Ye, Jia ;
Yu, Chang ;
Li, Zhuo ;
Zhang, Xiuqing ;
Wang, Jian ;
Yang, Huanming ;
Fang, Lin ;
Chen, Qiang .
GIGASCIENCE, 2017, 7 (01) :1-6
[6]   Improving crop salt tolerance [J].
Flowers, TJ .
JOURNAL OF EXPERIMENTAL BOTANY, 2004, 55 (396) :307-319
[7]   A Spatio-Temporal Understanding of Growth Regulation during the Salt Stress Response in Arabidopsis [J].
Geng, Yu ;
Wu, Rui ;
Wee, Choon Wei ;
Xie, Fei ;
Wei, Xueliang ;
Chan, Penny Mei Yeen ;
Tham, Cliff ;
Duan, Lina ;
Dinneny, Jose R. .
PLANT CELL, 2013, 25 (06) :2132-2154
[8]   CDPKs -: a kinase for every Ca2+ signal? [J].
Harmon, AC ;
Gribskov, M ;
Harper, JF .
TRENDS IN PLANT SCIENCE, 2000, 5 (04) :154-159
[9]   Global Epigenetic and Transcriptional Trends among Two Rice Subspecies and Their Reciprocal Hybrids [J].
He, Guangming ;
Zhu, Xiaopeng ;
Elling, Axel A. ;
Chen, Liangbi ;
Wang, Xiangfeng ;
Guo, Lan ;
Liang, Manzhong ;
He, Hang ;
Zhang, Huiyong ;
Chen, Fangfang ;
Qi, Yijun ;
Chen, Runsheng ;
Deng, Xing-Wang .
PLANT CELL, 2010, 22 (01) :17-33
[10]   Epigenetic Environmental Memories in Plants: Establishment, Maintenance, and Reprogramming [J].
He, Yuehui ;
Li, Zicong .
TRENDS IN GENETICS, 2018, 34 (11) :856-866