Transcriptome analysis reveals molecular mechanisms underlying salt tolerance in halophyte Sesuvium portulacastrum

被引:16
|
作者
Wang, Dan [1 ,2 ]
Yang, Nan [1 ,2 ]
Zhang, Chaoyue [1 ,2 ]
He, Weihong [1 ,2 ]
Ye, Guiping [1 ,2 ]
Chen, Jianjun [3 ]
Wei, Xiangying [1 ,2 ]
机构
[1] Minjiang Univ, Inst Oceanog, Coll Geog & Oceanog, Fuzhou, Peoples R China
[2] Fuzhou Inst Oceanog, Fuzhou, Peoples R China
[3] Univ Florida, Inst Food & Agr Sci, Midflorida Res & Educ Ctr, Dept Environm Hort, Apopka, FL 32703 USA
来源
FRONTIERS IN PLANT SCIENCE | 2022年 / 13卷
基金
中国国家自然科学基金;
关键词
salt tolerance; Sesuvium portulacastrum; transcriptomic analysis; differentially expressed genes; ion transport; OXIDATIVE STRESS; PLASMA-MEMBRANE; ARABIDOPSIS; SALINITY; PLANT; DROUGHT; ROLES; GENE; NA+; TRANSPORTER;
D O I
10.3389/fpls.2022.973419
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Soil salinity is an important environmental problem that seriously affects plant growth and crop productivity. Phytoremediation is a cost-effective solution for reducing soil salinity and potentially converting the soils for crop production. Sesuvium portulacastrum is a typical halophyte which can grow at high salt concentrations. In order to explore the salt tolerance mechanism of S. portulacastrum, rooted cuttings were grown in a hydroponic culture containing 1/2 Hoagland solution with or without addition of 400 mM Na for 21 days. Root and leaf samples were taken 1 h and 21 days after Na treatment, and RNA-Seq was used to analyze transcript differences in roots and leaves of the Na-treated and control plants. A large number of differentially expressed genes (DEGs) were identified in the roots and leaves of plants grown under salt stress. Several key pathways related to salt tolerance were identified through KEGG analysis. Combined with physiological data and expression analysis, it appeared that cyclic nucleotide gated channels (CNGCs) were implicated in Na uptake and Na+/H+ exchangers (NHXs) were responsible for the extrusion and sequestration of Na, which facilitated a balance between Na+ and K+ in S. portulacastrum under salt stress. Soluble sugar and proline were identified as important osmoprotectant in salt-stressed S. portulacastrum plants. Glutathione metabolism played an important role in scavenging reactive oxygen species. Results from this study show that S. portulacastrum as a halophytic species possesses a suite of mechanisms for accumulating and tolerating a high level of Na; thus, it could be a valuable plant species used for phytoremediation of saline soils.
引用
收藏
页数:18
相关论文
共 50 条
  • [31] Complex molecular mechanisms underlying seedling salt tolerance in rice revealed by comparative transcriptome and metabolomic profiling
    Wang, Wen-Sheng
    Zhao, Xiu-Qin
    Li, Min
    Huang, Li-Yu
    Xu, Jian-Long
    Zhang, Fan
    Cui, Yan-Ru
    Fu, Bin-Ying
    Li, Zhi-Kang
    JOURNAL OF EXPERIMENTAL BOTANY, 2016, 67 (01) : 405 - 419
  • [32] Comparative Analysis of Latex Transcriptome Reveals Putative Molecular Mechanisms Underlying Super Productivity of Hevea brasiliensis
    Tang, Chaorong
    Xiao, Xiaohu
    Li, Heping
    Fan, Yujie
    Yang, Jianghua
    Qi, Jiyan
    Li, Huibo
    PLOS ONE, 2013, 8 (09):
  • [33] Morphological and molecular diversity analysis among the Indian clones of Sesuvium portulacastrum L.
    Lokhande, Vinayak H.
    Nikam, Tukaram D.
    Patade, Vikas Y.
    Suprasanna, Penna
    GENETIC RESOURCES AND CROP EVOLUTION, 2009, 56 (05) : 705 - 717
  • [34] Comparative Transcriptome Analysis Reveals the Molecular Mechanisms Underlying Male Sterility in Autotetraploid Watermelon
    Yi, Licong
    Wang, Yunqiang
    Wang, Fei
    Song, Zhihong
    Li, Junli
    Gong, Yu
    Dai, Zhaoyi
    JOURNAL OF PLANT GROWTH REGULATION, 2023, 42 (01) : 335 - 347
  • [35] Cloning of Salt Tolerance-Related cDNAs from the Mangrove Plant Sesuvium portulacastrum L.
    Hui-Cai Zeng~(1
    2.Environmental and Plant Protection institute
    JournalofIntegrativePlantBiology, 2006, 48 (08) : 952 - 957
  • [36] The Full-Length Transcriptome of Spartina alterniflora Reveals the Complexity of High Salt Tolerance in Monocotyledonous Halophyte
    Ye, Wenbin
    Wang, Taotao
    Wei, Wei
    Lou, Shuaitong
    Lan, Faxiu
    Zhu, Sheng
    Li, Qinzhen
    Ji, Guoli
    Lin, Chentao
    Wu, Xiaohui
    Ma, Liuyin
    PLANT AND CELL PHYSIOLOGY, 2020, 61 (05) : 882 - 896
  • [37] De novo transcriptome analysis of high-salinity stress-induced antioxidant activity and plant phytohormone alterations in Sesuvium portulacastrum
    Chen, YiQing
    Zhou, Yan
    Cai, Yuyi
    Feng, Yongpei
    Zhong, Cairong
    Fang, ZanShan
    Zhang, Ying
    FRONTIERS IN PLANT SCIENCE, 2022, 13
  • [38] Genome-wide analysis of ascorbate peroxidase and functional characterization of SpAPX249b and SpAPX285c for salt tolerance in Sesuvium portulacastrum L.
    Zhou, Houli
    Li, Yuxin
    Yuan, Boxuan
    Nie, Qinqin
    Xiang, Zhaozhen
    He, Lixia
    Wang, Yongfei
    Yang, Zhanchao
    Wang, Juanying
    Hui, Shugang
    Wang, Xuchu
    PLANT CELL REPORTS, 2025, 44 (04)
  • [39] Cloning of salt tolerance-related cDNAs from the mangrove plant Sesuvium portulacastrum L.
    Zeng, Hui-Cai
    Deng, Liu-Hong
    Zhang, Chun-Fa
    JOURNAL OF INTEGRATIVE PLANT BIOLOGY, 2006, 48 (08) : 952 - 957
  • [40] Comparative transcriptome analysis of salt-sensitive and salt-tolerant maize reveals potential mechanisms to enhance salt resistance
    Wang, Mingquan
    Wang, Yufeng
    Zhang, Yifei
    Li, Chunxia
    Gong, Shichen
    Yan, Shuqin
    Li, Guoliang
    Hu, Guanghui
    Ren, Honglei
    Yang, Jianfei
    Yu, Tao
    Yang, Kejun
    GENES & GENOMICS, 2019, 41 (07) : 781 - 801