Transcriptome analysis reveals regulatory mechanisms of different drought-tolerant Gleditsia sinensis seedlings under drought stress

被引:1
作者
Liu, Fuhua [1 ]
Zhao, Yang [1 ]
Wang, Xiurong [1 ]
Wang, Biao [2 ]
Xiao, Feng [1 ]
He, Kequan [3 ]
机构
[1] Guizhou Univ, Coll Forestry, Inst Forest Resources & Environm Guizhou, Guiyang 550025, Guizhou, Peoples R China
[2] Forestry Bur Qinglong, Qinglong 561400, Guizhou, Peoples R China
[3] State Owned Forest Farm Dushan Cty, Dushan 558200, Guizhou, Peoples R China
来源
BMC GENOMIC DATA | 2024年 / 25卷 / 01期
关键词
G; sinensis; Drought tolerant; Transcriptome analysis; Differentially expressed genes; CONFERS TOLERANCE; SYNTHETASE P5CS; GENE-EXPRESSION; PROTEIN;
D O I
10.1186/s12863-024-01216-y
中图分类号
Q3 [遗传学];
学科分类号
071007 ; 090102 ;
摘要
Background Gleditsia sinensis is a significant tree species from both ecological and economic perspectives. However, its growth is hampered by temporary droughts during the seedling stage, thereby impeding the development of the G. sinensis industry. Drought stress and rehydration of semi-annual potted seedlings using an artificial simulated water control method. RNA sequencing (RNA-seq) analyses were conducted on leaves collected from highly resistant (HR) and highly susceptible (HS) seedling families at five different stages during the process of drought stress and rehydration to investigate their gene expression patterns. Results The differentially expressed genes (DEGs) were predominantly enriched in pathways related to "chloroplast" (GO:0009507), "photosynthesis" (GO:0015979), "plant hormone signal transduction" (map04075), "flavonoid biosynthesis" (map00941), "stress response", "response to reactive oxygen species (ROS)" (GO:0000302), "signal transduction" (GO:0007165) in G. sinensis HR and HS families exposed to mild and severe drought stress. Additionally, the pathways related to "plant hormone signal transduction" (map04075), and osmoregulation were also enriched. The difference in drought tolerance between the two families of G. sinensis may be associated with "transmembrane transporter activity" (GO:0022857), "stress response", "hormones and signal transduction" (GO:0007165), "cutin, suberine and wax biosynthesis" (map00073), "ribosome" (map03010), "photosynthesis" (map00195), "sugar metabolism", and others. An enrichment analysis of DEGs under severe drought stress suggests that the drought tolerance of both families may be related to "water-soluble vitamin metabolic process" (GO:0006767), "photosynthesis" (map00195), "plant hormone signal transduction" (map04075), "starch and sucrose metabolism" (map00500), and "galactose metabolism" (map00052). Osmoregulation-related genes such as delta-1-pyrroline-5-carboxylate synthase (P5CS), Amino acid permease (AAP), Amino acid permease 2 (AAP2) and Trehalose-phosphate synthase (TPS), as well as the antioxidant enzyme L-ascorbate peroxidase 6 (APX6), may be significant genes involved in drought tolerance in G. sinensis. Five genes were selected randomly to validate the RNA-seq results using quantitative real-time PCR (RT-qPCR) and they indicated that the transcriptome data were reliable. Conclusions The study presents information on the molecular regulation of the drought tolerance mechanism in G. sinensis and provides a reference for further research on the molecular mechanisms involved in drought tolerance breeding of G. sinensis.
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页数:15
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共 57 条
  • [1] Consequences of widespread tree Mortality triggered by drought and temperature stress
    Anderegg, William R. L.
    Kane, Jeffrey M.
    Anderegg, Leander D. L.
    [J]. NATURE CLIMATE CHANGE, 2013, 3 (01) : 30 - 36
  • [2] Dual regulation of cytosolic ascorbate peroxidase (APX) by tyrosine nitration and S-nitrosylation
    Begara-Morales, Juan C.
    Sanchez-Calvo, Beatriz
    Chaki, Mounira
    Valderrama, Raquel
    Mata-Perez, Capilla
    Lopez-Jaramillo, Javier
    Padilla, Maria N.
    Carreras, Alfonso
    Corpas, Francisco J.
    Barroso, Juan B.
    [J]. JOURNAL OF EXPERIMENTAL BOTANY, 2014, 65 (02) : 527 - 538
  • [3] Blighe K, 2021, R package version, V2
  • [4] fastp: an ultra-fast all-in-one FASTQ preprocessor
    Chen, Shifu
    Zhou, Yanqing
    Chen, Yaru
    Gu, Jia
    [J]. BIOINFORMATICS, 2018, 34 (17) : 884 - 890
  • [5] Uncovering the Complexity of Transcriptomes with RNA-Seq
    Costa, Valerio
    Angelini, Claudia
    De Feis, Italia
    Ciccodicola, Alfredo
    [J]. JOURNAL OF BIOMEDICINE AND BIOTECHNOLOGY, 2010,
  • [6] Developmental and transcriptional responses of maize to drought stress under field conditions
    Danilevskaya, Olga N.
    Yu, GongXin
    Meng, Xin
    Xu, John
    Stephenson, Elizabeth
    Estrada, Stacey
    Chilakamarri, Sunita
    Zastrow-Hayes, Gina
    Thatcher, Shawn
    [J]. PLANT DIRECT, 2019, 3 (05)
  • [7] Overexpression of the vascular brassinosteroid receptor BRL3 confers drought resistance without penalizing plant growth
    Fabregas, Norma
    Lozano-Elena, Fidel
    Blasco-Escamez, David
    Tohge, Takayuki
    Martinez-Andujar, Cristina
    Albacete, Alfonso
    Osorio, Sonia
    Bustamante, Mariana
    Luis Riechmann, Jose
    Nomura, Takahito
    Yokota, Takao
    Conesa, Ana
    Perez Alfocea, Francisco
    Fernie, Alisdair R.
    Cano-Delgado, Ana I.
    [J]. NATURE COMMUNICATIONS, 2018, 9
  • [8] General mechanisms of drought response and their application in drought resistance improvement in plants
    Fang, Yujie
    Xiong, Lizhong
    [J]. CELLULAR AND MOLECULAR LIFE SCIENCES, 2015, 72 (04) : 673 - 689
  • [9] Full-length transcriptome assembly from RNA-Seq data without a reference genome
    Grabherr, Manfred G.
    Haas, Brian J.
    Yassour, Moran
    Levin, Joshua Z.
    Thompson, Dawn A.
    Amit, Ido
    Adiconis, Xian
    Fan, Lin
    Raychowdhury, Raktima
    Zeng, Qiandong
    Chen, Zehua
    Mauceli, Evan
    Hacohen, Nir
    Gnirke, Andreas
    Rhind, Nicholas
    di Palma, Federica
    Birren, Bruce W.
    Nusbaum, Chad
    Lindblad-Toh, Kerstin
    Friedman, Nir
    Regev, Aviv
    [J]. NATURE BIOTECHNOLOGY, 2011, 29 (07) : 644 - U130
  • [10] Guo RR., 2015, The Establishment of Grape Somatic Embryo Regeneration System and the Functional Study of Aspartic Proteases Family Gene in Grape