Genome-Wide Identification and Expression Analysis of the TIR-NBS-LRR Gene Family and Its Response to Fungal Disease in Rose (Rosa chinensis)

被引:5
作者
Song, Jurong [1 ]
Chen, Feng [1 ]
Lv, Bo [1 ]
Guo, Cong [1 ]
Yang, Jie [1 ]
Huang, Li [1 ]
Guo, Jiaqi [1 ]
Xiang, Fayun [1 ]
机构
[1] Hubei Acad Agr Sci, Ind Crops Inst, Wuhan 430070, Peoples R China
来源
BIOLOGY-BASEL | 2023年 / 12卷 / 03期
基金
中国博士后科学基金;
关键词
rose; TIR-NBS-LRR; fungal disease; black spot pathogen; resistance gene; PATHOGEN EFFECTORS; RESISTANCE GENE; DIPLOCARPON-ROSAE; PLANT; PROTEIN; OVEREXPRESSION; DOMAIN; ASSOCIATION; ARABIDOPSIS; ACTIVATION;
D O I
10.3390/biology12030426
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
Simple Summary TIR-NBS-LRR (TNL) is a disease resistance gene family that responds to biotic stress in many plants, but the systematic analysis of this gene family and the expression response to biotic stress have rarely been reported in roses. In the present study, 96 intact TNL gene family members were identified by bioinformatics in Rosa chinensis, and analyzed from the perspectives of evolutionary relationships, conserved structures, expression regulation, collinear relationships, and expression patterns. Some of the TNL genes responded to hormones and fungal disease: RcTNL23 demonstrated strong responses to three hormones and three pathogens. In addition, some TNL genes responded significantly to the black spot pathogen that we isolated, and different members may be involved in different stages of disease defense. In conclusion, we found that the TNL gene family is involved in the response to fungal disease and may function as a disease resistance gene in the rose. The present study lays a theoretical foundation for the functional study of TNL genes and the mining of disease resistance gene in roses, which will inform the selection and breeding of disease-resistant varieties. Roses, which are one of the world's most important ornamental plants, are often damaged by pathogens, resulting in serious economic losses. As a subclass of the disease resistance gene family of plant nucleotide-binding oligomerization domain (NOD)-like receptors, TIR-NBS-LRR (TNL) genes play a vital role in identifying pathogen effectors and activating defense responses. However, a systematic analysis of the TNL gene family is rarely reported in roses. Herein, 96 intact TNL genes were identified in Rosa chinensis. Their phylogenies, physicochemical characteristics, gene structures, conserved domains and motifs, promoter cis-elements, microRNA binding sites, and intra- and interspecific collinearity relationships were analyzed. An expression analysis using transcriptome data revealed that RcTNL genes were dominantly expressed in leaves. Some RcTNL genes responded to gibberellin, jasmonic acid, salicylic acid, Botrytis cinerea, Podosphaera pannosa, and Marssonina rosae (M. rosae); the RcTNL23 gene responded significantly to three hormones and three pathogens, and exhibited an upregulated expression. Furthermore, the black spot pathogen was identified as M. rosae. After inoculating rose leaves, an expression pattern analysis of the RcTNL genes suggested that they act during different periods of pathogen infection. The present study lays the foundations for an in-depth investigation of the TNL gene function and the mining of disease resistance genes in roses.
引用
收藏
页数:21
相关论文
共 72 条
  • [1] Genome-Wide Identification and Expression Analysis of NBS-Encoding Genes in Malus x domestica and Expansion of NBS Genes Family in Rosaceae
    Arya, Preeti
    Kumar, Gulshan
    Acharya, Vishal
    Singh, Anil K.
    [J]. PLOS ONE, 2014, 9 (09): : 502
  • [2] Genome-Wide Identification, Expression Profiling, and Characterization of Cyclin-like Genes Reveal Their Role in the Fertility of the Diamondback Moth
    Asad, Muhammad
    Chen, Jing
    Liao, Jianying
    Liu, Dan
    Yu, Jiajing
    Yang, Guang
    [J]. BIOLOGY-BASEL, 2022, 11 (10):
  • [3] The MEME Suite
    Bailey, Timothy L.
    Johnson, James
    Grant, Charles E.
    Noble, William S.
    [J]. NUCLEIC ACIDS RESEARCH, 2015, 43 (W1) : W39 - W49
  • [4] Near-optimal probabilistic RNA-seq quantification
    Bray, Nicolas L.
    Pimentel, Harold
    Melsted, Pall
    Pachter, Lior
    [J]. NATURE BIOTECHNOLOGY, 2016, 34 (05) : 525 - 527
  • [5] Enhanced resistance to bacterial and oomycete pathogens by short tandem target mimic RNAs in tomato
    Canto-Pastor, Alex
    Santos, Bruno A. M. C.
    Valli, Adrian A.
    Summers, William
    Schornack, Sebastian
    Baulcombe, David C.
    [J]. PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2019, 116 (07) : 2755 - 2760
  • [6] MG2C: a user-friendly online tool for drawing genetic maps
    Chao, Jiangtao
    Li, Zhiyuan
    Sun, Yuhe
    Aluko, Oluwaseun Olayemi
    Wu, Xinru
    Wang, Qian
    Liu, Guanshan
    [J]. MOLECULAR HORTICULTURE, 2021, 1 (01):
  • [7] TBtools: An Integrative Toolkit Developed for Interactive Analyses of Big Biological Data
    Chen, Chengjie
    Chen, Hao
    Zhang, Yi
    Thomas, Hannah R.
    Frank, Margaret H.
    He, Yehua
    Xia, Rui
    [J]. MOLECULAR PLANT, 2020, 13 (08) : 1194 - 1202
  • [8] Overexpression of gma-miR1510a/b suppresses the expression of a NB-LRR domain gene and reduces resistance to Phytophthora sojae
    Cui, Xiaoxia
    Yan, Qiang
    Gan, Shuping
    Xue, Dong
    Dou, Daolong
    Guo, Na
    Xing, Han
    [J]. GENE, 2017, 621 : 32 - 39
  • [9] psRNATarget: a plant small RNA target analysis server (2017 release)
    Dai, Xinbin
    Zhuang, Zhaohong
    Zhao, Patrick Xuechun
    [J]. NUCLEIC ACIDS RESEARCH, 2018, 46 (W1) : W49 - W54
  • [10] The Top 10 fungal pathogens in molecular plant pathology
    Dean, Ralph
    Van Kan, Jan A. L.
    Pretorius, Zacharias A.
    Hammond-Kosack, Kim E.
    Di Pietro, Antonio
    Spanu, Pietro D.
    Rudd, Jason J.
    Dickman, Marty
    Kahmann, Regine
    Ellis, Jeff
    Foster, Gary D.
    [J]. MOLECULAR PLANT PATHOLOGY, 2012, 13 (04) : 414 - 430