Deciphering the Molecular Signatures Associated With Resistance to Botrytis cinerea in Strawberry Flower by Comparative and Dynamic Transcriptome Analysis

被引:8
作者
Xiao, Guilin [1 ]
Zhang, Qinghua [1 ]
Zeng, Xiangguo [1 ]
Chen, Xiyang [1 ]
Liu, Sijia [1 ]
Han, Yongchao [1 ]
机构
[1] Inst Ind Crops, Hubei Acad Agr Sci, Hubei Key Lab Vegetable Germplasm Enhancement & Ge, Wuhan, Peoples R China
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
strawberry (fragaria x ananassa); flower; Botrytis cinerea; RNA sequencing; resistance-related genes; CELL-WALL INTEGRITY; PLANT IMMUNITY; SALICYLIC-ACID; ARABIDOPSIS; BIOSYNTHESIS; INFECTION; RESPONSES; DEFENSE; METABOLISM; MECHANISMS;
D O I
10.3389/fpls.2022.888939
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Gray mold caused by Botrytis cinerea, which is considered to be the second most destructive necrotrophic fungus, leads to major economic losses in strawberry (Fragaria x ananassa) production. B. cinerea preferentially infects strawberry flowers and fruits, leading to flower blight and fruit rot. Compared with those of the fruit, the mechanisms of flower defense against B. cinerea remain largely unexplored. Therefore, in this study, we aimed to unveil the resistance mechanisms of strawberry flower through dynamic and comparative transcriptome analysis with resistant and susceptible strawberry cultivars. Our experimental data suggest that resistance to B. cinerea in the strawberry flower is probably regulated at the transcriptome level during the early stages of infection and strawberry flower has highly complex and dynamic regulatory networks controlling a multi-layered defense response to B. cinerea. First of all, the higher expression of disease-resistance genes but lower expression of cell wall degrading enzymes and peroxidases leads to higher resistance to B. cinerea in the resistant cultivar. Interestingly, CPKs, RBOHDs, CNGCs, and CMLs comprised a calcium signaling pathway especially play a crucial role in enhancing resistance by increasing their expression. Besides, six types of phytohormones forming a complex regulatory network mediated flower resistance, especially JA and auxin. Finally, the genes involved in the phenylpropanoid and amino acids biosynthesis pathways were gene sets specially expressed or different expression genes, both of them contribute to the flower resistance to B. cinerea. These data provide the foundation for a better understanding of strawberry gray mold, along with detailed genetic information and resistant materials to enable genetic improvement of strawberry plant resistance to gray mold.
引用
收藏
页数:15
相关论文
共 76 条
[1]   Mechanisms and strategies of plant defense against Botrytis cinerea [J].
AbuQamar, Synan ;
Moustafa, Khaled ;
Lam-Son Phan Tran .
CRITICAL REVIEWS IN BIOTECHNOLOGY, 2017, 37 (02) :262-274
[2]   Convergent Loss of an EDS1/PAD4 Signaling Pathway in Several Plant Lineages Reveals Coevolved Components of Plant Immunity and Drought Response [J].
Baggs, Erin L. ;
Monroe, J. Grey ;
Thanki, Anil S. ;
O'Grady, Ruby ;
Schudoma, Christian ;
Haerty, Wilfried ;
Krasileva, Ksenia, V .
PLANT CELL, 2020, 32 (07) :2158-2177
[3]   Constitutive expression of ETHYLENE-RESPONSE-FACTOR1 in Arabidopsis confers resistance to several necrotrophic fungi [J].
Berrocal-Lobo, M ;
Molina, A ;
Solano, R .
PLANT JOURNAL, 2002, 29 (01) :23-32
[4]   Evaluation of strawberry (Fragaria L.) genetic resources for resistance to Botrytis cinerea [J].
Bestfleisch, M. ;
Luderer-Pflimpfl, M. ;
Hoefer, M. ;
Schulte, E. ;
Wuensche, J. N. ;
Hanke, M-V. ;
Flachowsky, H. .
PLANT PATHOLOGY, 2015, 64 (02) :396-405
[5]   Pectin Biosynthesis Is Critical for Cell Wall Integrity and Immunity in Arabidopsis thaliana [J].
Bethke, Gerit ;
Thao, Amanda ;
Xiong, Guangyan ;
Li, Baohua ;
Soltis, Nicole E. ;
Hatsugai, Noriyuki ;
Hillmer, Rachel A. ;
Katagiri, Fumiaki ;
Kliebenstein, Daniel J. ;
Pauly, Markus ;
Glazebrook, Jane .
PLANT CELL, 2016, 28 (02) :537-556
[6]   Arabidopsis PECTIN METHYLESTERASEs Contribute to Immunity against Pseudomonas syringae [J].
Bethke, Gerit ;
Grundman, Rachael E. ;
Sreekanta, Suma ;
Truman, William ;
Katagiri, Fumiaki ;
Glazebrook, Jane .
PLANT PHYSIOLOGY, 2014, 164 (02) :1093-1107
[7]   An EDS1 heterodimer signalling surface enforces timely reprogramming of immunity genes in Arabidopsis [J].
Bhandari, Deepak D. ;
Lapin, Dmitry ;
Kracher, Barbara ;
von Born, Patrick ;
Bautor, Jaqueline ;
Niefind, Karsten ;
Parker, Jane E. .
NATURE COMMUNICATIONS, 2019, 10 (1)
[8]   Arabidopsis WRKY33 Is a Key Transcriptional Regulator of Hormonal and Metabolic Responses toward Botrytis cinerea Infection [J].
Birkenbihl, Rainer P. ;
Diezel, Celia ;
Somssich, Imre E. .
PLANT PHYSIOLOGY, 2012, 159 (01) :266-285
[9]   Genome-wide transcriptional profiling of Botrytis cinerea genes targeting plant cell walls during infections of different hosts [J].
Blanco-Ulate, Barbara ;
Morales-Cruz, Abraham ;
Amrine, Katherine C. H. ;
Labavitch, John M. ;
Powell, Ann L. T. ;
Cantu, Dario .
FRONTIERS IN PLANT SCIENCE, 2014, 5
[10]   Tomato transcriptome and mutant analyses suggest a role for plant stress hormones in the interaction between fruit and Botrytis cinerea [J].
Blanco-Ulate, Barbara ;
Vincenti, Estefania ;
Powell, Ann L. T. ;
Cantu, Dario .
FRONTIERS IN PLANT SCIENCE, 2013, 4