Pattern recognition receptors and signaling in plant-microbe interactions

被引:306
作者
Saijo, Yusuke [1 ]
Loo, Eliza Po-iian [1 ]
Yasuda, Shigetaka [1 ]
机构
[1] Nara Inst Sci & Technol, Grad Sch Biol Sci, Ikoma 6300192, Japan
关键词
pattern recognition receptors; microbe-associated molecular patterns; damage-associated molecular patterns; plant immunity; plant-microbe interactions; signaling; receptor-like protein; receptor-like kinase; RICH REPEAT RECEPTOR; NADPH OXIDASE RBOHD; BACTERIAL DISEASE RESISTANCE; ETHYLENE-INDUCING XYLANASE; MOTIF-CONTAINING PROTEINS; PAMP-TRIGGERED IMMUNITY; III SECRETION SYSTEM; PSEUDOMONAS-SYRINGAE; MOLECULAR-PATTERN; INNATE IMMUNITY;
D O I
10.1111/tpj.13808
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Plants solely rely on innate immunity of each individual cell to deal with a diversity of microbes in the environment. Extracellular recognition of microbe- and host damage-associated molecular patterns leads to the first layer of inducible defenses, termed pattern-triggered immunity (PTI). In plants, pattern recognition receptors (PRRs) described to date are all membrane-associated receptor-like kinases or receptor-like proteins, reflecting the prevalence of apoplastic colonization of plant-infecting microbes. An increasing inventory of elicitor-active patterns and PRRs indicates that a large number of them are limited to a certain range of plant groups/species, pointing to dynamic and convergent evolution of pattern recognition specificities. In addition to common molecular principles of PRR signaling, recent studies have revealed substantial diversification between PRRs in their functions and regulatory mechanisms. This serves to confer robustness and plasticity to the whole PTI system in natural infections, wherein different PRRs are simultaneously engaged and faced with microbial assaults. We review the functional significance and molecular basis of PRR-mediated pathogen recognition and disease resistance, and also an emerging role for PRRs in homeostatic association with beneficial or commensal microbes.
引用
收藏
页码:592 / 613
页数:22
相关论文
共 50 条
  • [31] Plant-microbe interactions: organelles and the cytoskeleton in action
    Park, Eunsook
    Nedo, Alexander
    Caplan, Jeffrey L.
    Dinesh-Kumar, Savithramma P.
    NEW PHYTOLOGIST, 2018, 217 (03) : 1012 - 1028
  • [32] Chloroplast: The Emerging Battlefield in Plant-Microbe Interactions
    Yang, Feng
    Xiao, Kunqin
    Pan, Hongyu
    Liu, Jinliang
    FRONTIERS IN PLANT SCIENCE, 2021, 12
  • [33] Investigating plant-microbe interactions within the root
    Utami, Yuniar Devi
    Tan Anh Nhi Nguyen
    Hiruma, Kei
    ARCHIVES OF MICROBIOLOGY, 2022, 204 (10)
  • [34] Exploring the Roles of Aquaporins in Plant-Microbe Interactions
    Wang, Ruirui
    Wang, Min
    Chen, Kehao
    Wang, Shiyu
    Mur, Luis Alejandro Jose
    Guo, Shiwei
    CELLS, 2018, 7 (12)
  • [35] Chitooligosaccharide sensing and downstream signaling: contrasted outcomes in pathogenic and beneficial plant-microbe interactions
    Hamel, Louis-Philippe
    Beaudoin, Nathalie
    PLANTA, 2010, 232 (04) : 787 - 806
  • [36] Plant-microbe interactions in the apoplast: Communication at the plant cell wall
    Dora, Susanne
    Terrett, Oliver M.
    Sanchez-Rodriguez, Clara
    PLANT CELL, 2022, 34 (05) : 1532 - 1550
  • [37] Recent Advances in Calcium/Calmodulin-Mediated Signaling with an Emphasis on Plant-Microbe Interactions
    Poovaiah, B. W.
    Du, Liqun
    Wang, Huizhong
    Yang, Tianbao
    PLANT PHYSIOLOGY, 2013, 163 (02) : 531 - 542
  • [38] Mass Spectral Imaging to Map Plant-Microbe Interactions
    Parker, Gabriel D.
    Hanley, Luke
    Yu, Xiao-Ying
    MICROORGANISMS, 2023, 11 (08)
  • [39] Plant-microbe interactions in the phyllosphere: facing challenges of the anthropocene
    Perreault, Rosaelle
    Laforest-Lapointe, Isabelle
    ISME JOURNAL, 2022, 16 (02) : 339 - 345
  • [40] Plant-microbe interactions for the sustainable agriculture and food security
    Sharma, Pinki
    Kumar, Tarun
    Yadav, Monika
    Gill, Sarvajeet Singh
    Chauhan, Nar Singh
    PLANT GENE, 2021, 28