Epigenetic Control of Defense Signaling and Priming in Plants

被引:112
作者
Espinas, Nino A. [1 ]
Saze, Hidetoshi [1 ]
Saijo, Yusuke [2 ,3 ]
机构
[1] Grad Univ, Okinawa Inst Sci & Technol, Plant Epigenet Unit, Okinawa, Japan
[2] Nara Inst Sci & Technol, Ikoma, Japan
[3] Japan Sci & Technol Agcy, Precursory Res Embryon Sci & Technol, Kawaguchi, Saitama, Japan
关键词
epigenetic control; plant immunity; defense priming; DNA methylation; histone modification; transposable elements; plant-microbe interactions; EFFECTOR-TRIGGERED IMMUNITY; DIRECTED DNA METHYLATION; TRANSPOSABLE ELEMENTS; STRESS-RESPONSE; ARABIDOPSIS; RESISTANCE; CHROMATIN; GENES; DEMETHYLATION; INHERITANCE;
D O I
10.3389/fpls.2016.01201
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Immune recognition of pathogen-associated molecular patterns or effectors leads to defense activation at the pathogen challenged sites. This is followed by systemic defense activation at distant non-challenged sites, termed systemic acquired resistance (SAR). These inducible defenses are accompanied by extensive transcriptional reprogramming of defense-related genes. SAR is associated with priming, in which a subset of these genes is kept at a poised state to facilitate subsequent transcriptional regulation. Transgenerational inheritance of defense-related priming in plants indicates the stability of such primed states. Recent studies have revealed the importance and dynamic engagement of epigenetic mechanisms, such as DNA methylation and histone modifications that are closely linked to chromatin reconfiguration, in plant adaptation to different biotic stresses. Herein we review current knowledge regarding the biological significance and underlying mechanisms of epigenetic control for immune responses in plants. We also argue for the importance of host transposable elements as critical regulators of interactions in the evolutionary "arms race" between plants and pathogens.
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页数:7
相关论文
共 68 条
[1]   Epigenetic inheritance in rice plants [J].
Akimoto, Keiko ;
Katakami, Hatsue ;
Kim, Hyun-Jung ;
Ogawa, Emiko ;
Sano, Cecile M. ;
Wada, Yuko ;
Sano, Hiroshi .
ANNALS OF BOTANY, 2007, 100 (02) :205-217
[2]  
Alvarez ME, 2010, MOL PLANT PATHOL, V11, P563, DOI [10.1111/j.1364-3703.2010.00621.x, 10.1111/J.1364-3703.2010.00621.X]
[3]   Restricted epigenetic inheritance of H3K9 methylation [J].
Audergon, Pauline N. C. B. ;
Catania, Sandra ;
Kagansky, Alexander ;
Tong, Pin ;
Shukla, Manu ;
Pidoux, Alison L. ;
Allshire, Robin C. .
SCIENCE, 2015, 348 (6230) :132-135
[4]   Transcriptional 'memory' of a stress: transient chromatin and memory (epigenetic) marks at stress-response genes [J].
Avramova, Zoya .
PLANT JOURNAL, 2015, 83 (01) :149-159
[5]   Chromatin signatures of pluripotent cell lines [J].
Azuara, V ;
Perry, P ;
Sauer, S ;
Spivakov, M ;
Jorgensen, HF ;
John, RM ;
Gouti, M ;
Casanova, M ;
Warnes, G ;
Merkenschlager, M ;
Fisher, AG .
NATURE CELL BIOLOGY, 2006, 8 (05) :532-U189
[6]   A bivalent chromatin structure marks key developmental genes in embryonic stem cells [J].
Bernstein, BE ;
Mikkelsen, TS ;
Xie, XH ;
Kamal, M ;
Huebert, DJ ;
Cuff, J ;
Fry, B ;
Meissner, A ;
Wernig, M ;
Plath, K ;
Jaenisch, R ;
Wagschal, A ;
Feil, R ;
Schreiber, SL ;
Lander, ES .
CELL, 2006, 125 (02) :315-326
[7]   A Renaissance of Elicitors: Perception of Microbe-Associated Molecular Patterns and Danger Signals by Pattern-Recognition Receptors [J].
Boller, Thomas ;
Felix, Georg .
ANNUAL REVIEW OF PLANT BIOLOGY, 2009, 60 :379-406
[8]   Modification of Enhancer Chromatin: What, How, and Why? [J].
Calo, Eliezer ;
Wysocka, Joanna .
MOLECULAR CELL, 2013, 49 (05) :825-837
[9]   A heat-inducible transcription factor, HsfA2, is required for extension of acquired thermotolerance in Arabidopsis [J].
Charng, Yee-yung ;
Liu, Hsiang-chin ;
Liu, Nai-yu ;
Chi, Wen-tzu ;
Wang, Chun-neng ;
Chang, Shih-hsun ;
Wang, Tsu-tsuen .
PLANT PHYSIOLOGY, 2007, 143 (01) :251-262
[10]   Host-microbe interactions: Shaping the evolution of the plant immune response [J].
Chisholm, ST ;
Coaker, G ;
Day, B ;
Staskawicz, BJ .
CELL, 2006, 124 (04) :803-814