Arabidopsis SENESCENCE-ASSOCIATED GENE101 stabilizes and signals within an ENHANCED DISEASE SUSCEPTIBILITY1 complex in plant innate immunity

被引:350
作者
Feys, BJ
Wiermer, M
Bhat, RA
Moisan, LJ
Medina-Escobar, N
Neu, C
Cabral, A
Parker, JE [1 ]
机构
[1] Max Planck Inst Plant Breeding Res, Dept Plant Microbe Interact, D-50829 Cologne, Germany
[2] John Innes Ctr Plant Sci Res, Sainsbury Lab, Norwich NR4 7UH, Norfolk, England
[3] Univ London Imperial Coll Sci Technol & Med, Dept Biol Sci, London SW7 2AZ, England
关键词
D O I
10.1105/tpc.105.033910
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Plant innate immunity against invasive biotrophic pathogens depends on the intracellular defense regulator ENHANCED DISEASE SUSCEPTIBILITY1 (EDS1). We show here that Arabidopsis thaliana EDS1 interacts in vivo with another protein, SENESCENCE-ASSOCIATED GENE101 (SAG101), discovered through a proteomic approach to identify new EDS1 pathway components. Together with PHYTOALEXIN-DEFICIENT4 (PAD4), a known EDS1 interactor, SAG101 contributes intrinsic and indispensable signaling activity to EDS1-dependent resistance. The combined activities of SAG101 and PAD4 are necessary for programmed cell death triggered by the Toll-Interleukin-1 Receptor type of nucleotide binding/ leucine-rich repeat immune receptor in response to avirulent pathogen isolates and in restricting the growth of normally virulent pathogens. We further demonstrate by a combination of cell fractionation, coimmunoprecipitation, and fluorescence resonance energy transfer experiments the existence of an EDS1 - SAG101 complex inside the nucleus that is molecularly and spatially distinct from EDS1 - PAD4 associations in the nucleus and cytoplasm. By contrast, EDS1 homomeric interactions were detected in the cytoplasm but not inside the nucleus. These data, combined with evidence for coregulation between individual EDS1 complexes, suggest that dynamic interactions of EDS1 and its signaling partners in multiple cell compartments are important for plant defense signal relay.
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页码:2601 / 2613
页数:13
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共 31 条
[11]   Fluorescence resonance energy transfer from cyan to yellow fluorescent protein detected by acceptor photobleaching using confocal microscopy and a single laser [J].
Karpova, TS ;
Baumann, CT ;
He, L ;
Wu, X ;
Grammer, A ;
Lipsky, P ;
Hager, GL ;
McNally, JG .
JOURNAL OF MICROSCOPY, 2003, 209 :56-70
[12]   Nuclear localization of NPR1 is required for activation of PR gene expression [J].
Kinkema, M ;
Fan, WH ;
Dong, XN .
PLANT CELL, 2000, 12 (12) :2339-2350
[13]   The direct activation of MIK, a germinal center kinase (GCK)-like kinase, by MARK, a maize atypical receptor kinase, suggests a new mechanism for signaling through kinase-dead receptors [J].
Llompart, B ;
Castells, E ;
Río, A ;
Roca, R ;
Ferrando, A ;
Stiefel, V ;
Nech, PP ;
Casacuberta, JM .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2003, 278 (48) :48105-48111
[14]   Mammalian Ryk is a Wnt coreceptor required for stimulation of neurite outgrowth [J].
Lu, WG ;
Yamamoto, V ;
Ortega, B ;
Baltimore, D .
CELL, 2004, 119 (01) :97-108
[15]   Lesion simulating disease 1 -: Is required for acclimation to conditions that promote excess excitation energy [J].
Mateo, A ;
Mühlenbock, P ;
Rustérucci, C ;
Chang, CCC ;
Miszalski, Z ;
Karpinska, B ;
Parker, JE ;
Mullineaux, PM ;
Karpinski, S .
PLANT PHYSIOLOGY, 2004, 136 (01) :2818-2830
[16]   Inducers of plant systemic acquired resistance regulate NPR1 function through redox changes [J].
Mou, Z ;
Fan, WH ;
Dong, XN .
CELL, 2003, 113 (07) :935-944
[17]   Rewiring MAP kinase pathways using alternative scaffold assembly mechanisms [J].
Park, SH ;
Zarrinpar, A ;
Lim, WA .
SCIENCE, 2003, 299 (5609) :1061-1064
[18]   Arabidopsis MAP kinase 4 negatively regulates systemic acquired resistance [J].
Petersen, M ;
Brodersen, P ;
Naested, H ;
Andreasson, E ;
Lindhart, U ;
Johansen, B ;
Nielsen, HB ;
Lacy, M ;
Austin, MJ ;
Parker, JE ;
Sharma, SB ;
Klessig, DF ;
Martienssen, R ;
Mattsson, O ;
Jensen, AB ;
Mundy, J .
CELL, 2000, 103 (07) :1111-1120
[19]   A generic protein purification method for protein complex characterization and proteome exploration [J].
Rigaut, G ;
Shevchenko, A ;
Rutz, B ;
Wilm, M ;
Mann, M ;
Séraphin, B .
NATURE BIOTECHNOLOGY, 1999, 17 (10) :1030-1032
[20]   The disease resistance signaling components EDS1 and PAD4 are essential regulators of the cell death pathway controlled by LSD1 in arabidopsis [J].
Rustérucci, C ;
Aviv, DH ;
Holt, BF ;
Dangl, JL ;
Parker, JE .
PLANT CELL, 2001, 13 (10) :2211-2224