RACK1 functions in rice innate immunity by interacting with the rac1 immune complex

被引:180
作者
Nakashima, Ayako [1 ]
Chen, Letian [1 ]
Thao, Nguyen Phuong [1 ]
Fujiwara, Masayuki [1 ]
Wong, Hann Ling [1 ]
Kuwano, Masayoshi
Umemura, Kenji [2 ]
Shirasu, Ken [3 ]
Kawasaki, Tsutomu [1 ]
Shimamoto, Ko [1 ]
机构
[1] Nara Inst Sci & Technol, Plant Mol Genet Lab, Ikoma 6300192, Japan
[2] Meiji Seika Kaisha Ltd, Agr & Vet Labs, Kohoku Ku, Yokohama, Kanagawa 2228567, Japan
[3] John Innes Ctr, Sainsbury Lab, Norwich NR4 7UH, Norfolk, England
关键词
D O I
10.1105/tpc.107.054395
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
A small GTPase, Rac1, plays a key role in rice (Oryza sativa) innate immunity as part of a complex of regulatory proteins. Here, we used affinity column chromatography to identify rice RACK1 (for Receptor for Activated C-Kinase 1) as an interactor with Rac1. RACK1 functions in various mammalian signaling pathways and is involved in hormone signaling and development in plants. Rice contains two RACK1 genes, RACK1A and RACK1B, and the RACK1A protein interacts with the GTP form of Rac1. Rac1 positively regulates RACK1A at both the transcriptional and posttranscriptional levels. RACK1A transcription was also induced by a fungal elicitor and by abscisic acid, jasmonate, and auxin. Analysis of transgenic rice plants and cell cultures indicates that RACK1A plays a role in the production of reactive oxygen species (ROS) and in resistance against rice blast infection. Overexpression of RACK1A enhances ROS production in rice seedlings. RACK1A was shown to interact with the N terminus of NADPH oxidase, RAR1, and SGT1, key regulators of plant disease resistance. These results suggest that RACK1A functions in rice innate immunity by interacting with multiple proteins in the Rac1 immune complex.
引用
收藏
页码:2265 / 2279
页数:15
相关论文
共 80 条
[1]   Identification of a putative target for Rho as the serine-threonine kinase protein kinase N [J].
Amano, M ;
Mukai, H ;
Ono, Y ;
Chihara, K ;
Matsui, T ;
Hamajima, Y ;
Okawa, K ;
Iwamatsu, A ;
Kaibuchi, K .
SCIENCE, 1996, 271 (5249) :648-650
[2]  
ASSMANN SM, 2005, SCI STKE
[3]   Initiation of RPS2-specified disease resistance in Arabidopsis is coupled to the AvrRpt2-directed elimination of RIN4 [J].
Axtell, MJ ;
Staskawicz, BJ .
CELL, 2003, 112 (03) :369-377
[4]   The RAR1 interactor SGT1, an essential component of R gene-triggered disease resistance [J].
Azevedo, C ;
Sadanandom, A ;
Kitagawa, K ;
Freialdenhoven, A ;
Shirasu, K ;
Schulze-Lefert, P .
SCIENCE, 2002, 295 (5562) :2073-2076
[5]   Role of SGT1 in resistance protein accumulation in plant immunity [J].
Azevedo, Cristina ;
Betsuyaku, Shigeyuki ;
Peart, Jack ;
Takahashi, Akira ;
Noel, Laurent ;
Sadanandom, Ari ;
Casais, Catarina ;
Parker, Jane ;
Shirasu, Ken .
EMBO JOURNAL, 2006, 25 (09) :2007-2016
[6]   ROPs in the spotlight of plant signal transduction [J].
Berken, A. .
CELLULAR AND MOLECULAR LIFE SCIENCES, 2006, 63 (21) :2446-2459
[7]   RAR1 positively controls steady state levels of barley MLA resistance proteins and enables sufficient MLA6 accumulation for effective resistance [J].
Bieri, S ;
Mauch, S ;
Shen, QH ;
Peart, J ;
Devoto, A ;
Casais, C ;
Ceron, F ;
Schulze, S ;
Steinbiss, HH ;
Shirasu, K ;
Schulze-Lefert, P .
PLANT CELL, 2004, 16 (12) :3480-3495
[8]   A novel role for the TIR domain in association with pathogen-derived elicitors [J].
Burch-Smith, Tessa M. ;
Schiff, Michael ;
Caplan, Jeffrey L. ;
Tsao, Jeffrey ;
Czymmek, Kirk ;
Dinesh-Kumar, Savithramma P. .
PLOS BIOLOGY, 2007, 5 (03) :501-514
[9]   Release of eIF6 (p27BBP) from the 60S subunit allows 80S ribosome assembly [J].
Ceci, M ;
Gaviraghi, C ;
Gorrini, C ;
Sala, LA ;
Offenhäuser, N ;
Marchisio, PC ;
Biffo, S .
NATURE, 2003, 426 (6966) :579-584
[10]   Proteomic characterization of evolutionarily conserved and variable proteins of arabidopsis cytosolic ribosomes [J].
Chang, IF ;
Szick-Miranda, K ;
Pan, SQ ;
Bailey-Serres, J .
PLANT PHYSIOLOGY, 2005, 137 (03) :848-862