Literature DB >> 21964330

S-nitrosylation of NADPH oxidase regulates cell death in plant immunity.

Byung-Wook Yun1, Angela Feechan, Minghui Yin, Noor B B Saidi, Thierry Le Bihan, Manda Yu, John W Moore, Jeong-Gu Kang, Eunjung Kwon, Steven H Spoel, Jacqueline A Pallas, Gary J Loake.   

Abstract

Changes in redox status are a conspicuous feature of immune responses in a variety of eukaryotes, but the associated signalling mechanisms are not well understood. In plants, attempted microbial infection triggers the rapid synthesis of nitric oxide and a parallel accumulation of reactive oxygen intermediates, the latter generated by NADPH oxidases related to those responsible for the pathogen-activated respiratory burst in phagocytes. Both nitric oxide and reactive oxygen intermediates have been implicated in controlling the hypersensitive response, a programmed execution of plant cells at sites of attempted infection. However, the molecular mechanisms that underpin their function and coordinate their synthesis are unknown. Here we show genetic evidence that increases in cysteine thiols modified using nitric oxide, termed S-nitrosothiols, facilitate the hypersensitive response in the absence of the cell death agonist salicylic acid and the synthesis of reactive oxygen intermediates. Surprisingly, when concentrations of S-nitrosothiols were high, nitric oxide function also governed a negative feedback loop limiting the hypersensitive response, mediated by S-nitrosylation of the NADPH oxidase, AtRBOHD, at Cys 890, abolishing its ability to synthesize reactive oxygen intermediates. Accordingly, mutation of Cys 890 compromised S-nitrosothiol-mediated control of AtRBOHD activity, perturbing the magnitude of cell death development. This cysteine is evolutionarily conserved and specifically S-nitrosylated in both human and fly NADPH oxidase, suggesting that this mechanism may govern immune responses in both plants and animals.

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Year:  2011        PMID: 21964330     DOI: 10.1038/nature10427

Source DB:  PubMed          Journal:  Nature        ISSN: 0028-0836            Impact factor:   49.962


  37 in total

1.  Protein structure prediction on the Web: a case study using the Phyre server.

Authors:  Lawrence A Kelley; Michael J E Sternberg
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2.  In vivo imaging of an elicitor-induced nitric oxide burst in tobacco.

Authors:  I Foissner; D Wendehenne; C Langebartels; J Durner
Journal:  Plant J       Date:  2000-09       Impact factor: 6.417

3.  SWISS-MODEL and the Swiss-PdbViewer: an environment for comparative protein modeling.

Authors:  N Guex; M C Peitsch
Journal:  Electrophoresis       Date:  1997-12       Impact factor: 3.535

4.  Identification of nitric oxide synthase as a protective locus against tuberculosis.

Authors:  J D MacMicking; R J North; R LaCourse; J S Mudgett; S K Shah; C F Nathan
Journal:  Proc Natl Acad Sci U S A       Date:  1997-05-13       Impact factor: 11.205

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Authors:  Byung-Wook Yun; Helen A Atkinson; Charlotte Gaborit; Andy Greenland; Nick D Read; Jacqueline A Pallas; Gary J Loake
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6.  Protein S-nitrosylation: a physiological signal for neuronal nitric oxide.

Authors:  S R Jaffrey; H Erdjument-Bromage; C D Ferris; P Tempst; S H Snyder
Journal:  Nat Cell Biol       Date:  2001-02       Impact factor: 28.824

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Authors:  H Keller; N Pamboukdjian; M Ponchet; A Poupet; R Delon; J L Verrier; D Roby; P Ricci
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  168 in total

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Authors:  Steven H Spoel; Gerben van Ooijen
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7.  Signaling through reactive oxygen and nitrogen species is differentially modulated in sunflower seedling root and cotyledon in response to various nitric oxide donors and scavengers<sup/>.

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Journal:  Plant Signal Behav       Date:  2017-09-01

8.  Nitro-oleic acid triggers ROS production via NADPH oxidase activation in plants: A pharmacological approach.

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10.  ROS-mediated vascular homeostatic control of root-to-shoot soil Na delivery in Arabidopsis.

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