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Dual and Opposing Roles of Xanthine Dehydrogenase in Defense-Associated Reactive Oxygen Species Metabolism in Arabidopsis

Overview
Journal Plant Cell
Specialties Biology
Cell Biology
Date 2016 May 7
PMID 27152019
Citations 49
Authors
Affiliations
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Abstract

While plants produce reactive oxygen species (ROS) for stress signaling and pathogen defense, they need to remove excessive ROS induced during stress responses in order to minimize oxidative damage. How can plants fine-tune this balance and meet such conflicting needs? Here, we show that XANTHINE DEHYDROGENASE1 (XDH1) in Arabidopsis thaliana appears to play spatially opposite roles to serve this purpose. Through a large-scale genetic screen, we identified three missense mutations in XDH1 that impair XDH1's enzymatic functions and consequently affect the powdery mildew resistance mediated by RESISTANCE TO POWDERY MILDEW8 (RPW8) in epidermal cells and formation of xanthine-enriched autofluorescent objects in mesophyll cells. Further analyses revealed that in leaf epidermal cells, XDH1 likely functions as an oxidase, along with the NADPH oxidases RbohD and RbohF, to generate superoxide, which is dismutated into H2O2 The resulting enrichment of H2O2 in the fungal haustorial complex within infected epidermal cells helps to constrain the haustorium, thereby contributing to RPW8-dependent and RPW8-independent powdery mildew resistance. By contrast, in leaf mesophyll cells, XDH1 carries out xanthine dehydrogenase activity to produce uric acid in local and systemic tissues to scavenge H2O2 from stressed chloroplasts, thereby protecting plants from stress-induced oxidative damage. Thus, XDH1 plays spatially specified dual and opposing roles in modulation of ROS metabolism during defense responses in Arabidopsis.

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References
1.
Ives A, Nomura J, Martinon F, Roger T, Leroy D, Miner J . Xanthine oxidoreductase regulates macrophage IL1β secretion upon NLRP3 inflammasome activation. Nat Commun. 2015; 6:6555. PMC: 4382995. DOI: 10.1038/ncomms7555. View

2.
Nishino T, Okamoto K, Eger B, Pai E, Nishino T . Mammalian xanthine oxidoreductase - mechanism of transition from xanthine dehydrogenase to xanthine oxidase. FEBS J. 2008; 275(13):3278-89. DOI: 10.1111/j.1742-4658.2008.06489.x. View

3.
Xu J, Xie J, Yan C, Zou X, Ren D, Zhang S . A chemical genetic approach demonstrates that MPK3/MPK6 activation and NADPH oxidase-mediated oxidative burst are two independent signaling events in plant immunity. Plant J. 2013; 77(2):222-34. PMC: 4017028. DOI: 10.1111/tpj.12382. View

4.
de Torres Zabala M, Littlejohn G, Jayaraman S, Studholme D, Bailey T, Lawson T . Chloroplasts play a central role in plant defence and are targeted by pathogen effectors. Nat Plants. 2016; 1:15074. DOI: 10.1038/nplants.2015.74. View

5.
Martin H, Hancock J, Salisbury V, Harrison R . Role of xanthine oxidoreductase as an antimicrobial agent. Infect Immun. 2004; 72(9):4933-9. PMC: 517476. DOI: 10.1128/IAI.72.9.4933-4939.2004. View