Involvement of Alternative Oxidase in the Regulation of Growth, Development, and Resistance to Oxidative Stress of Sclerotinia sclerotiorum

Sclerotinia sclerotiorum is a cosmopolitan, filamentous, fungal pathogen that can cause serious disease in many kinds of crops. Alternative oxidase is the terminal oxidase of the alternative mitochondrial respiratory pathway in fungi and higher plants. We report the presence of this alternative path...

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Veröffentlicht in:The journal of microbiology 2012, 50(4), , pp.594-602
Hauptverfasser: Xu, Ting, Zhejiang University, Hangzhou, P. R. China, Yao, Fei, Zhejiang University, Hangzhou, P. R. China, Liang, Wu-Sheng, Zhejiang University, Hangzhou, P. R. China, Li, Yong-Hong, Hybrid Rapeseed Research Center of Shaanxi Province, Dali, P. R. China, Li, Dian-Rong, Hybrid Rapeseed Research Center of Shaanxi Province, Dali, P. R. China, Wang, Hao, Hybrid Rapeseed Research Center of Shaanxi Province, Dali, P. R. China, Wang, Zheng-Yi, Zhejiang University, Hangzhou, P. R. China
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Zusammenfassung:Sclerotinia sclerotiorum is a cosmopolitan, filamentous, fungal pathogen that can cause serious disease in many kinds of crops. Alternative oxidase is the terminal oxidase of the alternative mitochondrial respiratory pathway in fungi and higher plants. We report the presence of this alternative pathway respiration and demonstrate its expression in two isolates of S. sclerotiorum under unstressed, normal culture conditions. Application of salicylhydroxamic acid, a specific inhibitor of alternative oxidase, severely inhibited the mycelial growth of S. sclerotiorum both on potato dextrose agar plates and in liquid culture media. Inhibition of alternative oxidase could influence the growth pattern of S. sclerotiorum, as salicylhydroxamic acid treatment induced obvious aerial mycelia growing on potato dextrose agar plates. Under the treatment with salicylhydroxamic acid, S. sclerotiorum formed sclerotia much more slowly than the control. Treatment with hydrogen peroxide in millimolar concentrations greatly decreased the growth rate of mycelia and delayed the formation of sclerotia in both tested S. sclerotiorum isolates. As well, this treatment obviously increased their alternative pathway respiration and the levels of both mRNA and protein of the alternative oxidase. These results indicate that alternative oxidase is involved in the regulation of growth, development, and resistance to oxidative stress of S. sclerotiorum.
ISSN:1225-8873
1976-3794
DOI:10.1007/s12275-012-2015-7