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研究灰葡萄孢中产生 H2O2 的系统的功能:主要的 Cu-Zn-超氧化物歧化酶(BCSOD1)有助于对法国菜豆的致病力,而葡萄糖氧化酶(BCGOD1)则是可有可无的。

Functional analysis of H(2)O(2)-generating systems in Botrytis cinerea: the major Cu-Zn-superoxide dismutase (BCSOD1) contributes to virulence on French bean, whereas a glucose oxidase (BCGOD1) is dispensable.

机构信息

Institut für Botanik, Westf. Wilhelms-Universität, Schlossgarten 3, 48149 Münster, Germany.

出版信息

Mol Plant Pathol. 2004 Jan 1;5(1):17-27. doi: 10.1111/j.1364-3703.2004.00201.x.

Abstract

SUMMARY The oxidative burst, a transient and rapid accumulation of reactive oxygen species (ROS), is a widespread defence mechanism of higher plants against pathogen attack. There is increasing evidence that the necrotrophic fungal pathogen Botrytis cinerea itself generates ROS, and that this capability could contribute to the virulence of the fungus. Two potential H(2)O(2)-generating systems were studied with respect to their impact on the interaction of B. cinerea and its host plant Phaseolus vulgaris. A Cu-Zn-superoxide dismutase gene (bcsod1) and a putative glucose oxidase gene (bcgod1) were cloned and characterized, and deletion mutants were created using a gene-replacement methodology. Whereas the Deltabcgod1-mutants displayed normal virulence on bean leaves, the Deltabcsod1 mutants showed a significantly retarded development of lesions, indicating that the Cu-Zn SOD-activity is an important single virulence factor in this interaction system. Whether dismutation of (fungal or host) superoxide, or generation of H(2)O(2) (or both), are important for pathogenesis in this system remains to be elucidated.

摘要

摘要

氧化爆发是高等植物抵御病原体攻击的一种广泛存在的防御机制,它是活性氧(ROS)的短暂而迅速积累。越来越多的证据表明,坏死真菌病原体 Botrytis cinerea 本身会产生 ROS,而这种能力可能有助于真菌的毒力。本研究针对两种潜在的 H2O2 生成系统,研究了它们对 Botrytis cinerea 与其宿主植物 Phaseolus vulgaris 相互作用的影响。克隆并鉴定了一个 Cu-Zn-超氧化物歧化酶基因(bcsod1)和一个假定的葡萄糖氧化酶基因(bcgod1),并使用基因替换方法创建了缺失突变体。虽然 Deltabcgod1 突变体在豆叶上表现出正常的毒力,但 Deltabcsod1 突变体的病变发育明显延迟,表明 Cu-Zn SOD 活性是该互作系统中一个重要的单一毒力因子。在这个系统中,(真菌或宿主)超氧化物的歧化作用,还是 H2O2 的生成(或两者兼而有之)对于发病机制是否重要,仍有待阐明。

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