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在生菜非寄主过敏反应的发展过程中,过氧化物酶活性的局部变化伴随着过氧化氢的产生。

Localized changes in peroxidase activity accompany hydrogen peroxide generation during the development of a nonhost hypersensitive reaction in lettuce.

作者信息

Bestwick CS, Brown IR, Mansfield JW

机构信息

Department of Biological Sciences, Wye College, University of London, Wye, Kent TN25 5AH, United Kingdom.

出版信息

Plant Physiol. 1998 Nov;118(3):1067-78. doi: 10.1104/pp.118.3.1067.

DOI:10.1104/pp.118.3.1067
PMID:9808752
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC34780/
Abstract

Peroxidase activity was characterized in lettuce (Lactuca sativa L.) leaf tissue. Changes in the activity and distribution of the enzyme were examined during the development of a nonhost hypersensitive reaction (HR) induced by Pseudomonas syringae (P. s.) pv phaseolicola and in response to an hrp mutant of the bacterium. Assays of activity in tissue extracts revealed pH optima of 4.5, 6.0, 5.5 to 6.0, and 6.0 to 6.5 for the substrates tetramethylbenzidine, guaiacol, caffeic acid, and chlorogenic acid, respectively. Inoculation with water or with wild-type or hrp mutant strains of P. s. pv phaseolicola caused an initial decline in total peroxidase activity; subsequent increases depended on the hydrogen donor used in the assay. Guaiacol peroxidase recovered more rapidly in tissues undergoing the HR, whereas changes in tetramethylbenzidine peroxidase were generally similar in the two interactions. In contrast, increases in chlorogenic acid peroxidase were significantly higher in tissues inoculated with the hrp mutant. During the HR, increased levels of Mn2+/2, 4-dichlorophenol-stimulated NADH and NADPH oxidase activities, characteristic of certain peroxidases, were found in intercellular fluids and closely matched the accumulation of H2O2 in the apoplast. Histochemical analysis of peroxidase distribution by electron microscopy revealed a striking, highly localized increase in activity within the endomembrane system and cell wall at the sites of bacterial attachment. However, no clear differences in peroxidase location were observed in tissue challenged by the wild-type strain or the hrp mutant. Our results highlight the significance of the subcellular control of oxidative reactions leading to the generation of reactive oxygen species, cell wall alterations, and the HR.

摘要

对生菜(莴苣)叶片组织中的过氧化物酶活性进行了表征。研究了由丁香假单胞菌菜豆致病变种(P. s.)引发的非寄主超敏反应(HR)过程中以及对该细菌的hrp突变体作出反应时,该酶活性和分布的变化。对组织提取物的活性测定显示,对于底物四甲基联苯胺、愈创木酚、咖啡酸和绿原酸,过氧化物酶活性的最适pH分别为4.5、6.0、5.5至6.0以及6.0至6.5。用水或用P. s. 菜豆致病变种的野生型或hrp突变体菌株接种会导致总过氧化物酶活性最初下降;随后的增加取决于测定中使用的氢供体。愈创木酚过氧化物酶在经历HR的组织中恢复得更快,而在两种相互作用中,四甲基联苯胺过氧化物酶的变化通常相似。相比之下,接种hrp突变体的组织中绿原酸过氧化物酶的增加明显更高。在HR期间,在细胞间液中发现某些过氧化物酶特有的、受Mn2+/2, 4 - 二氯苯酚刺激的NADH和NADPH氧化酶活性水平升高,并且与质外体中H2O2的积累密切匹配。通过电子显微镜对过氧化物酶分布进行的组织化学分析显示,在细菌附着部位的内膜系统和细胞壁内,活性显著且高度局部化增加。然而,在受野生型菌株或hrp突变体攻击的组织中,未观察到过氧化物酶定位的明显差异。我们的结果突出了导致活性氧生成、细胞壁改变和HR的氧化反应亚细胞控制的重要性。

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