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首页> 外文期刊>Current Organic Chemistry >Botrytis Species: An Intriguing Source of Metabolites with a Wide Range of Biological Activities. Structure, Chemistry and Bioactivity of Metabolites Isolated from Botrytis Species.
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Botrytis Species: An Intriguing Source of Metabolites with a Wide Range of Biological Activities. Structure, Chemistry and Bioactivity of Metabolites Isolated from Botrytis Species.

机译:葡萄孢属物种:具有广泛生物活性的有趣的代谢物来源。从葡萄孢属物种分离的代谢物的结构,化学和生物活性。

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摘要

The Botrytis species belong to the most geographically widespread group of plant pathogens and saprophytes, and cause serious losses to very many commercial crops. These phytopathogenus fungi are the agents of the disease known as grey mould. They biosynthesise characteristic metabolites that, in vitro, produce the grey mould symptoms. The recent discovery that oxidative forces are involved when B. cinerea infects plant and the relevance of toxins for pathogenicity, have increased the interest for these compounds, in order to determinate the potential links to the plant oxyradical metabolism and the induction of oxidative stress. This review describes the metabolites isolated from Botrytis species, the spectroscopic data, grouping together by structural family, synthesis and chemical transformation, specially those carried out on botryane skeleton. The basic skeleton of botrydial is a bicyclic, non isoprenoid sesquiterpene system which has provided the stimulus for many investigations into the biosynthetic pathway to this skeleton. The biosynthetic studies carried out and the approaches to the asymmetric synthesis on this skeleton are reported in this paper. On the other hand, a detailed study on biological activity showed for these metabolites and the structure-activity relationship of metabolites with the botryanes skeleton is included.
机译:葡萄孢属属于地理上分布最广的植物病原体和腐生植物类,对许多商业作物造成严重损失。这些植物病原真菌是被称为灰霉病的疾病的病原体。他们在体外生物合成特征性代谢产物,产生灰霉病症状。最近的发现表明,灰质芽孢杆菌感染植物时会涉及氧化力,而毒素与致病性的相关性也增加了人们对这些化合物的兴趣,以便确定与植物氧自由基代谢和诱导氧化应激的潜在联系。这篇综述描述了从葡萄孢属物种分离的代谢产物,光谱数据,按结构族,合成和化学转化,特别是在葡萄孢属骨架上进行的代谢,归类在一起。葡萄孢菌的基本骨架是双环,非类异戊二烯倍半萜系统,为许多研究该骨架的生物合成途径提供了刺激。本文报道了进行的生物合成研究以及在该骨架上进行不对称合成的方法。另一方面,对这些代谢物的生物学活性的详细研究表明,这些代谢物与硼烷骨架之间的构效关系也包括在内。

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