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比卡维因的生产与应用。

Bikaverin production and applications.

机构信息

Departamento de Genética, Universidad de Sevilla, Apartado 1095, 41080 Sevilla, Spain.

出版信息

Appl Microbiol Biotechnol. 2010 Jun;87(1):21-9. doi: 10.1007/s00253-010-2551-1. Epub 2010 Apr 8.

Abstract

Bikaverin is a reddish pigment produced by different fungal species, most of them from the genus Fusarium, with antibiotic properties against certain protozoa and fungi. Chemically, bikaverin is a polyketide with a tetracyclic benzoxanthone structure, resulting from the activity of a specific class I multifunctional polyketide synthase and subsequent group modifications introduced by a monooxygenase and an O-methyltransferase. In some fungi, bikaverin is found with smaller amounts of a precursor molecule, called norbikaverin. Production of these metabolites by different fungal species depends on culture conditions, but it is mainly affected by nitrogen availability and pH. Regulation of the pathway has been investigated in special detail in the gibberellin-producing fungus Fusarium fujikuroi, whose genes and enzymes responsible for bikaverin production have been recently characterized. In this fungus, the synthesis is induced by nitrogen starvation and acidic pH, and it is favored by other factors, such as aeration, sulfate and phosphate starvation, or sucrose availability. Some of these inducing agents increase mRNA levels of the enzymatic genes, organized in a coregulated cluster. The biological properties of bikaverin include antitumoral activity against different cancer cell lines. The diverse biological activities and the increasing information on the biochemical and genetic basis of its production make bikaverin a metabolite of increasing biotechnological interest.

摘要

比卡维因是一种由不同真菌物种产生的红棕色色素,其中大多数来自镰刀菌属,具有针对某些原生动物和真菌的抗生素特性。从化学上讲,比卡维因是一种具有四环苯并恶酮结构的聚酮化合物,是由特定的 I 类多功能聚酮合酶的活性以及随后由单加氧酶和 O-甲基转移酶引入的基团修饰产生的。在一些真菌中,比卡维因与一种称为诺比卡维因的前体分子一起被发现。不同真菌物种产生这些代谢物的情况取决于培养条件,但主要受氮源可用性和 pH 值的影响。在产赤霉素的真菌藤仓镰刀菌中,对该途径的调控进行了特别详细的研究,其负责比卡维因产生的基因和酶最近已被鉴定。在该真菌中,氮饥饿和酸性 pH 值诱导合成,并且其他因素(例如通气、硫酸盐和磷酸盐饥饿或蔗糖可用性)也有利于合成。其中一些诱导剂增加了组织在一个共同调控簇中的酶基因的 mRNA 水平。比卡维因的生物学特性包括对不同癌细胞系的抗肿瘤活性。其多样的生物学活性以及其产生的生化和遗传基础的信息不断增加,使得比卡维因成为越来越具有生物技术兴趣的代谢产物。

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