UR1290 BIOGER-CPP, INRA, Avenue Lucien Brétignières, 78850 Thiverval-Grignon, France.
Fungal Genet Biol. 2013 Mar;52:9-19. doi: 10.1016/j.fgb.2013.01.006. Epub 2013 Feb 8.
Botrytis cinerea, the grey mould fungus, secretes non-host-specific phytotoxins that kill the cells of many plant species. Phytotoxic assays performed about ten years ago, have highlighted the role in the infection mechanism of one of these secondary metabolites, the sesquiterpene botrydial. We recently showed that BcBOT1 to BcBOT5 genes, which are required for botrydial biosynthesis, are organised into a physical cluster. However, this cluster includes no gene encoding a transcription factor (TF) that might specifically coregulate the expression of BcBOT genes. To identify which TF(s) are implicated in the regulation of this cluster and thereby to decipher DNA-protein interactions in the phytopathogenic fungus B. cinerea, we developed a strategy based on the yeast one-hybrid (Y1H) method. In this study, a Y1H library was generated with the TFs predicted from complete genome sequencing. The screening of this library revealed an interaction between a promoter of the botrydial biosynthesis gene cluster and a new Cys2His2 zinc finger TF, that we called BcYOH1. Inactivation of the BcYOH1 gene and expression analyses demonstrated the involvement of this TF in regulating expression of the botrydial biosynthesis gene cluster. Furthermore, whole-transcriptome analysis suggested that BcYOH1 might act as a global transcriptional regulator of phytotoxin and other secondary metabolism gene clusters, and of genes involved in carbohydrate metabolism, transport, virulence and detoxification mechanisms.
灰葡萄孢(Botrytis cinerea)是一种真菌,能够分泌非寄主特异性的植物毒素,这些毒素能够杀死许多植物物种的细胞。大约十年前进行的植物毒性测定突出了这些次级代谢物之一——倍半萜烯 botrydial 在感染机制中的作用。我们最近表明,BcBOT1 到 BcBOT5 基因是 botrydial 生物合成所必需的,它们被组织在一个物理簇中。然而,这个簇中没有编码转录因子(TF)的基因,该基因可能专门调控 BcBOT 基因的表达。为了确定哪些 TF 参与了该簇的调控,从而破译植物病原真菌灰葡萄孢中的 DNA-蛋白质相互作用,我们开发了一种基于酵母单杂交(Y1H)方法的策略。在这项研究中,使用从完整基因组测序预测的 TF 构建了 Y1H 文库。该文库的筛选揭示了 botrydial 生物合成基因簇的启动子与一种新的 Cys2His2 锌指 TF(我们称为 BcYOH1)之间的相互作用。BcYOH1 基因的失活和表达分析表明,该 TF 参与了 botrydial 生物合成基因簇的调控表达。此外,全转录组分析表明,BcYOH1 可能作为植物毒素和其他次级代谢物基因簇以及参与碳水化合物代谢、运输、毒性和解毒机制的基因的全局转录调节剂发挥作用。