首页> 外文期刊>Scientific reports. >Comparative transcriptome analysis between an evolved abscisic acid-overproducing mutant Botrytis cinerea TBC-A and its ancestral strain Botrytis cinerea TBC-6
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Comparative transcriptome analysis between an evolved abscisic acid-overproducing mutant Botrytis cinerea TBC-A and its ancestral strain Botrytis cinerea TBC-6

机译:进化的脱落酸过高突变体灰葡萄孢TBC-A与其祖先菌株灰葡萄孢TBC-6之间的比较转录组分析

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Abscisic acid (ABA) is a classical phytohormone which plays an important role in plant stress resistance. Moreover, ABA is also found to regulate the activation of innate immune cells and glucose homeostasis in mammals. Therefore, this 'stress hormone' is of great importance to theoretical research and agricultural and medical applications. Botrytis cinerea is a well-known phytopathogenic ascomycete that synthesizes ABA via a pathway substantially different from higher plants. Identification of the functional genes involved in ABA biosynthesis in B. cinerea would be of special interest. We developed an ABA-overproducing mutant strain, B. cinerea TBC-A, previously and obtained a 41.5-Mb genome sequence of B. cinerea TBC-A. In this study, the transcriptomes of B. cinerea TBC-A and its ancestral strain TBC-6 were sequenced under identical fermentation conditions. A stringent comparative transcriptome analysis was performed to identify differentially expressed genes participating in the metabolic pathways related to ABA biosynthesis in B. cinerea. This study provides the first global view of the transcriptional changes underlying the very different ABA productivity of the B. cinerea strains and will expand our knowledge of the molecular basis for ABA biosynthesis in B. cinerea.
机译:脱落酸(ABA)是一种经典的植物激素,在植物抗逆性中起重要作用。而且,还发现ABA调节哺乳动物中先天免疫细胞的活化和葡萄糖稳态。因此,这种“应激激素”对理论研究以及农业和医学应用具有重要意义。灰葡萄孢(Botrytis cinerea)是众所周知的植物病原子囊孢子囊菌,其通过与高等植物基本上不同的途径合成ABA。在灰质芽孢杆菌中参与ABA生物合成的功能基因的鉴定将是特别令人感兴趣的。我们以前开发了一种过量生产ABA的突变株灰葡萄芽胞杆菌TBC-A,并获得了灰葡萄芽孢杆菌TBC-A的41.5-Mb基因组序列。在这项研究中,灰葡萄芽孢杆菌TBC-A及其祖传菌株TBC-6的转录组在相同的发酵条件下进行了测序。进行了严格的比较转录组分析,以鉴定参与灰质芽孢杆菌中与ABA生物合成相关的代谢途径的差异表达基因。这项研究提供了关于灰质芽孢杆菌菌株非常不同的ABA生产力的转录变化的第一个全局视图,并将扩展我们对灰质芽孢杆菌ABA生物合成的分子基础的认识。

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