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调控因子 PcRFX1 控制青霉素生物合成的三个基因在产黄青霉中的表达。

The regulatory factor PcRFX1 controls the expression of the three genes of β-lactam biosynthesis in Penicillium chrysogenum.

机构信息

Área de Microbiología, Departamento de Biología Molecular, Universidad de León, 24071 León, Spain.

出版信息

Fungal Genet Biol. 2012 Nov;49(11):866-81. doi: 10.1016/j.fgb.2012.08.002. Epub 2012 Aug 29.

DOI:10.1016/j.fgb.2012.08.002
PMID:22960281
Abstract

Penicillin biosynthesis is subjected to a complex regulatory network of signalling molecules that may serve as model for other secondary metabolites. The information provided by the new "omics" era about Penicillium chrysogenum and the advances in the knowledge of molecular mechanisms responsible for improved productivity, make this fungus an excellent model to decipher the mechanisms controlling the penicillin biosynthetic pathway. In this work, we have characterized a novel transcription factor PcRFX1, which is an ortholog of the Acremonium chrysogenum CPCR1 and Penicillium marneffei RfxA regulatory proteins. PcRFX1 DNA binding sequences were found in the promoter region of the pcbAB, pcbC and penDE genes. We show in this article that these motifs control the expression of the β-galactosidase lacZ reporter gene, indicating that they may direct the PcRFX1-mediated regulation of the penicillin biosynthetic genes. By means of Pcrfx1 gene knock-down and overexpression techniques we confirmed that PcRFX1 controls penicillin biosynthesis through the regulation of the pcbAB, pcbC and penDE transcription. Morphology and development seemed not to be controlled by this transcription factor under the conditions studied and only sporulation was slightly reduced after the silencing of the Pcrfx1 gene. A genome-wide analysis of processes putatively regulated by this transcription factor was carried out in P. chrysogenum. Results suggested that PcRFX1, in addition to regulate penicillin biosynthesis, is also involved in the control of several pathways of primary metabolism.

摘要

青霉素生物合成受复杂的信号分子调控网络的影响,这些信号分子可能成为其他次生代谢物的模型。新的“组学”时代提供的关于产黄青霉和负责提高生产力的分子机制知识的进步,使这种真菌成为破解控制青霉素生物合成途径的机制的优秀模型。在这项工作中,我们表征了一个新的转录因子 PcRFX1,它是棘孢曲霉 CPCR1 和马内菲青霉 RfxA 调节蛋白的同源物。在 pcbAB、pcbC 和 penDE 基因的启动子区域发现了 PcRFX1 DNA 结合序列。我们在本文中表明,这些基序控制β-半乳糖苷酶 lacZ 报告基因的表达,表明它们可能指导 PcRFX1 介导的青霉素生物合成基因的调节。通过 Pcrfx1 基因敲低和过表达技术,我们证实 PcRFX1 通过调节 pcbAB、pcbC 和 penDE 转录来控制青霉素生物合成。在研究的条件下,形态和发育似乎不受该转录因子的控制,并且在沉默 Pcrfx1 基因后仅略微减少了孢子形成。对该转录因子可能调节的过程进行了全基因组分析。结果表明,PcRFX1 除了调节青霉素生物合成外,还参与控制几种初级代谢途径。

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