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首页> 外文期刊>The Journal of biological chemistry >A TetR Family Transcriptional Factor Directly Regulates the Expression of a 3-Methyladenine DNA Glycosylase and Physically Interacts with the Enzyme to Stimulate Its Base Excision Activity in Mycobacterium bovis BCG
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A TetR Family Transcriptional Factor Directly Regulates the Expression of a 3-Methyladenine DNA Glycosylase and Physically Interacts with the Enzyme to Stimulate Its Base Excision Activity in Mycobacterium bovis BCG

机译:Tetrome转录因子直接调节3-甲基腺嘌呤DNA糖基糖酶的表达,并与酶物理相互作用,刺激其在细菌BOVIS BCG中的基础切除活性

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3-Methyladenine DNA glycosylase recognizes and excises a wide range of damaged bases and thus plays a critical role in base excision repair. However, knowledge on the regulation of DNA glycosylase in prokaryotes and eukaryotes is limited. In this study, we successfully characterized a TetR family transcriptional factor from Mycobacterium bovis bacillus Calmette-Guerin (BCG), namely BCG0878c, which directly regulates the expression of 3-methyladenine DNA glycosylase (designated as MbAAG) and influences the base excision activity of this glycosylase at the post-translational level. Using electrophoretic mobility shift assay and DNase I footprinting experiments, we identified two conserved motifs within the upstream region of mbaag specifically recognized by BCG0878c. Significant down-regulation of mbaag was observed in BCG0878c-overexpressed M. bovis BCG strains. By contrast, about 12-fold up-regulation of mbaag expression was found in bcg0878c-deleted mutant M. bovis BCG strains. β-Galactosidase activity assays also confirmed these results. Thus, BCG0878c can function as a negative regulator of mbaag expression. In addition, the regulator was shown to physically interact with MbAAG to enhance the ability of the glycosylase to bind damaged DNA. Interaction between the two proteins was further found to facilitate AAG-catalyzed removal of hypoxanthine from DNA. These results indicate that a TetR family protein can dually regulate the function of 3-methyladenine DNA glycosylase in M. bovis BCG both at the transcriptional and post-translational levels. These findings enhance our understanding of the expression and regulation of AAG in mycobacteria.
机译:3-甲基腺嘌呤DNA糖基酶识别并促进各种损坏的基础,从而在基础切除修复中发挥着关键作用。然而,关于原核生物和真核生物中DNA糖基酶调节的知识是有限的。在这项研究中,我们成功地表征了来自肉杆菌芽孢杆菌植物杆菌杆菌菌(BCG)的十六型系列转录因素,即BCG0878C,其直接调节3-甲基腺嘌呤DNA糖基糖基酶(指定为MBAAG)的表达,并影响其基本切除活性翻译后水平的糖基酶。使用电泳迁移率偏移测定和DNase I的脚印实验,我们在BCG0878C具体识别的MBAAG的上游区域内识别了两个保守的图案。在BCG0878C-过表达的M.Bovis BCG菌株中观察到MBAAG的显着下调。相比之下,在BCG0878C缺失的突变体M.Bovis BCG菌株中发现了大约12倍的MBAAG表达上调。 β-半乳糖苷酶活性测定还证实了这些结果。因此,BCG0878C可以用作MBAAG表达的负调节器。此外,该调节剂显示出与MBAAG物理相互作用以增强糖基酶与损伤DNA结合的能力。进一步发现两种蛋白质之间的相互作用以促进来自DNA的αAG催化除去缺氧内。这些结果表明,在转录和翻译后水平下,Tetrous族蛋白可以在M.Bovis BCG中双重调节3-甲基腺嘌呤DNA糖基酶的功能。这些发现提高了我们对分枝杆菌中AAG表达和调节的理解。

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