首页> 外文期刊>Microbiology >Characterization of the transcriptional regulator Rv3124 of Mycobacterium tuberculosis identifies it as a positive regulator of molybdopterin biosynthesis and defines the functional consequences of a non-synonymous SNP in the Mycobacterium bovis BCG orthologue
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Characterization of the transcriptional regulator Rv3124 of Mycobacterium tuberculosis identifies it as a positive regulator of molybdopterin biosynthesis and defines the functional consequences of a non-synonymous SNP in the Mycobacterium bovis BCG orthologue

机译:结核分枝杆菌的转录调节剂RV3124的表征将其作为Molybdopterin生物合成的阳性调节剂确定,并定义了BOVIS BCG正轨中非同义SNP的功能后果

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A number of single-nucleotide polymorphisms (SNPs) have been identified in the genome of Mycobacterium bovis BCG Pasteur compared with the sequenced strain M. bovis 2122/97. The functional consequences of many of these mutations remain to be described; however, mutations in genes encoding regulators may be particularly relevant to global phenotypic changes such as loss of virulence, since alteration of a regulator's function will affect the expression of a wide range of genes. One such SNP falls in bcg3145, encoding a member of the AfsR/DnrI/SARP class of global transcriptional regulators, that replaces a highly conserved glutamic acid residue at position 159 (E159G) with glycine in a tetratricopeptide repeat (TPR) located in the bacterial transcriptional activation (BTA) domain of BCG3145. TPR domains are associated with protein–protein interactions, and a conserved core (helices T1–T7) of the BTA domain seems to be required for proper function of SARP-family proteins. Structural modelling predicted that the E159G mutation perturbs the third α-helix of the BTA domain and could therefore have functional consequences. The E159G SNP was found to be present in all BCG strains, but absent from virulent M. bovis and Mycobacterium tuberculosis strains. By overexpressing BCG3145 and Rv3124 in BCG and H37Rv and monitoring transcriptome changes using microarrays, we determined that BCG3145/Rv3124 acts as a positive transcriptional regulator of the molybdopterin biosynthesis moa1 locus, and we suggest that rv3124 be renamed moaR1. The SNP in bcg3145 was found to have a subtle effect on the activity of MoaR1, suggesting that this mutation is not a key event in the attenuation of BCG.
机译:与测序的菌株M.Bovis 2122/97相比,已经在分枝杆菌BOOVIS BCG巴斯特的基因组中鉴定了许多单核苷酸多态性(SNP)。许多这些突变的功能后果仍将描述;然而,编码调节剂基因的突变可能与全球表型变化特别相关,例如毒力丧失,因为调节剂功能的改变会影响各种基因的表达。在BCG3145中落入BCG3145,编码AFSR / DNRI / SARP类别的全局转录调节剂的成员,其在位于细菌中的四氢肽重复(TPR)中,将高度保守的谷氨酸残基与位于细菌中的四氢肽重复(TPR)中取代BCG3145的转录激活(BTA)结构域。 TPR结构域与蛋白质 - 蛋白质相互作用有关,并且BTA结构域的保守核心(螺旋T1-T7)似乎是萨尔普家族蛋白的适当功能所必需的。结构建模预测,E159G突变扰动了BTA结构域的第三α-螺旋,因此可以具有功能后果。发现E159G SNP存在于所有BCG菌株中,但缺乏毒性的肉豆植物和结核病菌株。通过过表达BCG3145和RV3124在BCG和H37RV中和使用微阵列监测转录组变化,我们确定BCG3145 / RV3124用作钼醇生物合成MOA1基因座的阳性转录调节剂,我们建议RV3124更名为Moar1。发现BCG3145中的SNP对MoAR1的活性产生微妙的影响,表明该突变不是BCG衰减中的关键事件。

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