首页> 外文OA文献 >Characterisation of the transcriptional regulator Rv3124 of Mycobacterium tuberculosis identifies it as a positive regulator of molybdopterin biosynthesis and defines the functional consequences of a nonsynonymous SNP in the Mycobacterium bovis BCG orthologue
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Characterisation of the transcriptional regulator Rv3124 of Mycobacterium tuberculosis identifies it as a positive regulator of molybdopterin biosynthesis and defines the functional consequences of a nonsynonymous SNP in the Mycobacterium bovis BCG orthologue

机译:结核分枝杆菌的转录调节因子Rv3124的鉴定将其鉴定为钼蝶呤生物合成的正调节剂,并确定了牛分枝杆菌BCG直系同源物中非同义SNP的功能后果

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摘要

A number of single nucleotide polymorphisms (SNPs) have been identified in the genome of Mycobacterium bovis BCG Pasteur compared to 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, and replaces with glycine a highly conserved glutamic acid residue at position 159 (E159G) 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 a-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 M. 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 operon, and 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:与测序的牛分枝杆菌2122/97相比,牛分枝杆菌BCG Pasteur的基因组中已鉴定出许多单核苷酸多态性(SNP)。这些突变中许多的功能后果尚待描述。然而,编码调控因子的基因突变可能与全球表型变化(如致病力丧失)特别相关,因为调控因子功能的改变会影响多种基因的表达。一种这样的SNP落入bcg3145中,编码全球转录调节因子AfsR / DnrI / SARP类的成员,并用甘氨酸替代位于细菌中四三肽重复序列(TPR)中位置159(E159G)处的高度保守的谷氨酸残基。 BCG3145的转录激活(BTA)结构域。 TPR域与蛋白质间相互作用有关,BTA域的保守核心(螺旋T1-T7)似乎是SARP家族蛋白质正常运行所必需的。结构建模预测,E159G突变会干扰BTA结构域的第三个a-螺旋,因此可能会产生功能性后果。 E159G SNP被发现存在于所有BCG菌株中,但强毒牛分枝杆菌和结核分枝杆菌菌株中不存在。通过在BCG和H37Rv中过表达BCG3145和Rv3124并使用微阵列监测转录组变化,我们确定BCG3145 / Rv3124充当了钼蝶呤生物合成moa1操纵子的正转录调节因子,并建议rv3124重命名为moaR1。发现bcg3145中的SNP对MoaR1的活性有微妙的影响,这表明该突变不是BCG衰减的关键事件。

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