首页> 美国卫生研究院文献>Journal of Bacteriology >Regulation of Expression of the 2-Deoxy-d-Ribose Utilization Regulon deoQKPX from Salmonella enterica Serovar Typhimurium
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Regulation of Expression of the 2-Deoxy-d-Ribose Utilization Regulon deoQKPX from Salmonella enterica Serovar Typhimurium

机译:肠沙门氏菌鼠伤寒沙门氏菌2-deoxy-d-核糖利用调节子deoQKPX的表达调控

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摘要

Salmonella enterica, in contrast to Escherichia coli K12, can use 2-deoxy-d-ribose as the sole carbon source. The genetic determinants for this capacity in S. enterica serovar Typhimurium include four genes, of which three, deoK, deoP, and deoX, constitute an operon. The fourth, deoQ, is transcribed in the opposite direction. The deoK gene encodes deoxyribokinase. In silico analyses indicated that deoP encodes a permease and deoQ encodes a regulatory protein of the deoR family. The deoX gene product showed no match to known proteins in the databases. Deletion analyses showed that both a functional deoP gene and a functional deoX gene were required for optimal utilization of deoxyribose. Using gene fusion technology, we observed that deoQ and the deoKPX operon were transcribed from divergent promoters located in the 324-bp intercistronic region between deoQ and deoK. The deoKPX promoter was 10-fold stronger than the deoQ promoter, and expression was negatively regulated by DeoQ as well as by DeoR, the repressor of the deoxynucleoside catabolism operon. Transcription of deoKPX but not of deoQ was regulated by catabolite repression. Primer extension analysis identified the transcriptional start points of both promoters and showed that induction by deoxyribose occurred at the level of transcription initiation. Gel retardation experiments with purified DeoQ illustrated that it binds independently to tandem operator sites within the deoQ and deoK promoter regions with Kd values of 54 and 2.4 nM, respectively.
机译:与大肠杆菌K12相反,沙门氏菌可以使用2-脱氧-d-核糖作为唯一的碳源。肠炎链球菌鼠伤寒沙门氏菌中这种能力的遗传决定因素包括四个基因,其中三个是deoK,deoP和deoX组成操纵子。第四个deoQ沿相反方向转录。 deoK基因编码脱氧核糖激酶。在计算机分析中表明,deoP编码通透酶,而deoQ编码deoR家族的调节蛋白。 deoX基因产物与数据库中的已知蛋白质不匹配。缺失分析表明,功能性的deoP基因和功能性的deoX基因都是脱氧核糖最佳利用所必需的。使用基因融合技术,我们观察到deoQ和deoKPX操纵子是从位于 deoQ deoK 之间324 bp顺反子区域的不同启动子转录的。 deoKPX 启动子比 deoQ 启动子强10倍,其表达受到DeoQ和DeoR(脱氧核苷分解代谢操纵子的阻遏物)的负调控。 deoKPX 的转录而不是 deoQ 的转录受分解代谢物阻抑。引物延伸分析确定了两个启动子的转录起点,并表明脱氧核糖的诱导发生在转录起始水平。纯化的DeoQ的凝胶阻滞实验表明,它与 deoQ deoK 启动子区域内的串联操纵子位点独立结合,其 Kd 值分别为54和2.4分别为nM。

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