首页> 美国卫生研究院文献>Journal of Bacteriology >3′-Phosphoadenosine-5′-Phosphate Phosphatase Activity Is Required for Superoxide Stress Tolerance in Streptococcus mutans
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3′-Phosphoadenosine-5′-Phosphate Phosphatase Activity Is Required for Superoxide Stress Tolerance in Streptococcus mutans

机译:3-磷酸腺苷-5-磷酸磷酸酶活性对于变形链球菌的超氧化物胁迫耐受性是必需的

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摘要

Aerobic microorganisms have evolved different strategies to withstand environmental oxidative stresses generated by various reactive oxygen species (ROS). For the facultative anaerobic human oral pathogen Streptococcus mutans, the mechanisms used to protect against ROS are not fully understood, since it does not possess catalase, an enzyme that degrades hydrogen peroxide. In order to elucidate the genes that are essential for superoxide stress response, methyl viologen (MV)-sensitive mutants of S. mutans were generated via ISS1 mutagenesis. Screening of approximately 2,500 mutants revealed six MV-sensitive mutants, each containing an insertion in one of five genes, including a highly conserved hypothetical gene, SMU.1297. Sequence analysis suggests that SMU.1297 encodes a hypothetical protein with a high degree of homology to the Bacillus subtilis YtqI protein, which possesses an oligoribonuclease activity that cleaves nano-RNAs and a phosphatase activity that degrades 3′-phosphoadenosine-5′-phosphate (pAp) and 3′-phosphoadenosine-5′-phosphosulfate (pApS) to produce AMP; the latter activity is similar to the activity of the Escherichia coli CysQ protein, which is required for sulfur assimilation. SMU.1297 was deleted using a markerless Cre-loxP-based strategy; the SMU.1297 deletion mutant was just as sensitive to MV as the ISS1 insertion mutant. Complementation of the deletion mutant with wild-type SMU.1297, in trans, restored the parental phenotype. Biochemical analyses with purified SMU.1297 protein demonstrated that it has pAp phosphatase activity similar to that of YtqI but apparently lacks an oligoribonuclease activity. The ability of SMU.1297 to dephosphorylate pApS in vivo was confirmed by complementation of an E. coli cysQ mutant with SMU.1297 in trans. Thus, our results suggest that SMU.1297 is involved in superoxide stress tolerance in S. mutans. Furthermore, the distribution of homologs of SMU.1297 in streptococci indicates that this protein is essential for superoxide stress tolerance in these organisms.
机译:有氧微生物已经发展出不同的策略来抵抗各种活性氧(ROS)产生的环境氧化应激。对于兼性厌氧性人类口腔病原体变异链球菌,由于其不具有过氧化氢酶(一种可降解过氧化氢的酶),因此尚不完全了解用于预防ROS的机制。为了阐明超氧化物歧化应激反应所必需的基因,通过ISS1诱变产生了变形链球菌的甲基紫精(MV)敏感突变体。大约2,500个突变体的筛选揭示了六个MV敏感突变体,每个突变体都包含五个基因之一的插入,其中包括一个高度保守的假设基因SMU.1297。序列分析表明SMU.1297编码一种与枯草芽孢杆菌YtqI蛋白具有高度同源性的假想蛋白,该蛋白具有可切割纳米RNA的寡核糖核酸酶活性和可降解3'-磷酸腺苷-5'-磷酸( pAp)和3'-磷酸腺苷-5'-磷酸磷酸酯(pApS)生成AMP;后者的活性类似于大肠杆菌CysQ蛋白的活性,这是硫同化所必需的。使用基于无标记Cre-loxP的策略删除了SMU.1297; SMU.1297缺失突变体对MV的敏感性与ISS1插入突变体一样。反式缺失突变体与野生型SMU.1297的互补,恢复了亲本表型。用纯化的SMU.1297蛋白进行的生化分析表明,它具有与YtqI相似的pAp磷酸酶活性,但显然缺乏寡核糖核酸酶活性。 SMU.1297在体内对pApS进行去磷酸化的能力通过E.coli cysQ突变体与SMU.1297的反式互补来证实。因此,我们的结果表明,SMU.1297与变形链球菌的超氧化物胁迫耐受性有关。此外,链球菌中SMU.1297的同系物分布表明,该蛋白对于这些生物体的超氧化物胁迫耐受性至关重要。

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