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首页> 外文期刊>Molecular Microbiology >The NADH oxidase of Streptococcus pneumoniae: its involvement in competence and virulence.
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The NADH oxidase of Streptococcus pneumoniae: its involvement in competence and virulence.

机译:肺炎链球菌的NADH氧化酶:其参与能力和毒力的过程。

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A soluble flavoprotein that reoxidizes NADH and reduces molecular oxygen to water was purified from the facultative anaerobic human pathogen Streptococcus pneumoniae. The nucleotide sequence of nox, the gene which encodes it, has been determined and was characterized at the functional and physiological level. Several nox mutants were obtained by insertion, nonsense or missense mutation. In extracts from these strains, no NADH oxidase activity could be measured, suggesting that a single enzyme encoded by nox, having a C44 in its active site, was utilizing O2 to oxidize NADH in S. pneumoniae. The growth rate and yield of the NADH oxidase-deficient strains were not changed under aerobic or anaerobic conditions, but the efficiency of development of competence for genetic transformation during growth was markedly altered. Conditions that triggered competence induction did not affect the amount of Nox, as measured using Western blotting, indicating that nox does not belong to the competence-regulated genetic network. The decrease in competence efficiency due to the nox mutations was similar to that due to the absence of oxygen in the nox+ strain, suggesting that input of oxygen into the metabolism via NADH oxidase was important for controlling competence development throughout growth. This was not related to regulation of nox expression by O2. Interestingly, the virulence and persistence in mice of a blood isolate was attenuated by a nox insertion mutation. Global cellular responses of S. pneumoniae, such as competence for genetic exchange or virulence in a mammalian host, could thus be modulated by oxygen via the NADH oxidase activity of the bacteria, although the bacterial energetic metabolism is essentially anaerobic. The enzymatic activity of the NADH oxidase coded by nox was probably involved in transducing the external signal, corresponding to O2 availability, to the cell metabolism and physiology; thus, this enzyme may function as an oxygen sensor. This work establishes, for the first time, the role of O2 in the regulation of pneumococcal transformability and virulence.
机译:从兼性厌氧性人类病原体肺炎链球菌中纯化出可再氧化NADH并将分子氧还原为水的可溶性黄素蛋白。已确定了nox的核苷酸序列,它是编码nox的基因,并已在功能和生理水平上进行了表征。通过插入,无义或错义突变获得了几种nox突变体。在这些菌株的提取物中,无法检测到NADH氧化酶活性,这表明由nox编码的单个酶(其活性位点具有C44)正在利用O2氧化肺炎链球菌中的NADH。在有氧或无氧条件下,NADH氧化酶缺陷型菌株的生长速率和产量均未改变,但生长过程中遗传转化能力的开发效率却发生了明显变化。触发能力诱导的条件不影响Nox的量(使用Western印迹法测量),表明nox不属于能力调节的遗传网络。由于nox突变而导致的能力效率的下降与由于nox +菌株中不存在氧气而引起的效率下降相似,这表明通过NADH氧化酶向代谢中输入氧气对于控制整个生长过程中的能力发展很重要。这与O2对NOx表达的调节无关。有趣的是,血液分离物在小鼠中的毒力和持久性由于NOX插入突变而减弱。因此,尽管细菌的能量代谢基本上是厌氧的,但是氧可以通过细菌的NADH氧化酶活性来调节肺炎链球菌的总体细胞应答,例如在哺乳动物宿主中进行基因交换或毒力的能力。 Nox编码的NADH氧化酶的酶活性可能与将外部信号(对应于O2的利用率)转导到细胞代谢和生理过程有关。因此,该酶可用作氧气传感器。这项工作首次确定了O2在肺炎球菌转化性和毒力调节中的作用。

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