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首页> 外文期刊>Journal of bacteriology >A bifunctional urease enhances survival of pathogenic Yersinia enterocolitica and Morganella morganii at low pH.
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A bifunctional urease enhances survival of pathogenic Yersinia enterocolitica and Morganella morganii at low pH.

机译:双功能脲酶可在低pH条件下提高病原性小肠结肠炎耶尔森氏菌和摩根氏大肠菌的存活率。

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摘要

To infect a susceptible host, the gastrointestinal pathogen Yersinia enterocolitica must survive passage through the acid environment of the stomach. In this study, we showed that Y. enterocolitica serotype O8 survives buffered acidic conditions as low as pH 1.5 for long periods of time provided urea is available. Acid tolerance required an unusual cytoplasmically located urease that was activated 780-fold by low-pH conditions. Acid tolerance of Helicobacter species has also been attributed to urease activity, but in that case urease was not specifically activated by low-pH conditions. A ure mutant strain of Y. enterocolitica was constructed which was hypersensitive to acidic conditions when urea was available and, unlike the parental strain, was unable to grow when urea was the sole nitrogen source. Examination of other urease-producing gram-negative bacteria indicated that Morganella morganii survives in acidic conditions but Escherichia coli 1021, Klebsiella pneumoniae, Proteus mirabilis, Providencia stuartii, and Pseudomonas aeruginosa do not. Consistent with these results, biochemical evidence demonstrated that Y. enterocolitica and M. morganii ureases were activated in vitro by low pH with an unusually low activity optimum of pH 5.5. In whole cells activation occurred as medium values decreased below pH 3.0 for Y. enterocolitica and pH 5.5 for M. morganii, suggesting that in vivo activation occurs as a result of cytoplasmic acidification. DNA sequence analysis of portions of the M. morganii ure locus showed that the predicted primary structure of the enzyme structural subunits is most similar to those of Y. enterocolitica urease. One region of similarity between these two ureases located near the active site is distinct from most other ureases but is present in the urease of Lactobacillus fermentum. This region of similarity may be responsible for the unique properties of the Y. enterocolitica and M. morganii ureases since the L. fermentum urease also has been shown to have a low pH optimum for activity.
机译:为了感染易感宿主,胃肠道病原体小肠结肠炎耶尔森菌必须通过胃的酸性环境才能幸免。在这项研究中,我们表明小肠结肠炎耶尔森氏菌血清型O8可以在pH值低至1.5的缓冲酸性条件下长期生存,只要尿素可用。耐酸性要求定位在细胞质中的脲酶异常,该酶在低pH条件下可被激活780倍。幽门螺杆菌对酸的耐受性也归因于脲酶活性,但在那种情况下,低pH条件不能特异性激活脲酶。构建了一种小肠结肠炎耶尔森氏菌的突变菌株,当可获得尿素时,该菌株对酸性条件高度敏感,并且与亲本菌株不同,当尿素是唯一的氮源时无法生长。对其他产生脲酶的革兰氏阴性细菌的检查表明,摩根氏摩根氏菌可在酸性条件下存活,但大肠杆菌1021,肺炎克雷伯菌,奇异变形杆菌,斯图亚特氏菌和铜绿假单胞菌不能存活。与这些结果一致的是,生化证据表明,低pH值在体外激活小肠结肠炎耶尔森氏菌和摩根分枝杆菌尿素酶,其活性最适pH值低至5.5。在整个细胞中,由于培养基的值降低至小肠结肠炎耶尔森氏菌的pH值低于3.0,而摩根分枝杆菌的pH值降至5.5之下,因此发生了活化,这表明体内活化是细胞质酸化的结果。摩根摩根氏菌基因座部分的DNA序列分析表明,预测的酶结构亚基的一级结构与小肠结肠炎耶尔森氏菌最相似。位于活性位点附近的这两种脲酶之间的相似性区域不同于大多数其他脲酶,但存在于发酵乳杆菌的脲酶中。该相似性区域可能是肠球菌耶尔森菌和摩根摩根氏菌脲酶的独特性质的原因,因为发酵乳杆菌脲酶也已显示出对于活性最适的低pH值。

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