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Adenosine deamination increases the survival under acidic conditions in Escherichia coli.

机译:腺苷脱氨提高了酸性条件下大肠杆菌的存活率。

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Aims: Resistance to acidic stress contributes to bacterial persistence in the host and is thought to promote their passage through the human gastric barrier. The aim of this study was to examine whether nucleosides have a role in the survival under acidic conditions in Escherichia coli. Methods and Results. We found that adenosine has a function to survive against extremely acidic stress. The deletion of add encoding adenosine deaminase that converts adenosine into inosine and NH3 attenuated the survival in the presence of adenosine. The addition of adenosine increased intracellular pH of E. coli cells in pH 2.5 medium. Addition of inosine or adenine did not increase the resistance to acidic conditions. Conclusions. Our present results. imply that adenosine was used to survive under extremely acidic conditions via the production of NH3. Significance and Impact of the Study: It has been proposed that amino acid decarboxylation is the major system for the resistance of E. coli to acidic stress. In this study, the adenosine deamination was shown to induce the survival under acidic conditions, demonstrating that bacteria have alternative strategies to survive under acidic conditions besides amino acid decarboxylation. copyright 2012 The Authors. Journal of Applied Microbiology copyright 2012 The Society for Applied Microbiology.
机译:目的:抵抗酸性胁迫有助于细菌在宿主体内的持久性,并被认为可促进它们通过人的胃屏障。这项研究的目的是研究核苷是否在大肠杆菌中酸性条件下的存活中起作用。方法和结果。我们发现,腺苷具有抵抗极端酸性胁迫的功能。删除 add 编码腺苷脱氨酶将腺苷转化为肌苷和NH 3 会减弱存在腺苷的情况。腺苷的添加增加了细胞内pH的E。 pH 2.5培养基中的大肠杆菌细胞。添加肌苷或腺嘌呤并没有增加对酸性条件的抵抗力。结论。我们目前的结果。暗示腺苷可通过产生NH 3 在极端酸性条件下生存。研究的意义和影响:有人提出氨基酸脱羧是E抵抗的主要系统。大肠杆菌对酸性胁迫。在这项研究中,腺苷脱氨被证明可以在酸性条件下存活,这表明除了氨基酸脱羧作用之外,细菌还有其他在酸性条件下生存的策略。版权2012作者。应用微生物学期刊版权所有2012应用微生物学会。

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