Literature DB >> 16232897

Molecular biology of oxygen tolerance in lactic acid bacteria: Functions of NADH oxidases and Dpr in oxidative stress.

M Higuchi1, Y Yamamoto, Y Kamio.   

Abstract

Lactic acid bacteria including Streptococcus mutans lack cytochromes and heme-containing proteins. Most lactic acid bacteria also lack catalase. However, they can grow in the presence of air. In view of the defense against oxygen toxicity, the lack of catalase in lactic acid bacteria is not always consistent with its aerotolerance. Mechanisms, by which lactic acid bacteria establish their growth in air, are therefore an active area of investigation. We identified two kinds of NADH oxidase genes, nox-1 and nox-2 for H2O2-forming NADH oxidase (Nox-1) and H2O-forming NADH oxidase (Nox-2), respectively, in S. mutans and found that Nox-1 is homologous with flavoprotein component, AhpF, of Salmonella typhimurium alkyl hydroperoxide reductase (AhpR), consisting of AhpF and AhpC. We also identified ahpC which is homologous with ahpC of S. typhimurium, upstream of nox-1 in S. mutans. In the first and second parts of this article, we will refer to the role of Nox-1 which acts together with AhpC as bi-component peroxidase system in S. mutans, catalyzing the NADH-dependent reduction of organic hydroperoxides or H2O2 to their respective alcohol and/or H2O. We will also refer to the role of Nox-2 in carbohydrate metabolism of S. mutans in its aerobic life. Nox-2 was found to be involved in regenerating NAD+, which is required for glycolysis in S. mutans. While studying nox-1 and ahpC double deletion mutant of S. mutans, we found that the mutant still showed the same level peroxide tolerance as did the wild-type strain. The finding suggested the existence of another antioxidant system in addition of Nox-1 and AhpC in S. mutans. We identified a new gene, dpr (for Dps-like Peroxide Resistance gene) and its product, Dpr, as an iron-binding protein which is responsible for oxygen tolerance in S. mutans. In the third part of this article, we will refer to the current status of knowledge of molecular cloning of dpr, the characteristics of dpr-disruption mutants, and a mechanism by which Dpr confers aerotolerance to S. mutans.

Entities:  

Year:  2000        PMID: 16232897

Source DB:  PubMed          Journal:  J Biosci Bioeng        ISSN: 1347-4421            Impact factor:   2.894


  29 in total

1.  Streptococcus mutans NADH oxidase lies at the intersection of overlapping regulons controlled by oxygen and NAD+ levels.

Authors:  J L Baker; A M Derr; K Karuppaiah; M E MacGilvray; J K Kajfasz; R C Faustoferri; I Rivera-Ramos; J P Bitoun; J A Lemos; Z T Wen; R G Quivey
Journal:  J Bacteriol       Date:  2014-03-28       Impact factor: 3.490

2.  Gene expression profiling of Listeria monocytogenes strain F2365 during growth in ultrahigh-temperature-processed skim milk.

Authors:  Yanhong Liu; Amy Ream
Journal:  Appl Environ Microbiol       Date:  2008-09-19       Impact factor: 4.792

3.  Proteomic analyses to reveal the protective role of glutathione in resistance of Lactococcus lactis to osmotic stress.

Authors:  Yanhe Zhang; Yanping Zhang; Yan Zhu; Shaoming Mao; Yin Li
Journal:  Appl Environ Microbiol       Date:  2010-03-26       Impact factor: 4.792

4.  The delta subunit of RNA polymerase, RpoE, is a global modulator of Streptococcus mutans environmental adaptation.

Authors:  Xiaoli Xue; Jürgen Tomasch; Helena Sztajer; Irene Wagner-Döbler
Journal:  J Bacteriol       Date:  2010-07-30       Impact factor: 3.490

5.  Differential oxidative stress tolerance of Streptococcus mutans isolates affects competition in an ecological mixed-species biofilm model.

Authors:  Yuan Liu; Sara R Palmer; Hsiaochi Chang; Ashton N Combs; Robert A Burne; Hyun Koo
Journal:  Environ Microbiol Rep       Date:  2017-12-04       Impact factor: 3.541

6.  An iron-binding protein, Dpr, from Streptococcus mutans prevents iron-dependent hydroxyl radical formation in vitro.

Authors:  Yuji Yamamoto; Leslie B Poole; Roy R Hantgan; Yoshiyuki Kamio
Journal:  J Bacteriol       Date:  2002-06       Impact factor: 3.490

7.  Loss of NADH Oxidase Activity in Streptococcus mutans Leads to Rex-Mediated Overcompensation in NAD+ Regeneration by Lactate Dehydrogenase.

Authors:  J L Baker; A M Derr; R C Faustoferri; R G Quivey
Journal:  J Bacteriol       Date:  2015-09-08       Impact factor: 3.490

8.  Complementation of mitochondrial electron transport chain by manipulation of the NAD+/NADH ratio.

Authors:  Denis V Titov; Valentin Cracan; Russell P Goodman; Jun Peng; Zenon Grabarek; Vamsi K Mootha
Journal:  Science       Date:  2016-04-07       Impact factor: 47.728

9.  NADH: flavin oxidoreductase/NADH oxidase and ROS regulate microsclerotium development in Nomuraea rileyi.

Authors:  Juanjuan Liu; Youping Yin; Zhangyong Song; Yan Li; Shasha Jiang; Changwen Shao; Zhongkang Wang
Journal:  World J Microbiol Biotechnol       Date:  2014-02-05       Impact factor: 3.312

10.  CD and MCD spectroscopic studies of the two Dps miniferritin proteins from Bacillus anthracis: role of O2 and H2O2 substrates in reactivity of the diiron catalytic centers.

Authors:  Jennifer K Schwartz; Xiaofeng S Liu; Takehiko Tosha; Adrienne Diebold; Elizabeth C Theil; Edward I Solomon
Journal:  Biochemistry       Date:  2010-11-12       Impact factor: 3.162

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