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Genetic Diversity as Consequence of a Microaerobic and Neutrophilic Lifestyle

As a neutrophilic bacterium, Helicobacter pylori is growth deficient under extreme acidic conditions. The gastric pathogen is equipped with an acid survival kit, regulating urease activity by a pH-gated urea channel, opening below pH 6.5. After overcoming acid stress, the bacterium’s multiplication...

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Autores principales: Krüger, Nora-Johanna, Knüver, Marie-Theres, Zawilak-Pawlik, Anna, Appel, Bernd, Stingl, Kerstin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4864210/
https://www.ncbi.nlm.nih.gov/pubmed/27166672
http://dx.doi.org/10.1371/journal.ppat.1005626
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author Krüger, Nora-Johanna
Knüver, Marie-Theres
Zawilak-Pawlik, Anna
Appel, Bernd
Stingl, Kerstin
author_facet Krüger, Nora-Johanna
Knüver, Marie-Theres
Zawilak-Pawlik, Anna
Appel, Bernd
Stingl, Kerstin
author_sort Krüger, Nora-Johanna
collection PubMed
description As a neutrophilic bacterium, Helicobacter pylori is growth deficient under extreme acidic conditions. The gastric pathogen is equipped with an acid survival kit, regulating urease activity by a pH-gated urea channel, opening below pH 6.5. After overcoming acid stress, the bacterium’s multiplication site is situated at the gastric mucosa with near neutral pH. The pathogen exhibits exceptional genetic variability, mainly due to its capability of natural transformation, termed competence. Using single cell analysis, we show here that competence is highly regulated in H. pylori. DNA uptake complex activity was reversibly shut down below pH 6.5. pH values above 6.5 opened a competence window, in which competence development was triggered by the combination of pH increase and oxidative stress. In contrast, addition of sublethal concentrations of the DNA-damaging agents ciprofloxacin or mitomycin C did not trigger competence development under our conditions. An oxygen-sensitive mutant lacking superoxide dismutase (sodB) displayed a higher competent fraction of cells than the wild type under comparable conditions. In addition, the sodB mutant was dependent on adenine for growth in broth and turned into non-cultivable coccoid forms in its absence, indicating that adenine had radical quenching capacity. Quantification of periplasmically located DNA in competent wild type cells revealed outstanding median imported DNA amounts of around 350 kb per cell within 10 min of import, with maximally a chromosomal equivalent (1.6 Mb) in individual cells, far exceeding previous amounts detected in other Gram-negative bacteria. We conclude that the pathogen’s high genetic diversity is a consequence of its enormous DNA uptake capacity, triggered by intrinsic and extrinsic oxidative stress once a neutral pH at the site of chronic host colonization allows competence development.
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spelling pubmed-48642102016-05-18 Genetic Diversity as Consequence of a Microaerobic and Neutrophilic Lifestyle Krüger, Nora-Johanna Knüver, Marie-Theres Zawilak-Pawlik, Anna Appel, Bernd Stingl, Kerstin PLoS Pathog Research Article As a neutrophilic bacterium, Helicobacter pylori is growth deficient under extreme acidic conditions. The gastric pathogen is equipped with an acid survival kit, regulating urease activity by a pH-gated urea channel, opening below pH 6.5. After overcoming acid stress, the bacterium’s multiplication site is situated at the gastric mucosa with near neutral pH. The pathogen exhibits exceptional genetic variability, mainly due to its capability of natural transformation, termed competence. Using single cell analysis, we show here that competence is highly regulated in H. pylori. DNA uptake complex activity was reversibly shut down below pH 6.5. pH values above 6.5 opened a competence window, in which competence development was triggered by the combination of pH increase and oxidative stress. In contrast, addition of sublethal concentrations of the DNA-damaging agents ciprofloxacin or mitomycin C did not trigger competence development under our conditions. An oxygen-sensitive mutant lacking superoxide dismutase (sodB) displayed a higher competent fraction of cells than the wild type under comparable conditions. In addition, the sodB mutant was dependent on adenine for growth in broth and turned into non-cultivable coccoid forms in its absence, indicating that adenine had radical quenching capacity. Quantification of periplasmically located DNA in competent wild type cells revealed outstanding median imported DNA amounts of around 350 kb per cell within 10 min of import, with maximally a chromosomal equivalent (1.6 Mb) in individual cells, far exceeding previous amounts detected in other Gram-negative bacteria. We conclude that the pathogen’s high genetic diversity is a consequence of its enormous DNA uptake capacity, triggered by intrinsic and extrinsic oxidative stress once a neutral pH at the site of chronic host colonization allows competence development. Public Library of Science 2016-05-11 /pmc/articles/PMC4864210/ /pubmed/27166672 http://dx.doi.org/10.1371/journal.ppat.1005626 Text en © 2016 Krüger et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Krüger, Nora-Johanna
Knüver, Marie-Theres
Zawilak-Pawlik, Anna
Appel, Bernd
Stingl, Kerstin
Genetic Diversity as Consequence of a Microaerobic and Neutrophilic Lifestyle
title Genetic Diversity as Consequence of a Microaerobic and Neutrophilic Lifestyle
title_full Genetic Diversity as Consequence of a Microaerobic and Neutrophilic Lifestyle
title_fullStr Genetic Diversity as Consequence of a Microaerobic and Neutrophilic Lifestyle
title_full_unstemmed Genetic Diversity as Consequence of a Microaerobic and Neutrophilic Lifestyle
title_short Genetic Diversity as Consequence of a Microaerobic and Neutrophilic Lifestyle
title_sort genetic diversity as consequence of a microaerobic and neutrophilic lifestyle
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4864210/
https://www.ncbi.nlm.nih.gov/pubmed/27166672
http://dx.doi.org/10.1371/journal.ppat.1005626
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