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Nordihydroguaiaretic Acid Disrupts the Antioxidant Ability of Helicobacter pylori through the Repression of SodB Activity In Vitro

Iron-cofactored superoxide dismutase (SodB) of Helicobacter pylori plays an indispensable role in the bacterium's colonization of the stomach. Previously, we demonstrated that FecA1, a Fe(3+)-dicitrate transporter homolog, contributes to SodB activation by supplying ferrous iron (Fe(2+)) to Sod...

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Autores principales: Tsugawa, Hitoshi, Mori, Hideki, Matsuzaki, Juntaro, Masaoka, Tatsuhiro, Hirayama, Tasuku, Nagasawa, Hideko, Sakakibara, Yasubumi, Suematsu, Makoto, Suzuki, Hidekazu
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Hindawi Publishing Corporation 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4402480/
https://www.ncbi.nlm.nih.gov/pubmed/25945343
http://dx.doi.org/10.1155/2015/734548
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author Tsugawa, Hitoshi
Mori, Hideki
Matsuzaki, Juntaro
Masaoka, Tatsuhiro
Hirayama, Tasuku
Nagasawa, Hideko
Sakakibara, Yasubumi
Suematsu, Makoto
Suzuki, Hidekazu
author_facet Tsugawa, Hitoshi
Mori, Hideki
Matsuzaki, Juntaro
Masaoka, Tatsuhiro
Hirayama, Tasuku
Nagasawa, Hideko
Sakakibara, Yasubumi
Suematsu, Makoto
Suzuki, Hidekazu
author_sort Tsugawa, Hitoshi
collection PubMed
description Iron-cofactored superoxide dismutase (SodB) of Helicobacter pylori plays an indispensable role in the bacterium's colonization of the stomach. Previously, we demonstrated that FecA1, a Fe(3+)-dicitrate transporter homolog, contributes to SodB activation by supplying ferrous iron (Fe(2+)) to SodB, and fecA1-deletion mutant strains have reduced gastric mucosal-colonization ability in Mongolian gerbils, suggesting that FecA1 is a possible target for the development of a novel eradication therapy. This study aimed to identify novel FecA1-binding compounds in silico and then examined the effect of a predicted FecA1-binding compound on H. pylori SodB activity in vitro. Specifically, we demonstrated that nordihydroguaiaretic acid (NDGA) is a predicted FecA1-binding compound. NDGA reduced intracellular Fe(2+) levels in H. pylori and reduced SodB activity. Additionally, NDGA increased H(2)O(2) sensitivity of H. pylori and increased the metronidazole (Mtz) sensitivity. The present study demonstrated that NDGA repressed SodB activity associated with the gastric mucosal-colonization via inhibition of intracellular Fe(2+) uptake by FecA1, suggesting that NDGA might be effective for the development of a novel eradication therapy.
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spelling pubmed-44024802015-05-05 Nordihydroguaiaretic Acid Disrupts the Antioxidant Ability of Helicobacter pylori through the Repression of SodB Activity In Vitro Tsugawa, Hitoshi Mori, Hideki Matsuzaki, Juntaro Masaoka, Tatsuhiro Hirayama, Tasuku Nagasawa, Hideko Sakakibara, Yasubumi Suematsu, Makoto Suzuki, Hidekazu Biomed Res Int Research Article Iron-cofactored superoxide dismutase (SodB) of Helicobacter pylori plays an indispensable role in the bacterium's colonization of the stomach. Previously, we demonstrated that FecA1, a Fe(3+)-dicitrate transporter homolog, contributes to SodB activation by supplying ferrous iron (Fe(2+)) to SodB, and fecA1-deletion mutant strains have reduced gastric mucosal-colonization ability in Mongolian gerbils, suggesting that FecA1 is a possible target for the development of a novel eradication therapy. This study aimed to identify novel FecA1-binding compounds in silico and then examined the effect of a predicted FecA1-binding compound on H. pylori SodB activity in vitro. Specifically, we demonstrated that nordihydroguaiaretic acid (NDGA) is a predicted FecA1-binding compound. NDGA reduced intracellular Fe(2+) levels in H. pylori and reduced SodB activity. Additionally, NDGA increased H(2)O(2) sensitivity of H. pylori and increased the metronidazole (Mtz) sensitivity. The present study demonstrated that NDGA repressed SodB activity associated with the gastric mucosal-colonization via inhibition of intracellular Fe(2+) uptake by FecA1, suggesting that NDGA might be effective for the development of a novel eradication therapy. Hindawi Publishing Corporation 2015 2015-04-06 /pmc/articles/PMC4402480/ /pubmed/25945343 http://dx.doi.org/10.1155/2015/734548 Text en Copyright © 2015 Hitoshi Tsugawa et al. https://creativecommons.org/licenses/by/3.0/ This is an open access article distributed under the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Tsugawa, Hitoshi
Mori, Hideki
Matsuzaki, Juntaro
Masaoka, Tatsuhiro
Hirayama, Tasuku
Nagasawa, Hideko
Sakakibara, Yasubumi
Suematsu, Makoto
Suzuki, Hidekazu
Nordihydroguaiaretic Acid Disrupts the Antioxidant Ability of Helicobacter pylori through the Repression of SodB Activity In Vitro
title Nordihydroguaiaretic Acid Disrupts the Antioxidant Ability of Helicobacter pylori through the Repression of SodB Activity In Vitro
title_full Nordihydroguaiaretic Acid Disrupts the Antioxidant Ability of Helicobacter pylori through the Repression of SodB Activity In Vitro
title_fullStr Nordihydroguaiaretic Acid Disrupts the Antioxidant Ability of Helicobacter pylori through the Repression of SodB Activity In Vitro
title_full_unstemmed Nordihydroguaiaretic Acid Disrupts the Antioxidant Ability of Helicobacter pylori through the Repression of SodB Activity In Vitro
title_short Nordihydroguaiaretic Acid Disrupts the Antioxidant Ability of Helicobacter pylori through the Repression of SodB Activity In Vitro
title_sort nordihydroguaiaretic acid disrupts the antioxidant ability of helicobacter pylori through the repression of sodb activity in vitro
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4402480/
https://www.ncbi.nlm.nih.gov/pubmed/25945343
http://dx.doi.org/10.1155/2015/734548
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