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Catalase (KatA) Plays a Role in Protection against Anaerobic Nitric Oxide in Pseudomonas aeruginosa
by
Schurr, Michael J.
, Lancaster, Jack R.
, McDaniel, Cameron
, VanderWielen, Bradley D.
, Wilson, Jeffrey J.
, Makris, Thomas M.
, Li, Qian
, Panmanee, Warunya
, Kovall, Rhett A.
, Su, Shengchang
, Lipscomb, John D.
, Hassett, Daniel J.
, Rogers, Melanie
, Irvin, Randall T.
, Mahtani, Harry K.
in
Acidification
/ Aerobic respiration
/ Anaerobic bacteria
/ Anaerobic conditions
/ Anaerobic respiration
/ Anaerobiosis
/ Anaerobiosis - drug effects
/ Anesthesiology
/ Anti-Bacterial Agents - pharmacology
/ Bacteria
/ Biochemistry
/ Biofilms
/ Biology and Life Sciences
/ Biophysics
/ Burkholderia cepacia
/ Catalase
/ Catalase - genetics
/ Catalase - metabolism
/ Chronic obstructive pulmonary disease
/ Coordination compounds
/ Crystallography
/ Cultures
/ Cystic fibrosis
/ Departments
/ E coli
/ Environmental health
/ Escherichia coli
/ Gene Expression Regulation, Bacterial - drug effects
/ Genetics
/ Growth conditions
/ Health aspects
/ Health sciences
/ Heme
/ Hospitals
/ Hydrogen
/ Hydrogen peroxide
/ Iron
/ Iron - metabolism
/ KatA gene
/ Laboratories
/ Medicine and Health Sciences
/ Metabolism
/ Molecular biology
/ Mutants
/ Neutrophils
/ Nitric oxide
/ Nitric Oxide - metabolism
/ Nitrite reductase
/ Nitrites - metabolism
/ Nitrogen Oxides - metabolism
/ Nosocomial infection
/ Nosocomial infections
/ Oxygen
/ Pathogens
/ Proteins
/ Pseudomonas aeruginosa
/ Pseudomonas aeruginosa - drug effects
/ Pseudomonas aeruginosa - enzymology
/ Pseudomonas aeruginosa - metabolism
/ Reductase
/ Reductases
/ Respiration
/ Spectroscopy
/ Substrates
/ Sulfur
/ Transcription
/ Transcription (Genetics)
/ Transcription, Genetic - drug effects
/ X-ray crystallography
2014
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Catalase (KatA) Plays a Role in Protection against Anaerobic Nitric Oxide in Pseudomonas aeruginosa
by
Schurr, Michael J.
, Lancaster, Jack R.
, McDaniel, Cameron
, VanderWielen, Bradley D.
, Wilson, Jeffrey J.
, Makris, Thomas M.
, Li, Qian
, Panmanee, Warunya
, Kovall, Rhett A.
, Su, Shengchang
, Lipscomb, John D.
, Hassett, Daniel J.
, Rogers, Melanie
, Irvin, Randall T.
, Mahtani, Harry K.
in
Acidification
/ Aerobic respiration
/ Anaerobic bacteria
/ Anaerobic conditions
/ Anaerobic respiration
/ Anaerobiosis
/ Anaerobiosis - drug effects
/ Anesthesiology
/ Anti-Bacterial Agents - pharmacology
/ Bacteria
/ Biochemistry
/ Biofilms
/ Biology and Life Sciences
/ Biophysics
/ Burkholderia cepacia
/ Catalase
/ Catalase - genetics
/ Catalase - metabolism
/ Chronic obstructive pulmonary disease
/ Coordination compounds
/ Crystallography
/ Cultures
/ Cystic fibrosis
/ Departments
/ E coli
/ Environmental health
/ Escherichia coli
/ Gene Expression Regulation, Bacterial - drug effects
/ Genetics
/ Growth conditions
/ Health aspects
/ Health sciences
/ Heme
/ Hospitals
/ Hydrogen
/ Hydrogen peroxide
/ Iron
/ Iron - metabolism
/ KatA gene
/ Laboratories
/ Medicine and Health Sciences
/ Metabolism
/ Molecular biology
/ Mutants
/ Neutrophils
/ Nitric oxide
/ Nitric Oxide - metabolism
/ Nitrite reductase
/ Nitrites - metabolism
/ Nitrogen Oxides - metabolism
/ Nosocomial infection
/ Nosocomial infections
/ Oxygen
/ Pathogens
/ Proteins
/ Pseudomonas aeruginosa
/ Pseudomonas aeruginosa - drug effects
/ Pseudomonas aeruginosa - enzymology
/ Pseudomonas aeruginosa - metabolism
/ Reductase
/ Reductases
/ Respiration
/ Spectroscopy
/ Substrates
/ Sulfur
/ Transcription
/ Transcription (Genetics)
/ Transcription, Genetic - drug effects
/ X-ray crystallography
2014
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Catalase (KatA) Plays a Role in Protection against Anaerobic Nitric Oxide in Pseudomonas aeruginosa
by
Schurr, Michael J.
, Lancaster, Jack R.
, McDaniel, Cameron
, VanderWielen, Bradley D.
, Wilson, Jeffrey J.
, Makris, Thomas M.
, Li, Qian
, Panmanee, Warunya
, Kovall, Rhett A.
, Su, Shengchang
, Lipscomb, John D.
, Hassett, Daniel J.
, Rogers, Melanie
, Irvin, Randall T.
, Mahtani, Harry K.
in
Acidification
/ Aerobic respiration
/ Anaerobic bacteria
/ Anaerobic conditions
/ Anaerobic respiration
/ Anaerobiosis
/ Anaerobiosis - drug effects
/ Anesthesiology
/ Anti-Bacterial Agents - pharmacology
/ Bacteria
/ Biochemistry
/ Biofilms
/ Biology and Life Sciences
/ Biophysics
/ Burkholderia cepacia
/ Catalase
/ Catalase - genetics
/ Catalase - metabolism
/ Chronic obstructive pulmonary disease
/ Coordination compounds
/ Crystallography
/ Cultures
/ Cystic fibrosis
/ Departments
/ E coli
/ Environmental health
/ Escherichia coli
/ Gene Expression Regulation, Bacterial - drug effects
/ Genetics
/ Growth conditions
/ Health aspects
/ Health sciences
/ Heme
/ Hospitals
/ Hydrogen
/ Hydrogen peroxide
/ Iron
/ Iron - metabolism
/ KatA gene
/ Laboratories
/ Medicine and Health Sciences
/ Metabolism
/ Molecular biology
/ Mutants
/ Neutrophils
/ Nitric oxide
/ Nitric Oxide - metabolism
/ Nitrite reductase
/ Nitrites - metabolism
/ Nitrogen Oxides - metabolism
/ Nosocomial infection
/ Nosocomial infections
/ Oxygen
/ Pathogens
/ Proteins
/ Pseudomonas aeruginosa
/ Pseudomonas aeruginosa - drug effects
/ Pseudomonas aeruginosa - enzymology
/ Pseudomonas aeruginosa - metabolism
/ Reductase
/ Reductases
/ Respiration
/ Spectroscopy
/ Substrates
/ Sulfur
/ Transcription
/ Transcription (Genetics)
/ Transcription, Genetic - drug effects
/ X-ray crystallography
2014
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Catalase (KatA) Plays a Role in Protection against Anaerobic Nitric Oxide in Pseudomonas aeruginosa
Journal Article
Catalase (KatA) Plays a Role in Protection against Anaerobic Nitric Oxide in Pseudomonas aeruginosa
2014
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Overview
Pseudomonas aeruginosa (PA) is a common bacterial pathogen, responsible for a high incidence of nosocomial and respiratory infections. KatA is the major catalase of PA that detoxifies hydrogen peroxide (H2O2), a reactive oxygen intermediate generated during aerobic respiration. Paradoxically, PA displays elevated KatA activity under anaerobic growth conditions where the substrate of KatA, H2O2, is not produced. The aim of the present study is to elucidate the mechanism underlying this phenomenon and define the role of KatA in PA during anaerobiosis using genetic, biochemical and biophysical approaches. We demonstrated that anaerobic wild-type PAO1 cells yielded higher levels of katA transcription and expression than aerobic cells, whereas a nitrite reductase mutant ΔnirS produced ∼50% the KatA activity of PAO1, suggesting that a basal NO level was required for the increased KatA activity. We also found that transcription of the katA gene was controlled, in part, by the master anaerobic regulator, ANR. A ΔkatA mutant and a mucoid mucA22 ΔkatA bacteria demonstrated increased sensitivity to acidified nitrite (an NO generator) in anaerobic planktonic and biofilm cultures. EPR spectra of anaerobic bacteria showed that levels of dinitrosyl iron complexes (DNIC), indicators of NO stress, were increased significantly in the ΔkatA mutant, and dramatically in a ΔnorCB mutant compared to basal levels of DNIC in PAO1 and ΔnirS mutant. Expression of KatA dramatically reduced the DNIC levels in ΔnorCB mutant. We further revealed direct NO-KatA interactions in vitro using EPR, optical spectroscopy and X-ray crystallography. KatA has a 5-coordinate high spin ferric heme that binds NO without prior reduction of the heme iron (Kd ∼6 μM). Collectively, we conclude that KatA is expressed to protect PA against NO generated during anaerobic respiration. We proposed that such protective effects of KatA may involve buffering of free NO when potentially toxic concentrations of NO are approached.
Publisher
Public Library of Science,Public Library of Science (PLoS)
Subject
/ Anti-Bacterial Agents - pharmacology
/ Bacteria
/ Biofilms
/ Catalase
/ Chronic obstructive pulmonary disease
/ Cultures
/ E coli
/ Gene Expression Regulation, Bacterial - drug effects
/ Genetics
/ Heme
/ Hydrogen
/ Iron
/ Medicine and Health Sciences
/ Mutants
/ Nitrogen Oxides - metabolism
/ Oxygen
/ Proteins
/ Pseudomonas aeruginosa - drug effects
/ Pseudomonas aeruginosa - enzymology
/ Pseudomonas aeruginosa - metabolism
/ Sulfur
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