The role of the natural environment in the emergence of antibiotic resistance in Gram-negative bacteria

During the past 10 years, multidrug-resistant Gram-negative Enterobacteriaceae have become a substantial challenge to infection control. It has been suggested by clinicians that the effectiveness of antibiotics is in such rapid decline that, depending on the pathogen concerned, their future utility...

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Published inThe Lancet infectious diseases Vol. 13; no. 2; pp. 155 - 165
Main Authors Wellington, Elizabeth MH, Boxall, Alistair BA, Cross, Paul, Feil, Edward J, Gaze, William H, Hawkey, Peter M, Johnson-Rollings, Ashley S, Jones, Davey L, Lee, Nicholas M, Otten, Wilfred, Thomas, Christopher M, Williams, A Prysor
Format Journal Article
LanguageEnglish
Published London Elsevier Ltd 01.02.2013
Lancet Publishing Group
Elsevier Limited
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Abstract During the past 10 years, multidrug-resistant Gram-negative Enterobacteriaceae have become a substantial challenge to infection control. It has been suggested by clinicians that the effectiveness of antibiotics is in such rapid decline that, depending on the pathogen concerned, their future utility can be measured in decades or even years. Unless the rise in antibiotic resistance can be reversed, we can expect to see a substantial rise in incurable infection and fatality in both developed and developing regions. Antibiotic resistance develops through complex interactions, with resistance arising by de-novo mutation under clinical antibiotic selection or frequently by acquisition of mobile genes that have evolved over time in bacteria in the environment. The reservoir of resistance genes in the environment is due to a mix of naturally occurring resistance and those present in animal and human waste and the selective effects of pollutants, which can co-select for mobile genetic elements carrying multiple resistant genes. Less attention has been given to how anthropogenic activity might be causing evolution of antibiotic resistance in the environment. Although the economics of the pharmaceutical industry continue to restrict investment in novel biomedical responses, action must be taken to avoid the conjunction of factors that promote evolution and spread of antibiotic resistance.
AbstractList During the past 10 years, multidrug-resistant Gram-negative Enterobacteriaceae have become a substantial challenge to infection control. It has been suggested by clinicians that the effectiveness of antibiotics is in such rapid decline that, depending on the pathogen concerned, their future utility can be measured in decades or even years. Unless the rise in antibiotic resistance can be reversed, we can expect to see a substantial rise in incurable infection and fatality in both developed and developing regions. Antibiotic resistance develops through complex interactions, with resistance arising by de-novo mutation under clinical antibiotic selection or frequently by acquisition of mobile genes that have evolved over time in bacteria in the environment. The reservoir of resistance genes in the environment is due to a mix of naturally occurring resistance and those present in animal and human waste and the selective effects of pollutants, which can co-select for mobile genetic elements carrying multiple resistant genes. Less attention has been given to how anthropogenic activity might be causing evolution of antibiotic resistance in the environment. Although the economics of the pharmaceutical industry continue to restrict investment in novel biomedical responses, action must be taken to avoid the conjunction of factors that promote evolution and spread of antibiotic resistance.
Summary During the past 10 years, multidrug-resistant Gram-negative Enterobacteriaceae have become a substantial challenge to infection control. It has been suggested by clinicians that the effectiveness of antibiotics is in such rapid decline that, depending on the pathogen concerned, their future utility can be measured in decades or even years. Unless the rise in antibiotic resistance can be reversed, we can expect to see a substantial rise in incurable infection and fatality in both developed and developing regions. Antibiotic resistance develops through complex interactions, with resistance arising by de-novo mutation under clinical antibiotic selection or frequently by acquisition of mobile genes that have evolved over time in bacteria in the environment. The reservoir of resistance genes in the environment is due to a mix of naturally occurring resistance and those present in animal and human waste and the selective effects of pollutants, which can co-select for mobile genetic elements carrying multiple resistant genes. Less attention has been given to how anthropogenic activity might be causing evolution of antibiotic resistance in the environment. Although the economics of the pharmaceutical industry continue to restrict investment in novel biomedical responses, action must be taken to avoid the conjunction of factors that promote evolution and spread of antibiotic resistance.
During the past 10 years, multidrug-resistant Gram-negative Enterobacteriaceae have become a substantial challenge to infection control. It has been suggested by clinicians that the effectiveness of antibiotics is in such rapid decline that, depending on the pathogen concerned, their future utility can be measured in decades or even years. Unless the rise in antibiotic resistance can be reversed, we can expect to see a substantial rise in incurable infection and fatality in both developed and developing regions. Antibiotic resistance develops through complex interactions, with resistance arising by de-novo mutation under clinical antibiotic selection or frequently by acquisition of mobile genes that have evolved over time in bacteria in the environment. The reservoir of resistance genes in the environment is due to a mix of naturally occurring resistance and those present in animal and human waste and the selective effects of pollutants, which can co-select for mobile genetic elements carrying multiple resistant genes. Less attention has been given to how anthropogenic activity might be causing evolution of antibiotic resistance in the environment. Although the economics of the pharmaceutical industry continue to restrict investment in novel biomedical responses, action must be taken to avoid the conjunction of factors that promote evolution and spread of antibiotic resistance.During the past 10 years, multidrug-resistant Gram-negative Enterobacteriaceae have become a substantial challenge to infection control. It has been suggested by clinicians that the effectiveness of antibiotics is in such rapid decline that, depending on the pathogen concerned, their future utility can be measured in decades or even years. Unless the rise in antibiotic resistance can be reversed, we can expect to see a substantial rise in incurable infection and fatality in both developed and developing regions. Antibiotic resistance develops through complex interactions, with resistance arising by de-novo mutation under clinical antibiotic selection or frequently by acquisition of mobile genes that have evolved over time in bacteria in the environment. The reservoir of resistance genes in the environment is due to a mix of naturally occurring resistance and those present in animal and human waste and the selective effects of pollutants, which can co-select for mobile genetic elements carrying multiple resistant genes. Less attention has been given to how anthropogenic activity might be causing evolution of antibiotic resistance in the environment. Although the economics of the pharmaceutical industry continue to restrict investment in novel biomedical responses, action must be taken to avoid the conjunction of factors that promote evolution and spread of antibiotic resistance.
Author Jones, Davey L
Lee, Nicholas M
Cross, Paul
Feil, Edward J
Wellington, Elizabeth MH
Boxall, Alistair BA
Thomas, Christopher M
Gaze, William H
Otten, Wilfred
Williams, A Prysor
Hawkey, Peter M
Johnson-Rollings, Ashley S
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  givenname: Elizabeth MH
  surname: Wellington
  fullname: Wellington, Elizabeth MH
  email: e.m.h.wellington@warwick.ac.uk
  organization: School of Life Sciences, University of Warwick, Coventry, UK
– sequence: 2
  givenname: Alistair BA
  surname: Boxall
  fullname: Boxall, Alistair BA
  organization: Environment Department, University of York, Heslington, York, UK
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  surname: Cross
  fullname: Cross, Paul
  organization: School of Environment, Natural Resources and Geography, Bangor University, Bangor, UK
– sequence: 4
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  surname: Feil
  fullname: Feil, Edward J
  organization: Department of Biology and Biochemistry, University of Bath, Claverton Down, Bath, UK
– sequence: 5
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  surname: Gaze
  fullname: Gaze, William H
  organization: European Centre for Environment and Human Health, Exeter University Medical School, Knowledge Spa, Royal Cornwall Hospital, Truro, UK
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  surname: Hawkey
  fullname: Hawkey, Peter M
  organization: Health Protection Agency, West Midlands Public Health Laboratory, Heart of England NHS Foundation Trust, Bordesley Green East, Birmingham, UK
– sequence: 7
  givenname: Ashley S
  surname: Johnson-Rollings
  fullname: Johnson-Rollings, Ashley S
  organization: School of Life Sciences, University of Warwick, Coventry, UK
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  givenname: Davey L
  surname: Jones
  fullname: Jones, Davey L
  organization: School of Environment, Natural Resources and Geography, Bangor University, Bangor, UK
– sequence: 9
  givenname: Nicholas M
  surname: Lee
  fullname: Lee, Nicholas M
  organization: Institute of Education, University of Warwick, Coventry, UK
– sequence: 10
  givenname: Wilfred
  surname: Otten
  fullname: Otten, Wilfred
  organization: The SIMBIOS Centre, University of Abertay Dundee, Dundee, UK
– sequence: 11
  givenname: Christopher M
  surname: Thomas
  fullname: Thomas, Christopher M
  organization: School of Biosciences, University of Birmingham, Edgbaston, Birmingham, UK
– sequence: 12
  givenname: A Prysor
  surname: Williams
  fullname: Williams, A Prysor
  organization: School of Environment, Natural Resources and Geography, Bangor University, Bangor, UK
BackLink http://pascal-francis.inist.fr/vibad/index.php?action=getRecordDetail&idt=26902747$$DView record in Pascal Francis
https://www.ncbi.nlm.nih.gov/pubmed/23347633$$D View this record in MEDLINE/PubMed
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Environment
Antibiotic
Antibacterial agent
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Gram negative bacteria
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Snippet During the past 10 years, multidrug-resistant Gram-negative Enterobacteriaceae have become a substantial challenge to infection control. It has been suggested...
Summary During the past 10 years, multidrug-resistant Gram-negative Enterobacteriaceae have become a substantial challenge to infection control. It has been...
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SubjectTerms Animals
Anthropogenic factors
Anti-Bacterial Agents - therapeutic use
Antibacterial agents
Antibiotic resistance
Antibiotics
Antibiotics. Antiinfectious agents. Antiparasitic agents
Bacteria
Biological and medical sciences
Drug resistance
Drug Resistance, Bacterial - genetics
Economics
Enterobacteriaceae
Evolution
Gene-Environment Interaction
Genome, Bacterial
Gram-negative bacteria
Gram-Negative Bacteria - genetics
Gram-Negative Bacterial Infections - drug therapy
Humans
Infection
Infectious Disease
Infectious diseases
Manure - microbiology
Medical sciences
Models, Biological
Mortality
Mutation
Natural environment
Pathogens
Pharmaceutical industry
Pharmaceuticals
Pharmacology. Drug treatments
Pollutants
Pollution effects
R Factors
Reservoirs
Sewage - chemistry
Sewage - microbiology
Wastes
Title The role of the natural environment in the emergence of antibiotic resistance in Gram-negative bacteria
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https://www.ncbi.nlm.nih.gov/pubmed/23347633
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Volume 13
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