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Altered Antibiotic Transport in OmpC Mutants Isolated from a Series of Clinical Strains of Multi-Drug Resistant E. coli

Antibiotic-resistant bacteria, particularly Gram negative species, present significant health care challenges. The permeation of antibiotics through the outer membrane is largely effected by the porin superfamily, changes in which contribute to antibiotic resistance. A series of antibiotic resistant...

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Autores principales: Lou, Hubing, Chen, Min, Black, Susan S., Bushell, Simon R., Ceccarelli, Matteo, Mach, Tivadar, Beis, Konstantinos, Low, Alison S., Bamford, Victoria A., Booth, Ian R., Bayley, Hagan, Naismith, James H.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3203869/
https://www.ncbi.nlm.nih.gov/pubmed/22053181
http://dx.doi.org/10.1371/journal.pone.0025825
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author Lou, Hubing
Chen, Min
Black, Susan S.
Bushell, Simon R.
Ceccarelli, Matteo
Mach, Tivadar
Beis, Konstantinos
Low, Alison S.
Bamford, Victoria A.
Booth, Ian R.
Bayley, Hagan
Naismith, James H.
author_facet Lou, Hubing
Chen, Min
Black, Susan S.
Bushell, Simon R.
Ceccarelli, Matteo
Mach, Tivadar
Beis, Konstantinos
Low, Alison S.
Bamford, Victoria A.
Booth, Ian R.
Bayley, Hagan
Naismith, James H.
author_sort Lou, Hubing
collection PubMed
description Antibiotic-resistant bacteria, particularly Gram negative species, present significant health care challenges. The permeation of antibiotics through the outer membrane is largely effected by the porin superfamily, changes in which contribute to antibiotic resistance. A series of antibiotic resistant E. coli isolates were obtained from a patient during serial treatment with various antibiotics. The sequence of OmpC changed at three positions during treatment giving rise to a total of four OmpC variants (denoted OmpC20, OmpC26, OmpC28 and OmpC33, in which OmpC20 was derived from the first clinical isolate). We demonstrate that expression of the OmpC K12 porin in the clinical isolates lowers the MIC, consistent with modified porin function contributing to drug resistance. By a range of assays we have established that the three mutations that occur between OmpC20 and OmpC33 modify transport of both small molecules and antibiotics across the outer membrane. This results in the modulation of resistance to antibiotics, particularly cefotaxime. Small ion unitary conductance measurements of the isolated porins do not show significant differences between isolates. Thus, resistance does not appear to arise from major changes in pore size. Crystal structures of all four OmpC clinical mutants and molecular dynamics simulations also show that the pore size is essentially unchanged. Molecular dynamics simulations suggest that perturbation of the transverse electrostatic field at the constriction zone reduces cefotaxime passage through the pore, consistent with laboratory and clinical data. This subtle modification of the transverse electric field is a very different source of resistance than occlusion of the pore or wholesale destruction of the transverse field and points to a new mechanism by which porins may modulate antibiotic passage through the outer membrane.
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spelling pubmed-32038692011-11-03 Altered Antibiotic Transport in OmpC Mutants Isolated from a Series of Clinical Strains of Multi-Drug Resistant E. coli Lou, Hubing Chen, Min Black, Susan S. Bushell, Simon R. Ceccarelli, Matteo Mach, Tivadar Beis, Konstantinos Low, Alison S. Bamford, Victoria A. Booth, Ian R. Bayley, Hagan Naismith, James H. PLoS One Research Article Antibiotic-resistant bacteria, particularly Gram negative species, present significant health care challenges. The permeation of antibiotics through the outer membrane is largely effected by the porin superfamily, changes in which contribute to antibiotic resistance. A series of antibiotic resistant E. coli isolates were obtained from a patient during serial treatment with various antibiotics. The sequence of OmpC changed at three positions during treatment giving rise to a total of four OmpC variants (denoted OmpC20, OmpC26, OmpC28 and OmpC33, in which OmpC20 was derived from the first clinical isolate). We demonstrate that expression of the OmpC K12 porin in the clinical isolates lowers the MIC, consistent with modified porin function contributing to drug resistance. By a range of assays we have established that the three mutations that occur between OmpC20 and OmpC33 modify transport of both small molecules and antibiotics across the outer membrane. This results in the modulation of resistance to antibiotics, particularly cefotaxime. Small ion unitary conductance measurements of the isolated porins do not show significant differences between isolates. Thus, resistance does not appear to arise from major changes in pore size. Crystal structures of all four OmpC clinical mutants and molecular dynamics simulations also show that the pore size is essentially unchanged. Molecular dynamics simulations suggest that perturbation of the transverse electrostatic field at the constriction zone reduces cefotaxime passage through the pore, consistent with laboratory and clinical data. This subtle modification of the transverse electric field is a very different source of resistance than occlusion of the pore or wholesale destruction of the transverse field and points to a new mechanism by which porins may modulate antibiotic passage through the outer membrane. Public Library of Science 2011-10-28 /pmc/articles/PMC3203869/ /pubmed/22053181 http://dx.doi.org/10.1371/journal.pone.0025825 Text en Lou 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
Lou, Hubing
Chen, Min
Black, Susan S.
Bushell, Simon R.
Ceccarelli, Matteo
Mach, Tivadar
Beis, Konstantinos
Low, Alison S.
Bamford, Victoria A.
Booth, Ian R.
Bayley, Hagan
Naismith, James H.
Altered Antibiotic Transport in OmpC Mutants Isolated from a Series of Clinical Strains of Multi-Drug Resistant E. coli
title Altered Antibiotic Transport in OmpC Mutants Isolated from a Series of Clinical Strains of Multi-Drug Resistant E. coli
title_full Altered Antibiotic Transport in OmpC Mutants Isolated from a Series of Clinical Strains of Multi-Drug Resistant E. coli
title_fullStr Altered Antibiotic Transport in OmpC Mutants Isolated from a Series of Clinical Strains of Multi-Drug Resistant E. coli
title_full_unstemmed Altered Antibiotic Transport in OmpC Mutants Isolated from a Series of Clinical Strains of Multi-Drug Resistant E. coli
title_short Altered Antibiotic Transport in OmpC Mutants Isolated from a Series of Clinical Strains of Multi-Drug Resistant E. coli
title_sort altered antibiotic transport in ompc mutants isolated from a series of clinical strains of multi-drug resistant e. coli
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3203869/
https://www.ncbi.nlm.nih.gov/pubmed/22053181
http://dx.doi.org/10.1371/journal.pone.0025825
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