Cargando…

Mesoscopic Energy Minimization Drives Pseudomonas aeruginosa Biofilm Morphologies and Consequent Stratification of Antibiotic Activity Based on Cell Metabolism

Segregation of bacteria based on their metabolic activities in biofilms plays an important role in the development of antibiotic resistance. Mushroom-shaped biofilm structures, which are reported for many bacteria, exhibit topographically varying levels of multiple drug resistance from the cap of th...

Descripción completa

Detalles Bibliográficos
Autores principales: Sheraton, M. V., Yam, J. K. H., Tan, C. H., Oh, H. S., Mancini, E., Yang, L., Rice, S. A., Sloot, P. M. A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Microbiology 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5923133/
https://www.ncbi.nlm.nih.gov/pubmed/29463543
http://dx.doi.org/10.1128/AAC.02544-17
_version_ 1783318278298402816
author Sheraton, M. V.
Yam, J. K. H.
Tan, C. H.
Oh, H. S.
Mancini, E.
Yang, L.
Rice, S. A.
Sloot, P. M. A.
author_facet Sheraton, M. V.
Yam, J. K. H.
Tan, C. H.
Oh, H. S.
Mancini, E.
Yang, L.
Rice, S. A.
Sloot, P. M. A.
author_sort Sheraton, M. V.
collection PubMed
description Segregation of bacteria based on their metabolic activities in biofilms plays an important role in the development of antibiotic resistance. Mushroom-shaped biofilm structures, which are reported for many bacteria, exhibit topographically varying levels of multiple drug resistance from the cap of the mushroom to its stalk. Understanding the dynamics behind the formation of such structures can aid in design of drug delivery systems, antibiotics, or physical systems for removal of biofilms. We explored the development of metabolically heterogeneous Pseudomonas aeruginosa biofilms using numerical models and laboratory knockout experiments on wild-type and chemotaxis-deficient mutants. We show that chemotactic processes dominate the transformation of slender and hemispherical structures into mushroom structures with a signature cap. Cellular Potts model simulation and experimental data provide evidence that accelerated movement of bacteria along the periphery of the biofilm, due to nutrient cues, results in the formation of mushroom structures and bacterial segregation. Multidrug resistance of bacteria is one of the most threatening dangers to public health. Understanding the mechanisms of the development of mushroom-shaped biofilms helps to identify the multidrug-resistant regions. We decoded the dynamics of the structural evolution of bacterial biofilms and the physics behind the formation of biofilm structures as well as the biological triggers that produce them. Combining in vitro gene knockout experiments with in silico models showed that chemotactic motility is one of the main driving forces for the formation of stalks and caps. Our results provide physicists and biologists with a new perspective on biofilm removal and eradication strategies.
format Online
Article
Text
id pubmed-5923133
institution National Center for Biotechnology Information
language English
publishDate 2018
publisher American Society for Microbiology
record_format MEDLINE/PubMed
spelling pubmed-59231332018-05-11 Mesoscopic Energy Minimization Drives Pseudomonas aeruginosa Biofilm Morphologies and Consequent Stratification of Antibiotic Activity Based on Cell Metabolism Sheraton, M. V. Yam, J. K. H. Tan, C. H. Oh, H. S. Mancini, E. Yang, L. Rice, S. A. Sloot, P. M. A. Antimicrob Agents Chemother Pharmacology Segregation of bacteria based on their metabolic activities in biofilms plays an important role in the development of antibiotic resistance. Mushroom-shaped biofilm structures, which are reported for many bacteria, exhibit topographically varying levels of multiple drug resistance from the cap of the mushroom to its stalk. Understanding the dynamics behind the formation of such structures can aid in design of drug delivery systems, antibiotics, or physical systems for removal of biofilms. We explored the development of metabolically heterogeneous Pseudomonas aeruginosa biofilms using numerical models and laboratory knockout experiments on wild-type and chemotaxis-deficient mutants. We show that chemotactic processes dominate the transformation of slender and hemispherical structures into mushroom structures with a signature cap. Cellular Potts model simulation and experimental data provide evidence that accelerated movement of bacteria along the periphery of the biofilm, due to nutrient cues, results in the formation of mushroom structures and bacterial segregation. Multidrug resistance of bacteria is one of the most threatening dangers to public health. Understanding the mechanisms of the development of mushroom-shaped biofilms helps to identify the multidrug-resistant regions. We decoded the dynamics of the structural evolution of bacterial biofilms and the physics behind the formation of biofilm structures as well as the biological triggers that produce them. Combining in vitro gene knockout experiments with in silico models showed that chemotactic motility is one of the main driving forces for the formation of stalks and caps. Our results provide physicists and biologists with a new perspective on biofilm removal and eradication strategies. American Society for Microbiology 2018-04-26 /pmc/articles/PMC5923133/ /pubmed/29463543 http://dx.doi.org/10.1128/AAC.02544-17 Text en Copyright © 2018 Sheraton et al. https://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution 4.0 International license (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Pharmacology
Sheraton, M. V.
Yam, J. K. H.
Tan, C. H.
Oh, H. S.
Mancini, E.
Yang, L.
Rice, S. A.
Sloot, P. M. A.
Mesoscopic Energy Minimization Drives Pseudomonas aeruginosa Biofilm Morphologies and Consequent Stratification of Antibiotic Activity Based on Cell Metabolism
title Mesoscopic Energy Minimization Drives Pseudomonas aeruginosa Biofilm Morphologies and Consequent Stratification of Antibiotic Activity Based on Cell Metabolism
title_full Mesoscopic Energy Minimization Drives Pseudomonas aeruginosa Biofilm Morphologies and Consequent Stratification of Antibiotic Activity Based on Cell Metabolism
title_fullStr Mesoscopic Energy Minimization Drives Pseudomonas aeruginosa Biofilm Morphologies and Consequent Stratification of Antibiotic Activity Based on Cell Metabolism
title_full_unstemmed Mesoscopic Energy Minimization Drives Pseudomonas aeruginosa Biofilm Morphologies and Consequent Stratification of Antibiotic Activity Based on Cell Metabolism
title_short Mesoscopic Energy Minimization Drives Pseudomonas aeruginosa Biofilm Morphologies and Consequent Stratification of Antibiotic Activity Based on Cell Metabolism
title_sort mesoscopic energy minimization drives pseudomonas aeruginosa biofilm morphologies and consequent stratification of antibiotic activity based on cell metabolism
topic Pharmacology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5923133/
https://www.ncbi.nlm.nih.gov/pubmed/29463543
http://dx.doi.org/10.1128/AAC.02544-17
work_keys_str_mv AT sheratonmv mesoscopicenergyminimizationdrivespseudomonasaeruginosabiofilmmorphologiesandconsequentstratificationofantibioticactivitybasedoncellmetabolism
AT yamjkh mesoscopicenergyminimizationdrivespseudomonasaeruginosabiofilmmorphologiesandconsequentstratificationofantibioticactivitybasedoncellmetabolism
AT tanch mesoscopicenergyminimizationdrivespseudomonasaeruginosabiofilmmorphologiesandconsequentstratificationofantibioticactivitybasedoncellmetabolism
AT ohhs mesoscopicenergyminimizationdrivespseudomonasaeruginosabiofilmmorphologiesandconsequentstratificationofantibioticactivitybasedoncellmetabolism
AT mancinie mesoscopicenergyminimizationdrivespseudomonasaeruginosabiofilmmorphologiesandconsequentstratificationofantibioticactivitybasedoncellmetabolism
AT yangl mesoscopicenergyminimizationdrivespseudomonasaeruginosabiofilmmorphologiesandconsequentstratificationofantibioticactivitybasedoncellmetabolism
AT ricesa mesoscopicenergyminimizationdrivespseudomonasaeruginosabiofilmmorphologiesandconsequentstratificationofantibioticactivitybasedoncellmetabolism
AT slootpma mesoscopicenergyminimizationdrivespseudomonasaeruginosabiofilmmorphologiesandconsequentstratificationofantibioticactivitybasedoncellmetabolism