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Simulating the Influence of Conjugative-Plasmid Kinetic Values on the Multilevel Dynamics of Antimicrobial Resistance in a Membrane Computing Model.
Campos, Marcelino; San Millán, Álvaro; Sempere, José M; Lanza, Val F; Coque, Teresa M; Llorens, Carlos; Baquero, Fernando.
Affiliation
  • Campos M; Department of Microbiology, Ramón y Cajal University Hospital, IRYCIS, Madrid, Spain.
  • San Millán Á; Valencian Research Institute for Artificial Intelligence (VRAIN), Universitat Politècnica de València, Valencia, Spain.
  • Sempere JM; Department of Microbiology, Ramón y Cajal University Hospital, IRYCIS, Madrid, Spain.
  • Lanza VF; National Center for Biotechnology (CNB-CSIC), Madrid, Spain.
  • Coque TM; Network Research Center for Epidemiology and Public Health (CIBERESP), Madrid, Spain.
  • Llorens C; Valencian Research Institute for Artificial Intelligence (VRAIN), Universitat Politècnica de València, Valencia, Spain.
  • Baquero F; Department of Microbiology, Ramón y Cajal University Hospital, IRYCIS, Madrid, Spain.
Article in En | MEDLINE | ID: mdl-32457104
ABSTRACT
Bacterial plasmids harboring antibiotic resistance genes are critical in the spread of antibiotic resistance. It is known that plasmids differ in their kinetic values, i.e., conjugation rate, segregation rate by copy number incompatibility with related plasmids, and rate of stochastic loss during replication. They also differ in cost to the cell in terms of reducing fitness and in the frequency of compensatory mutations compensating plasmid cost. However, we do not know how variation in these values influences the success of a plasmid and its resistance genes in complex ecosystems, such as the microbiota. Genes are in plasmids, plasmids are in cells, and cells are in bacterial populations and microbiotas, which are inside hosts, and hosts are in human communities at the hospital or the community under various levels of cross-colonization and antibiotic exposure. Differences in plasmid kinetics might have consequences on the global spread of antibiotic resistance. New membrane computing methods help to predict these consequences. In our simulation, conjugation frequency of at least 10-3 influences the dominance of a strain with a resistance plasmid. Coexistence of different antibiotic resistances occurs if host strains can maintain two copies of similar plasmids. Plasmid loss rates of 10-4 or 10-5 or plasmid fitness costs of ≥0.06 favor plasmids located in the most abundant species. The beneficial effect of compensatory mutations for plasmid fitness cost is proportional to this cost at high mutation frequencies (10-3 to 10-5). The results of this computational model clearly show how changes in plasmid kinetics can modify the entire population ecology of antibiotic resistance in the hospital setting.
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Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Drug Resistance, Bacterial / Anti-Bacterial Agents Type of study: Prognostic_studies Limits: Humans Language: En Journal: Antimicrob Agents Chemother Year: 2020 Document type: Article Affiliation country: España

Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Drug Resistance, Bacterial / Anti-Bacterial Agents Type of study: Prognostic_studies Limits: Humans Language: En Journal: Antimicrob Agents Chemother Year: 2020 Document type: Article Affiliation country: España
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