Effects of Outer Membrane Protein TolC on the Transport of Escherichia coli within Saturated Quartz Sands
Autor: | Sonia L. Bardy, Lucia Feriancikova, Lixia Wang, Jin Li, Shangping Xu |
---|---|
Rok vydání: | 2013 |
Předmět: |
Mutant
medicine.disease_cause Article medicine Environmental Chemistry Groundwater Escherichia coli Escherichia coli K12 biology Strain (chemistry) Membrane transport protein Escherichia coli Proteins Osmolar Concentration Membrane Transport Proteins Biological Transport Quartz General Chemistry Interaction energy biochemical phenomena metabolism and nutrition Silicon Dioxide Biochemistry Ionic strength biology.protein bacteria Efflux Bacterial outer membrane Bacterial Outer Membrane Proteins |
Zdroj: | Environmental Science & Technology. 47:5720-5728 |
ISSN: | 1520-5851 0013-936X |
DOI: | 10.1021/es400292x |
Popis: | The outer membrane protein (OMP) TolC is the cell surface component of several drug efflux pumps that are responsible for bacterial resistance against a variety of antibiotics. In this research, we investigated the effects of OMP TolC on E. coli transport within saturated sands through column experiments using a wild-type E. coli K12 strain (with OMP TolC), as well as the corresponding transposon mutant (tolC::kan) and the markerless deletion mutant (ΔtolC). Our results showed OMP TolC could significantly enhance the transport of E. coli when the ionic strength was 20 mM NaCl or higher. The deposition rate coefficients for the wild-type E. coli strain (with OMP TolC) was usually >50% lower than those of the tolC-negative mutants. The measurements of contact angles using three probe liquids suggested that TolC altered the surface tension components of E. coli cells and lead to lower Hamaker constants for the cell-water-sand system. The interaction energy calculations using the extended Derjaguin-Landau-Verwey-Overbeek (XDLVO) theory suggested that the deposition of the E. coli cell primarily occurred at the secondary energy minimum. The depth of the secondary energy minimum increased with ionic strength, and was greater for the TolC-deletion strains under high ionic strength conditions. Overall, the transport behavior of three E. coli strains within saturated sands could be explained by the XDLVO calculations. Results from this research suggested that antibiotic resistant bacteria expressing OMP TolC could spread more widely within sandy aquifers. |
Databáze: | OpenAIRE |
Externí odkaz: |