4.8 Article

Spatial variation in deposition rate coefficients of an adhesion-deficient bacterial strain in quartz sand

Journal

ENVIRONMENTAL SCIENCE & TECHNOLOGY
Volume 39, Issue 10, Pages 3679-3687

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/es048850s

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The transport of bacterial strain DA001 was examined in packed quartz sand under a variety of environmentally relevant ionic strength and flow conditions. Under all conditions, the retained bacterial concentrations decreased with distance from the column inlet at a rate that was faster than log-linear, indicating that the deposition rate coefficient decreased with increasing transport distance. The hyperexponential retained profile contrasted against the nonmonotonic retained profiles that had been previously observed for this same bacterial strain in glass bead porous media, demonstrating that the form of deviation from log-linear behavior is highly sensitive to system conditions. The deposition rate constants in quartz sand were orders of magnitude below those expected from filtration theory, even in the absence of electrostatic energy barriers. The degree of hyperexponential deviation of the retained profiles from log-linear behavior did not decrease with increasing ionic strength in quartz sand. These observations demonstrate that the observed low adhesion and deviation from log-linear behavior was not driven by electrostatic repulsion. Measurements of the interaction forces between DA001 cells and the silicon nitride tip of an atomic force microscope (AFM) showed that the bacterium possesses surface polymers with an average equilibrium length of 59.8 nm. AFM adhesion force measurements revealed low adhesion affinities between silicon nitride and DA001 polymers with similar to 95 % of adhesion forces having magnitudes <0.8 nN. Steric repulsion due to surface polymers was apparently responsible for the low adhesion to silicon nitride, indicating that steric interactions from extracellular polymers controlled DA001 adhesion deficiency and deviation from log-linear behavior on quartz sand.

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