Reconciling the importance of minerals for propagation of antibiotic resistance genes in the environment
Hendiani, S.; Carbajo, C.; Hansen, M. F.; Agbaje, O.; Arellano, P.; Verma, T.; Mandic Mulec, I.; Burmoelle, M.; Sand, K. K.
Show abstract
The role of mineral surfaces in environmental processes, particularly their influence on DNA preservation, biofilm formation, and genetic transfer, has garnered attention due to its implications for the spread of antibiotic resistance genes (ARg). Despite the recognized significance of mineral-mediated DNA transfer, this mechanism remains poorly understood. Here we investigate the intricate interplay between soil minerals, bacteria, and DNA, to better understand the mechanisms driving ARg propagation in natural environments. We here study the uptake of mineral adsorbed DNA into the natural competent bacteria b. subtilis and further explore the influence of minerals on the viability and subsequent biofilm formation of both b. subtilis and A. baylyi. We further adsorbed DNA to mineral surfaces and allowed biofilm formation while monitoring the propagation of the ARg through out the biofilms. All the results are set in context of mineral surface properties such as surface charge, charge densities and surface area. Our results showed that the surface properties of the mineral surfaces are highly influencing the transformation efficiencies, viability and biofilm formation where in particular a high number of positive charged surface sites enhance biofilm formation and viability and inhibit transformation. The influence of the mineral surfaces diminishes as the biofilm develops and propagation of mineral adsorbed ARg are seen widely across the mineral surfaces. Our results have implication for mitigations strategies and reconcile mineral surfaces as hot spots for the propagation of antibiotic resistance-which indeed can be driven by transformation in the absence of bacteria carrying the traits. In principle all it takes is one successful transfer event from a mineral adsorbed ARg.
Matching journals
The top 6 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Impact of operational conditions on drinking water biofilm dynamics and coliform invasion potential 94%
- Impact of flushing procedures on drinking water biostability and invasion susceptibility in distribution systems 93%
- Persistence of SARS-CoV-2 and its surrogate, bacteriophage Phi6, on surfaces and in water 93%
Similar papers in this journal
- Effect of perchlorate on biocementation capable bacteria and Martian bricks 96%
- Microbial induced calcite precipitation can consolidate martian and lunar regolith simulants 95%
- Iron can be microbially extracted from Lunar and Martian regolith simulants and 3D printed into tough structural materials 95%
Similar papers in this journal
- An open-source computational tool for measuring bacterial biofilm morphology and growth kinetics upon one-sided exposure to an antimicrobial source. 95%
- Cross-species Comparison of Ultramafic Rock Bio-accelerated Weathering Performance 94%
- Selective antibiofilm properties and biocompatibility of nano-ZnO and nano-ZnO/Ag coated surfaces 94%
Similar papers in this journal
Similar papers in this journal
- Cobalt induces the set-up of new structural network in river biofilms: Impairment of autotrophic-heterotrophic coupling. 94%
- Towards a general model for predicting minimal metal concentrations co-selecting for antibiotic resistance plasmids 93%
- Specific quorum sensing molecules are possibly associated with responses to herbicide toxicity in a Pseudomonas strain 93%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.