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Castaneda-Barba, S.

Publications and source records attributed to Castaneda-Barba, S..

2 recordsLinked to original sources

Using Hi-C and target capture to monitor plasmid transfer in the barley rhizosphere

Emergence of multi-drug resistant (MDR) pathogens is facilitated by the mobilization of resistance genes from bacteria in animal and environmental habitats, a process often mediated by plasmids. While fertilization of agricultural soils with manure is hypothesized to serve as a pathway for transferring antimicrobial resistance plasmids to soil and crop bacteria, evidence is limited. In this study, we aimed to determine whether MDR-plasmids from manure transfer in soil, leading to the formation of long-term agricultural resistance reservoirs. To this end, we introduced a known MDR plasmid to agricultural soil where barley was subsequently grown and monitored spread of the plasmid over the course of a growing season (up to 190 days). Our experimental design mimicked conventional agricultural practices at a microcosm scale. A digital droplet PCR approach indicated plasmid transfer in the rhizosphere, which was confirmed by a targeted Hi-C method (termed Hi-C+). This demonstrated transfer of the plasmid to soil bacteria 10 days after barley planting but was not observed afterwards. The new plasmid hosts could not be identified, as plasmid-associated host Hi-C reads were absent from existing databases. This implies these hosts were rare and likely unculturable members of the soil microbiome. Our findings demonstrate that plasmid transfer from manure to soil can occur under conditions reflecting those found in agricultural settings. Furthermore, rare and uncharacterized members of the soil microbiomes may participate in acquiring MDR plasmids from manure bacteria, raising important questions about their role in spreading resistance plasmids.

microbiology↗

Detection of rare plasmid hosts using a targeted Hi-C approach

Despite the significant role plasmids play in microbial evolution, there is limited knowledge of their ecology, evolution, and transfer in microbial communities. Therefore, we developed and implemented a novel approach to identify rare plasmid hosts by combining Hi-C, a proximity ligation method, with enrichment for plasmid-specific DNA. We hereafter refer to this Hi-C enrichment approach as Hi-C+. Our experimental design mimicked scenarios in which the transfer of an antimicrobial resistance plasmid from a donor to a recipient in soil was increasingly rare. We established that Hi-C can link a plasmid to its host in soil when the relative abundance of that plasmid-host pair is as low as 0.001%. The Hi-C+ method further improved the detection limit of Hi-C 100-fold and allowed identification of plasmid hosts at the genus level. Therefore, Hi-C+ will facilitate the exploration of the ecological and evolutionary pathways that affect the spread of plasmids in natural environments. TeaserIn this study we demonstrate that a target-enriched Hi-C approach can identify rare hosts of a given plasmid in soil.

molecular biology↗