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Biology subjects

Forward, J. C.

Publications and source records attributed to Forward, J. C..

2 recordsLinked to original sources

Vancomycin promotes key microbiota-pathogen interactions and removes protective bottlenecks to enteric infection

Antibiotic exposure disrupts enteric pathogen colonization resistance, yet how antibiotics reshape pathogen population dynamics, infection bottlenecks, and strain-level heterogeneity in the gut remains poorly understood. Here, we combine high-resolution pathogen barcoding, transcriptomic, and metabolomic analyses to quantify how short-term vancomycin perturbation alters infection ecology in vivo. We use Citrobacter rodentium as a model for human infection by pathogenic Escherichia coli-an antimicrobial resistance priority group-to demonstrate that just two days of vancomycin pre-treatment profoundly reshapes infection trajectories, driving rapid, global gut colonization, a dramatic increase in pathogen founding population size, and preservation of strain diversity across intestinal sites. Notably, vancomycin eliminated the hallmark heterogeneity of C. rodentium infection, resulting in fully reproducible colonization across hosts. Population-level analysis revealed that antibiotic treatment relaxes competitive constraints both with the resident microbiota and among clonal pathogen lineages, allowing early-established founders to persist and expand. Despite accelerated pathogen engraftment and tissue pathology, transcriptomic analysis revealed reduced virulence gene expression. Instead, antibiotic-induced metabolic restructuring of the gut created permissive conditions for pathogen expansion. Interactions with a vancomycin-altered microbiota, dominated by Akkermansia and Bacteroides, further promoted nutrient cross-feeding and influenced epithelial attachment. Together, we illustrate how short-term antibiotic exposure reshapes enteric infection by removing ecological bottlenecks that normally constrain strain diversity and infection outcomes. These findings have implications for antibiotic use, antimicrobial resistance transmission, and therapeutic strategies that rely on competition-driven dynamics, such as strain replacement.

microbiology↗

Rising temperatures favour parasite virulence and parallel molecular evolution following a host jump

Climate change is facilitating the poleward emergence of parasites, increasing the risk of jumping into new animal species, including humans. Whether more virulent or transmissible variants will spread during these climate-driven outbreaks is unclear. We experimentally evolved a wild parasitic bacterium, across the thermal range (20-30{degrees}C) and extremes (35{degrees}C) of Cape Verde - the site of field collection - in a novel, temperate animal host. At the parasites typical warm environmental temperature, we found that virulence escalated across evolutionary time. Parasites evolved at hot temperatures, towards the limit of host-parasite survival, displayed a cryptic virulence boost, deadlier once infecting animals at cooler temperatures. Patterns of molecular evolution were constrained to parallel changes in fewer loci at extreme temperatures. Our findings suggest that rising temperatures will leave predictable phenotypic and genomic signatures on evolving parasites as they emerge with climate change.

evolutionary biology↗