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Plimpton, L.

Publications and source records attributed to Plimpton, L..

3 recordsLinked to original sources

Genomes of Betacoronavirus gravedinis from white-footed mice in New York City and a phylogenetically weighted model of its probable distribution in North America

Rodents are an important reservoir of zoonotic viruses and are ubiquitously present in densely populated urban areas. Betacoronaviruses in the Embecovirus lineage are well known to infect both humans and animals and have established rodent reservoirs. Here three Betacoronavirus gravedinis genomes were sequenced and characterized in white footed mice (Peromyscus leucopus, commonly white footed mice) collected in New York City, the second most populous city in North America. The genomes were distinct from mouse hepatitis virus (MHV), the prototype mouse betacoronavirus, and highly similar and identical in one case to previously characterized B. gravedinis sequences from white footed mice in Connecticut. Codon aware evolutionary models were used to identify specific sites under positive selection within the spike protein of B. gravedinis. A novel method was developed to predict the probable geographic distribution of the virus using publicly available data from the Global Biodiversity Information Facility to generate a weighted distribution map highlighting overlapping potential host ranges based on the evolutionary distance using a high resolution cytocrome B (CYTB) phylogeny of rodent species with potentially overlapping ranges. Our models predict three current hotspots of circulation in North America under different possible transmission regimes, and an additional fourth hotspot was predicted to arise in a warming future. This study highlights the continued need for biodiversity-informed surveillance of potential zoonotic pathogens in rodents.

microbiology↗

TICKHUNTER: A Targeted Hybridization-Capture Sequencing Approach for the Detection and Characterization of Tick-borne Pathogens and Blood Meals

As weather systems quickly change, vector communities and their pathogens evolve faster than assay panels can be redesigned. Additionally, PCRs narrow target range makes it structurally unable to catch divergent or reassorted agents. We developed a hybrid capture next-generation sequencing enrichment platform that provides comprehensive detection and characterization of tick-borne agents alongside ecological vertebrate host identification with low-pass sequencing. Analytical validation demonstrated performance comparable to qPCR with superior variant tolerance and multiplexing capacity. Field deployment in subtropical, metropolitan New York detected Anaplasma phagocytophilum strains (n=3) linked to human granulocytic anaplasmosis and a Babesia microti-like species in urban raccoon (Procyon lotor) populations. Tick vector screening revealed a putatively novel chimeric Flavi-like virus in invasive Haemaphysalis longicornis ticks combining segmented and unsegmented genomic features, with codon adaptation analysis indicating strong human compatibility. Serology revealed high Flavivirus seropositivity in NYC raccoons, suggesting an unrecognized urban reservoir role. Blood meal analysis simultaneously revealed complex ecological pathogen transmission networks spanning multiple vertebrate hosts. This integrated surveillance system enables comprehensive pathogen discovery, real-time evolutionary monitoring, and ecological risk assessment, transforming our capacity to detect emerging tick-borne threats in rapidly changing environments and prevent spillovers.

microbiology↗