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bioRxiv · 10.1101/2021.11.16.468880

Spatial scale of transmission explains how acute infections circulate at low prevalence

Abstract

Fundamental questions remain about the regulation of acute pathogens in the absence of acquired immunity. This is especially true for canine rabies, a universally fatal zoonosis. From tracing rabies transmission in a population of 50,000 dogs in Tanzania between 2002-2016 we unravel the processes through which rabies is regulated and persists, fitting individual-based models to spatially-resolved data to investigate the mechanisms modulating transmission and the scale over which they operate. We find that while prevalence never exceeds 0.15%, we detect significant susceptible depletion at local scales commensurate with rabid dog movement, reducing transmission through clustering of rabies deaths and individuals incubating infection. Individual variation in rabid dog behaviour facilitates virus dispersal and co-circulation of lineages, enabling metapopulation persistence. These mechanisms likely operate in many pathogens circulating in spatially structured populations, with important implications for prediction and control, yet are unobservable unless the scale of host interactions is identified. One-Sentence SummaryIdentifying the spatial scale of contact reveals the mechanisms that limit the size of rabies outbreaks and that are critical for predicting transmission dynamics.

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Mancy, R., Rajeev, M., Lugelo, A., Brunker, K., Cleaveland, S., Ferguson, E. A., Hotopp, K., Kazwala, R., Magoto, M., Rysava, K., Haydon, D. T., Hampson, K.. 2021-11-19. Spatial scale of transmission explains how acute infections circulate at low prevalence. https://doi.org/10.1101/2021.11.16.468880

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