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Observing micro-evolutionary processes of viral populations at multiple scales
Authors:Richard J. Orton  Caroline F. Wright  Marco J. Morelli  Nicholas Juleff  Ga?l Thébaud  Nick J. Knowles  Bego?a Valdazo-González  David J. Paton  Donald P. King  Daniel T. Haydon
Affiliation:1.College of Medical, Veterinary and Life Sciences, Institute of Biodiversity, Animal Health and Comparative Medicine, University of Glasgow, Glasgow G12 8QQ, UK;2.Institute for Animal Health, Ash Road, Pirbright GU24 0NF, UK;3.Center for Genomic Science of IIT@SEMM, Istituto Italiano di Tecnologia at the IFOM-IEO Campus, Via Adamello 16, Milano 20139, Italy;4.INRA, UMR BGPI, Montpellier Cedex 5 34398, France
Abstract:Advances in sequencing technology coupled with new integrative approaches to data analysis provide a potentially transformative opportunity to use pathogen genome data to advance our understanding of transmission. However, to maximize the insights such genetic data can provide, we need to understand more about how the microevolution of pathogens is observed at different scales of biological organization. Here, we examine the evolutionary processes in foot-and-mouth disease virus observed at different scales, ranging from the tissue, animal, herd and region. At each scale, we observe analogous processes of population expansion, mutation and selection resulting in the accumulation of mutations over increasing time scales. While the current data are limited, rates of nucleotide substitution appear to be faster over individual-to-individual transmission events compared with those observed at a within-individual scale suggesting that viral population bottlenecks between individuals facilitate the fixation of polymorphisms. Longer-term rates of nucleotide substitution were found to be equivalent in individual-to-individual transmission compared with herd-to-herd transmission indicating that viral diversification at the herd level is not retained at a regional scale.
Keywords:virus   evolution   scales   foot-and-mouth disease   transmission   bottlenecks
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