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Genetic Differences in Host Infectivity Affect Disease Spread and Survival in Epidemics

Overview
Journal Sci Rep
Specialty Science
Date 2019 Mar 22
PMID 30894567
Citations 23
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Abstract

Survival during an epidemic is partly determined by host genetics. While quantitative genetic studies typically consider survival as an indicator for disease resistance (an individual's propensity to avoid becoming infected or diseased), mortality rates of populations undergoing an epidemic are also affected by endurance (the propensity of diseased individual to survive the infection) and infectivity (i.e. the propensity of an infected individual to transmit disease). Few studies have demonstrated genetic variation in disease endurance, and no study has demonstrated genetic variation in host infectivity, despite strong evidence for considerable phenotypic variation in this trait. Here we propose an experimental design and statistical models for estimating genetic diversity in all three host traits. Using an infection model in fish we provide, for the first time, direct evidence for genetic variation in host infectivity, in addition to variation in resistance and endurance. We also demonstrate how genetic differences in these three traits contribute to survival. Our results imply that animals can evolve different disease response types affecting epidemic survival rates, with important implications for understanding and controlling epidemics.

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References
1.
King K, Lively C . Does genetic diversity limit disease spread in natural host populations?. Heredity (Edinb). 2012; 109(4):199-203. PMC: 3464021. DOI: 10.1038/hdy.2012.33. View

2.
Wong G, Liu W, Liu Y, Zhou B, Bi Y, Gao G . MERS, SARS, and Ebola: The Role of Super-Spreaders in Infectious Disease. Cell Host Microbe. 2015; 18(4):398-401. PMC: 7128246. DOI: 10.1016/j.chom.2015.09.013. View

3.
Detilleux J . A mathematical model to study resistance and tolerance to infection at the animal and population levels: application to E. coli mastitis. Front Genet. 2012; 3:146. PMC: 3522067. DOI: 10.3389/fgene.2012.00146. View

4.
Raberg L, Sim D, Read A . Disentangling genetic variation for resistance and tolerance to infectious diseases in animals. Science. 2007; 318(5851):812-4. DOI: 10.1126/science.1148526. View

5.
Medzhitov R, Schneider D, Soares M . Disease tolerance as a defense strategy. Science. 2012; 335(6071):936-41. PMC: 3564547. DOI: 10.1126/science.1214935. View