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Arbovirus Infections As Screening Tools for the Identification of Viral Immunomodulators and Host Antiviral Factors
Published on: September 13, 2018
Myxoma virus and the Leporipoxviruses: an evolutionary paradigm
Peter J Kerr1, June Liu2, Isabella Cattadori3
1CSIRO Biosecurity Flagship, Black Mountain Laboratories, Clunies Ross Street, Acton, ACT 2601, Australia. peter.kerr@csiro.au.
Abstract:
Myxoma virus (MYXV) is the type species of the Leporipoxviruses, a genus of Chordopoxvirinae, double stranded DNA viruses, whose members infect leporids and squirrels, inducing cutaneous fibromas from which virus is mechanically transmitted by biting arthropods. However, in the European rabbit (Oryctolagus cuniculus), MYXV causes the lethal disease myxomatosis. The release of MYXV as a biological control for the wild European rabbit population in Australia, initiated one of the great experiments in evolution. The subsequent coevolution of MYXV and rabbits is a classic example of natural selection acting on virulence as a pathogen adapts to a novel host species. Slightly attenuated mutants of the progenitor virus were more readily transmitted by the mosquito vector because the infected rabbit survived longer, while highly attenuated viruses could be controlled by the rabbit immune response. As a consequence, moderately attenuated viruses came to dominate. This evolution of the virus was accompanied by selection for genetic resistance in the wild rabbit population, which may have created an ongoing co-evolutionary dynamic between resistance and virulence for efficient transmission. This natural experiment was repeated on a continental scale with the release of a separate strain of MYXV in France and its subsequent spread throughout Europe. The selection of attenuated strains of virus and resistant rabbits mirrored the experience in Australia in a very different environment, albeit with somewhat different rates. Genome sequencing of the progenitor virus and the early radiation, as well as those from the 1990s in Australia and Europe, has shown that although MYXV evolved at high rates there was no conserved route to attenuation or back to virulence. In contrast, it seems that these relatively large viral genomes have the flexibility for multiple pathways that converge on a similar phenotype.
Insights
Myxoma virus evolved alongside rabbits, showing how pathogens adapt. Moderately weakened viruses spread best, while rabbits developed resistance, creating a dynamic co-evolutionary cycle.
Area of Science:
- Virology
- Evolutionary Biology
- Ecology
Background:
- Myxoma virus (MYXV) causes lethal myxomatosis in European rabbits.
- MYXV's introduction to Australia for rabbit biocontrol created a unique evolutionary experiment.
- The virus-host interaction exemplifies natural selection on pathogen virulence.
Purpose of the Study:
- To investigate the co-evolutionary dynamics between Myxoma virus and European rabbits.
- To understand the evolution of MYXV virulence and rabbit resistance.
- To analyze viral evolution pathways and host immune response.
Main Methods:
- Observational studies of MYXV outbreaks in Australia and Europe.
- Analysis of viral genome sequencing from different time points and locations.
- Comparative studies of virus attenuation and host resistance selection.
Main Results:
- Moderately attenuated MYXV strains dominated due to optimal transmission by vectors.
- European rabbit populations evolved genetic resistance to myxomatosis.
- MYXV evolution showed flexibility with multiple pathways leading to similar phenotypes, despite high mutation rates.
Conclusions:
- The MYXV-rabbit system is a prime example of host-pathogen co-evolution.
- Pathogen virulence and host resistance are under strong selective pressures.
- Viral genomes can exhibit diverse evolutionary routes to achieve similar adaptive outcomes.
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