Birth-death skyline plot reveals temporal changes of epidemic spread in HIV and hepatitis C virus (HCV).
other · Level V
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- Record sourced from PubMed, PMID 23248286.
- Also identified by DOI 10.1073/pnas.1207965110 and PMC identifier 3538216.
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Abstract
Phylogenetic trees can be used to infer the processes that generated them. Here, we introduce a model, the bayesian birth-death skyline plot, which explicitly estimates the rate of transmission, recovery, and sampling and thus allows inference of the effective reproductive number directly from genetic data. Our method allows these parameters to vary through time in a piecewise fashion and is implemented within the BEAST2 software framework. The method is a powerful alternative to the existing coalescent skyline plot, providing insight into the differing roles of incidence and prevalence in an epidemic. We apply this method to data from the United Kingdom HIV-1 epidemic and Egyptian hepatitis C virus (HCV) epidemic. The analysis reveals temporal changes of the effective reproductive number that highlight the effect of past public health interventions.
Medical subject headings
- HIV Infections
- HIV-1
- Hepacivirus
- Hepatitis C
- Models, Genetic
- Phylogeny
- Software