Evolution and emergence of novel human infections
Open Access
- 19 August 2009
- journal article
- research article
- Published by The Royal Society in Proceedings Of The Royal Society B-Biological Sciences
- Vol. 276 (1675) , 3937-3943
- https://doi.org/10.1098/rspb.2009.1059
Abstract
Some zoonotic pathogens cause sporadic infection in humans but rarely propagate further, while others have succeeded in overcoming the species barrier and becoming established in the human population. Adaptation, driven by selection pressure in human hosts, can play a significant role in allowing pathogens to cross this species barrier. Here we use a simple mathematical model to study potential epidemiological markers of adaptation. We ask: under what circumstances could ongoing adaptation be signalled by large clusters of human infection? If a pathogen has caused hundreds of cases but with little transmission, does this indicate that the species barrier cannot be crossed? Finally, how can case reports be monitored to detect an imminent emergence event? We distinguish evolutionary scenarios under which adaptation is likely to be signalled by large clusters of infection and under which emergence is likely to occur without any prior warning. Moreover, we show that a lack of transmission never rules out adaptability, regardless of how many zoonoses have occurred. Indeed, after the first 100 zoonotic cases, continuing sporadic zoonotic infections without onward, human-to-human transmission offer little extra information on pathogen adaptability. Finally, we present a simple method for monitoring outbreaks for signs of emergence and discuss public health implications.Keywords
This publication has 19 references indexed in Scilit:
- Origins and evolutionary genomics of the 2009 swine-origin H1N1 influenza A epidemicNature, 2009
- Genetic Detection and Characterization of Lujo Virus, a New Hemorrhagic Fever–Associated Arenavirus from Southern AfricaPLoS Pathogens, 2009
- Global trends in emerging infectious diseasesNature, 2008
- How do pathogen evolution and host heterogeneity interact in disease emergence?Proceedings Of The Royal Society B-Biological Sciences, 2006
- Chimpanzee Reservoirs of Pandemic and Nonpandemic HIV-1Science, 2006
- Bats Are Natural Reservoirs of SARS-Like CoronavirusesScience, 2005
- Avian Influenza A (H5N1) Infection in HumansNew England Journal of Medicine, 2005
- The challenge of emerging and re-emerging infectious diseasesNature, 2004
- The role of evolution in the emergence of infectious diseasesNature, 2003
- Exact stochastic simulation of coupled chemical reactionsThe Journal of Physical Chemistry, 1977