Chandelier
Senior Member (Voting Rights)
The ecology of Lyme disease: Long-term data, surprises, and a synthesis
Web | DOI | PMC | PDF | Proceedings of the National Academy of Sciences | Open Access
Ostfeld, Richard S.; LaDeau, Shannon L.; Oggenfuss, Kelly; Canham, Charles D.; Fargione, Michael; Winchcombe, Raymond J.; Keesing, Felicia
Significance
Long-term study of ticks, pathogens, hosts, and weather in an area with endemic Lyme disease reveals that risk of human exposure is not related to the abundance of white-tailed deer or to seasonal temperature extremes. Instead, risk correlates with the abundance of white-footed mice and with that of red oak acorns, a key resource for mice. Abundant mice attract larval ticks away from other hosts and promote tick survival from the larval to the dangerous nymphal stage. Despite the inherent complexities of this system, Lyme disease risk is predictable from the dynamics of ecological communities.Abstract
Risk of human exposure to Lyme disease and other tick-borne zoonoses is affected by interactions between ticks, pathogens, vertebrate hosts for ticks and pathogens, and abiotic conditions. Inherent complexities in these ecological systems present challenges to the development of a predictive understanding useful for reducing exposure risk. Here we evaluate a conceptual model of the Lyme disease system using long-term monitoring (>30 y) at sites within an endemic region of New York State, United States. Contrary to conventional wisdom, we found that the abundance of nymphal black-legged ticks—a key risk factor for humans—was not correlated with the abundance of white-tailed deer, the prior abundance of larval ticks, or seasonal temperature extremes. Instead, the abundance of nymphal ticks was correlated with prior abundance of white-footed mice, which in turn was driven by production of acorns by red oak trees. Infection prevalence with zoonotic pathogens at our relatively intact forest sites was not associated with the abundance of white-footed mice, a species known to transmit infection with high efficiency, but instead appeared to arise from the distribution of larval ticks across the entire community of larval hosts. High densities of mice strongly reduced the tick burdens on individual mice and chipmunks, suggesting intraguild competition for parasites. Lyme disease risk arises from the dynamics of the ecological community, rather than from the dynamics of any single population of hosts or from extreme seasonal weather. These dynamics are complex but predictable, such that understanding them can facilitate improvements in management and education aimed at protecting public health.Web | DOI | PMC | PDF | Proceedings of the National Academy of Sciences | Open Access