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Detecting the Lyme Disease Spirochete, Borrelia Burgdorferi, in Ticks Using Nested PCR
Published on: February 4, 2018
Predicting spatio-temporal population patterns of Borrelia burgdorferi, the Lyme disease pathogen
Tam Tran1, Melissa A Prusinski2, Jennifer L White2
1Biology Department University of Pennsylvania Philadelphia PA USA.
Abstract:
The causative bacterium of Lyme disease, Borrelia burgdorferi, expanded from an undetected human pathogen into the etiologic agent of the most common vector-borne disease in the United States over the last several decades. Systematic field collections of the tick vector reveal increases in the geographic range and prevalence of B. burgdorferi-infected ticks that coincided with increases in human Lyme disease incidence across New York State.We investigate the impact of environmental features on the population dynamics of B. burgdorferi. Analytical models developed using field collections of nearly 19,000 nymphal Ixodes scapularis and spatially and temporally explicit environmental features accurately explained the variation in the nymphal infection prevalence of B. burgdorferi across space and time.Importantly, the model identified environmental features reflecting landscape ecology, vertebrate hosts, climatic metrics, climate anomalies and surveillance efforts that can be used to predict the biogeographical patterns of B. burgdorferi-infected ticks into future years and in previously unsampled areas.Forecasting the distribution and prevalence of a pathogen at fine geographic scales offers a powerful strategy to mitigate a serious public health threat. Synthesis and applications. A decade of environmental and tick data was collected to create a model that accurately predicts the infection prevalence of Borrelia burgdorferi over space and time. This predictive model can be extrapolated to create a high-resolution risk map of the Lyme disease pathogen for future years that offers an inexpensive approach to improve both ecological management and public health strategies to mitigate disease risk.
Insights
Lyme disease bacterium Borrelia burgdorferi has expanded its range, increasing tick infections. Environmental factors predict future pathogen spread, aiding public health strategies.
Area of Science:
- Ecology
- Epidemiology
- Environmental Science
Background:
- Borrelia burgdorferi, the bacterium causing Lyme disease, has emerged as a significant public health concern in the United States.
- Increases in geographic range and prevalence of B. burgdorferi-infected ticks correlate with rising human Lyme disease incidence, particularly in New York State.
Purpose of the Study:
- To investigate the influence of environmental features on the population dynamics of Borrelia burgdorferi.
- To develop a predictive model for the biogeographical patterns of B. burgdorferi-infected ticks.
Main Methods:
- Utilized field collections of approximately 19,000 nymphal Ixodes scapularis ticks.
- Developed analytical models incorporating spatially and temporally explicit environmental features.
Main Results:
- The developed models accurately explained variations in nymphal infection prevalence of B. burgdorferi across space and time.
- Identified key environmental factors including landscape ecology, host availability, climate metrics, and surveillance efforts that predict pathogen distribution.
Conclusions:
- Environmental factors significantly impact Borrelia burgdorferi population dynamics and distribution.
- A predictive model integrating environmental data can forecast the spread of Lyme disease pathogen, enabling targeted public health interventions.
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