English

Understanding uncertainty in temperature effects on vector-borne disease: A Bayesian approach

Quantitative Methods 2015-03-31 v2

Abstract

Extrinsic environmental factors influence the distribution and population dynamics of many organisms, including insects that are of concern for human health and agriculture. This is particularly true for vector-borne infectious diseases, like malaria, which is a major source of morbidity and mortality in humans. Understanding the mechanistic links between environment and population processes for these diseases is key to predicting the consequences of climate change on transmission and for developing effective interventions. An important measure of the intensity of disease transmission is the reproductive number R0R_0. However, understanding the mechanisms linking R0R_0 and temperature, an environmental factor driving disease risk, can be challenging because the data available for parameterization are often poor. To address this we show how a Bayesian approach can help identify critical uncertainties in components of R0R_0 and how this uncertainty is propagated into the estimate of R0R_0. Most notably, we find that different parameters dominate the uncertainty at different temperature regimes: bite rate from 15-25^\circ C; fecundity across all temperatures, but especially \sim25-32^\circ C; mortality from 20-30^\circ C; parasite development rate at \sim15-16^\circC and again at \sim33-35^\circC. Focusing empirical studies on these parameters and corresponding temperature ranges would be the most efficient way to improve estimates of R0R_0. While we focus on malaria, our methods apply to improving process-based models more generally, including epidemiological, physiological niche, and species distribution models.

Keywords

Cite

@article{arxiv.1310.5110,
  title  = {Understanding uncertainty in temperature effects on vector-borne disease: A Bayesian approach},
  author = {Leah R. Johnson and Tal Ben-Horin and Kevin D. Lafferty and Amy McNally and Erin Mordecai and Krijn P. Paaijmans and Samraat Pawar and Sadie J. Ryan},
  journal= {arXiv preprint arXiv:1310.5110},
  year   = {2015}
}

Comments

27 pages, including 1 table and 3 figures

R2 v1 2026-06-22T01:49:51.969Z