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Predictive modelling of Ross River virus using climate data in the Darling Downs.

Julia Meadows1, Celia McMichael1, Patricia T Campbell2,3

  • 1School of Geography, Earth and Atmospheric Sciences, Faculty of Science, The University of Melbourne, 221 Bouverie St, Carlton, VIC 3053, Australia.

Epidemiology and Infection
|March 14, 2023
PubMed
Summary

Predicting Ross River virus (RRV) outbreaks in Australia is possible using climate data. A new model shows climate information can forecast RRV case numbers and disease outbreaks.

Keywords:
ArbovirusesRoss River virusclimatemosquito-borne diseasenegative binomial regression

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Area of Science:

  • Environmental Science
  • Epidemiology
  • Public Health

Background:

  • Ross River virus (RRV) is Australia's most prevalent mosquito-borne illness, causing significant health and economic burdens.
  • Current lack of effective treatments or vaccines for RRV disease necessitates improved predictive strategies.
  • The complex ecology of RRV involves diverse reservoirs, vectors, environments, and climates across Australia.

Purpose of the Study:

  • To develop and validate a predictive model for monthly Ross River virus case numbers and outbreaks.
  • To assess the utility of readily available climate data in forecasting RRV activity.
  • To inform public health interventions through timely outbreak predictions.

Main Methods:

  • Utilized negative binomial regression to build a predictive model for RRV.
  • Trained the model using human RRV notifications and climate data from July 2001 to June 2014 in Queensland, Australia.
  • Validated model predictions with data from July 2014 to June 2019.

Main Results:

  • The model demonstrated moderate effectiveness in predicting monthly RRV case numbers (Pearson's r = 0.427).
  • The model achieved 65% accuracy in predicting RRV outbreaks, with 59% sensitivity and 73% specificity.
  • Climate data proved valuable for forecasting RRV case numbers and outbreaks.

Conclusions:

  • Readily accessible climate data can be effectively used for timely prediction of Ross River virus outbreaks.
  • The developed model offers a practical tool for public health authorities to anticipate and manage RRV disease.
  • Further research can refine these models to enhance prediction accuracy and geographic scope.