Coupling the Macroscale to the Microscale in a Spatiotemporal Context to Examine Effects of Spatial Diffusion on

Yanni Xiao1, Changcheng Xiang2, Robert A Cheke3

  • 1School of Mathematics and Stastics, Xi'an Jiaotong University, Xi'an, 710049, People's Republic of China.

Insights

Individual movement significantly impacts disease spread, increasing outbreak severity. Large-scale isolation and environmental hygiene are effective control strategies for infectious disease outbreaks.

Area of Science:

  • Epidemiology
  • Mathematical Modeling
  • Computational Biology

Background:

  • Coupling macroscale and microscale dynamics in disease outbreaks presents significant challenges.
  • Understanding individual movement's role in disease transmission is crucial for effective control.

Purpose of the Study:

  • To develop a multiscale model integrating individual movement and pathogen diffusion for disease outbreak simulation.
  • To investigate the impact of individual movement patterns and spatial control measures on disease dynamics.

Main Methods:

  • Developed a multiscale model extending semi-stochastic simulation methods.
  • Linked individual movements to pathogen diffusion and population-level transmission dynamics.
  • Simulated disease outbreaks to analyze the effects of movement and control strategies.

Main Results:

  • Individual movement, especially rapid movement, increases outbreak severity (reproduction number, final size, peak).
  • High aggregation of individuals can paradoxically reduce new infections and final outbreak size.
  • Pathogen diffusion rate and environmental clearance significantly reduce total infected individuals.

Conclusions:

  • Individual movement patterns are critical determinants of disease outbreak scale and intensity.
  • Effective disease control requires considering spatial heterogeneity and implementing strategies like large-scale isolation and frequent environmental clearance.
  • Improving air circulation and environmental hygiene are vital control measures.