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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.
Abstract:
There are many challenges to coupling the macroscale to the microscale in temporal or spatial contexts. In order to examine effects of an individual movement and spatial control measures on a disease outbreak, we developed a multiscale model and extended the semi-stochastic simulation method by linking individual movements to pathogen's diffusion, linking the slow dynamics for disease transmission at the population level to the fast dynamics for pathogen shedding/excretion at the individual level. Numerical simulations indicate that during a disease outbreak individuals with the same infection status show the property of clustering and, in particular, individuals' rapid movements lead to an increase in the average reproduction number [Formula: see text], the final size and the peak value of the outbreak. It is interesting that a high level of aggregation the individuals' movement results in low new infections and a small final size of the infected population. Further, we obtained that either high diffusion rate of the pathogen or frequent environmental clearance lead to a decline in the total number of infected individuals, indicating the need for control measures such as improving air circulation or environmental hygiene. We found that the level of spatial heterogeneity when implementing control greatly affects the control efficacy, and in particular, an uniform isolation strategy leads to low a final size and small peak, compared with local measures, indicating that a large-scale isolation strategy with frequent clearance of the environment is beneficial for disease control.
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.
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