Metapopulation heterogeneities in host mobility, productivity, and immunocompetency always increase virulence and

Masato Sato1,2, Ulf Dieckmann3,4,5, Akira Sasaki3,4,5

  • 1Department of Evolutionary Studies of Biosystems, The Graduate University for Advanced Studies, SOKENDAI, Hayama, Kanagawa 240-0193, Japan.

Insights

Population heterogeneity, driven by varying mobility, productivity, or immunity, consistently elevates pathogen virulence and infectiousness. This effect is proportional to the variance in local conditions and linked to pathogen reproductive values.

Area of Science:

  • Epidemiology
  • Evolutionary Biology
  • Mathematical Modeling

Background:

  • Pathogen evolution occurs within host populations that are rarely uniform.
  • Hosts often form metapopulations with interconnected local populations experiencing diverse conditions.
  • Understanding pathogen evolution in these complex settings is crucial for public health.

Purpose of the Study:

  • To develop a general theory for pathogen evolution in heterogeneous metapopulations.
  • To identify key factors influencing pathogen virulence and infectiousness in such environments.
  • To provide insights into the increasing risk of pathogen spread in a heterogeneous world.

Main Methods:

  • Developed a general theoretical framework for pathogen evolution.
  • Analyzed the impact of varying mobility, productivity, and immunocompetency across local populations.
  • Examined different epidemiological models (SI, SIS, SIR, SIRS) and transmission dynamics.

Main Results:

  • Heterogeneity in mobility, productivity, or immunocompetency consistently increases pathogen virulence and infectiousness.
  • The increase in virulence is approximately proportional to the variance of local conditions.
  • Virulence increase is explained by the covariance between local selection pressures and pathogen reproductive values.
  • Combined heterogeneities amplify virulence, especially with positive covariances.

Conclusions:

  • Metapopulation heterogeneity is a significant driver of increased pathogen virulence and infectiousness.
  • Findings are robust across various epidemiological models and transmission types.
  • Rising global heterogeneity, such as urbanization, may exacerbate risks of pathogen spread.

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