Infectious disease and group size: more than just a numbers game

Charles L Nunn1, Ferenc Jordán2, Collin M McCabe3

  • 1Department of Evolutionary Anthropology, Duke University, Box 90383, Durham, NC 27708, USA Duke Global Health Institute, Duke University, 310 Trent Drive, Durham, NC 27710, USA charleslnunn@gmail.com.

Insights

Larger animal groups may not increase infectious disease risk because structural subdivisions can limit pathogen spread. This social bottleneck effect, where subgroups slow disease transmission, is key to understanding group living and health.

Area of Science:

  • Ecology
  • Evolutionary Biology
  • Epidemiology

Background:

  • Group living is often linked to increased infectious disease risk.
  • Empirical evidence supporting this link is inconsistent.
  • Social structure may mediate the relationship between group size and disease transmission.

Purpose of the Study:

  • To investigate the 'social bottleneck' hypothesis.
  • To examine if larger social groups exhibit greater structural subdivision.
  • To assess how social subdivisions impact infectious disease spread.

Main Methods:

  • Meta-analysis of social network structure in 43 species.
  • Analysis of network metrics: modularity, clustering, distance, centralization.
  • Theoretical modeling of disease spread in structured populations.

Main Results:

  • Larger group size positively correlated with network modularity and distance.
  • Subgrouping in larger groups reduced disease prevalence.
  • Subgrouping acted as a barrier to inter-group disease transmission.

Conclusions:

  • Social subdivisions can mitigate disease risk in larger groups.
  • The 'social bottleneck' effect weakens the direct link between group size and disease.
  • Further research needed on conditions promoting subdivision and improved disease metrics.

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