Dynamics of an SEIDW epidemic model for primary amebic meningoencephalitis threshold analysis, bifurcation, and

Ramraj G1, Poornima T1

  • 1Department of Mathematics, Vellore Institute of Technology, Vellore, India.

Insights

Primary amebic meningoencephalitis (PAM) is an environmental infection. Our model shows environmental factors, not human behavior, determine PAM persistence, highlighting the need for integrated environmental management for prevention.

Area of Science:

  • Epidemiology
  • Mathematical Biology
  • Environmental Health

Background:

  • Primary amebic meningoencephalitis (PAM) is a rare, fatal infection caused by *Naegleria fowleri*.
  • Unlike communicable diseases, PAM transmission is exclusively environmental, with no human-to-human spread.
  • Existing models are insufficient for analyzing environment-to-human transmission dynamics.

Purpose of the Study:

  • To develop and analyze a novel SEIDW epidemic model for *Naegleria fowleri*.
  • To identify key drivers of PAM transmission and persistence.
  • To evaluate the effectiveness of control strategies for PAM prevention.

Main Methods:

  • Developed a Susceptible-Exposed-Infected-Dead-Water (SEIDW) epidemic model.
  • Derived the environmental reproduction number (Re) using Jacobian eigenvalue analysis.
  • Conducted bifurcation and sensitivity analyses, including PRCC and Latin Hypercube Sampling.
  • Applied Pontryagin's maximum principle to determine optimal control strategies.

Main Results:

  • The environmental reproduction number (Re) dictates PAM persistence, with Re > 1 indicating endemicity.
  • PAM persistence is driven solely by environmental parameters, not human parameters.
  • Integrated environmental management strategies are more effective than clinical interventions alone.
  • The model demonstrated robustness under parameter variability.

Conclusions:

  • Environmental factors are critical for *Naegleria fowleri* persistence and PAM outbreaks.
  • Public health strategies should prioritize environmental interventions for effective PAM prevention.
  • The developed mathematical framework supports evidence-based decision-making for PAM control.

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