Unraveling the role of rat and flea population dynamics on the seasonality of plague epidemics in Madagascar

F Fanohinjanaharinirina Rasoamalala (Plague Unit, Institut Pasteur de Madagascar) B Beza Ramasindrazana (Plague Unit, Institut Pasteur de Madagascar) M Mamionah J. Parany (Plague Unit, Institut Pasteur de Madagascar) S Soloandry Rahajandraibe (Department for the Control of Transmissible Diseases, Central Laboratory for Plague, Ministry of Public Health) L Lovasoa Randriantseheno (Plague Unit, Institut Pasteur de Madagascar) S Soanandrasana Rahelinirina (Plague Unit, Institut Pasteur de Madagascar) O Olivier Gorgé (Institut de Recherche Biomédicale des Armées) E Eric Valade (Institut de Recherche Biomédicale des Armées) M Mireille Harimalala (Medical Entomology Unit, Institut Pasteur de Madagascar) M Minoarisoa Rajerison (Plague Unit, Institut Pasteur de Madagascar) S Simon Cauchemez A Antoine Brault (Mathematical Modelling of Infectious Diseases Unit, Global Health Department, Institut Pasteur, Université Paris Cité, INSERM U1332, CNRS UMR2000)

Abstract

Plague continues to pose a public health problem in multiple regions of the world, including Madagascar, where it is characterized by a pronounced seasonal pattern. The drivers of plague seasonality remain poorly understood. Using a deterministic compartmental model, calibrated to rat and flea capture data, serological data collected in active rural foci, and human plague surveillance data, we analyzed the effects of seasonal rat and flea population dynamics on plague transmission. The models that incorporated seasonal fluctuations in rat and flea populations provided better predictive performances than those that did not. We found that a simpler mass-action model also performed well. Driven by these seasonal changes, the effective reproduction number (R e ) between rats peaks at 1.45 [95% credible interval (CI): 1.41, 1.48] in October and falls to 0.6 (95% CI: 0.57, 0.63) in March. We estimated that 0.5% (95% CI: 0.2%, 0.9%) of rats are infected annually, indicating that plague is not the main driver of rat population changes. Using our model, we evaluated intervention strategies and found that targeting both rats and their fleas at the start of the epidemic season (July–September) was the most effective approach for reducing human plague cases. Such an approach contrasts with the reactive strategy currently employed in Madagascar. Our findings highlight the role of flea and rat populations in plague seasonality and identify strategies that could be deployed in Madagascar to better control plague epidemics.

Article Details

Volume / Issue Vol. 122, Issue 24
Published June 17, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (12)

F

Fanohinjanaharinirina Rasoamalala

Plague Unit, Institut Pasteur de Madagascar

B

Beza Ramasindrazana

Plague Unit, Institut Pasteur de Madagascar

M

Mamionah J. Parany

Plague Unit, Institut Pasteur de Madagascar

S

Soloandry Rahajandraibe

Department for the Control of Transmissible Diseases, Central Laboratory for Plague, Ministry of Public Health

L

Lovasoa Randriantseheno

Plague Unit, Institut Pasteur de Madagascar

S

Soanandrasana Rahelinirina

Plague Unit, Institut Pasteur de Madagascar

O

Olivier Gorgé

Institut de Recherche Biomédicale des Armées

E

Eric Valade

Institut de Recherche Biomédicale des Armées

M

Mireille Harimalala

Medical Entomology Unit, Institut Pasteur de Madagascar

M

Minoarisoa Rajerison

Plague Unit, Institut Pasteur de Madagascar

S

Simon Cauchemez

A

Antoine Brault

Mathematical Modelling of Infectious Diseases Unit, Global Health Department, Institut Pasteur, Université Paris Cité, INSERM U1332, CNRS UMR2000