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Climatic variations and Yersinia pestis host-vector abundance: a case study in Ankazobe district to understand plague
Fanohinjanaharinirina Rasoamalala1,2, Henry G Fell3, Lanto A Maminirina4
1Plague Unit, Institut Pasteur de Madagascar, Antananarivo 101, PO. Box 1274, Ambatofotsikely, Madagascar. f.rasoamalala@pasteur.mg.
Background:
Plague, a disease caused by the bacterium Yersinia pestis remains a major public health concern in Madagascar despite numerous multidisciplinary studies. The persistence of human plague infections is thought to be linked to fluctuations in mammalian host and flea populations, which are affected by climatic and environmental variations. This study explored local macro- and microclimatic variations along with mammal and flea population dynamics across different microhabitat types within plague endemic rural and forested habitats of Madagascar. Understanding these variables and their interdependent relationships may help us better understand the complexities of Y. pestis transmission in the Madagascan Highlands.
Methods:
Small mammals and their fleas were captured in different microhabitats within plague focus in the Ankazobe District of Madagascar. Simultaneously, climatic data including temperature and humidity, were collected to assess the potential relationship between flea population dynamics and climatic variations. Specialized equipment was used to monitor microclimate conditions across various microhabitat types and compare them with macroclimate. Monitoring was performed inside and outside rodent burrows located inside and outside houses and in adjacent forested areas.
Results:
A greater abundance of fleas was observed inside dwellings compared to other microhabitats, such as outside houses and forest, whereas small mammal species diversity was significantly higher in forest environments. We also revealed significant differences in microclimates across microhabitat types, with lower temperatures and higher humidity inside rodent burrows compared to outside burrows, outside houses and the forest. Inside houses, temperature variations were more stable although temperatures were higher and humidity lower inside rodent burrows compared to other microhabitats.
Conclusion:
This study highlights microclimate variation across different microhabitat types, which also differ from the macroclimate, and maps small mammal and flea abundance to these locations. These data suggest that it is important to further explore the relationship between microclimatic variations in the different microhabitats and the dynamics of flea and rodent populations as potential markers for plague persistence and transmission in these endemic foci.
Insights
Plague persistence in Madagascar is linked to microclimate variations. Flea abundance is higher indoors, while small mammal diversity is greater in forests, suggesting these factors influence disease transmission.
Area of Science:
- Environmental Science
- Epidemiology
- Ecology
Background:
- Plague, caused by *Yersinia pestis*, remains a public health concern in Madagascar.
- Disease persistence is potentially linked to host-flea population dynamics influenced by climate.
- Understanding environmental variables is crucial for managing plague transmission in endemic areas.
Purpose of the Study:
- To explore local macro- and microclimatic variations in plague-endemic regions of Madagascar.
- To analyze small mammal and flea population dynamics across different microhabitats.
- To investigate the interdependencies between environmental factors and *Y. pestis* transmission.
Main Methods:
- Small mammals and fleas were captured in various microhabitats in Madagascar's Ankazobe District.
- Macro- and microclimatic data (temperature, humidity) were collected using specialized equipment.
- Monitoring occurred inside/outside rodent burrows, houses, and adjacent forested areas.
Main Results:
- Higher flea abundance was found inside dwellings compared to forests or outside houses.
- Small mammal species diversity was significantly greater in forest environments.
- Microclimates varied significantly, with lower temperatures and higher humidity inside rodent burrows.
Conclusions:
- Microclimate variations across microhabitats differ from macroclimate and correlate with mammal/flea abundance.
- Rodent burrows present unique microclimatic conditions (cooler, more humid) compared to other sites.
- Further research into microclimate-driven population dynamics is essential for understanding plague persistence.
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