Complex non-falciparum transmission and widespread insecticide resistance sustain hyperendemic malaria in Penka-Michel, a focus of the Cameroon highlands

A 12-month longitudinal entomological study (September 2023-August 2024) in the Western Highlands of Cameroon (Penka-Michel) investigated malaria transmission dynamics and insecticide resistance markers, including target-site resistance (L1014F, N1575Y, G119S- Ace1 ) and metabolic resistance (E205D -CYP6P3 , L119F -GSTe2 , CYP6P9a/b ) mutations. Malaria transmission was driven by the coexistence of three species: Anopheles funestus (43.7%), Anopheles gambiae (42.9%), and Anopheles ziemanni (13.5%). The study site was hyperendemic with an annual Entomological Inoculation Rate (EIR) of 839.5 infective-bites/human/year. Plasmodium falciparum predominated at 51.9% (68/131), though a significant non- falciparum burden was observed ( P. malariae : 14.5%, 19/131; P. ovale : 15.3%, 20/131), including mixed infections (18.3%, 24/131). Anopheles funestus was the principal driver (Infection Rate, IR, of 7.8%) for P. falciparum and P. ovale curtisi, which peaked in the later rainy season (November). Anopheles gambiae (IR=5.4%) primarily vectored P. malariae , maintaining a sustained peak during the dry season (January). Widespread insecticide resistance was marked by high frequencies of target-site and metabolic resistance markers. Possible associations were observed between L119F-GSTe2 mutations with P. ovale curtisi transmission (IRR=1.15, p =0.03), and L1014F-kdr mutation with P. malariae (IRR=2.2, p =0.04). These dynamics underscore the intricate nature of a multifaceted, species-diverse system, where seasonal vector efficiency and insecticide resistance perpetuate the hyperendemicity of the frequently disregarded non- falciparum malaria species.

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Journal
Scientific Reports
Published
2026-09-09
DOI
https://doi.org/10.1038/s41598-026-69358-w
Primary Topic
Malaria Research and Control
Type
article
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article

Complex non-falciparum transmission and widespread insecticide resistance sustain hyperendemic malaria in Penka-Michel, a focus of the Cameroon highlands

Brigitte Tumamo Fotso, Ibrahima Ibrahima, Samuel White, Rhoel R. Dinglasan et al.
Scientific Reports
Malaria Research and Control
article

Complex non-falciparum transmission and widespread insecticide resistance sustain hyperendemic malaria in Penka-Michel, a focus of the Cameroon highlands

Brigitte Tumamo Fotso, Ibrahima Ibrahima, Samuel White, Rhoel R. Dinglasan, Isabelle Morlais, Aline Gaëlle Bouopda-Tuedom, Innocent Mbulli Ali, Belinda Claire Kiam, Jean Arthur Mbida Mbida, Lawrence Ayong, Luc Abate, Jonathan J. Juliano, V. Charlène Tina Nanssong, Jessica T. Lin, Sandrine Eveline Nsango
article en

Abstract

A 12-month longitudinal entomological study (September 2023-August 2024) in the Western Highlands of Cameroon (Penka-Michel) investigated malaria transmission dynamics and insecticide resistance markers, including target-site resistance (L1014F, N1575Y, G119S- Ace1 ) and metabolic resistance (E205D -CYP6P3 , L119F -GSTe2 , CYP6P9a/b ) mutations. Malaria transmission was driven by the coexistence of three species: Anopheles funestus (43.7%), Anopheles gambiae (42.9%), and Anopheles ziemanni (13.5%). The study site was hyperendemic with an annual Entomological Inoculation Rate (EIR) of 839.5 infective-bites/human/year. Plasmodium falciparum predominated at 51.9% (68/131), though a significant non- falciparum burden was observed ( P. malariae : 14.5%, 19/131; P. ovale : 15.3%, 20/131), including mixed infections (18.3%, 24/131). Anopheles funestus was the principal driver (Infection Rate, IR, of 7.8%) for P. falciparum and P. ovale curtisi, which peaked in the later rainy season (November). Anopheles gambiae (IR=5.4%) primarily vectored P. malariae , maintaining a sustained peak during the dry season (January). Widespread insecticide resistance was marked by high frequencies of target-site and metabolic resistance markers. Possible associations were observed between L119F-GSTe2 mutations with P. ovale curtisi transmission (IRR=1.15, p =0.03), and L1014F-kdr mutation with P. malariae (IRR=2.2, p =0.04). These dynamics underscore the intricate nature of a multifaceted, species-diverse system, where seasonal vector efficiency and insecticide resistance perpetuate the hyperendemicity of the frequently disregarded non- falciparum malaria species.

Scientific Reports
University of North Carolina at Chapel Hill (US), Centre National de la Recherche Scientifique (FR), University of Douala (CM), Université de Dschang (CM), Université de Montpellier (FR), University of Maroua (CM), University of Florida (US), Maladies Infectieuses et Vecteurs: Écologie, Génétique, Évolution et Contrôle (FR), Centre Pasteur du Cameroun (CM), Institut de Recherche pour le Développement (FR)
Life in Land
Openalex Percentile: Top 8%
Malaria Research and Control
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