Synergistic action of different molecular mechanisms causes striking levels of insecticide resistance in the malaria vector <i>Anopheles gambiae</i>

M Mengling Chen (Department of Biology, University of Crete) L Latifa Remadi (Institute of Molecular Biology and Biotechnology, Foundation for Research and Technology-Hellas) D Dimitra Tsakireli (Institute of Molecular Biology and Biotechnology, Foundation for Research and Technology-Hellas) E Emmanouil Kokkas (Department of Biology, University of Crete) S Sofia Balaska (Institute of Molecular Biology and Biotechnology, Foundation for Research and Technology-Hellas) S Sibora Teta (Department of Biology, University of Crete) J Jocelyn M. F. Ooi (Vector Biology Department, Liverpool School of Tropical Medicine) J Janet Hemingway (Vector Biology Department, Liverpool School of Tropical Medicine) M Mark J. I. Paine (Vector Biology Department, Liverpool School of Tropical Medicine) G Gareth J. Lycett (Vector Biology Department, Liverpool School of Tropical Medicine) J John Vontas (Institute of Molecular Biology and Biotechnology, Foundation for Research and Technology-Hellas) L Linda Grigoraki (Institute of Molecular Biology and Biotechnology, Foundation for Research and Technology-Hellas)

Abstract

Intensifying insecticide resistance in the malaria vector Anopheles gambiae poses a serious threat to the progress achieved the last decades in reducing malaria deaths in Africa. The genetic basis of insecticide resistance is often complex, involving multiple genes and mutations. However, we still lack a clear understanding of how each mechanism contributes to overall resistance and how highly resistant phenotypes arise. In this study, we generated a suite of transgenic An. gambiae strains carrying either individual mechanisms or combinations that frequently co-occur in nature. We show that co-overexpression of different detoxification enzymes (CYP6P3, CYP6M2, CYP9K1, ABCH2, GSTE2, and COEAE6G), as well as the overexpression of detoxification enzymes in the presence of target site resistance mutations, can lead to substantially greater levels of resistance. Our findings suggest that increased resistance strength is a primary driver for selection of multimechanism resistance and are transformative for the scientific insight required to design robust molecular diagnostics for timely and reliable resistance detection in the field. We further show that P450 based resistance can constitute an Achilles heel for highly resistant mosquitoes, making them more vulnerable to proinsecticides; compounds that typically require P450 activation. Our results advance our understanding of the mechanistic basis of insecticide resistance and have important implications for the design and implementation of effective and evidence-based resistance management strategies.

Article Details

Volume / Issue Vol. 123, Issue 30
Published July 28, 2026
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (12)

M

Mengling Chen

Department of Biology, University of Crete

L

Latifa Remadi

Institute of Molecular Biology and Biotechnology, Foundation for Research and Technology-Hellas

D

Dimitra Tsakireli

Institute of Molecular Biology and Biotechnology, Foundation for Research and Technology-Hellas

E

Emmanouil Kokkas

Department of Biology, University of Crete

S

Sofia Balaska

Institute of Molecular Biology and Biotechnology, Foundation for Research and Technology-Hellas

S

Sibora Teta

Department of Biology, University of Crete

J

Jocelyn M. F. Ooi

Vector Biology Department, Liverpool School of Tropical Medicine

J

Janet Hemingway

Vector Biology Department, Liverpool School of Tropical Medicine

M

Mark J. I. Paine

Vector Biology Department, Liverpool School of Tropical Medicine

G

Gareth J. Lycett

Vector Biology Department, Liverpool School of Tropical Medicine

J

John Vontas

Institute of Molecular Biology and Biotechnology, Foundation for Research and Technology-Hellas

L

Linda Grigoraki

Institute of Molecular Biology and Biotechnology, Foundation for Research and Technology-Hellas