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Advances in genomics have led to an appreciation that introgression is common, but its evolutionary consequences are poorly understood. In recent species radiations the sharing of genetic variation across porous species boundaries can facilitate adaptation to new environments and generate novel phenotypes, which may contribute to further diversification. Most mosquito species that are of major importance as human malaria vectors have evolved within recent and rapid radiations of largely nonvector species. Here, we focus on one of the most medically important yet understudied anopheline radiations, the Afrotropical complex (AFC), to investigate the role of introgression in its diversification and the possible link between introgression and vector potential. The AFC comprises at least seven morphologically similar species, yet only is a highly efficient malaria vector with a pan-African distribution. Based on de novo genome assemblies and additional whole-genome resequencing, we use phylogenomic and population genomic analyses to establish species relationships. We show that extensive interspecific gene flow involving multiple species pairs has shaped the evolutionary history of the AFC since its diversification. The most recent introgression event involved a massive and asymmetrical movement of genes from a distantly related AFC lineage into , an event that predated and plausibly facilitated its subsequent dramatic geographic range expansion across most of tropical Africa. We propose that introgression may be a common mechanism facilitating adaptation to new environments and enhancing vectorial capacity in mosquitoes.
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http://dx.doi.org/10.1073/pnas.2018142117 | DOI Listing |
Vet World
July 2025
Department of Plant Protection, Faculty of Agriculture, Universitas Sriwijaya, 30662 Indralaya, Indonesia.
Background And Aim: Zoonotic malaria remains a significant public health concern in Southeast Asia. The potential role of cattle as reservoirs for spp. in Indonesia has not been fully elucidated, despite increasing recognition of animal reservoirs in malaria transmission dynamics.
View Article and Find Full Text PDFJ Trop Med
August 2025
Department of Biology, Debre Markos University, Debre Markos, Ethiopia.
, the primary malaria vector in Ethiopia, exhibits diverse feeding behaviors influenced by geography, climate, and control strategies. Understanding its blood-feeding preference is crucial for devising effective interventions. This study aimed to conduct a systematic review and meta-analysis of existing evidence on human blood index (HBI) in Ethiopia.
View Article and Find Full Text PDFInt J Epidemiol
August 2025
Facultat de Medicina i Ciències de la Salut, Universitat de Barcelona (UB), Barcelona, Spain.
Background: Coinciding with the SARS-CoV-2 pandemic, malaria cases and malaria-related deaths increased globally between 2020 and 2022. However, evidence linking the pandemic to increased malaria burden remains ambiguous. We assessed the extent to which an observed malaria resurgence in Lambaréné, Gabon, can be associated with pandemic-related disruptions in malaria control programmes.
View Article and Find Full Text PDFParasite
September 2025
Parasitology Department, São Paulo University, 1374 Av. Prof. Lineu Prestes, São Paulo, State of São Paulo 05508-000, Brazil.
Understanding why Diptera, such as mosquitoes and sand flies, feed on humans is crucial in defining them as vectors of diseases such as malaria, dengue fever, Zika virus, and leishmaniasis. Determining their attraction to humans (anthropophily) helps in assessing the risk of disease transmission, designing effective vector control strategies, and monitoring the effectiveness of existing control measures. An important question is whether they are specifically attracted to humans in preference to other mammals or whether there is something else at play.
View Article and Find Full Text PDFJ Vis Exp
August 2025
Physiology Unit, Laboratory of Malaria and Vector Research, National Institute of Allergy and Infectious Diseases.
Resistance arteries, which include small arteries and arterioles, play essential roles in regulating blood pressure and tissue perfusion. Dysfunction in these arteries can lead to various cardiovascular conditions such as hypertension, atherosclerosis, and heart failure, as well as neurovascular conditions. The examination of human resistance arteries is crucial for understanding cardiovascular disease mechanisms and developing targeted therapeutic strategies.
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