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Metabolic reprogramming and gut microbiota ecology drive divergent Plasmodium vivax infection outcomes in Anopheles darlingi

dc.contributor.authorCarlos, Bianca Cechetto [UNESP]
dc.contributor.authorVoges, Kamila [UNESP]
dc.contributor.authorde Andrade Affonso, Pedro Henrique [UNESP]
dc.contributor.authorJaye, Amie
dc.contributor.authorTong Rios, Carlos
dc.contributor.authorTinoco-Nunes, Bruno [UNESP]
dc.contributor.authorAlonso, Diego Peres [UNESP]
dc.contributor.authorMacCallum, Robert M
dc.contributor.authorMoreno, Marta
dc.contributor.authorVlachou, Dina
dc.contributor.authorSouza-Neto, Jayme A [UNESP]
dc.contributor.authorChristophides, George K [UNESP]
dc.date.accessioned2026-04-10T14:53:16Z
dc.date.issued2025-08-13
dc.description.abstract<i>Anopheles darlingi</i> is the principal malaria vector in the Amazon basin, where <i>Plasmodium vivax</i> accounts for the majority of cases. Despite its epidemiological importance, the molecular and microbial determinants of <i>A. darlingi</i> susceptibility to <i>P. vivax</i> remain poorly understood. Here, we investigated vector-parasite-microbiota interactions using experimental infections with field-derived <i>P. vivax</i> gametocytaemic blood, which produced two distinct infection phenotypes: low and high oocyst burdens. Transcriptomic profiling of mosquito midguts across key parasite developmental timepoints revealed that low-infection mosquitoes mounted an early and sustained response characterised by activation of detoxification pathways, redox regulation, aromatic amino acid catabolism, and purine depletion, likely coordinated through neurophysiological cues, which collectively create a metabolically restrictive environment for parasite development. These physiological changes were accompanied by reduced bacterial diversity and enrichment of Enterobacteriales and Pseudomonadales, taxa previously linked to anti-<i>Plasmodium</i> activity. Conversely, high-infection mosquitoes exhibited limited metabolic reprogramming, expansion of Flavobacteriales, and transcriptional signatures consistent with permissive physiological states, potentially associated with reproductive trade-offs. Importantly, low infection outcomes consistently arose from bloodmeals with the lowest gametocyte densities, suggesting that host- and parasite-derived components of the bloodmeal act as early conditioning factors that prime the mosquito midgut for either resistance or susceptibility. These findings reframe <i>A. darlingi</i> vector competence to <i>P. vivax</i> not as a fixed immune trait but as a dynamic outcome of early redox, metabolic, and microbial interactions. They also highlight ecological and physiological targets for transmission-blocking strategies and reinforce the importance of studying vector-parasite interactions in regionally relevant systems.
dc.description.affiliationSão Paulo State University, School of Agricultural Sciences, Department of Bioprocesses and Biotechnology, Botucatu, Brazil.
dc.description.affiliationSão Paulo State University, School of Agricultural Sciences, Central Multiuser Laboratory, Botucatu, Brazil.
dc.description.affiliationSão Paulo State University, Institute of Biotechnology, Botucatu, Brazil.
dc.description.affiliationDepartment of Life Sciences, Imperial College London, London, United Kingdom.
dc.description.affiliationLaboratorio ICEMR-Amazonia, Laboratorios de Investigacion y Desarrollo, Facultad de Ciencias y Filosofia, Universidad Peruana Cayetano Heredia, Lima, Peru.
dc.description.affiliationCurrent address: Unidad de Entomología del Laboratorio de Referencia Regional, Gerencia Regional de Loreto (GERESA), Perú.
dc.description.affiliationDivision of Infectious Diseases, Department of Medicine, University of California San Diego, La Jolla, California, USA.
dc.description.affiliationCurrent address: Department of Infection Biology; London School of Hygiene & Tropical Medicine, Keppel Street, WC1E 7HT, London, United Kingdom.
dc.description.affiliationCurrent addresses: Department of Diagnostic Medicine/Pathobiology, College of Veterinary Medicine, Kansas State University, Manhattan, KS 66506, USA; Kansas Veterinary Diagnostic Laboratory, College of Veterinary Medicine, Kansas State University, Manhattan, KS 66506, USA.
dc.description.affiliationUnespSão Paulo State University, School of Agricultural Sciences, Department of Bioprocesses and Biotechnology, Botucatu, Brazil.
dc.description.affiliationUnespSão Paulo State University, School of Agricultural Sciences, Central Multiuser Laboratory, Botucatu, Brazil.
dc.description.affiliationUnespSão Paulo State University, Institute of Biotechnology, Botucatu, Brazil.
dc.description.versionPreprint
dc.identifierhttps://app.dimensions.ai/details/publication/pub.1191760510
dc.identifier.dimensionspub.1191760510
dc.identifier.doi10.1101/2025.08.13.670040
dc.identifier.issn2692-8205
dc.identifier.orcid0009-0007-0465-5281
dc.identifier.orcid0000-0002-7241-9957
dc.identifier.orcid0000-0003-4992-6253
dc.identifier.orcid0000-0001-5070-4493
dc.identifier.orcid0000-0002-9091-5612
dc.identifier.orcid0000-0002-8305-3014
dc.identifier.orcid0000-0001-9281-894X
dc.identifier.orcid0000-0002-3323-1687
dc.identifier.pmcidPMC12363966
dc.identifier.pmid40832308
dc.identifier.urihttps://hdl.handle.net/11449/321529
dc.publisherCold Spring Harbor Laboratory
dc.relation.ispartofbioRxiv; p. 2025.08.13.670040
dc.rights.accessRightsAcesso abertopt
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dc.rights.sourceRightsgreen
dc.sourceDimensions
dc.titleMetabolic reprogramming and gut microbiota ecology drive divergent Plasmodium vivax infection outcomes in Anopheles darlingi
dc.typeArtigopt
dspace.entity.typePublication
relation.isOrgUnitOfPublicationef1a6328-7152-4981-9835-5e79155d5511
relation.isOrgUnitOfPublication.latestForDiscoveryef1a6328-7152-4981-9835-5e79155d5511
unesp.campusUniversidade Estadual Paulista (UNESP), Faculdade de Ciências Agronômicas, Botucatupt
unesp.campusUniversidade Estadual Paulista (UNESP), Instituto de Biotecnologia, Botucatu

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