2024
Publisher Correction: Tissue spaces are reservoirs of antigenic diversity for Trypanosoma brucei
Beaver A, Keneskhanova Z, Cosentino R, Weiss B, Awuoche E, Smallenberger G, Buenconsejo G, Crilly N, Smith J, Hakim J, Zhang B, Bobb B, Rijo-Ferreira F, Figueiredo L, Aksoy S, Siegel T, Mugnier M. Publisher Correction: Tissue spaces are reservoirs of antigenic diversity for Trypanosoma brucei. Nature 2024, 636: e3-e3. PMID: 39550527, PMCID: PMC11634761, DOI: 10.1038/s41586-024-08389-7.Peer-Reviewed Original ResearchTissue spaces are reservoirs of antigenic diversity for Trypanosoma brucei
Beaver A, Keneskhanova Z, Cosentino R, Weiss B, Awuoche E, Smallenberger G, Buenconsejo G, Crilly N, Smith J, Hakim J, Zhang B, Bobb B, Rijo-Ferreira F, Figueiredo L, Aksoy S, Siegel T, Mugnier M. Tissue spaces are reservoirs of antigenic diversity for Trypanosoma brucei. Nature 2024, 636: 430-437. PMID: 39478231, PMCID: PMC11634766, DOI: 10.1038/s41586-024-08151-z.Peer-Reviewed Original ResearchVariant surface glycoproteinAntigenic diversityAntigenic variationHigh-throughput sequencing approachDense variant surface glycoproteinPopulations of T. bruceiDynamics of antigenic variationGenomic repertoirePathogen diversificationSequencing approachExtravascular spaceTrypanosoma bruceiVariation in vivoHost immune systemAntigenic variation in vivoSurface glycoproteinSlow immune responseDiversitySwitching expressionParasite populations
2022
Microbe Profile: Wigglesworthia glossinidia: the tsetse fly’s significant other
Weiss BL, Rio RVM, Aksoy S. Microbe Profile: Wigglesworthia glossinidia: the tsetse fly’s significant other. Microbiology 2022, 168: 001242. PMID: 36129743, PMCID: PMC10723186, DOI: 10.1099/mic.0.001242.Peer-Reviewed Original ResearchConceptsPhysiological homeostasisNutritional roleEssential nutritional roleUnique physiological adaptationsTsetse fliesFly microbiotaWigglesworthia glossinidiaObligate mutualistsHost fitnessAncient associationParasitic trypanosomesLarval periodPhysiological adaptationsFitness outcomesTsetse's abilityAntimicrobial responsesImmune systemAmidasesFliesMicrobiotaMutualistsWigglesworthiaEndosymbiontsGenomeB vitamins
2021
Infection with endosymbiotic Spiroplasma disrupts tsetse (Glossina fuscipes fuscipes) metabolic and reproductive homeostasis
Son JH, Weiss BL, Schneider DI, Dera KM, Gstöttenmayer F, Opiro R, Echodu R, Saarman NP, Attardo GM, Onyango M, Abdalla A, Aksoy S. Infection with endosymbiotic Spiroplasma disrupts tsetse (Glossina fuscipes fuscipes) metabolic and reproductive homeostasis. PLOS Pathogens 2021, 17: e1009539. PMID: 34529715, PMCID: PMC8478229, DOI: 10.1371/journal.ppat.1009539.Peer-Reviewed Original ResearchConceptsReproductive fitnessSpiroplasma infectionSex-biased gene expressionHigh-throughput RNA sequencingReproductive physiologyIntrauterine larval developmentMale reproductive fitnessPathogenic African trypanosomesEndosymbiotic bacteriaFly resistanceTsetse fecundityFemale spermathecaFemale fecundityRNA sequencingLarval developmentSpiroplasmaGene expressionAfrican trypanosomesReproductive tissuesReproductive homeostasisTsetse hostHuman diseasesPopulation sizeProtective phenotypeLab lines
2014
Tsetse paratransgenesis: a novel strategy for reducing the spread of African trypanosomiasis.
Weiss B, Aksoy S. Tsetse paratransgenesis: a novel strategy for reducing the spread of African trypanosomiasis. 2014, 250-262. DOI: 10.1079/9781780644516.0250.Peer-Reviewed Original Research
2007
Novel strategies targeting pathogen transmission reduction in insect vectors: Tsetse‐transmitted trypanosomiasis control
WEISS B, ATTARDO G, Roshan P, Jingwen W, AKSOY S. Novel strategies targeting pathogen transmission reduction in insect vectors: Tsetse‐transmitted trypanosomiasis control. Entomological Research 2007, 37: 231-237. DOI: 10.1111/j.1748-5967.2007.00119.x.Peer-Reviewed Original ResearchInsect vectorsEffective disease management strategiesNovel disease control strategiesDisease management strategiesInsect-pathogen interactionsDisease control strategiesPopulation reduction methodsAgricultural diseasesTransgenic technologyTrypanosomiasis controlImportant human diseasesInsect biologyManagement strategiesTsetse vectorVector populationsAfrican trypanosomesControl strategyHuman diseasesDisease controlInsectsRecent knowledgeVector control strategiesBiologyCropsSelective eliminationSymbiosis-Based Technological Advances to Improve Tsetse Glossina spp. SIT Application
Aksoy S, Weiss B. Symbiosis-Based Technological Advances to Improve Tsetse Glossina spp. SIT Application. 2007, 137-148. DOI: 10.1007/978-1-4020-6059-5_12.Peer-Reviewed Original ResearchSterile insect techniqueCytoplasmic incompatibilityField populationsWolbachia infectionGene productsTsetse fliesGerm-line transformationComplete genome sequencePresence of WolbachiaGene expression experimentsPest control toolForeign gene productsParasitic African trypanosomesGlossina sppMidgut symbiontsArea-wide basisFly developmentInsect speciesReproductive incompatibilitySIT applicationMale sterilityUninfected insectsGenome sequenceMating incompatibilityExpression experiments