2024
Contribution of climate change to the spatial expansion of West Nile virus in Europe
Erazo D, Grant L, Ghisbain G, Marini G, Colón-González F, Wint W, Rizzoli A, Van Bortel W, Vogels C, Grubaugh N, Mengel M, Frieler K, Thiery W, Dellicour S. Contribution of climate change to the spatial expansion of West Nile virus in Europe. Nature Communications 2024, 15: 1196. PMID: 38331945, PMCID: PMC10853512, DOI: 10.1038/s41467-024-45290-3.Peer-Reviewed Original ResearchConceptsWest Nile virusEcological niche modelsExpansion of West Nile virusClimate changeWNV circulationNiche modelsNile virusMosquito-borne pathogensEffects of climate changeHuman population changeSpatial expansionContributions of climate changeWest Nile virus circulationEnvironmental changesPublic health threatHuman populationLand-useHuman influencePotential driversRisk of exposureLong-term trendsPopulation densityPopulation changeHealth threatClimate
2020
Comment on “A global-scale ecological niche model to predict SARS-CoV-2 coronavirus infection rate”, author Coro
Contina A, Yanco S, Pierce A, DePrenger-Levin M, Wunder M, Neophytou A, Lostroh C, Telford R, Benito B, Chipperfield J, O'Hara R, Carlson C. Comment on “A global-scale ecological niche model to predict SARS-CoV-2 coronavirus infection rate”, author Coro. Ecological Modelling 2020, 436: 109288. PMID: 32982015, PMCID: PMC7505574, DOI: 10.1016/j.ecolmodel.2020.109288.Peer-Reviewed Original ResearchParacrine orchestration of intestinal tumorigenesis by a mesenchymal niche
Roulis M, Kaklamanos A, Schernthanner M, Bielecki P, Zhao J, Kaffe E, Frommelt LS, Qu R, Knapp MS, Henriques A, Chalkidi N, Koliaraki V, Jiao J, Brewer JR, Bacher M, Blackburn HN, Zhao X, Breyer RM, Aidinis V, Jain D, Su B, Herschman HR, Kluger Y, Kollias G, Flavell RA. Paracrine orchestration of intestinal tumorigenesis by a mesenchymal niche. Nature 2020, 580: 524-529. PMID: 32322056, PMCID: PMC7490650, DOI: 10.1038/s41586-020-2166-3.Peer-Reviewed Original ResearchMeSH KeywordsAdaptor Proteins, Signal TransducingAnimalsAntigens, LyArachidonic AcidCarcinogenesisCell Cycle ProteinsCell ProliferationColorectal NeoplasmsCyclooxygenase 2DinoprostoneFemaleFibroblastsHumansIntestinal MucosaIntestinesMaleMembrane ProteinsMesodermMiceNeoplastic Stem CellsOrganoidsParacrine CommunicationReceptors, Prostaglandin E, EP4 SubtypeSingle-Cell AnalysisStem Cell NicheYAP-Signaling ProteinsConceptsSingle-cell RNA-sequencing analysisTumor-initiating stem cellsRNA sequence analysisMesenchymal nicheStem cellsTumor initiationSca-1Hippo pathway effector YAPStem cell functionCell expansionPathway effector YAPMutant stem cellsEpithelial-specific ablationIntestinal stem cellsEarly tumor initiationProstaglandin E2Regenerative reprogrammingNormal epithelial stem cellsParacrine controlTumorigenic programsNiche modelsNuclear localizationTranscriptional activityYAP dephosphorylationEpithelial stem cells
2018
Consensus and conflict among ecological forecasts of Zika virus outbreaks in the United States
Carlson C, Dougherty E, Boots M, Getz W, Ryan S. Consensus and conflict among ecological forecasts of Zika virus outbreaks in the United States. Scientific Reports 2018, 8: 4921. PMID: 29563545, PMCID: PMC5862882, DOI: 10.1038/s41598-018-22989-0.Peer-Reviewed Original Research
2016
An Ecological Assessment of the Pandemic Threat of Zika Virus
Carlson C, Dougherty E, Getz W. An Ecological Assessment of the Pandemic Threat of Zika Virus. PLOS Neglected Tropical Diseases 2016, 10: e0004968. PMID: 27564232, PMCID: PMC5001720, DOI: 10.1371/journal.pntd.0004968.Peer-Reviewed Original ResearchConceptsEcological niche modelsSignificant evolutionary changeEcological nichesNiche modelsGenetic shiftNative rangeSeasonality of precipitationEvolutionary changesDiurnal temperature fluctuationsEcological assessmentOccurrence datasetNorthward expansionDistribution of dengue feverHuman healthPotential establishmentClimate changeSevere threatVector speciesZika virusOutbreak of Zika virusPathogensClimatic eventsOutbreak of casesNicheNorth America
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