Ecological niche modeling of potential West Nile virus vector mosquito species in Iowa

被引:46
作者
Larson, Scott R. [1 ]
DeGroote, John P. [1 ]
Bartholomay, Lyric C. [2 ]
Sugumaran, Ramanathan [1 ]
机构
[1] Univ No Iowa, Dept Geog, GeoInformat Training Res Educ & Extens Ctr, Cedar Falls, IA 50614 USA
[2] Iowa State Univ, Dept Entomol, Ames, IA USA
关键词
Aedes vexans; Culex pipiens; Culex tarsalis; GARP; Maxent; predictive maps; CULEX-TARSALIS DIPTERA; GEOGRAPHIC-DISTRIBUTION; GENETIC ALGORITHM; TRANSMISSION; DISTRIBUTIONS; CULICIDAE; RISK; TEMPERATURE; POPULATIONS; COMPETENCE;
D O I
10.1673/031.010.11001
中图分类号
Q96 [昆虫学];
学科分类号
摘要
Ecological niche modeling (ENM) algorithms, Maximum Entropy Species Distribution Modeling (Maxent) and Genetic Algorithm for Rule-set Prediction (GARP), were used to develop models in Iowa for three species of mosquito - two significant, extant West Nile virus (WNV) vectors (Culex pipiens L and Culex tarsalis Coquillett (Diptera: Culicidae)), and the nuisance mosquito, Aedes vexans Meigen (Diptera: Culicidae), a potential WNV bridge vector. Occurrence data for the three mosquito species from a state-wide arbovirus surveillance program were used in combination with climatic and landscape layers. Maxent successfully created more appropriate niche models with greater accuracy than GARP. The three Maxent species' models were combined and the average values were statistically compared to human WNV incidence at the census block group level. The results showed that the Maxent-modeled species' niches averaged together were a useful indicator of WNV human incidence in the state of Iowa. This simple method for creating probability distribution maps proved useful for understanding WNV dynamics and could be applied to the study of other vector-borne diseases.
引用
收藏
页数:17
相关论文
共 50 条
[21]   Determinants of the current and future distribution of the West Nile virus mosquito vector Culex pipiens in Spain [J].
Gangoso, L. ;
Aragones, D. ;
Martinez-de la Puente, J. ;
Lucientes, J. ;
Delacour-Estrella, S. ;
Estrada Pena, R. ;
Montalvo, T. ;
Bueno-Mari, R. ;
Bravo-Barriga, D. ;
Frontera, E. ;
Marques, E. ;
Ruiz-Arrondo, I ;
Munoz, A. ;
Oteo, J. A. ;
Miranda, M. A. ;
Barcelo, C. ;
Arias Vazquez, M. S. ;
Silva-Torres, M., I ;
Ferraguti, M. ;
Magallanes, S. ;
Muriel, J. ;
Marzal, A. ;
Aranda, C. ;
Ruiz, S. ;
Gonzalez, M. A. ;
Morchon, R. ;
Gomez-Barroso, D. ;
Figuerola, J. .
ENVIRONMENTAL RESEARCH, 2020, 188
[22]   PREDICTIVE MODELING FOR WEST NILE VIRUS AND MOSQUITO SURVEILLANCE IN LUBBOCK, TEXAS [J].
Peper, Steven T. ;
Dawson, Daniel E. ;
Dacko, Nina ;
Athanasiou, Kevan ;
Hunter, Jordan ;
Loko, Francis ;
Almas, Sadia ;
Sorensen, Grant E. ;
Urban, Kristyn N. ;
Wilson-Fallon, Alexander N. ;
Haydett, Katelyn M. ;
Greenberg, Hannah S. ;
Gibson, Anna G. ;
Presley, Steven M. .
JOURNAL OF THE AMERICAN MOSQUITO CONTROL ASSOCIATION, 2018, 34 (01) :18-24
[23]   Spatiotemporal modeling of ecological and sociological predictors of West Nile virus in Suffolk County, NY, mosquitoes [J].
Myer, Mark H. ;
Campbell, Scott R. ;
Johnston, John M. .
ECOSPHERE, 2017, 8 (06)
[24]   Predicting Human West Nile Virus Infections With Mosquito Surveillance Data [J].
Kilpatrick, A. Marm ;
Pape, W. John .
AMERICAN JOURNAL OF EPIDEMIOLOGY, 2013, 178 (05) :829-835
[25]   Identification of Environmental Covariates of West Nile Virus Vector Mosquito Population Abundance [J].
Trawinski, Patricia R. ;
Mackay, D. Scott .
VECTOR-BORNE AND ZOONOTIC DISEASES, 2010, 10 (05) :515-526
[26]   Vector competence of Aedes vexans (Diptera: Culicidae) for West Nile virus and potential as an enzootic vector [J].
Tiawsirisup, S. ;
Kinley, J. R. ;
Tucker, B. J. ;
Evans, R. B. ;
Rowley, W. A. ;
Platt, K. B. .
JOURNAL OF MEDICAL ENTOMOLOGY, 2008, 45 (03) :452-457
[27]   Potential Vectors of West Nile Virus in a Semiarid Environment: Dona Ana County, New Mexico [J].
Pitzer, Jimmy B. ;
Byford, Ronnie L. ;
Vuong, Holly B. ;
Steiner, Robert L. ;
Creamer, Rebecca J. ;
Caccamise, Donald F. .
JOURNAL OF MEDICAL ENTOMOLOGY, 2009, 46 (06) :1474-1482
[28]   Mosquito species associated with horses in Madagascar: a review of their vector status with regard to the epidemiology of West Nile fever [J].
Tantely, M. L. ;
Guis, H. ;
Randriananjantenaina, I. ;
Raharinirina, M. R. ;
Velonirina, H. J. ;
Cardinale, E. ;
Raveloarijaona, N. ;
Cetre-Sossah, C. ;
Garros, C. ;
Girod, R. .
MEDICAL AND VETERINARY ENTOMOLOGY, 2022, 36 (01) :1-13
[29]   Population dynamics of mosquito species in a West Nile virus endemic area in Madagascar [J].
Tantely, Luciano Michael ;
Cetre-Sossah, Catherine ;
Rakotondranaivo, Tsiriniaina ;
Cardinale, Eric ;
Boyer, Sebastien .
PARASITE, 2017, 24
[30]   Abundance of West Nile virus mosquito vectors in relation to climate and landscape variables [J].
Deichmeister, Jayne M. ;
Telang, Aparna .
JOURNAL OF VECTOR ECOLOGY, 2011, 36 (01) :75-85