Kribs C
PLoS Negl Trop Dis. 2025; 19(2):e0012876.
PMID: 40014622
PMC: 11906165.
DOI: 10.1371/journal.pntd.0012876.
Brancaglion G, de Souza G, de Araujo L, Silva E, Silva L, de Lima Tana F
Braz J Microbiol. 2025; .
PMID: 39969815
DOI: 10.1007/s42770-025-01639-4.
Gallichotte E, Fitzmeyer E, Williams L, Spangler M, Bosco-Lauth A, Ebel G
J Virol. 2024; 98(10):e0104124.
PMID: 39324792
PMC: 11495067.
DOI: 10.1128/jvi.01041-24.
Peng J, Zhang M, Wang G, Zhang D, Zheng X, Li Y
PLoS Negl Trop Dis. 2024; 18(4):e0012053.
PMID: 38557981
PMC: 10984552.
DOI: 10.1371/journal.pntd.0012053.
Hanley K, Cecilia H, Azar S, Moehn B, Gass J, Oliveira da Silva N
Nat Commun. 2024; 15(1):2682.
PMID: 38538621
PMC: 10973334.
DOI: 10.1038/s41467-024-46810-x.
Temperature affects viral kinetics and vectorial capacity of Aedes aegypti mosquitoes co-infected with Mayaro and Dengue viruses.
Terradas G, Manzano-Alvarez J, Vanalli C, Werling K, Cattadori I, Rasgon J
Parasit Vectors. 2024; 17(1):73.
PMID: 38374048
PMC: 10877814.
DOI: 10.1186/s13071-023-06109-0.
Co-infection of dengue and Zika viruses mutually enhances viral replication in the mosquito Aedes aegypti.
Lin D, Weng S, Tsao P, Chu J, Shiao S
Parasit Vectors. 2023; 16(1):160.
PMID: 37165438
PMC: 10172068.
DOI: 10.1186/s13071-023-05778-1.
Dengue and zika seropositivity, burden, endemicity, and cocirculation antibodies in Nigeria.
Asaga Mac P, Tadele M, Airiohuodion P, Nisansala T, Zubair S, Aigohbahi J
Ann Med. 2023; 55(1):652-662.
PMID: 37074313
PMC: 9970210.
DOI: 10.1080/07853890.2023.2175903.
Vector Competence for Zika Virus Changes Depending on the 's Region of Origin in Manaus: A Study of an Endemic Brazilian Amazonian City.
da Costa Paz A, Chaves B, Godoy R, Coelho D, Vieira Junior A, Alencar R
Viruses. 2023; 15(3).
PMID: 36992479
PMC: 10058289.
DOI: 10.3390/v15030770.
Arboviruses in Mammals in the Neotropics: A Systematic Review to Strengthen Epidemiological Monitoring Strategies and Conservation Medicine.
Garcia-Romero C, Carrillo Bilbao G, Navarro J, Martin-Solano S, Saegerman C
Viruses. 2023; 15(2).
PMID: 36851630
PMC: 9962704.
DOI: 10.3390/v15020417.
Prevalence of arboviruses and other infectious causes of skin rash in patients treated at a tertiary health unit in the Brazilian Amazon.
Maciel L, Vieira da Rocha Neto C, Martins Y, de Azevedo Furtado F, Cunha Teixeira P, Oliveira Dias M
PLoS Negl Trop Dis. 2022; 16(10):e0010727.
PMID: 36228027
PMC: 9560595.
DOI: 10.1371/journal.pntd.0010727.
Spatio-temporal clusters and patterns of spread of dengue, chikungunya, and Zika in Colombia.
Freitas L, Carabali M, Yuan M, Jaramillo-Ramirez G, Garcia Balaguera C, Restrepo B
PLoS Negl Trop Dis. 2022; 16(8):e0010334.
PMID: 35998165
PMC: 9439233.
DOI: 10.1371/journal.pntd.0010334.
Widespread interspecific phylogenetic tree incongruence between mosquito-borne and insect-specific flaviviruses at hotspots originally identified in Zika virus.
Gaunt M, Pettersson J, Kuno G, Gaunt B, de Lamballerie X, Gould E
Virus Evol. 2022; 8(1):veac027.
PMID: 35591877
PMC: 9113262.
DOI: 10.1093/ve/veac027.
Aedes aegypti continuously exposed to Bacillus thuringiensis svar. israelensis does not exhibit changes in life traits but displays increased susceptibility for Zika virus.
da Silva Carvalho K, Guedes D, Crespo M, de Melo-Santos M, Silva-Filha M
Parasit Vectors. 2021; 14(1):379.
PMID: 34321098
PMC: 8317411.
DOI: 10.1186/s13071-021-04880-6.
Host Factors That Control Mosquito-Borne Viral Infections in Humans and Their Vector.
Trammell C, Goodman A
Viruses. 2021; 13(5).
PMID: 33923307
PMC: 8145797.
DOI: 10.3390/v13050748.
Zika Virus Pathogenesis: A Battle for Immune Evasion.
Estevez-Herrera J, Perez-Yanes S, Cabrera-Rodriguez R, Marquez-Arce D, Trujillo-Gonzalez R, Machado J
Vaccines (Basel). 2021; 9(3).
PMID: 33810028
PMC: 8005041.
DOI: 10.3390/vaccines9030294.
Climatic and socio-economic factors supporting the co-circulation of dengue, Zika and chikungunya in three different ecosystems in Colombia.
Morgan J, Strode C, Salcedo-Sora J
PLoS Negl Trop Dis. 2021; 15(3):e0009259.
PMID: 33705409
PMC: 7987142.
DOI: 10.1371/journal.pntd.0009259.
Natural arbovirus infection rate and detectability of indoor female Aedes aegypti from Mérida, Yucatán, Mexico.
Kirstein O, Ayora-Talavera G, Koyoc-Cardena E, Chan Espinoza D, Che-Mendoza A, Cohuo-Rodriguez A
PLoS Negl Trop Dis. 2021; 15(1):e0008972.
PMID: 33395435
PMC: 7781390.
DOI: 10.1371/journal.pntd.0008972.
Assessment of Synthetic Membranes for Artificial Blood Feeding of Culicidae.
Dias L, Caldeira J, Bauzer L, Lima J
Insects. 2021; 12(1).
PMID: 33383618
PMC: 7824735.
DOI: 10.3390/insects12010015.
Superinfection Exclusion in Mosquitoes and Its Potential as an Arbovirus Control Strategy.
Laureti M, Paradkar P, Fazakerley J, Rodriguez-Andres J
Viruses. 2020; 12(11).
PMID: 33167513
PMC: 7694488.
DOI: 10.3390/v12111259.