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256 results for “Aedes aegypti”
Figure 1 in Geometric morphometrics of Aedes aegypti populations and study of transmission of arboviral diseases in Barreiras, Brazil
Figure 1 Sampling strategy in the urban area of Barreiras, Bahia, Brazil. The city is crossed by the Federal BR-242 Highway and by the Rio Grande River. Collection areas A, B and C were defined according to anthropic (highway) and natural (river) barriers.
Figure 5 in Geometric morphometrics of Aedes aegypti populations and study of transmission of arboviral diseases in Barreiras, Brazil
Figure 5 Morphological space of 1st and 2nd canonical variates derived from wing shape comparison (discriminant analysis) among A, B and C areas. Contribution of each Canonical Variation is indicated between brackets. Red, blue and green dots represent populations of A, B and C areas, respectively.
Fig. 2 in Oviposition of Aedes aegypti Linnaeus, 1762 and Aedes albopictus Skuse, 1894 (Diptera: Culicidae) under laboratory and field conditions using ovitraps associated to different control agents, Manaus, Amazonas, Brazil
Fig. 2. Total Aedes aegypti and Aedes albopictus adults obtained through egg collection in ovitraps containing grass infusion (control) and associated with different control agents. Legend: *(gI + Bti) – grass infusion + Bacillus thuringiensis israelensis; *(gI + Ss) – grass infusion + Saccharopolyspora spinosa; *(dW + Th) – distilled water + Toxorhynchites haemorrhoidalis; *(gI + P) – grass infusion + Pyriproxyfen;* (gI) – grass infusion (control).
Fig. 1 in Oviposition of Aedes aegypti Linnaeus, 1762 and Aedes albopictus Skuse, 1894 (Diptera: Culicidae) under laboratory and field conditions using ovitraps associated to different control agents, Manaus, Amazonas, Brazil
Fig. 1. Ovitraps Positivity Index (OPI) and Egg Density Index (EDI) with association of grass infusion with different control agents using ovitraps in the period ranging from June to July 2015, Manaus – Amazonas – Brazil. Legend: *(gI + Bti) – grass infusion + Bacillus thuringiensis israelensis; * (gI + Ss) – grass infusion + Saccharopolyspora spinosa; * (dW + Th) – distilled water + Toxorhynchites haemorrhoidalis; *(gI + P) – grass infusion + Pyriproxyfen; * (gI) – grass infusion (control).
Figure 1 in Genetic diversity and Kdr mutations of natural Aedes (Stegomyia) aegypti (Diptera: Culicidae) populations of Brazil
Figure 1 Distribution of the kdr alleles in Aedes aegypti populations for each Paraná locality. The state is detached, showing its multiple cities of collection.
Fig. 3 in Contrasting patterns of insecticide resistance and knockdown resistance (kdr) in Aedes aegypti populations from Jacarezinho (Brazil) after a Dengue Outbreak
Fig. 3. Allelic frequencies of 1016Val and 1016Ile in the Nav of A.aegypti populations from Jacarezinho in 2011 and 2012. Besides, the allelic frequencies of the Val1016Ile mutation by regions (Region I–IV) for 2012 are presented.
Fig. 2 in Contrasting patterns of insecticide resistance and knockdown resistance (kdr) in Aedes aegypti populations from Jacarezinho (Brazil) after a Dengue Outbreak
Fig. 2. Jacarezinho map shows the collection sites by regions in the urban area used for the analysis of the Val1016Ile mutation in 2012. Additionally, the main roads that cross Jacarezinho are presented.
Figure 3 in Genetic diversity and Kdr mutations of natural Aedes (Stegomyia) aegypti (Diptera: Culicidae) populations of Brazil
Figure 3 Dendrogram of the 40 haplotypes of Aedes aegypti divided into four groups. Neighbor-joining (NJ) tree of A. aegypti haplotypes using the Tamura-Nei parameter genetic distance model. Bootstrap values are marked under the respective nodes. S. albopictus was considered as external group. AS - Alvorada do Sul; MR - Marilena; MG -Maringá, NL - Nova Londrina; PV - Paranavaí; SC - São Carlos do Ivaí.
Figure 2 in Genetic diversity and Kdr mutations of natural Aedes (Stegomyia) aegypti (Diptera: Culicidae) populations of Brazil
Figure 2 Haplotype network of ND4 gene of Aedes aegypti populations of the six minicipalities of Paraná and others from America (Gonçalves da Silva et al., 2012). The mosquitoes referring to this analysis were renamed with PR next to the haplotype number (ex: H1PR), to differentiate from the haplotypes (H) found by Gonçalves da Silva et al. (2012). The rectangle represents the ancestral haplotype. The smaller circles connecting the identified haplotypes correspond to the non-sampled haplotypes (missing haplotypes) and classified as intermediaries.
Figure 6 in Indiscriminate ingestion of entomopathogenic nematodes and their symbiotic bacteria by Aedes aegypti larvae: a novel strategy to control the vector of Chikungunya, dengue and yellow fever
Figure 6. Aedes aegypti larval mortality when exposed to 1000 infective juveniles (IJs) of Heterorhabditis bacteriophora at different depths of water.
Figure 2 in Indiscriminate ingestion of entomopathogenic nematodes and their symbiotic bacteria by Aedes aegypti larvae: a novel strategy to control the vector of Chikungunya, dengue and yellow fever
Figure 2. Susceptibility of Aedes aegypti larvae to different species of EPN. Five 3rd instar larvae exposed to 1000 infective juveniles (IJs) and mortality assessed daily over 3-day period (DPI).
Figure 4 in Indiscriminate ingestion of entomopathogenic nematodes and their symbiotic bacteria by Aedes aegypti larvae: a novel strategy to control the vector of Chikungunya, dengue and yellow fever
Figure 4. Melanization of Heterorhabditis bacteriophora within Aedes aegypti larvae (3rd instar). A melanized H. bacteriophora within dead Ae. aegypti larvae (a), close up picture of melanized nematode upon larval dissection (b), nematodes representing different stages of melanization recovered from one dead Ae. aegypti larvae (c). Arrows indicate melanized nematode within Ae. aegypti larvae.
Figure 7 in Indiscriminate ingestion of entomopathogenic nematodes and their symbiotic bacteria by Aedes aegypti larvae: a novel strategy to control the vector of Chikungunya, dengue and yellow fever
Figure 7. Aedes aegypti larval mortality when exposed to supernatants and cell suspensions of Xenorhabdus nematophila (X. n.) and Photorhabdus laumondii (P. l.) in 24 well plates. Different uppercase or lower letters above error bars indicate statistical significance (Tukey's test p ≤ 0.05).
Figure 3 in Indiscriminate ingestion of entomopathogenic nematodes and their symbiotic bacteria by Aedes aegypti larvae: a novel strategy to control the vector of Chikungunya, dengue and yellow fever
Figure 3. Different stages of Heterorhabditis bacteriophora colonization of Aedes aegypti larvae (3rd instar). H. bacteriophora within larvae at 2-day post inoculation (a), H. bacteriophora emerging out of larvae upon larval dissection at 7-day post inoculation) (b), adult H. bacteriophora within larvae along with large number of infective juveniles (IJs) released from another adult H. bacteriophora (c). Black arrows indicate adult H. bacteriophora, whereas green arrows indicate newly emerged IJs.
Figura 2 in Uso del lenguaje de programación Java para el conteo digital-automatizado a partir de imágenes de huevos de Aedes aegypti (Linnaeus, 1762) (Diptera: Culicidae)
Figura 2. Conteo automático de huevos de Aedes aegypti mediante una rutina en lenguaje de programación de Java, aprovechando el alto contraste entre el color de los huevos (negro) y el color de la papeleta (blanco). / Figure 2. A Java programming language routine is used to automatically count Aedes aegypti eggs, taking advantage of the high contrast between the color of the eggs (black) and the color of the strip (white).
Figura 3 in Uso del lenguaje de programación Java para el conteo digital-automatizado a partir de imágenes de huevos de Aedes aegypti (Linnaeus, 1762) (Diptera: Culicidae)
Figura 3. Diagrama de cajas de la comparación de la abundancia de huevos de Aedes aegypti contabilizados por colaboradores y mediante JAVA-CERECOVE en las diferentes categorÍas. A. Papeletas con pocos huevos (poco abundante), P= 0,903. B. Papeletas con abundantes huevos (abundante), P= 0,278. C. Papeletas con muy abundantes huevos (muy abundante), P= 0,01491. / Figure 3. A box plot of the abundance of Aedes aegypti eggs counted in different categories by collaborators and JAVA-CERECOVE. A. Pellon strips with few eggs, P = 0.903. B. Strip with abundant eggs, P = 0.278. C. Strip with very abundant eggs, P = 0.01491.
Figura 1 in Uso del lenguaje de programación Java para el conteo digital-automatizado a partir de imágenes de huevos de Aedes aegypti (Linnaeus, 1762) (Diptera: Culicidae)
Figura 1. Papeletas con huevos de Aedes aegypti recolectados a través de ovitrampas y clasificadas en categorÍas. A. Papeleta con pocos huevos (poco abundante). B. Papeleta con abundantes huevos (abundante). C. Papeleta con huevos muy abundantes (muy abundante). / Figure 1. Pellon strips with Aedes aegypti eggs collected through ovitraps are classified into three categories. A. Strip with few eggs (not abundant). B. Strip with abundant eggs (abundant). C. Strip with very abundant eggs (very abundant).
Fig. 1 in Susceptibility status to temephos in larval Aedes aegypti and Aedes albopictus (Diptera: Culicidae) populations from Quintana Roo, southeastern Mexico
Fig. 1. Susceptibility status to temephos (1× the discriminant dose) of Aedes albopictus (grey pie charts) and Aedes aegypti (black and white pie charts) larvae from 4 communities of Quintana Roo, Mexico.
Fig. 2 in A new methodology to evaluate entomopathogenic fungi and formulated insecticides to control adults of Aedes aegypti (Diptera: Culicidae)
Fig. 2. The mortality proportion of Aedes aegypti females caused by isolates of Beauveria spp. at 20 d afer application. Error bars represent 95% confidence intervals back-transformed from the logistic scale. An asterisk (*) indicates that the treatment was significantly different from the control.
Fig. 1 in A new methodology to evaluate entomopathogenic fungi and formulated insecticides to control adults of Aedes aegypti (Diptera: Culicidae)
Fig. 1. Adults of Aedes aegypti L. contained inside a Petri dish covered with tulle: (a) Petri dish; (b) tulle; (c) straw; (d) natural rubber band.
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