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329 results for “Bactrocera”
Fig. 1 in Mixing male lures results in an effective multispecies bait for trapping Bactrocera (Diptera: Tephritidae) fruit flies
Fig. 1. Numbers of Bactrocera dorsalis male flies captured in traps baited with methyl eugenol (ME) alone or a mixture of ME and raspberry ketone (RK, a natural analogue of cue lure). Comparisons involved 3 mixtures in ME:RK ratios (wt:wt) of 95:5, 90:10, and 85:15. Symbols represent means (± SE) of 15 traps per lure type at 2 wk intervals over an 8 wk sampling period.
Fig. 2 in Determination of instars of Bactrocera dorsalis (Diptera: Tephritidae)
Fig. 2. Frequency histograms and scatter plots of measurements of 5 morphological variables for Bactrocera dorsalis larvae.
Fig. 3 in Determination of instars of Bactrocera dorsalis (Diptera: Tephritidae)
Fig. 3. Morphological characteristics of the pharyngeal sclerite, mouth hooks, anterior spiracles, and posterior spiracles of Bactrocera dorsalis larvae in three instars. A, C, E: Pharyngeal sclerite and mouth hook of the 1st, 2nd, and 3rd instar, respectively; B, D, F: posterior spiracles of the 1st, 2nd, and 3rd instar, respectively; red arrows indicate the anterior spiracles of the 2nd and 3rd instar in C and E, respectively.
Fig. 1 in Determination of instars of Bactrocera dorsalis (Diptera: Tephritidae)
Fig. 1. Schematic diagram of the measurements for Bactrocera dorsalis larvae. A: Body length of B. dorsalis larvae (L); B: pharyngeal sclerite length (X) and width (Y); C: mouth hook length (Z) and width (K).
Fig. 2 in Toxicity of malathion and spinosad to Bactrocera zonata and Ceratitis capitata (Diptera: Tephritidae)
Fig. 2. Mortality (± SE) of Ceratitis capitata (Medfly) and Bactrocera zonata (PFF) following 2 h of exposure to glass slides with 3 µL drops of Buminal bait containing various doses (ppm) of malathion 1,040 (A) and of hydrolyzed yeast bait containing various doses of malathion 50 (B).
Fig. 4 in Toxicity of malathion and spinosad to Bactrocera zonata and Ceratitis capitata (Diptera: Tephritidae)
Fig. 4. Mortality (± SE) and consumption (drops per fly; ± SE) of 3 µL drops of Success bait (1% GF-120 with 10% sucrose) containing various doses of spinosad on glass slides among Bactrocera zonata following 2 h of exposure.
Fig. 1 in Toxicity of malathion and spinosad to Bactrocera zonata and Ceratitis capitata (Diptera: Tephritidae)
Fig. 1. Mean (± SE) consumption rate (drops per fly) of Bactrocera zonata exposed to drops of 10% sucrose with Buminal (A); GF-120 (B); and hydrolyzed yeast (C). The flies had access to the drops for 2 h and consumption was evaluated by observation. Statistical analysis was performed separately for each bait. Means labeled with different letters are significantly different from each an- other (Tukey HSD test, P = 0.05).
Fig. 2 in Attraction of Bactrocera cucurbitae and Bactrocera dorsalis (Diptera: Tephritidae) to beer waste and other protein sources laced with ammonium acetate
Fig. 2. Response of males of Bactrocera cucurbitae and B. dorsalis to GF-120® NF Naturalyte® Fruit Fly Bait (= GF-120), Bugs for Bugs® Fruit Fly Bait (= Bugs for Bugs), Buminal® (= Buminal), and water (negative control) either in the absence (A), or presence (B) of ammonium acetate (= AA). For each species, different letters (lowercase: B. cucurbitae; uppercase: B. dorsalis) indicate significant differences according to ANOVA and the Fisher LSD tests at P ≤ 0.05.
Fig. 3 in Attraction of Bactrocera cucurbitae and Bactrocera dorsalis (Diptera: Tephritidae) to beer waste and other protein sources laced with ammonium acetate
Fig. 3. Response of females of Bactrocera cucurbitae and B. dorsalis to GF- 120® NF Naturalyte® Fruit Fly Bait (= GF-120), Bugs for Bugs® Fruit Fly Bait (= Bugs for Bugs), Buminal® (= Buminal), and water (negative control) either in the absence (A), or presence (B) of ammonium acetate (= AA). For each species, different letters (lowercase: B. cucurbitae; uppercase: B. dorsalis) indicate significant differences according to ANOVA and the Fisher LSD tests at P ≤ 0.05.
Fig. 1 in Attraction of Bactrocera cucurbitae and Bactrocera dorsalis (Diptera: Tephritidae) to beer waste and other protein sources laced with ammonium acetate
Fig. 1. Response of adult males (A) and females (B) of Bactrocera cucurbitae and B. dorsalis in field cages to Nu-Lure® Insect Bait (= Nu-Lure), beer waste, Bugs for Bugs® Fruit Fly Bait (= Bugs for Bugs), and Buminal® (= Buminal) either alone or with added ammonium acetate (= AA) or ammonium carbonate (= AC). Water was used as a negative control. For each fly species and sex, different letters (lowercase: B. cucurbitae; uppercase: B. dorsalis) indicate significant differences according to ANOVA and the Fisher LSD tests at P ≤ 0.05.
Fig. 4 in Attraction of Bactrocera cucurbitae and Bactrocera dorsalis (Diptera: Tephritidae) to beer waste and other protein sources laced with ammonium acetate
Fig. 4. Response of males of Bactrocera cucurbitae and B. dorsalis to GF-120® NF Naturalyte® Fruit Fly Bait (= GF-120), beer waste, Nu-Lure® Insect Bait (= Nu-Lure), and water (negative control) either in the absence (A), or presence (B) of ammonium acetate (= AA). For each species, different letters (lowercase: B. cucurbitae; uppercase: B. dorsalis) indicate significant differences according to ANOVA and the Fisher LSD tests at P ≤ 0.05.
Figure 1 in Embryonic development of the olive fruit fly, Bactrocera oleae Rossi (Diptera: Tephritidae), in vivo
Figure 1. In vivo photographic illustration of Bactrocera oleae eggs. A) Anterior and posterior ends of the egg (1 h old); B) the chorion; C), D), and E) sequence of pole cell formation in a living embryo. The arrow indicates the posterior tip of the egg.
Figure 3 in Detection/Monitoring of Bactrocera latifrons (Diptera: Tephritidae): Assessing the Potential of Prospective New Lures
Figure 3. Actual and regressed change in weekly B. latifrons male catch at traps with aged lure as percentage of catch at traps baited with fresh alpha-ionol + cade oil. Fresh lure was provided weekly and aged lure was allowed to age over a 9-week period. The estimated age at which trap catch was reduced to 50% of initial fresh catch is presented, as estimated from a best fit exponential decay curve of untransformed trap catch versus weeks of aging (% of fresh B. latifrons catch = ae–bx, where a = 218.15, b = 0.286, and x = age in weeks; Bioassay 3 results).
Figure 1 in Detection/Monitoring of Bactrocera latifrons (Diptera: Tephritidae): Assessing the Potential of Prospective New Lures
Figure 1. Relative average catch per trap per week (± SEM) of wild Bactrocera latifrons, B. cucurbitae, and B. dorsalis among traps baited with a range of different attractants and in unbaited control traps. Traps serviced twice a week, with trap catches summed for each week's total. Fresh bait provided each week. For each fruit fly species, treatments represented by columns with the same letter at top are not statistically different at the α = 0.05 level. Numbers above the letters indicating statistical significance of differences in average trap catch report the average percentage female catch (Bioassay 1 results).
Figure 3 in First Record of Bactrocera (Bactrocera) dorsalis (Hendel, 1912) (Diptera: Tephritidae) on Hedychium coronarium (family Zingiberaceae) from India
Figure 3. Bactrocera (Bactrocera) dorsalis (Hendel, 1912) visiting the whgite flower of Hedychium coronarium.
Figure 1 in First Record of Bactrocera (Bactrocera) dorsalis (Hendel, 1912) (Diptera: Tephritidae) on Hedychium coronarium (family Zingiberaceae) from India
Figure 1. Map showing location of the study area (Garden and agricultural landscape, Block B, Bangur Avenue, North Kolkata).
Fig. 2 in Biology and fertility life table of Bactrocera carambolae on grape and acerola
Fig. 2. Survival curves of Bactrocera carambolae adults grown on grapes (Vitis vinifera) and acerola (Malpighia emarginata) in laboratory (26 ± 2 ◦C; 60 ± 10% RH; photophase 12 h).
Fig. 3 in Biology of Bactrocera carambolae (Diptera: Tephritidae) on four hosts
Fig. 3. Survival curve of males of Bactrocera carambolae: Treatment A (Averrhoa carambola), Treatment B (Psidium guajava), Treatment C (Spondias mombin) and Treatment D (Eugenia stipitata). The arrows indicate the mean survival time (Tms).
Fig. 2 in Biology of Bactrocera carambolae (Diptera: Tephritidae) on four hosts
Fig. 2. Survival curve of females of Bactrocera carambolae: Treatment A (Averrhoa carambola), Treatment B (Psidium guajava), Treatment C (Spondias mombin) and Treatment D (Eugenia stipitata). The arrows indicate the mean survival time (Tms).
Fig. 1 in Biology of Bactrocera carambolae (Diptera: Tephritidae) on four hosts
Fig. 1. Daily rate of oviposition of Bactrocera carambolae reared on fruits of carambola (Averrhoa carambola), araza (Eugenia stipitata), guava (Psidium guajava) and yellow mombin (Spondias mombin).
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International Brain Laboratory public data
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OpenNeuro
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