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96 results for “Cucurbita”
Cucurbita pepo L. (BR0000011917809)
Belgium Herbarium image of <a href="https://www.plantentuinmeise.be">Meise Botanic Garden</a>.
Cucurbita pepo L. (BR0000012107803)
Belgium Herbarium image of <a href="https://www.plantentuinmeise.be">Meise Botanic Garden</a>.
Cucurbita pepo L. (BR0000009490659)
Belgium Herbarium image of <a href="https://www.plantentuinmeise.be">Meise Botanic Garden</a>.
Figure 2 in Field Capture of Male Melon Flies, Bactrocera cucurbitae (Coquillett), in Jackson Traps Baited with Cue-Lure Versus Raspberry Ketone Formate in Hawaii
Figure 2. Number of B. cucurbitae males captured in Jackson traps baited with cue-lure (CL) liquid (●) versus raspberry ketone formate (RKF) liquid (○) at four study sites on Oahu, Hawaii. At each site, 15 traps of each treatment were operated 1 day per week over 6 consecutive weeks. Symbols represent means (+ 1 SE, n = 15).
Figure 1 in Field Capture of Male Melon Flies, Bactrocera cucurbitae (Coquillett), in Jackson Traps Baited with Cue-Lure Versus Raspberry Ketone Formate in Hawaii
Figure 1. Number of B. cucurbitae males captured in Jackson traps baited with cue-lure (CL) liquid (●) versus raspberry ketone formate (RKF) plugs (○) at four study sites on Oahu, Hawaii. At each site, 15 traps of each treatment were operated 1 day per week over 6 consecutive weeks. Symbols represent means (+ 1 SE, n = 15).
Fig. 1 in Antixenotic and allelochemical resistance traits of watermelon against Bactrocera cucurbitae in a hot arid region of India
Fig. 1. Associations of major antixenotic and allelochemical fruit traits of watermelon with resistance to the melon fly evaluated by percentage fruit infestation under different infestation categories.
Fig. 1 in Capture of Zeugodacus cucurbitae (Diptera: Tephritidae) in traps baited with torula yeast solution versus cucumber volatile plugs
Fig. 1. Captures of melon flies, Zeugodacus cucurbitae, in Multilure traps bait- ed with torula yeast borax solution or cucumber volatile plugs at low-capture sites (B, C, and E). Data were pooled among sites and over sampling weeks as described in the text. Bar heights represent means (± 1 SE) of 270 values (3 sites × 15 traps per trap type × 6 wk).
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. 2 in Capture of Zeugodacus cucurbitae (Diptera: Tephritidae) in traps baited with torula yeast solution versus cucumber volatile plugs
Fig. 2. Captures of melon flies, Zeugodacus cucurbitae, in Multilure traps bait- ed with torula yeast borax solution or cucumber volatile plugs over an 8 wk period at the intermediate-capture site (A). Points represent means (± 1 SE) of 15 traps per lure type.
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. 3 in Capture of Zeugodacus cucurbitae (Diptera: Tephritidae) in traps baited with torula yeast solution versus cucumber volatile plugs
Fig. 3. Captures of melon flies, Zeugodacus cucurbitae, in Multilure traps baited with torula yeast borax solution or cucumber volatile plugs over a 6 wk period at the high-capture site (D). Points represent means (± 1 SE) of 10 traps per lure type.
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.
Fig. 2 in Rearing Frankliniella zucchini Nakahara & Monteiro (Thysanoptera: Thripidae) on zucchini (Cucurbita pepo L. 'Caserta') fruits
Fig. 2. Morphology of adult female and instar II immature. Adult female (Frankliniella zucchini): (a) habitus; (b) head and pronotum; (c) abdominal tergites VIII–X; (d) hind coxae upper surface. (e) Hind coxae upper surface of Frankliniella gemina. Instar II immature (F. zucchini): (f) habitus; (g) head and pronotum; (h) meso- and metanotum; (i) abdominal tergites VIII–X.
Figure 2 in Trapping Male Melon Flies, Zeugodacus cucurbitae (Coquillett) (Diptera: Tephritidae), Using Mixtures of Zingerone and Cue-Lure in the Field
Figure 2. Mean (±SE) melon flies (Z. cucurbitae) captured weekly in individual traps. "ZN" and "CL" denote zingerone and cue-lure, respectively. Each trap contains 5 grams of total lure with percentages of ZN and CL given.
Figure 1 in Trapping Male Melon Flies, Zeugodacus cucurbitae (Coquillett) (Diptera: Tephritidae), Using Mixtures of Zingerone and Cue-Lure in the Field
Figure 1. Experimental layout of Ho Farms in Kahuku, Oahu, Hawaii. Dark circles and brackets denote individual traps and blocks, respectively. Tomato and cucumber fields measured 0.8 ha in size, while the eggplant field measured 1.0 ha.
Figure 4 in Effect of hot-water immersion on eggs and larvae of Anastrepha grandis (Macquart, 1846) (Diptera: Tephritidae) "in vitro and on squash (Cucurbita moschata Duchesne, 1786)
Figure 4. Percent reduction of adult emergence of A. grandis when Atlas squashes infested by larvae was subjected to hydrothermal treatment at different temperatures and times of exposure. / Reducción porcentual de la emergencia de adultos de A. grandis cuando las calabazas Atlas infestadas por larvas se sometieron al tratamiento hidrotermal a diferentes temperaturas y tiempos de exposición.
Figure 2 in Effect of hot-water immersion on eggs and larvae of Anastrepha grandis (Macquart, 1846) (Diptera: Tephritidae) "in vitro and on squash (Cucurbita moschata Duchesne, 1786)
Figure 2. Percent reduction of adult emergence of A. grandis when larvae were subjected to hydrothermal treatment in vitro at different temperatures and exposure times. / Reducción porcentual de la emergencia de adultos de A. grandis cuando las larvas se sometieron al tratamiento hidrotermal in vitro a diferentes temperaturas y tiempos de exposición.
Figure 1 in Effect of hot-water immersion on eggs and larvae of Anastrepha grandis (Macquart, 1846) (Diptera: Tephritidae) "in vitro and on squash (Cucurbita moschata Duchesne, 1786)
Figure 1. Mortality (%) of A. grandis eggs in vitro subjected to hydrothermal treatment at different temperatures and times of exposure. / Mortalidad (%) de huevos de A. grandis in vitro sometidos al tratamiento hidrotermal a diferentes temperaturas y tiempos de exposición.
Figure 3 in Effect of hot-water immersion on eggs and larvae of Anastrepha grandis (Macquart, 1846) (Diptera: Tephritidae) "in vitro and on squash (Cucurbita moschata Duchesne, 1786)
Figure 3. Percent reduction of adult emergence of A. grandis when Atlas squashes infested by eggs was subjected to hydrothermal treatment at different temperatures and times of exposure. / Reducción porcentual de la emergencia de adultos de A. grandis cuando las calabazasAtlas infestadas por huevos fueron se sometieron al tratamiento hidrotermal a diferentes temperaturas y tiempos de exposición.
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OpenNeuro
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