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58 results for “Sex pheromone;”
Figure 3 in Response of Invasive Longhorn Beetles (Coleoptera: Lamiinae) to Known Cerambycid Aggregation-Sex Pheromones in the Puna District of Hawaii Island
Figure 3. Mean (± SE) numbers of PLB (Lagocheirus obsoletus) caught in traps baited with solvent control, fuscumol acetate, or monochamol (experiment 1). Means with an asterisk are significantly different than the solvent control (max-t test, p <0.05).
Figure 2 in Response of Invasive Longhorn Beetles (Coleoptera: Lamiinae) to Known Cerambycid Aggregation-Sex Pheromones in the Puna District of Hawaii Island
Figure 2. Mean (± SE) numbers of QLB (Acalolepta aesthetica) caught in traps baited with solvent control, fuscumol, fuscumol acetate, geranylacetone, or a blend of the three compounds (experiment 2). There were no significant differences between the treatments and the solvent control (max-t test, p> 0.05).
Figure 1 in Response of Invasive Longhorn Beetles (Coleoptera: Lamiinae) to Known Cerambycid Aggregation-Sex Pheromones in the Puna District of Hawaii Island
Figure 1. Mean (± SE) numbers of QLB (Acalolepta aesthetica) caught in traps baited with solvent control, fuscumol acetate, or monochamol (experiment 1). There were no significant differences between the treatments and the solvent control (max-t test, p> 0.05).
Figure 4 in Response of Invasive Longhorn Beetles (Coleoptera: Lamiinae) to Known Cerambycid Aggregation-Sex Pheromones in the Puna District of Hawaii Island
Figure 4. Mean (± SE) numbers of PLB (Lagocheirus obsoletus) caught in traps baited with solvent control, fuscumol, fuscumol acetate, geranylacetone, or a blend of the three compounds (experiment 2). Means with an asterisk are significantly different than the solvent control (max-t test, p <0.05).
Fig. 3 in Effects of male age and mating status on response to the female sex pheromone of Copitarsia decolora (Lepidoptera: Noctuidae)
Fig. 3. Activation latencies (black bars) and landing latencies (gray bars) (Q1 <Median <Q2) of virgin and mated Copitarsia decolora males to female sex pheromone extract (3FE) in wind tunnel bioassays. Mated males were tested 24 h and 48 h afer mating (24 AM and 48 AM, respectively). Bars within a behavior headed by the same letter are not significantly different (Tukey's mean separation test, n = 10, P <0.05).
Fig. 1 in Effects of male age and mating status on response to the female sex pheromone of Copitarsia decolora (Lepidoptera: Noctuidae)
Fig. 1. Activation latencies (black bars) and landing latencies (gray bars) (Q1 <Median <Q2) by age group of virgin males in response to a glandular extract of female sex pheromone (3FE) in wind tunnel bioassays. Bars within a behavior headed by the same letter are not significantly different (Tukey's mean separation test, n = 10, P <0.05).
Fig. 4 in Effects of male age and mating status on response to the female sex pheromone of Copitarsia decolora (Lepidoptera: Noctuidae)
Fig. 4. Depolarization (mean ± SEM) of antennae in response to a glandular extract of female sex pheromone (3FE) of virgin and mated males. Mated males were tested 24 h and 48 h afer mating (24 AM and 48 AM, respectively). Bars headed by the same letter are not significantly different (Tukey's mean separation test, n = 6, P <0.05).
Figure 2 in Trapping Sweetpotato Weevil, Cylas formicarius (Coleoptera: Brentidae), with High Doses of Sex Pheromone: Catch Enhancement and Weathering Rate in Hawaii
Figure 2. Effect of lure loading on trap catch over one week of weathering. Average (± SEM) male sweetpotato weevil catch per trap per week in sweetpotato fields in the vicinity of Pepeekeo, Hawaii, in traps baited with one of three different loadings of male sweetpotato weevil attractant. Catch results are from the first week following initial trap deployment with five traps for each loading, deployed in a randomized complete block design (average of three separate trials). Bars labeled with the same letter are not significantly different at the α = 0.05 level.
Figure 1 in Trapping Sweetpotato Weevil, Cylas formicarius (Coleoptera: Brentidae), with High Doses of Sex Pheromone: Catch Enhancement and Weathering Rate in Hawaii
Figure 1. Map of weathering trial showing locations of fields where traps with lures were placed (developed using ArcGIS [ESRI 2012]). Traps were initially deployed at Site 1 on 14 February, 2012, and moved on to Sites 2, 3, 4, and 5 over the course of the weathering trial. The weathering time of the traps at each site was as follows: (Site 1) first 8 weeks; (Site 2) weeks 9–16; (Site 3) weeks 17–24; (Site 4) weeks 25–40; and (Site 5) week 41 (assessment). A weather station was maintained over the course of the weathering trial and was located at Site 2 for the first 16 weeks and then located at the location of the filled circle on the map for the remaining weeks of the trial.
Figure 4. Trial 4 in Trapping Sweetpotato Weevil, Cylas formicarius (Coleoptera: Brentidae), with High Doses of Sex Pheromone: Catch Enhancement and Weathering Rate in Hawaii
Figure 4. Trial 4 results: Effect of weathering over 40 weeks on trap catch. Decline in sweetpotato weevil catch/trap/week over 40 weeks in traps baited with (A) septum holding 1.0 mg male lure (see text for calculated exponential decay curve), and (B) septum holding 120 μg male lure (see text for calculated exponential decay curve). Calculated septum age where catch is 50% of fresh catch is presented for each curve.
Fig. 7 in Reproductive behavior and sex pheromone production in Eutectona machaeralis (Lepidoptera: Crambidae)
Fig. 7. Mean behavioral responses of Eutectona machaeralis males to sex pheromone gland crude extracts and the control in a wind tunnel. Means with the same letter are not significantly different (P> 0.05).
Fig. 2 in Reproductive behavior and sex pheromone production in Eutectona machaeralis (Lepidoptera: Crambidae)
Fig. 2. The influence of age on daily emergence of Eutectona machaeralis adults (mixed sex) in the laboratory during scotophase. Values with the same letter are not significantly different (P> 0.05).
Fig. 5 in Reproductive behavior and sex pheromone production in Eutectona machaeralis (Lepidoptera: Crambidae)
Fig. 5. Mean electroanntenogram response of male Eutectona machaeralis to sex pheromone gland crude extract obtained from 2-d-old virgin females at different hours during scotophase. Means with the same letter are not significantly different (P> 0.05).
Fig. 4 in Reproductive behavior and sex pheromone production in Eutectona machaeralis (Lepidoptera: Crambidae)
Fig. 4. Mean percentage of Eutectona machaeralis females that exhibited calling behavior during scotophase. Means with the same letter are not significantly different (P> 0.05).
Fig. 4 in Response to enantiomers of (Z3Z9)-6,7-epoxy-octadecadiene, sex pheromone component of Ectropis obliqua Prout (Lepidoptera: Geometridae): electroantennagram test, field trapping, and in silico study
Fig. 4. Pan trap catches of male Ectropis obliqua Prout baited with binary blends of racemic and enantiomers of Z3Z9-6,7-epo-18:Hy with triene in XianNing County, China. (A) Z3Z9-6S,7R-epoxy-18:H (6 μg) + Z3Z6Z9-18:H (4 μg); (B) Z3Z9-6R,7S-epoxy-18:H (6 μg) + Z3Z6Z9-18:H (4 μg); (C) blank lure (control). Data are mean ± SD (n = 8) of male E. obliqua trap catches in Xian-Ning County, China, May 2016 by 3 different combinations compared with water pan trap.
Fig. 1 in Response to enantiomers of (Z3Z9)-6,7-epoxy-octadecadiene, sex pheromone component of Ectropis obliqua Prout (Lepidoptera: Geometridae): electroantennagram test, field trapping, and in silico study
Fig. 1. Sex pheromone components of Ectropis obliqua Prout. (A) sex pheromone components; (B) enantiomers of Z3Z9-6,7-epo-18:Hy.
Fig. 5. Modeled 3D in Response to enantiomers of (Z3Z9)-6,7-epoxy-octadecadiene, sex pheromone component of Ectropis obliqua Prout (Lepidoptera: Geometridae): electroantennagram test, field trapping, and in silico study
Fig. 5. Modeled 3D structure and validation of EoblPBP1. (A) Sequence alignment of EoblPBP1 and template 1DQE_A. α-helices are displayed as squiggles. Identical residues are highlighted in white letters with deep blue background. (B) Overall structure of the EoblPBP1. Three disulfide bonds are in red. N-terminus, C-terminus, and α-helices are labeled. Two potential key residues: Thr117 and Arg 121 are in orange. (C) Ramachandran plot of EoblPBP1.
Fig. 3 in Spodoptera frugiperda (Lepidoptera: Noctuidae) Females Can Detect the Sex Pheromone Emitted by Conspecific Females
Fig. 3. Percentage of female and male Spodoptera frugiperda that landed on different concentrations of the extract of the sex pheromone septum. No moths landed on the control (methanol). Bars of the same color with different letters indicate that there is a significant difference, n = 20 (χ2; P <0.05).
Fig. 2 in Spodoptera frugiperda (Lepidoptera: Noctuidae) Females Can Detect the Sex Pheromone Emitted by Conspecific Females
Fig. 2. Percentage of female and male Spodoptera frugiperda that landed on the female glandular extract. Bars of different colors with different letters for the same extract concentrations indicate a significant difference, n = 20 (χ2; P <0.05).
Fig. 5 in Spodoptera frugiperda (Lepidoptera: Noctuidae) Females Can Detect the Sex Pheromone Emitted by Conspecific Females
Fig. 5. Genital structure of female Spodoptera frugiperda. (A) Confocal image of the bursa copulatrix, frontal view. View of spermatophores within the corpus bursae (BC = bursa copulatrix; SI = signum; CB = corpus bursae; BA = bursae appendix; OS = ostium (exit); ESD = exit to a seminal duct; AA = anterior apophysis; AN = antrum; BD = bursal duct). (B) Micrograph of bursa copulatrix in zenith angle, observing the length and width measurements of the structure (length = 5.38 mm; width = 2.066 mm). (C) Stereoscopic image presenting a frontal view of the genital structure (S = spermatophores). (D) Micrograph of the terminal abdominal (PVL = postvaginal lamella; AVL = antevaginal lamella; OS = ostium; AP = anal papilla).
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Allen Brain Atlas
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DANDI Archive for NWB datasets
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International Brain Laboratory public data
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OpenNeuro
OpenNeuro is a free, open platform for sharing neuroimaging datasets, with public search, dataset pages, and download paths for web, S3, DataLad, and the OpenNeuro CLI.