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FIGURES 28‒33. Pegomya spp., male. Sternite V in Taxonomic review of the major larval pests of bolete fungi (Boletaceae) in Europe: The Pegomya fulgens, furva and tabida species groups (Diptera: Anthomyiidae)
FIGURES 28‒33. Pegomya spp., male. Sternite V in laterodorsal view. Same scale.
FIGURES 6‒10 in Taxonomic review of the major larval pests of bolete fungi (Boletaceae) in Europe: The Pegomya fulgens, furva and tabida species groups (Diptera: Anthomyiidae)
FIGURES 6‒10. Pegomya spp., male. Left hind leg. Same scale.
Figure 3 from: Rung A, Miller D, Parikh G (2014) Scale Insects, edition 2, a tool for the identification of potential pest scales at U.S.A. ports-of-entry (Hemiptera, Sternorrhyncha, Coccoidea). ZooKeys 431: 61-78. https://doi.org/10.3897/zookeys.431.7474
Figure 3 - Screen snapshot of the Lucid Key to families, Scale Insects, edition 2 (viewed from Firefox 27.0.1 on April 10, 2014). Features can be selected in any order or they can be selected by the program by clicking on the "best character" icon (indicated with black arrow). Entities with the character states selected remain in the "entities remaining" window (upper right window) whereas those that do not match the states selected are sent to the "entities discarded" (lower right window).
Figure 2 from: Rung A, Miller D, Parikh G (2014) Scale Insects, edition 2, a tool for the identification of potential pest scales at U.S.A. ports-of-entry (Hemiptera, Sternorrhyncha, Coccoidea). ZooKeys 431: 61-78. https://doi.org/10.3897/zookeys.431.7474
Figure 2 - Screen snapshots of the diagnostic page of Exallomochlus camur Williams in the Mealybugs and Mealybug-like families of Scale Insects, edition 2 (viewed from Firefox 27.0.1 on April 10, 2014). Diagnostic features are marked by rectangles; rolling the mouse over each rectangle will bring up an enlargement of the feature.
Figure 1 from: Rung A, Miller D, Parikh G (2014) Scale Insects, edition 2, a tool for the identification of potential pest scales at U.S.A. ports-of-entry (Hemiptera, Sternorrhyncha, Coccoidea). ZooKeys 431: 61-78. https://doi.org/10.3897/zookeys.431.7474
Figure 1 - Screen snapshot of the home page of Scale Insects, edition 2 (viewed from Firefox 27.0.1 on April 10, 2014).
Figure 3 from: Sutton BD, Steck GJ, Norrbom AL, Rodriguez EJ, Srivastava P, Alvarado NN, Colque F, Landa EY, Sánchez JJL, Quisberth E, Peñaranda EA, Clavijo PAR, Alvarez-Baca JK, Zapata TG, Ponce P (2015) Nuclear ribosomal internal transcribed spacer 1 (ITS1) variation in the Anastrepha fraterculus cryptic species complex (Diptera, Tephritidae) of the Andean region. In: De Meyer M, Clarke AR, Vera MT, Hendrichs J (Eds) Resolution of Cryptic Species Complexes of Tephritid Pests to Enhance SIT Application and Facilitate International Trade. ZooKeys 540: 175-191. https://doi.org/10.3897/zookeys.540.6147
Figure 3 - Overall similarity inferred by UPGMA (unweighted pair group method with arithmetic mean) cluster analysis (Sneath and Sokal (1973) of Andean Anastrepha fraterculus ITS1 sequence types (489nt). Distances were computed by the maximum composite likelihood method (Tamura et al. (2004) in number of base substitutions per site with gaps eliminated.
Figure 2 from: Sutton BD, Steck GJ, Norrbom AL, Rodriguez EJ, Srivastava P, Alvarado NN, Colque F, Landa EY, Sánchez JJL, Quisberth E, Peñaranda EA, Clavijo PAR, Alvarez-Baca JK, Zapata TG, Ponce P (2015) Nuclear ribosomal internal transcribed spacer 1 (ITS1) variation in the Anastrepha fraterculus cryptic species complex (Diptera, Tephritidae) of the Andean region. In: De Meyer M, Clarke AR, Vera MT, Hendrichs J (Eds) Resolution of Cryptic Species Complexes of Tephritid Pests to Enhance SIT Application and Facilitate International Trade. ZooKeys 540: 175-191. https://doi.org/10.3897/zookeys.540.6147
Figure 2 - ITS1 polymorphic region sequences for Andean Anastrepha fraterculus; hypothetical alignment.
Figure 1 from: Juárez ML, Devescovi F, Břízová R, Bachmann G, Segura DF, Kalinová B, Fernández P, Ruiz MJ, Yang J, Teal PEA, Cáceres C, Vreysen MJB, Hendrichs J, Vera MT (2015) Evaluating mating compatibility within fruit fly cryptic species complexes and the potential role of sex pheromones in pre-mating isolation. In: De Meyer M, Clarke AR, Vera MT, Hendrichs J (Eds) Resolution of Cryptic Species Complexes of Tephritid Pests to Enhance SIT Application and Facilitate International Trade. ZooKeys 540: 125-155. https://doi.org/10.3897/zookeys.540.6133
Figure 1 - Walk-in field cage set up to evaluate female response to male pheromone: a artificial lek hanging from the tree b Anastrepha fraterculus female over an artificial lek.
Figure 2 from: Hee AKW, Ooi YS, Wee SL, Tan KH (2015) Comparative sensitivity to methyl eugenol of four putative Bactrocera dorsalis complex sibling species – further evidence that they belong to one and the same species B. dorsalis. In: De Meyer M, Clarke AR, Vera MT, Hendrichs J (Eds) Resolution of Cryptic Species Complexes of Tephritid Pests to Enhance SIT Application and Facilitate International Trade. ZooKeys 540: 313-321. https://doi.org/10.3897/zookeys.540.6099
Figure 2 - Probit lines of Bactrocera dorsalis and the former taxa Bactrocera papayae, Bactrocera philippinensis and Bactrocera invadens attraction to methyl eugenol.
Figure 1 from: Hee AKW, Ooi YS, Wee SL, Tan KH (2015) Comparative sensitivity to methyl eugenol of four putative Bactrocera dorsalis complex sibling species – further evidence that they belong to one and the same species B. dorsalis. In: De Meyer M, Clarke AR, Vera MT, Hendrichs J (Eds) Resolution of Cryptic Species Complexes of Tephritid Pests to Enhance SIT Application and Facilitate International Trade. ZooKeys 540: 313-321. https://doi.org/10.3897/zookeys.540.6099
Figure 1 - Dose-sensitivity response curves of Bactrocera dorsalis and the former taxa Bactrocera papayae, Bactrocera invadens and Bactrocera philippinensis to methyl eugenol at different doses.
Figure 6 from: Giardini MC, Milla FH, Lanzavecchia S, Nieves M, Cladera JL (2015) Sex chromosomes in mitotic and polytene tissues of Anastrepha fraterculus (Diptera, Tephritidae) from Argentina: a review. In: De Meyer M, Clarke AR, Vera MT, Hendrichs J (Eds) Resolution of Cryptic Species Complexes of Tephritid Pests to Enhance SIT Application and Facilitate International Trade. ZooKeys 540: 83-94. https://doi.org/10.3897/zookeys.540.6058
Figure 6 - Cytogenetic summary of sexual chromosome pair. Ideogram of sex chromosomes of Anastrepha fraterculus from Argentina (most frequent karyotype). Relative location of C-Bands, DAPI/CMA bands, 18S and anti-H3S28ph hybridization signals.
Figure 4 from: Giardini MC, Milla FH, Lanzavecchia S, Nieves M, Cladera JL (2015) Sex chromosomes in mitotic and polytene tissues of Anastrepha fraterculus (Diptera, Tephritidae) from Argentina: a review. In: De Meyer M, Clarke AR, Vera MT, Hendrichs J (Eds) Resolution of Cryptic Species Complexes of Tephritid Pests to Enhance SIT Application and Facilitate International Trade. ZooKeys 540: 83-94. https://doi.org/10.3897/zookeys.540.6058
Figure 4 - Immunodetection analysis with H3S28ph antibody. Mitotic chromosome preparations of male (A, B, C) and female (D, E, F) individuals from Anastrepha fraterculus A, D DAPI stain B, E anti-H3S28ph hybridization signal C, F Merged images. Arrow heads indicate sex chromosome position.
Figure 1 from: Giardini MC, Milla FH, Lanzavecchia S, Nieves M, Cladera JL (2015) Sex chromosomes in mitotic and polytene tissues of Anastrepha fraterculus (Diptera, Tephritidae) from Argentina: a review. In: De Meyer M, Clarke AR, Vera MT, Hendrichs J (Eds) Resolution of Cryptic Species Complexes of Tephritid Pests to Enhance SIT Application and Facilitate International Trade. ZooKeys 540: 83-94. https://doi.org/10.3897/zookeys.540.6058
Figure 1 - C-Band Ideogram. Sex chromosomes configurations of Anastrepha fraterculus found in Argentina (redrawn from Basso 2003). * Position of centromeres in each chromosome.
Figure 3 from: Giardini MC, Milla FH, Lanzavecchia S, Nieves M, Cladera JL (2015) Sex chromosomes in mitotic and polytene tissues of Anastrepha fraterculus (Diptera, Tephritidae) from Argentina: a review. In: De Meyer M, Clarke AR, Vera MT, Hendrichs J (Eds) Resolution of Cryptic Species Complexes of Tephritid Pests to Enhance SIT Application and Facilitate International Trade. ZooKeys 540: 83-94. https://doi.org/10.3897/zookeys.540.6058
Figure 3 - 18S rDNA FISH analysis. Mitotic chromosome preparations from third instar larvae of Anastrepha fraterculus male. A DAPI stain B rDNA hybridization signal (autologous probe) C Merged images.
Figure 2 from: Giardini MC, Milla FH, Lanzavecchia S, Nieves M, Cladera JL (2015) Sex chromosomes in mitotic and polytene tissues of Anastrepha fraterculus (Diptera, Tephritidae) from Argentina: a review. In: De Meyer M, Clarke AR, Vera MT, Hendrichs J (Eds) Resolution of Cryptic Species Complexes of Tephritid Pests to Enhance SIT Application and Facilitate International Trade. ZooKeys 540: 83-94. https://doi.org/10.3897/zookeys.540.6058
Figure 2 - The most frequent karyotype of Anastrepha fraterculus found in Argentina. Mitotic chromosome preparations from third instar larvae of Anastrepha fraterculus male. A C-Bands B DAPI stain C CMA stain D Merged DAPI/CMA images.
Figure 5 from: Giardini MC, Milla FH, Lanzavecchia S, Nieves M, Cladera JL (2015) Sex chromosomes in mitotic and polytene tissues of Anastrepha fraterculus (Diptera, Tephritidae) from Argentina: a review. In: De Meyer M, Clarke AR, Vera MT, Hendrichs J (Eds) Resolution of Cryptic Species Complexes of Tephritid Pests to Enhance SIT Application and Facilitate International Trade. ZooKeys 540: 83-94. https://doi.org/10.3897/zookeys.540.6058
Figure 5 - 18S rDNA FISH analysis in polytene and mitotic tissues. Polytene and mitotic chromosome preparations obtained from third instar larvae of male (A) and female (B) of Anastrepha fraterculus. In each case: 1 Polytene chromosomes DAPI stain 2 Polytene chromosomes 18S rDNA hybridization signa (FISH) 3 Polytene chromosomes merged image (DAPI/FISH) 4 Mitotic chromosomes DAPI stain 5 Mitotic chromosomes 18S rDNA hybridization signal (FISH) 6 Mitotic chromosomes merged image (DAPI/FISH).
Figure 5 from: Aketarawong N, Isasawin S, Sojikul P, Thanaphum S (2015) Gene flow and genetic structure of Bactrocera carambolae (Diptera, Tephritidae) among geographical differences and sister species, B. dorsalis, inferred from microsatellite DNA data. In: De Meyer M, Clarke AR, Vera MT, Hendrichs J (Eds) Resolution of Cryptic Species Complexes of Tephritid Pests to Enhance SIT Application and Facilitate International Trade. ZooKeys 540: 239-272. https://doi.org/10.3897/zookeys.540.10058
Figure 5 - Simplified network of Bactrocera carambolae and Bactrocera dorsalis groups, and the sequential disconnection of the network. The network was constructed using eight SSRs. Scanning was done for decreasing thresholds A is the fully connected network B is the percolation threshold (Dp = 0.20, with all links corresponding to distances superior to Dp excluded). DP, JK, and NT are connecting between Bactrocera carambolae and Bactrocera dorsalis groups. Red dashed lines with number are corresponded to the threshold values, revealing serial disconnection of the network C is the lowest threshold (thr = 0.15).
Figure 4 from: Aketarawong N, Isasawin S, Sojikul P, Thanaphum S (2015) Gene flow and genetic structure of Bactrocera carambolae (Diptera, Tephritidae) among geographical differences and sister species, B. dorsalis, inferred from microsatellite DNA data. In: De Meyer M, Clarke AR, Vera MT, Hendrichs J (Eds) Resolution of Cryptic Species Complexes of Tephritid Pests to Enhance SIT Application and Facilitate International Trade. ZooKeys 540: 239-272. https://doi.org/10.3897/zookeys.540.10058
Figure 4 - Simplified network of seven Bactrocera carambolae populations, and the sequential forms of cluster. The network was constructed using eight SSRs. Scanning was done for decreasing thresholds A is the fully connected network B is the percolation threshold (Dp = 0.52, with all links corresponding to distances superior to Dp excluded). JK plays an important role connecting between native and introduced populations C–D are the lower thresholds chosen (thr = 0.40 and 0.15, respectively) to reveal sub-structured network.
Figure 3 from: Aketarawong N, Isasawin S, Sojikul P, Thanaphum S (2015) Gene flow and genetic structure of Bactrocera carambolae (Diptera, Tephritidae) among geographical differences and sister species, B. dorsalis, inferred from microsatellite DNA data. In: De Meyer M, Clarke AR, Vera MT, Hendrichs J (Eds) Resolution of Cryptic Species Complexes of Tephritid Pests to Enhance SIT Application and Facilitate International Trade. ZooKeys 540: 239-272. https://doi.org/10.3897/zookeys.540.10058
Figure 3 - The individual admixture plot for K = 3. Each bar reveals a single individual. Each color of bars represents each genetic cluster. Samples of Bactrocera carambolae belong to clusters 2 and 3 (green and blue, respectively) while samples of Bactrocera dorsalis belong to cluster 1 (red). Potential hybrids have a proportion of genetic cluster (Q) between 0.100 to 0.900 (0.100 ≤ Q ≤ 0.900) as identified with asterisk (*).
Figure 1 from: Aketarawong N, Isasawin S, Sojikul P, Thanaphum S (2015) Gene flow and genetic structure of Bactrocera carambolae (Diptera, Tephritidae) among geographical differences and sister species, B. dorsalis, inferred from microsatellite DNA data. In: De Meyer M, Clarke AR, Vera MT, Hendrichs J (Eds) Resolution of Cryptic Species Complexes of Tephritid Pests to Enhance SIT Application and Facilitate International Trade. ZooKeys 540: 239-272. https://doi.org/10.3897/zookeys.540.10058
Figure 1 - Sampling collections of Bactrocera carambolae and Bactrocera dorsalis in this study. Seven populations of Bactrocera carambolae (blue dots) were collected from Southeast Asia and Suriname. Three populations of Bactrocera dorsalis (red dots) were sampled from East and Southeast Asia. Two other unidentified populations (purple dots) were included. Information for each population is described in Table 1.
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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
The International Brain Laboratory public data releases expose standardized mouse decision-making experiments, including Neuropixels recordings, widefield calcium imaging, behavior, and session metadata accessed through the ONE API.
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.