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FIGURE 11 in DNA barcodes: Evaluating the potential of COI to diffentiate closely related species of Elachista (Lepidoptera: Gelechioidea: Elachistidae) from Australia
FIGURE 11. Pupal exuviae of the taxa of the Elachista zigzagger complex, in ventral view. A: A1; B: A2; C: A3; D: A4; E: A5; F: A6; G: B1; H: B2; I: B3.
FIGURE 10 in DNA barcodes: Evaluating the potential of COI to diffentiate closely related species of Elachista (Lepidoptera: Gelechioidea: Elachistidae) from Australia
FIGURE 10. Ostium bursae of the female of the taxa of the Elachista zigzagger complex. A: ' A1; B: ' A2; C: A3; D: A4; E: A5; F: A6; G: B1; H: B2; I: B3.
FIGURE 8 in DNA barcodes: Evaluating the potential of COI to diffentiate closely related species of Elachista (Lepidoptera: Gelechioidea: Elachistidae) from Australia
FIGURE 8. Female genitalia of the taxa of the Elachista zigzagger complex. A: A1; B: A2; C: A3; D: A4; E: A5; F: A6.
FIGURE 7 in DNA barcodes: Evaluating the potential of COI to diffentiate closely related species of Elachista (Lepidoptera: Gelechioidea: Elachistidae) from Australia
FIGURE 7. Male genitalia of Elachista taxa, in ventral view. A: Elachista zigzagger complex B1; B: Elachista zigzagger complex B2; C: Elachista zigzagger complex B3: D: Elachista 'Cleland sp.'.
FIGURE 6 in DNA barcodes: Evaluating the potential of COI to diffentiate closely related species of Elachista (Lepidoptera: Gelechioidea: Elachistidae) from Australia
FIGURE 6. Male genitalia of the taxa of the Elachista zigzagger complex, in ventral view. A: A1; B: A2; C: A3; D: A4; E: A5; F: A6.
FIGURE 1 in DNA barcodes: Evaluating the potential of COI to diffentiate closely related species of Elachista (Lepidoptera: Gelechioidea: Elachistidae) from Australia
FIGURE 1. Strict consensus cladogram (length 293 steps, CI 0.75, RI 0.92) of the two equally parsimonious cladograms based on parsimony analysis of 705 nt 3' end of the COI gene for 47 ingroup specimens belonging to 14 morphospecies and two outgroup taxa. Bremer support values are given below, and Jackknife values above the branches. Black dots indicate unique synapomorphies, open circles homoplastic synapomorphies.
FIGURE 3 in DNA barcodes: Evaluating the potential of COI to diffentiate closely related species of Elachista (Lepidoptera: Gelechioidea: Elachistidae) from Australia
FIGURE 3. Male genitalia of Elachista taxa, in ventral view. A: Elachista Ficinia complex 1; B: Elachista Ficinia complex 2; C: Elachista yellow complex 1; D: Elachista yellow complex 2.
FIGURE 4 in DNA barcodes: Evaluating the potential of COI to diffentiate closely related species of Elachista (Lepidoptera: Gelechioidea: Elachistidae) from Australia
FIGURE 4. Female genitalia of Elachista spp. A: Elachista Ficinia complex 1; B: Elachista Ficinia complex 2; C: Elachista Cleland sp.; D: Elachista yellow complex 1; E: Elachista yellow complex 2.
FIGURE 2 in DNA barcodes: Evaluating the potential of COI to diffentiate closely related species of Elachista (Lepidoptera: Gelechioidea: Elachistidae) from Australia
FIGURE 2. External appearance of Elachista spp. A: Elachista Ficinia complex 1 male (Australia: SA Adelaide); B: Elachista Ficinia complex 1 male (Australia: NSW Burrewarra Point); C: E lachista Ficinia complex 1 female (Australia: SA: Normanville); D and E: Elachista Ficinia complex 2 male (Australia: WA Myalup Beach); F: Elachista Ficinia complex 2 female (Australia: WA Myalup Beach); G: Elachista yellow complex 1 male; H: Elachista yellow complex 1 female; I: Elachista yellow complex 2 male; J: Elachista yellow complex 2 female; K: Elachista Cleland sp. male; L: Elachista Cleland sp. female.
FIGURES 8–13 in Redescription of the last instar larva of Stenophylax fissus (McLachlan 1875) and the DNA barcode of Stenophylax crossotus McLachlan 1884 (Trichoptera Limnephilidae) with an updated diagnostic matrix of the known larvae of Stenophylax species of the Iberian Peninsula
FIGURES 8–13. Larva of Stenophylax fissus (McLachlan 1875). (8) Thorax and abdominal segment I, dorsal; pronotal setae, white circle; metanotal setae between sa2 sclerites, blue circle. (9) Right legs, posterior faces. (10) Right legs, anterior faces; spines of ventral edge of meso- and metathoracic femora, blue circles; (11) right foreleg and midleg, posterior faces; dorsoproximal and dorsodistal setae of forefemur, black arrows, and of mesothoracic femur, red arrows. (12) Habitus, right lateral; start and end of lateral fringe, red and black arrows, respectively. (13) Terminal abdominal segments, right lateral; end of lateral fringe, black arrow. All figures scale: 1 mm.
FIGURES 2–7 in Redescription of the last instar larva of Stenophylax fissus (McLachlan 1875) and the DNA barcode of Stenophylax crossotus McLachlan 1884 (Trichoptera Limnephilidae) with an updated diagnostic matrix of the known larvae of Stenophylax species of the Iberian Peninsula
FIGURES 2–7. Larva of Stenophylax fissus (McLachlan 1875). (2) Head capsule, dorsal; spinules, blue circle; antenna, red arrow. (3) Labrum and anterior part of head capsule, dorsal; spinules, blue circle; antenna, red arrow. (4) head capsule, right lateral; spinules, blue circles; antenna, red arrow. (5) Left mandible, ventral. (6) head capsule, ventral. (7) Head, thorax, abdominal segments I and II, right lateral. All figures scale: 1 mm, except (5) scale: 0.5 mm.
FIGURES 20–22 in Redescription of the last instar larva of Stenophylax fissus (McLachlan 1875) and the DNA barcode of Stenophylax crossotus McLachlan 1884 (Trichoptera Limnephilidae) with an updated diagnostic matrix of the known larvae of Stenophylax species of the Iberian Peninsula
FIGURES 20–22. Larva of Stenophylax fissus (McLachlan 1875). (20) Tip of abdomen, caudoventral; sternum IX setae, red arrows; right anal claw and its accessory hook, black arrow. (21, 22) Larval cases: (21) case of earlier instar; (22) case of later instar. All figures scale: 1 mm.
FIGURE 1 in Redescription of the last instar larva of Stenophylax fissus (McLachlan 1875) and the DNA barcode of Stenophylax crossotus McLachlan 1884 (Trichoptera Limnephilidae) with an updated diagnostic matrix of the known larvae of Stenophylax species of the Iberian Peninsula
FIGURE 1. Map showing the location of the Stenophylax populations of the Iberian Peninsula studied in this work.
FIGURES 14–19 in Redescription of the last instar larva of Stenophylax fissus (McLachlan 1875) and the DNA barcode of Stenophylax crossotus McLachlan 1884 (Trichoptera Limnephilidae) with an updated diagnostic matrix of the known larvae of Stenophylax species of the Iberian Peninsula
FIGURES 14–19. Larva of Stenophylax fissus (McLachlan 1875). (14) Abdominal segment I, dorsal. (15) Lower parts of abdominal segments I and II, left lateral; left lateral hump with 2 sclerites, white circle. (16) Abdominal sternum I, ventral. (17) Setae on abdominal dorsum VIII, dorsal. (18) Setae on abdominal tergum IX, dorsal; long, A setae, white arrows; long setae and C setae, black arrows; posterolateral setae, red arrows. (19) Setae on abdominal tergum IX, right lateral; A and C setae, black arrows. All figures scale: 1 mm.
FIGURE 3 in Identification of species in the Cladia aggregata group using DNA barcoding (Ascomycota: Lecanorales)
FIGURE 3. Morphology of the new Cladia species. A) = C. blanchonii (Hayward 004635 [F]); B) = C. cryptica (holotype [F]); C) = C. tasmanica (holotype [HO]). Scale = 5 mm.
FIGURE 2 in Identification of species in the Cladia aggregata group using DNA barcoding (Ascomycota: Lecanorales)
FIGURE 2. Boxplot showing the intra- and interspecific genetic distances within each coalescent species individually, overall intraspecific distances from all species, and pairwise interspecific distances. Coalescent species: CA = Cladia aggregata sensu stricto, CB = C. blanchonii, CC = C. cryptica, CD = C. deformis, CDU = C. dumicola, CF = C. inflata, CG = C. gorgonea, CM = C. moniliformis, CN = C. neocaledonica, CS = C. schizopora, CT = C. terebrata, CTA = C. tasmanica.
FIGURE 1 in Identification of species in the Cladia aggregata group using DNA barcoding (Ascomycota: Lecanorales)
FIGURE 1. Cartoon tree showing the monophyletic putative Cladia species recognized by the general mixed Yule coalescent method (after Parnmen et al. 2012).
FIGURE 4 in A new species of Rhododendron (Ericaceae) from the Gaoligong Mountains, Yunnan, China, supported by morphological and DNA barcoding data
FIGURE 4. Neighbor-joining tree based on the combination of the four DNA barcodes under the K2P distance model. Bootstrap values (>50%) are shown along the branches.
FIGURE 2. Rhododendron baihuaense. A, Flowering shoot. B, Scales. C, Flower. D, Mature fruit. E in A new species of Rhododendron (Ericaceae) from the Gaoligong Mountains, Yunnan, China, supported by morphological and DNA barcoding data
FIGURE 2. Rhododendron baihuaense. A, Flowering shoot. B, Scales. C, Flower. D, Mature fruit. E, Pistil and calyx. F, Stamen. G, Corolla, cut open.
FIGURE 1 in A new species of Rhododendron (Ericaceae) from the Gaoligong Mountains, Yunnan, China, supported by morphological and DNA barcoding data
FIGURE 1. Geographical distribution of Rhododendron baihuaense, R. hanceanum and R. genestierianum (detailed distribution information of these 3 species were obtained from Chinese Virtual Herbarium, http://www.cvh.org.cn).
ScienceDex guides
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These curated guides explain access requirements, typical timelines, costs, and reuse considerations for widely used research datasets.
Allen Brain Atlas
Allen Brain Atlas is an Allen Institute collection of brain map atlases, datasets, APIs, and analysis tools covering mouse, human, and non-human primate brain resources.
Annotated Behaviour and Observability Dataset (ABODe)
ABODe is a University of Edinburgh DataShare dataset for behavior classification in group-housed mice using home-cage video, identities, bounding boxes, ground-plate positions, and annotator labels.
DANDI Archive for NWB datasets
DANDI is a BRAIN Initiative archive for publishing and sharing neurophysiology data, including electrophysiology, optophysiology, and behavioral data packaged as NWB and related standards.
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.