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FIGURE 6 in Revising the taxonomy of Darevskia valentini (Boettger, 1892) and Darevskia rudis (Bedriaga, 1886) (Squamata, Lacertidae): a Morpho-Phylogenetic integrated study in a complex Anatolian scenario
FIGURE 6. The three-dimensional representation of FEMALE centroids (bidimensional of samples and centroids in Fig 5) shows the MST (Minimum Spanning Tree) superimposed on the three-dimensional representation of the position of the centroids. The three axes together explain 88.4 % of all the variability. This MST can be considered equivalent to an unrooted NJ and connects each centroid with its closest relative. See text for explanation.
FIGURE 8. A in Revising the taxonomy of Darevskia valentini (Boettger, 1892) and Darevskia rudis (Bedriaga, 1886) (Squamata, Lacertidae): a Morpho-Phylogenetic integrated study in a complex Anatolian scenario
FIGURE 8. A graphic display of the degree (number) of significant differences (p <0.01) among the different OTUs (MALES and FEMALES together). As can be seen, the overall representation is similar to the "old" (only morphological) taxonomy. See text for details.
FIGURE 5 in Revising the taxonomy of Darevskia valentini (Boettger, 1892) and Darevskia rudis (Bedriaga, 1886) (Squamata, Lacertidae): a Morpho-Phylogenetic integrated study in a complex Anatolian scenario
FIGURE 5. Canonical Discriminant Analysis (CDA) plot for FEMALES. Specimens, sample centroids, and group perimeters are represented. Green circle: D. v. spitzenbergerae; Clear blue triangle: "Clade A" from Candan et al. 2021; Inverted violet triangle "Clade B" from Candan et al. 2021; Cross: D. v. valentini; Blade: D. v. lantzicyreni; Asterisk: D. b. bithynica; Diamond: D. b. tristis; Minute dot: D. r. rudis; Side inclined clear gray triangle: D. r. bischoffi; Side inclined dark gray triangle: D. r. obscura; Clear gray square: D. r. macromaculata; Gray circle: D. r. mirabilis; Yellow triangle: D. r. bolkardaghica. These two first axes explain together 79.8 % of the total variability.
FIGURE 7 in Revising the taxonomy of Darevskia valentini (Boettger, 1892) and Darevskia rudis (Bedriaga, 1886) (Squamata, Lacertidae): a Morpho-Phylogenetic integrated study in a complex Anatolian scenario
FIGURE 7. UPGMA tree derived from the matrix of distances (Table 1) among FEMALE samples, as in the males one, shows three groups: a basal one, well different, with D. bithynica (inc. ssp. tristis), and two more closer groups that include the former rudis and valentini-complexes. See the text for an explanation of the results. The tree, derived from the calculation of ultrametric distances calculated in UPGMA, reflects very well the relationships in respect to the original distanced matrix (see Table 1). Its Cophenetic Correlation Index, r = 0.94, shows that the obtained dendrogram has a very good fit (r> 0.9; Rohlf 2000).
FIGURE 2 in Revising the taxonomy of Darevskia valentini (Boettger, 1892) and Darevskia rudis (Bedriaga, 1886) (Squamata, Lacertidae): a Morpho-Phylogenetic integrated study in a complex Anatolian scenario
FIGURE 2. Canonical Discriminant Analysis (CDA) plot for MALES. Specimens, sample centroids, and group perimeters are represented. Green circle: D. v. spitzenbergerae; Clear blue triangle: "Clade A" from Candan et al. 2021; Inverted violet triangle: "Clade B" from Candan et al. 2021; Cross: D. v. valentini; Blade: D. v. lantzicyreni; Asterisk: D. b. bithynica; Diamond: D. b. tristis; Minute dot: D. r. rudis; Side inclined clear gray triangle: D. r. bischoffi; Side inclined dark gray triangle: D. r. obscura; Clear gray square: D. r. macromaculata; Gray circle: D. r. mirabilis; Yellow triangle: D. r. bolkardaghica. These two first axes explain together 80.3 % of the total variability.
FIGURE 12. a in Revising the taxonomy of Darevskia valentini (Boettger, 1892) and Darevskia rudis (Bedriaga, 1886) (Squamata, Lacertidae): a Morpho-Phylogenetic integrated study in a complex Anatolian scenario
FIGURE 12. a) Darevskia spitzenbergerae wernermayeri ssp. nov. (Paratype; nº 12, Male; Başeğmez Village, Çaldıran, Turkey); b) Darevskia mirabilis stat. nov. (Paratype; nº 5, Female; Ovit Pass, Kaçkar Mountains, Rize, Turkey); c) Darevskia rudis bolkardaghica (Paratype; nº 1, Male; Karagöl, Ulukışla, Niğde, Central Anatolia, Turkey); d) Darevskia rudis lantzicyreni comb. nov. (nº 23, male; Kümbet Village, Zara, Turkey); e) Darevskia josefschmidtleri sp. nov. (Paratype; nº 20, Male; Yukarınarlıca Village, Çatak, Van, Turkey); f) Darevskia valentini (nº 9, Male; Tepeler Village, Ardahan, Turkey) and temporal area of an Armenian specimen (Karvansaray, Martuni District, Armenia); g) Darevskia spitzenbergerae spitzenbergerae stat. et comb. nov. (nº 1, Male; Cilo Sat Mountains, Hakkari, Turkey)- Also, temporal area of other specimen from the same locality. The new nomenclature proposed in the text is used.
FIGURE 9 in Notes on the taxonomy revision of poorly known of tribe Eremini Cadena-Castañeda, 2019 from China (Orthoptera: Gryllacrididae: Gryllacridinae)
FIGURE 9. Morphological structures of female Larnaca (Larnaca) lincangensis (Yang, Jing & Bian, 2020). A. face; B. dorsal view of head and pronotum; C. stridulatory pegs on the second and third abdominal tergites, left lateral view; D. lateral view of head and pronotum; E. external side of left hind femur; F. ventral view of abdominal apex; G. ovipositor.
FIGURE 10 in Notes on the taxonomy revision of poorly known of tribe Eremini Cadena-Castañeda, 2019 from China (Orthoptera: Gryllacrididae: Gryllacridinae)
FIGURE 10. Larnaca (Larnaca) lincangensis (Yang, Jing & Bian, 2020). A, C–E. male; B. female. Scale: 1 cm. © C–E by Fan Gao; published with permission (https://www.inaturalist.org/observations/139507622).
FIGURE 8 in Notes on the taxonomy revision of poorly known of tribe Eremini Cadena-Castañeda, 2019 from China (Orthoptera: Gryllacrididae: Gryllacridinae)
FIGURE 8. Morphological structures of male Larnaca (Larnaca) lincangensis (Yang, Jing & Bian, 2020). A. face; B. lateral view of head and pronotum; C. stridulatory pegs on the second and third abdominal tergites, left lateral view; D. dorsal view of head and pronotum; E. external side of left hind femur; F. rear view of abdominal apex; G. lateral view of abdominal apex; H. ventral view of abdominal apex.
FIGURE 7 in Notes on the taxonomy revision of poorly known of tribe Eremini Cadena-Castañeda, 2019 from China (Orthoptera: Gryllacrididae: Gryllacridinae)
FIGURE 7. Holotype of Gryllacris deminuta. A. body; B. face; C. subgenital plate; D. ovipositor. © by Natural History Museum of Geneva, John Hollier and Christina Lehmann; published with permission.
FIGURE 4 in Notes on the taxonomy revision of poorly known of tribe Eremini Cadena-Castañeda, 2019 from China (Orthoptera: Gryllacrididae: Gryllacridinae)
FIGURE 4. Tegmen of Haplogryllacris bilobulata Ingrish, 2018 and classification of main veins. A, B. female; C–F. male. A, C, E. left tegmen; B, D, F. right tegmen.
FIGURE 3 in Notes on the taxonomy revision of poorly known of tribe Eremini Cadena-Castañeda, 2019 from China (Orthoptera: Gryllacrididae: Gryllacridinae)
FIGURE 3. Morphological structures of female Haplogryllacris bilobulata Ingrish, 2018. A. face; B. lateral view of head and pronotum; C. stridulatory pegs on the second and third abdominal tergites, right lateral view; D. dorsal view of head and pronotum; E. stridulatory denticles on the up of inner side of left hind femur; F. external side of left hind femur; G. ventral view of abdominal apex; H. ovipositor.
FIGURE 2 in Notes on the taxonomy revision of poorly known of tribe Eremini Cadena-Castañeda, 2019 from China (Orthoptera: Gryllacrididae: Gryllacridinae)
FIGURE 2. Morphological structures of male Haplogryllacris bilobulata Ingrish, 2018. A. face; B. lateral view of head and pronotum; C. stridulatory pegs on the second and third abdominal tergites, right lateral view; D. dorsal view of head and pronotum; E. stridulatory denticles on the up of inner side of left hind femur; F. external side of right hind femur; G. ventral view of abdominal apex; H. lateral view of abdominal apex.
FIGURE 1 in Notes on the taxonomy revision of poorly known of tribe Eremini Cadena-Castañeda, 2019 from China (Orthoptera: Gryllacrididae: Gryllacridinae)
FIGURE 1. Holotype of Eremus rugosifrons. A. lateral view of body; B. dorsal view of body; C. ventral view of body; D. face; E. abdominal apex; F. syntype labels. Scale: 1 cm. © by Natural History Museum Vienna, NOaS Image Collection / Harald Bruckner; published with permission.
FIGURE 6 in Notes on the taxonomy revision of poorly known of tribe Eremini Cadena-Castañeda, 2019 from China (Orthoptera: Gryllacrididae: Gryllacridinae)
FIGURE 6. Natural history of Haplogryllacris bilobulata Ingrish, 2018. A. penultimate instar male; B. penultimate instar female; C. last instar male; D. last instar female; E. nymph in the shelter excavated from rotten wood; F. emergency exit on the rotten wood; G. adult female consuming a roach; H. mating; I. adult female consuming spermatophylax; J. laying eggs in wet phenolic floral foams; K. egg; L. hatchling consuming tree cricket; M. junior nymph.
Article dataset: Taxonomy of Open Science: revised and expanded
<p>Conjunto de dados do artigo: <strong>Taxonomia da Ciência Aberta: revisada e ampliada </strong></p>
FIGURES 82–92 in On the taxonomy of the jumping spider genus Matinta Ruiz & Maddison, 2019, with a taxonomic revision of the vicana species-group (Araneae: Salticidae: Amycini)
FIGURES 82–92. Matinta spp., left chelicera teeth, retrolateral view. 82–83 M. opiparis Simon (82 male; 83 female). 84 M. fonsecai Soares & Camargo, male. 85–86 M. silvae Crane (85 male; 86 female). 87 M. vicana Simon, male. 88–89 M. maddisoni sp. nov. (88 male; 89 female). 90 M. pereirae sp. nov., male. 91 M. aragog sp. nov., male. 92 M. tatianae sp. nov., male. All illustrations in same scale, except for M. tatianae (92). Colors indicate tooth rows: promarginal (blue), retromarginal (orange), prointermarginal (red) and retrointermarginal (green).
FIGURES 75–81 in On the taxonomy of the jumping spider genus Matinta Ruiz & Maddison, 2019, with a taxonomic revision of the vicana species-group (Araneae: Salticidae: Amycini)
FIGURES 75–81. Matinta spp., male chelicerae, frontal view. 75 M. fonsecai Soares & Camargo. 76 M. vicana Simon. 77 M. pereirae sp. nov. 78–79 M. aragog sp. nov. 80 M. maddisoni sp. nov. 81 M. tatianae sp. nov. Arrow in 79 shows bump on fang and in 80 the paracondylic projection.
FIGURES 69–74 in On the taxonomy of the jumping spider genus Matinta Ruiz & Maddison, 2019, with a taxonomic revision of the vicana species-group (Araneae: Salticidae: Amycini)
FIGURES 69–74. Matinta spp., chelicerae, frontal view. 69–70 M. opiparis Simon (69 male; 70 female). 71–72 M. silvae Crane (71 male; 72 female). 73–74 M. maddisoni sp. nov. (73 male; 74 female). Arrow in 71 shows paracondylic projection.
FIGURES 66–68. M in On the taxonomy of the jumping spider genus Matinta Ruiz & Maddison, 2019, with a taxonomic revision of the vicana species-group (Araneae: Salticidae: Amycini)
FIGURES 66–68. M. tatianae sp. nov. 66–67 male holotype (66 dorsal view; 67 ventral view). 68 male paratype from Paragominas, laterofrontal view.
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.