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Fig. 36 in Preliminary re-examination of genus-level taxonomy of the pollen beetle subfamily Meligethinae (Coleoptera: Nitidulidae)
Fig. 36. Cryptarchopria Jelínek, 1975: a–f, h–r – C. kabakowi Kirejtshuk, 1979; g – C. infima (Grouvelle, 1895). a, b – male habitus variation; c – prosternal process; d–e – male antennal club variation; f – female antennal club; g – ventral view of head and prosternum; h – male protibia; i–n – lateral and dorsal view of male genitalia; o – male mesofemur; p – male mesotibia; q – male pygidium; r – ovipositor. Drawings a–f, h–r modified from KIREJTSHUK (1979b); drawing g modified from JELÍNEK (2000a)). Refer to KIREJTSHUK (1979b) and to JELÍNEK (2000a) for scale.
Fig. 37. Pria Stephens, 1830 in Preliminary re-examination of genus-level taxonomy of the pollen beetle subfamily Meligethinae (Coleoptera: Nitidulidae)
Fig. 37. Pria Stephens, 1830: a–k – P. dulcamarae (Scopoli, 1763). a – male habitus (length 2.0 mm); b – dorsal view of head; c – ventral view of head; d – ventral view of prosternum; e – anterior portion of scutellum and microsetae on middle posterior margin of pronotum; f – caudal marginal line of metacoxal cavity; g – exposed portion of last ventral visible abdominal ventrite; h – middle tibia; k – female antennal club. Scale bars: Figs. b, f = 100 μm; Fig. e = 20 μm; Figs. h, k = 30 μm.
Fig. 39. Cornutopria S in Preliminary re-examination of genus-level taxonomy of the pollen beetle subfamily Meligethinae (Coleoptera: Nitidulidae)
Fig. 39. Cornutopria S. Endrödy-Younga, 1978: a–f – C. basilewskyi S. Endrödy-Younga, 1978. a – dorsal view of male head and first three antennomeres; b – male antennal club and antennomeres 4–11; c – mentum; d – dorsal view of aedeagus; e–f – dorsal and lateral view of male pygidium. All drawings modified from ENDRÖDY-YOUNGA (1978). Refer to ENDRÖDY-YOUNGA (1978) for scale.
Abb. 3 in Die "Seelchen" Oberösterreichs mit Angaben zur Determination und Taxonomie (Lepidoptera, Psychidae)
Abb. 3: Rebelia cf. kruegeri danubiella aus der Sammlung LI. (A) Ansicht von oben und (B) von der Seite, (C) Etikett (links Ober-, rechts Unterseite). Fotos: E. Hauser.
Abb. 2 in Die "Seelchen" Oberösterreichs mit Angaben zur Determination und Taxonomie (Lepidoptera, Psychidae)
Abb. 2: Narycia astrella aus der Sammlung J. Klimesch. Links Männchen: "Austria superior, Linz Koglerau, 17.6.1947, J. Klimesch". Rechts Weibchen mit dem Sack, aus dem die Puppenhülle ragt: "Austria superior, Linz, Umgebung Kogl, el. [=ex larva] 6.6.48, J. Klimesch". Beide haben weissliche Stirnschuppen. Foto: E. Hauser.
FIG. 12 in Phylogenetic Relationships of New World Porcupines (Rodentia, Erethizontidae): Implications for Taxonomy, Morphological Evolution, and Biogeography
FIG. 12. Maximum-likelihood reconstruction of geographic range evolution for the erethizontid crown clade. See table 1 (footnote) for range descriptors and table 8 for divergence-date estimates.
FIG. 10 in Phylogenetic Relationships of New World Porcupines (Rodentia, Erethizontidae): Implications for Taxonomy, Morphological Evolution, and Biogeography
FIG. 10. Coendou prehensilis with erected cranial quills. The inflated nasofrontal sinuses of this species provide increased surface area for quill deployment, and their convex margins allow erected quills to point anteriorly and laterally to protect adjacent soft tissues. Photographed at the Frankfurt Zoo in 2008 (courtesy of Marek Polster).
FIG. 9 in Phylogenetic Relationships of New World Porcupines (Rodentia, Erethizontidae): Implications for Taxonomy, Morphological Evolution, and Biogeography
FIG. 9. Maximum-likelihood reconstructions of ancestral phenotypes for three morphological characters of Recent erethizontids. Branch tips representing species of Coendou are labeled with corresponding epithets only. See text for character definitions and scoring criteria and table 8 for divergence-date estimates. Pie diagrams at internal nodes represent estimated probabilities of alternative states.
FIG. 8 in Phylogenetic Relationships of New World Porcupines (Rodentia, Erethizontidae): Implications for Taxonomy, Morphological Evolution, and Biogeography
FIG. 8. Lateral cranial views: A, Coendou prehensilis (AMNH 134064); B, C. melanurus (AMNH 266565). The inflated nasofrontal sinuses of C. prehensilis (type species of the genus Coendou) result in a strongly convex dorsal profile by contrast with the flat dorsal profile of C. melanurus (referred to Sphiggurus by some authors; see text). Both skulls are life size (×1).
FIG. 7 in Phylogenetic Relationships of New World Porcupines (Rodentia, Erethizontidae): Implications for Taxonomy, Morphological Evolution, and Biogeography
FIG. 7. Coendou rufescens (FMNH 88524), previously referred to Echinoprocta by many authors. This is a shorttailed species that (like C. prehensilis) appears completely spiny because the quills conceal its short, sparse fur.
FIG. 6 in Phylogenetic Relationships of New World Porcupines (Rodentia, Erethizontidae): Implications for Taxonomy, Morphological Evolution, and Biogeography
FIG. 6. Coendou melanurus (AMNH 266565), referred to Sphiggurus by Husson (1978) and other authors. This is a long-tailed species in which the quills are concealed beneath long, dense fur.
FIG. 5 in Phylogenetic Relationships of New World Porcupines (Rodentia, Erethizontidae): Implications for Taxonomy, Morphological Evolution, and Biogeography
FIG. 5. Coendou prehensilis (INPA 2875), the type species of Coendou. This is a long-tailed species that appears completely spiny because the quills conceal its short, sparse fur.
FIG. 4. Maximum-likelihood phylogeny for 45 in Phylogenetic Relationships of New World Porcupines (Rodentia, Erethizontidae): Implications for Taxonomy, Morphological Evolution, and Biogeography
FIG. 4. Maximum-likelihood phylogeny for 45 ingroup (erethizontid) terminals; outgroup taxa are not shown. Labeling conventions and nodal support statistics are the same as in figure 3. Capital letters (A, B, C) indicate unnamed clades discussed in the text.
FIG. 3 in Phylogenetic Relationships of New World Porcupines (Rodentia, Erethizontidae): Implications for Taxonomy, Morphological Evolution, and Biogeography
FIG. 3. Strict consensus of 14 equally most-parsimonious trees for 29 unique erethizontid cytochrome-b haplotypes (only ingroup relationships are shown). Sequenced specimens of Coendou are identified by country of origin, next-largest political unit (state, department, or province), collection locality number (mapped in fig. 1), and an alphanumeric identifier (tissue, voucher, or GenBank accession number; see tables 2 and 3). Nodal support values are bootstrap percentages.
FIG. 1 in Phylogenetic Relationships of New World Porcupines (Rodentia, Erethizontidae): Implications for Taxonomy, Morphological Evolution, and Biogeography
FIG. 1. Collection localities of sequenced specimens of Neotropical erethizontids (Chaetomys and Coendou). See gazetteer (appendix 1) for geographic coordinates and other information.
Figs. 15–16 in On the taxonomy of Myrmicaria Saunders, 1842 (Hymenoptera: Formicidae) in the Philippines
Figs. 15–16. Holotype worker of Myrmicaria transversa new species: (15) head in full-face view; (16) postpetiole and base of gaster tergite 1 in dorsal view.
Figs. 13–14 in On the taxonomy of Myrmicaria Saunders, 1842 (Hymenoptera: Formicidae) in the Philippines
Figs. 13–14. Holotype worker of Myrmicaria transversa new species in lateral (13) and dorsal (14) view.
Figs. 7–8 in On the taxonomy of Myrmicaria Saunders, 1842 (Hymenoptera: Formicidae) in the Philippines
Figs. 7–8. Holotype worker of Myrmicaria buenaventei new species: (7) head in full-face view; (8) postpetiole and base of gaster tergite 1 in dorsal view.
Figs. 3–4 in On the taxonomy of Myrmicaria Saunders, 1842 (Hymenoptera: Formicidae) in the Philippines
Figs. 3–4. Non-type worker of Myrmicaria aphidicola from Bukidnon: (3) head in full-face view; (4) postpetiole and base of gaster tergite 1 in dorsal view.
Figs. 1–2 in On the taxonomy of Myrmicaria Saunders, 1842 (Hymenoptera: Formicidae) in the Philippines
Figs. 1–2. Non-type worker of Myrmicaria aphidicola from Bukidnon in lateral (1) and dorsal (2) view.
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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.