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557 results for “new subtribes”
FIGURE 1 in New taxa of the subtribe Lebinthina (Orthoptera: Gryllidae: Eneopterinae Lebinthini) from New Guinea and nearby islands
FIGURE 1. Gnominthus milneus sp. nov. habitus. Male habitus in dorsal (A) and lateral (B) views; female habitus in dorsal view (C). Scale bar = 10 mm.
FIGURE 8 in New taxa of the subtribe Lebinthina (Orthoptera: Gryllidae: Eneopterinae Lebinthini) from New Guinea and nearby islands
FIGURE 8. Macrobinthus mamai sp. nov. morphology. Head dorsum in dorsal view (A); face in anterior view (B); head, pronotum and FWs in lateral view (C); male FW in dorsal view (D). Scale bar = 1 mm.
FIGURE 11 in New taxa of the subtribe Lebinthina (Orthoptera: Gryllidae: Eneopterinae Lebinthini) from New Guinea and nearby islands
FIGURE 11. Microbinthus elegans sp. nov. male genitalia in dorsal (A), ventral (B) and lateral (C) views. Scale bar = 1 mm.
FIGURE 5 in New taxa of the subtribe Lebinthina (Orthoptera: Gryllidae: Eneopterinae Lebinthini) from New Guinea and nearby islands
FIGURE 5. Macrobinthus kei sp. nov. morphology. Head dorsum in dorsal view (A); face in anterior view (B); head, pronotum and FWs in lateral view (C); male FW in dorsal view (D). Scale bar = 1 mm.
A new phylogenetic hypothesis for Cereinae (Cactaceae) points to a monophyletic subtribe
<p>Cereinae comprises 14 genera distributed in Neotropical dry forest formations such as in the Caatingas of Northeastern or in rocky outcrops in the north of Southeastern Brazil. Historically, the taxonomy of the group has been very controversial, especially regarding generic circumscriptions, and phylogenetic relationships within the group are still poorly understood. To investigate the delimitation of the subtribe and infra-subtribal relationships, we performed a phylogenetic analysis including 50 taxa representing 13 genera using one nuclear (<i>PhyC</i>) and four cpDNA (<i>petL-psbE</i>, <i>trnL-trnT</i>, <i>trnS-trnG</i>, and <i>rpl16</i>) regions. Our results show a monophyletic Cereinae with high support in Bayesian, maximum parsimony, and maximum likelihood analyses based on combined matrices. Although our results expand the knowledge of generic relationships, we emphasize the need for further molecular phylogenetic studies combined with ecological evidence to clarify relationships at the more inclusive nodes of the subtribe.</p>
FIGURES 25 in Dilacera, a new astonishing Amazonian genus of termitophilous rove beetle (Staphylinidae: Aleocharinae: Termitonannini) and updated checklist of the subtribe Termitonannina with their termite hosts
FIGURES 25– 31. Dilacera exokosmos Zilberman & Pires-Silva gen. et sp. nov., female. 25, paratergites and tergite VII; 26, sternite VII; 27, tergite X and sternite IX; 28, sternite IX (one side); 29, tergite X; 30, tergite VIII; 31, spermatheca. Scale bars = 0.01 mm
FIGURES 32 in Dilacera, a new astonishing Amazonian genus of termitophilous rove beetle (Staphylinidae: Aleocharinae: Termitonannini) and updated checklist of the subtribe Termitonannina with their termite hosts
FIGURES 32– 39. Dilacera exokosmos Zilberman & Pires-Silva gen. et sp. nov. schemes, 32, maxilla; 33, labrum; 34, tergite VIII (male); 35, tergite VIII (female); 36, tergite VII and paratergites VII; 37, sternite VII; 38, pronotum (male); 39, pronotum (female).
FIGURES 7 in Dilacera, a new astonishing Amazonian genus of termitophilous rove beetle (Staphylinidae: Aleocharinae: Termitonannini) and updated checklist of the subtribe Termitonannina with their termite hosts
FIGURES 7– 24. Dilacera exokosmos Zilberman & Pires-Silva gen. et sp. nov., female. 7, mandibles; 8, antenna; 9, labrum; 10, prementum; 11, maxilla; 12, pronotum; 13, prosternum; 14, meso- metasternum; 15, metendesternite; 16, meso- metanotum; 17, scutellum; 18, elytron; 19, proleg; 20, protarsus; 21, mesoleg; 22, mesotarsus; 23, metaleg; 24, metatarsus. Scale bars = 0.004 mm (9), 0.005 mm (7, 8, 10– 18, 20, 22, 24), 0.02 (19, 21, 23).
FIGURES 3 in Dilacera, a new astonishing Amazonian genus of termitophilous rove beetle (Staphylinidae: Aleocharinae: Termitonannini) and updated checklist of the subtribe Termitonannina with their termite hosts
FIGURES 3– 4. Dilacera exokosmos Zilberman & Pires-Silva gen. et sp. nov., habitus lateral. 3, male; 4, female. Both are about 4.5 mm in body length, with the abdomen distended.
FIGURES 5 in Dilacera, a new astonishing Amazonian genus of termitophilous rove beetle (Staphylinidae: Aleocharinae: Termitonannini) and updated checklist of the subtribe Termitonannina with their termite hosts
FIGURES 5– 6. Dilacera exokosmos Zilberman & Pires-Silva gen. et sp. nov., habitus ventral. 5, male; 6, female. Both are about 4.5 mm in body length, with the abdomen distended.
FIGURES 1 in Dilacera, a new astonishing Amazonian genus of termitophilous rove beetle (Staphylinidae: Aleocharinae: Termitonannini) and updated checklist of the subtribe Termitonannina with their termite hosts
FIGURES 1– 2. Dilacera exokosmos Zilberman & Pires-Silva gen. et sp. nov., habitus dorsal. 1, male; 2, female. Both are about 4.5 mm in body length, with the abdomen distended.
Fig. 6 in Discovery of New Genera Challenges the Subtribal Classification of Tok-Tok Beetles (Coleoptera: Tenebrionidae: Sepidiini)
Fig. 6. Female terminalia of species representing newly established genera. (A–D) Tibiocnodes lucidus; (E–G) Tuberocnodes synhimboides. (A, B) Ovipositor; (C, G) spiculum ventrale; (D) proctiger. c, coxites; c2–c4, coxite plates 2–4; ip, inner plate of paraproct; op, outer plate of paraproct; v, valvifer.
Fig. 3 in Discovery of New Genera Challenges the Subtribal Classification of Tok-Tok Beetles (Coleoptera: Tenebrionidae: Sepidiini)
Fig. 3. Dorsal habitus and morphological features of specimens representing the following species: (A) Tibiocnodes tristis (Fåhraeus, 1870); (B) Tibiocnodes lucidus (Fåhraeus, 1870); (C) Tibiocnodes spinosus (Haag-Rutenberg,1871); (D) Ocnodes similis (Péringuey, 1899); (E) Tuberocnodes humeralis (Haag-Rutenberg, 1871); (F) Tuberocnodes procursus (Péringuey, 1899); (G) Tuberocnodes synhimboides sp. nov.—paratype. es, elytral slope; mt, metatarsi; pn, pronotum; pt, protibia; r, protibial ridge.
Fig. 2 in Discovery of New Genera Challenges the Subtribal Classification of Tok-Tok Beetles (Coleoptera: Tenebrionidae: Sepidiini)
Fig. 2. Morphology of the genus Tuberocnodes: (A) paratype of Tuberocnodes warmeloi (Koch, 1953) comb. nov. (from TMNH); (B) laterally exposed and covered with microtubercles epipleuron of Tuberocnodes synhimboides. es, elytral slope; pn, pronotum.
Fig. 5 in Discovery of New Genera Challenges the Subtribal Classification of Tok-Tok Beetles (Coleoptera: Tenebrionidae: Sepidiini)
Fig. 5. Spectrograms illustrating differences between two different Molurina species tapping. Both plots were generated based on videos of beetles kept in captivity: Tuberocnodes synhimboides (Supp Movie S1 [online only]) and Toktokkus vialis (Kamiński et al. 2021a). Sex of the beetles in both cases remain unknown. Contrary to To. vialis, the recorded individual of T. synhimboides is producing sound in a series of four to five hits.
Fig. 4 in Discovery of New Genera Challenges the Subtribal Classification of Tok-Tok Beetles (Coleoptera: Tenebrionidae: Sepidiini)
Fig. 4. Examples of morphological characters used by Koch (1955) to separate Molurina and Phanerotomeina. Margination of the fifth ventrite (A: Distretus amplipennis; B: Ocnodes similis, with margination on only one side of the ventrite); protibia (C: O. similis, D: Toktokkus vialis); differences in facial structure (O. M. Gearner and M. J. Kamiński, personal observations; note: not used by Koch, 1955) (E: Psammodes pinguis, F: O. similis); apex of metatibia (G: P. pinguis; H: O. similis); setation on tibiae (I: P. pinguis, J: O. similis); metatarsi (K: O. similis; L: P. pinguis).
FIGURES 42–43 in hips of Epidrepanus within the subtribe Drepanocerina (Coleoptera: Scarabaeidae: Scarabaeinae: Oniticellini), with the description of two new species
FIGURES 42–43. Scatterplots of the first two relative warps (relative warps). 42, epipharynx, the deformation grids of 3, 4, 11, 12, 13, and 14 operational taxonomic units are shown. 43, hindwing, the deformation grids of 4, 6, 7, 14, and 15 operational taxonomic units are shown. In both plots the taxa are numbered the same: Anoplodrepanus (1), Afrodrepanus (2), Clypeodrepanus (3), Cyptochirus (4), Drepanocerus (5), Eodrepanus (6), Epidrepanus caelatus (7), E. pulvinarius (8), E. schimperi (9), E. nyika (10), E. kenyensis (11), Ixodina (12), Latodrepanus (13), Paraixodina (14), Sinodrepanus (15), and Tibiodrepanus (16). The Epidrepanus species are marked in orange on the plot.
FIGURES 29–33 in hips of Epidrepanus within the subtribe Drepanocerina (Coleoptera: Scarabaeidae: Scarabaeinae: Oniticellini), with the description of two new species
FIGURES 29–33. Hindwing (scale bar = 1.0 mm). 29, Epidrepanus caelatus. 30, E. nyika. 31, E. kenyensis. 32, E. pulvinarius. 33, E. schimperi.
FIGURES 36–41. Epidrepanus kenyensis. 36 in hips of Epidrepanus within the subtribe Drepanocerina (Coleoptera: Scarabaeidae: Scarabaeinae: Oniticellini), with the description of two new species
FIGURES 36–41. Epidrepanus kenyensis. 36, habitus of the holotype, Nyeri County Aberdare National Park, Ark Gate, Afromontane moist transitional forest (scale bar = 2.0 mm). 37–39, aedeagus, with the side and ventral views of the parameres (scale bars = 0.2 mm). 40, vagina and receptaculum seminis (scale bar = 0.2 mm). 41, lamellae of endophallus, with the detail of the lamella copulatrix (scale bar = 0.2 mm).
FIGURE 44 in hips of Epidrepanus within the subtribe Drepanocerina (Coleoptera: Scarabaeidae: Scarabaeinae: Oniticellini), with the description of two new species
FIGURE 44. Phylogenetic tree of the drepanocerine taxa, with the Epidrepanus species marked in orange. The branch support values were showed on the tree: the Bremer supports / relative Bremer supports, and the symmetric resampling / GC values. Tree statistics: tree length = 113.182, consistency index = 0.549, retention index = 0.583, total fit = 241.06, adjusted homoplasy = 11.94.
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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.