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Figure 15 in The resurrection of Cerasommatidiidae, an enigmatic group of coccinelloid beetles (Coleoptera: Coccinelloidea) based on molecular and morphological evidence
Figure 15. Morphology of Yamuy constratus sp. nov. A, head, ventral. B, head, dorso-frontal. C, left half of pronotum (arrow: reduced pronotal internal carina). D, prothorax, ventral (arrow: protrochanter). E, mesotarsus, ventral. F, left elytron, dorsal. G, meso- and metaventrite, ventral (arrow: mesotrochanter). H, abdomen, ventral.
Figure 11 in The resurrection of Cerasommatidiidae, an enigmatic group of coccinelloid beetles (Coleoptera: Coccinelloidea) based on molecular and morphological evidence
Figure 11. Morphology of Karumbe pakaluki sp. nov. A, antenna, dorsal. B, pronotum [arrows: pronotal anterior margin (pr am), pronotal internal lateral carina (pr car), pronotal posterolateral angle (pr ang)]. C, prosternum. D, detail of elytron, dorsal [arrows: setiferous puncture (set pun), foveate puncture (fov pun)]. E, metatarsus, dorsal. F, meso- metaventrite and first abdominal ventrite [arrow: abdominal postcoxal line (abd lin)].
Figure 3 in The resurrection of Cerasommatidiidae, an enigmatic group of coccinelloid beetles (Coleoptera: Coccinelloidea) based on molecular and morphological evidence
Figure 3. Morphology of Cerasommatidia spp. A, Cerasommatidia arroaei holotype, dorsal habitus of dismembered specimen. B, Cerasommatidia plaumanni paratype, dorsal habitus. C–E, Cerasommatidia plaumanni: C, head, dorsal. D, meso- and metaventral structures. E, abdomen with male terminalia and genitalia partially visible through the abdominal ventrites. F, Cerasommatidia arroaei male genitalia. Scale bars: 1 mm.
Figure 13 in The resurrection of Cerasommatidiidae, an enigmatic group of coccinelloid beetles (Coleoptera: Coccinelloidea) based on molecular and morphological evidence
Figure 13. Morphology of Yamuy gen. nov. A, Yamuy marginatus sp. nov. B–F, Yamuy constratus sp. nov.: B, labrum, dorsal. C, maxilla, ventral. D, meso- and metaventrite. E, mandible, ventral. F, terminal metatarsomere and claws.
Figure 6. Karumbe gen. nov. A, B in The resurrection of Cerasommatidiidae, an enigmatic group of coccinelloid beetles (Coleoptera: Coccinelloidea) based on molecular and morphological evidence
Figure 6. Karumbe gen. nov. A, B, Karumbe brethesi sp. nov.: A, habitus dorsal. B, habitus lateral. C, D, Karumbe geiseri sp. nov.: C, habitus dorsal. D, habitus lateral. E, F, Karumbe pakaluki sp. nov.: E, habitus dorsal. F, habitus lateral. Scale bars: 1mm.
Figure 12. Yamuy gen. nov. A, B in The resurrection of Cerasommatidiidae, an enigmatic group of coccinelloid beetles (Coleoptera: Coccinelloidea) based on molecular and morphological evidence
Figure 12. Yamuy gen. nov. A, B, Yamuy constratus sp. nov.: A, habitus dorsal. B, habitus lateral. C, D, Yamuy marginatus sp. nov.: C, habitus dorsal. D, habitus lateral. Scale bars: 1mm.
Figure 1 in The resurrection of Cerasommatidiidae, an enigmatic group of coccinelloid beetles (Coleoptera: Coccinelloidea) based on molecular and morphological evidence
Figure 1. Results of the phylogenetic analysis of molecular data under Bayesian inference showing the position of Cerasommatidiidae status restored within Coccinelloidea. A summary tree of our molecular phylogenetic analyses using 236 taxa. Clades for each family/subfamily are collapsed. Statistical support for branches show posterior probabilities. The full-resolution tree is provided as in Supporting Information, File S11. Habitus pictures of the Cerasommatidiidae: MahaƲelo madagasus sp. nov. (lateral) and Yamuy marginatus sp. nov. (dorsal).
Figure 5 in The resurrection of Cerasommatidiidae, an enigmatic group of coccinelloid beetles (Coleoptera: Coccinelloidea) based on molecular and morphological evidence
Figure 5. Morphology of Cerasommatidia plaumanni. A, head, dorsal. B, head, ventral. C, pronotum (arrow: posterior margin of pronotum). D, prosternum. E, antenna. F, mesotarsus. G, left elytron, dorsal. H, meso- and metaventrite, and first abdominal ventrite (arrow: postcoxal line).
Figure 9 in The resurrection of Cerasommatidiidae, an enigmatic group of coccinelloid beetles (Coleoptera: Coccinelloidea) based on molecular and morphological evidence
Figure 9. Morphology of Karumbe brethesi sp. nov. A, head, frontal. B, head, ventral. C, right half of pronotum (black arrow: crenulate anterior margin; white arrow: indentation at posterolateral angle of pronotum). D, prosternum. E, detail of elytron, dorsal (arrow: peculiar punctures). F, metaventrite (arrow: large punctures at the centre of metaventrite).
Figure 10 in The resurrection of Cerasommatidiidae, an enigmatic group of coccinelloid beetles (Coleoptera: Coccinelloidea) based on molecular and morphological evidence
Figure 10. Morphology of Karumbe geiseri sp. nov. A, mouthparts, ventral. B, prosternum. C, pronotum (arrow: crenulate anterior margin). D, protarsus. E, meso- and metaventrite (arrow: fine punctures at the centre of metaventrite). F, metacoxa and metatrochanter, lateral, first abdominal ventrite (arrow: postcoxal line).
Figure 4 in The resurrection of Cerasommatidiidae, an enigmatic group of coccinelloid beetles (Coleoptera: Coccinelloidea) based on molecular and morphological evidence
Figure 4. Morphology of Cerasommatidia arroaei. A, head, dorsal. B, pronotum (arrow: posterior margin of pronotum). C, left elytron, dorsal. D, details of elytral surface. E, metaventrite. F, metatarsus. G, abdomen, ventral (arrow: postcoxal line).
Figure 8 in The resurrection of Cerasommatidiidae, an enigmatic group of coccinelloid beetles (Coleoptera: Coccinelloidea) based on molecular and morphological evidence
Figure 8. Terminalia of Karumbe gen. nov. A–C, Karumbe geiseri sp. nov.: A, male genital segment, ventro-lateral view. B, aedeagus, ventral. C, female genitalia. D–F, Karumbe pakaluki sp. nov.: D, male genital segment, ventro-lateral view. E, aedeagus, ventral. F, apex of bursa copulatrix and spermatheca. G, Karumbe brethesi sp. nov., female genitalia.
FIG. 4 in The Macaronesian liverwort Riccia boumanii Dirkse, Losada & M.Stech (Marchantiophyta: Ricciaceae) confirmed new to Asia by morphological and molecular evidence
FIG. 4. — Habitat of Riccia boumanii Dirkse, Losada & M.Stech in Huahaizi, Haizigou, Siguniang Mountains Nature Reserve, Sichuan, China. The population was found around the lake.
FIG. 3 in The Macaronesian liverwort Riccia boumanii Dirkse, Losada & M.Stech (Marchantiophyta: Ricciaceae) confirmed new to Asia by morphological and molecular evidence
FIG. 3. — Distribution of Riccia boumanii Dirkse, Losada & M.Stech (red dots), based on data from Dirkse et al. (2016) and this study. The distribution in the Canary Islands is shown in the black rectangle.
FIG. 2 in The Macaronesian liverwort Riccia boumanii Dirkse, Losada & M.Stech (Marchantiophyta: Ricciaceae) confirmed new to Asia by morphological and molecular evidence
FIG. 2. — Riccia boumanii Dirkse, Losada & M.Stech: A, habit in the field; B-G, light microscopy micrographs; B-E, transverse section of segments; D, showing the dorsal hyaline epithelial cells; F, proximal face of spore; G, distal face of spore; H, I, SEM micrographs of spores; H, distal face; I, proximal face. All from R.L. Zhu 20160816-14C (HSNU). Scale bars: A, 2 mm; B, C, 500 μm; D, 100 μm; E, 200 μm; F-I, 50 μm.
FIG. 4 in Morphological and molecular evidence for synonymy of Cinclidotus confertus Lüth with C. riparius (Host ex Brid.) Arn.
FIG. 4. — Capsule of C. confertus Lüth (T. Kiebacher 930) with reddish-brown peristome. Photo: T. Kiebacher.
FIG. 3 in Morphological and molecular evidence for synonymy of Cinclidotus confertus Lüth with C. riparius (Host ex Brid.) Arn.
FIG. 3. — Basal part of the peristome of A, Cinclidotus riparius (Host ex Brid.) Arn. (Lectotype of Trichostomum nigricans Brid., B 31 017701-1) and B, C. confertus Lüth (T. Kiebacher 930). Scales bars: 10 µm. Photos: T. Kiebacher.
FIG. 2 in Morphological and molecular evidence for synonymy of Cinclidotus confertus Lüth with C. riparius (Host ex Brid.) Arn.
FIG. 2. — Habit of A, Cinclidotus riparius (Host ex Brid.) Arn. (Lectotype of Trichostomum nigricans Brid., B 31 017701-1) and B, C. confertus Lüth (T.Kiebacher 930). Scale bars: 1 cm. Photos: T. Kiebacher.
FIG. 1 in Morphological and molecular evidence for synonymy of Cinclidotus confertus Lüth with C. riparius (Host ex Brid.) Arn.
FIG. 1. — Cinclidotus confertus Lüth at the type locality in Vikos Gorge (Epirus, Greece): A, Bolder where the type specimen was collected in 2000; B, Sporophyte bearing cushion of C. confertus. Photos: M. Lüth.
Revisiting of Carex sect. Confertiflorae s.l. (Cyperaceae): new data from molecular and morphological evidence and first insights on Carex biogeography in East Asia
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Allen Brain Atlas
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Annotated Behaviour and Observability Dataset (ABODe)
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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.