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Fig. 2 in A new Oriental genus of bostrichid beetle (Coleoptera: Bostrichidae: Xyloperthini), a new synonym and a lectotype designation for Octodesmus episternalis (Lesne, 1901)
Fig. 2. Octomeristes pusillus Liu & Beaver, gen. et sp. nov., paratype, ♀ (LYL). A. Lateral view. B. Ventral view. C. Posterior view of elytral declivity. D. Proleg showing long, curling hairs on ventral side of tarsi and dense, fine hairs on inner face of tibia. E. Latero-ventral view of abdomen showing modified 3rd to 5th ventrites. F. Ventral view of abdomen. Scale bars: A–B = 1 mm; C–F = 0.5 mm (in
Fig. 3 in A new Oriental genus of bostrichid beetle (Coleoptera: Bostrichidae: Xyloperthini), a new synonym and a lectotype designation for Octodesmus episternalis (Lesne, 1901)
Fig. 3. Octomeristes pusillus Liu & Beaver, gen. et sp. nov., paratype, ³ (KSU). A. Lateral view. B. Postero-lateral view of elytral declivity. C. Ventral view of abdomen. D. Proleg showing short, straight hairs on tarsi. Scale bars: A = 1 mm; B–D = 0.5 mm.
Fig. 1 in A new Oriental genus of bostrichid beetle (Coleoptera: Bostrichidae: Xyloperthini), a new synonym and a lectotype designation for Octodesmus episternalis (Lesne, 1901)
Fig. 1. Octomeristes pusillus Liu & Beaver, gen. et sp. nov., paratype (LYL). A. Dorsal view. B. Front view of head and right antenna. C. Antenna showing position of impressed sensory areas on 6th and 7th antennomeres. Scale bars: A = 1 mm; B–C = 0.5 mm.
Fig. 11. Bayesian inference trees. A. 16S rRNA dataset. B. Cytochrome oxidase I in Designation of a neotype for Myxicola infundibulum (Montagu, 1808) (Annelida: Sabellidae) and a new species from the UK
Fig. 11. Bayesian inference trees. A. 16S rRNA dataset. B. Cytochrome oxidase I gene dataset. The first value at each node represents maximum likelihood bootstrap support, the second the Bayesian posterior probabilities and the third the maximum parsimony bootstrap support.
Fig. 10 in Designation of a neotype for Myxicola infundibulum (Montagu, 1808) (Annelida: Sabellidae) and a new species from the UK
Fig. 10. Myxicola polychroma sp. nov. A. Radiole tip illustrating basal membrane and extent of pinnulae (NMW.Z.2019.023.0024). B. Cross-section of radiole (NMW.Z.2019.023.0018). C–G. NMW.Z.2019.023.0024. C. Dorsal lips, ventral lips and radiolar lobes. D. Anterodorsal view showing ventral lobe and glandular ridge. E. Thoracic chaeta, chaetiger 4. F. Thoracic uncinus, chaetiger 4. G. Abdominal uncinus, chaetiger 12. Scale bars: A, C–D = 1 mm; B = 100 µm; E–F = 50 µm; G = 20 µm.
Fig. 8 in Designation of a neotype for Myxicola infundibulum (Montagu, 1808) (Annelida: Sabellidae) and a new species from the UK
Fig. 8. Myxicola polychroma sp. nov. A. Anterodorsal view (NMW.Z.2019.023.0023). B. Anterodorsal view (holotype, NMW.Z.2019.023.0015). C. Radiolar tips (NMW.Z.2019.023.0024). D. Dorsal and ventral lips (NMW.Z.2019.023.0023). E. Anterolateral view (NMW.Z.2019.023.0023). F. Tube. Scale bars: A, F = 10 mm; B–C = 5 mm; D–E = 1 mm.
Fig. 7 in Designation of a neotype for Myxicola infundibulum (Montagu, 1808) (Annelida: Sabellidae) and a new species from the UK
Fig. 7. Images of live Myxicola polychroma sp. nov. demonstrating different colour morphs. A. White crown, Martin's Haven, Wales. B. Orange crown, Martin's Haven, Wales. C. Green crown, Loch Duich, Scotland. D. Orange body, Loch Duich, Scotland. E. White-cream body, Loch Duich, Scotland. Photos courtesy of Rhian Lewis James (A–B) and Chris Rickard (C–E).
Fig. 9 in Designation of a neotype for Myxicola infundibulum (Montagu, 1808) (Annelida: Sabellidae) and a new species from the UK
Fig. 9. Myxicola polychroma sp. nov., NMW.Z.2019.023.0024. A. Thoracic chaetae, chaetiger 4, white arrow indicates thoracic uncini. B. Thoracic uncini, chaetiger 4. C. Abdominal chaetae, chaetiger 11. D. Abdominal uncini, top view. E. Abdominal uncini, lateral view. Scale bars: A = 100 µm; B, D–E = 10 µm; C = 50 µm.
Fig. 5 in Designation of a neotype for Myxicola infundibulum (Montagu, 1808) (Annelida: Sabellidae) and a new species from the UK
Fig. 5. Myxicola infundibulum (Montagu, 1808), NMW.Z.2019.023.0002. A. Thoracic chaetae, chaetiger 1. B. Thoracic chaetae, chaetiger 4, white arrow indicates thoracic uncini. C. Thoracic uncini, chaetiger 4. D. Abdominal uncini, chaetiger 9. Scale bars: A = 200 µm; B = 20 µm; C–D = 10 µm.
Fig. 3 in Designation of a neotype for Myxicola infundibulum (Montagu, 1808) (Annelida: Sabellidae) and a new species from the UK
Fig. 3. Images of live Myxicola infundibulum (Montagu, 1808) demonstrating different colour morphs. A. White crown, Portland Harbour, England. B. Pink crown, Portland Harbour, England. C. Red crown, Gann Flats, Wales. D. Cream-yellow body, Kingsbridge estuary, England. E. Orange body, Kingsbridge estuary, England.
Fig. 4 in Designation of a neotype for Myxicola infundibulum (Montagu, 1808) (Annelida: Sabellidae) and a new species from the UK
Fig. 4. Myxicola infundibulum (Montagu, 1808). A–D. Neotype (NMW.Z.2019.023.0001). A. Antero-dorsal view. B. Anteroventral view. C. Radiolar tips. D. Dorsal and ventral lips, anterior view. E. NMW.Z.2019.023.0003. Live specimen in tube, entire. F. Neotype (NMW.Z.2019.023.0001). Anterolateral view. Scale bars: A–B, E–F = 10 mm; C–D = 1 mm.
Fig. 2 in Designation of a neotype for Myxicola infundibulum (Montagu, 1808) (Annelida: Sabellidae) and a new species from the UK
Fig. 2. Map showing the type localities of both valid (bold type) and invalid species of Myxicola in Europe.
Fig. 1 in Designation of a neotype for Myxicola infundibulum (Montagu, 1808) (Annelida: Sabellidae) and a new species from the UK
Fig. 1. Map showing the distribution of Myxicola infundibulum (Montagu, 1808) (closed circles) and M. polychroma sp. nov. (open circles) around the British Isles, based on validated specimens and photographs. Grey circles indicate an undetermined species of Myxicola in northeast England. Type locality of Myxicola infundibulum indicated by black arrow.
FIGURE 10 in (Decapoda, Caridea, Hippolytidae), with the designation of a new genus and description of two new species from the Indo-West Pacific. Zootaxa, 2768, 32-54.
FIGURE 10. Alcyonohippolyte commensalis (Kemp, 1925) comb. nov., A–D, G, ovigerous female (pcl 2.5 mm); E, female (pcl. 1.8 mm); F, ovigerous female (plc. 2.1 mm) (QM W33475): A, B, carapace; C, telson; D, antennule; E–G, pereiopod II.
TocoDecoy: a new approach to design unbiased datasets for training and benchmarking machine-learning scoring functions
<p>This dataset file contains TocoDecoy datasets generated based on the targets and active ligands of LIT-PCBA.</p> <p>1_property_filtered.zip :</p> <ul> <li>TD set: the ligand file name, 2D T-sne vectors, Smiles, molecular weight (MW), Wildman-Crippen partition coefficient (log P), number of rotatable bonds (RB), number of hydrogen-bond acceptors (HBA), number of hydrogen-bond donors (HBD), number of halogens (HAL), topology similarities of decoys to the seed active ligands, active label (active or inactive) and training set label (whether belongs to training set or test set) <strong>OF active ligands and their topologically dissimilar decoys</strong></li> <li>CD set: the decoy conformations with low docking scores generated by docking active ligands into protein pockets using Glide, Schrödinger.</li> </ul> <p> </p>
Fig. 7. Acetes spiniger Hansen, 1919 in Taxonomic Assessment of Acetes indicus H. Milne Edwards, 1830 (Crustacea, Decapoda, Sergestoidea) as Revealed from Molecular and Morphological Analyses: Re-validation of A. spiniger Hansen, 1919 and Designation of a New Species
Fig. 7. Acetes spiniger Hansen, 1919. (a–e) male (cl 4.3 mm) and (f–i) female (cl. 5.8 mm) from off Kuala Selangor, Malaysia (NSMT-Cr 31637): a, anterior part of cephalothorax, lateral; b, posterior part of abdomen, lateral; c, right left lower antennular flagellum; d, basal segments of third pereopod and genital coxa, ventral; e, capitulum of right petasma; f, anterior part of cephalothorax, lateral; g, basal segments of third pereopod and third and fourth thoracic sternites, ventral; h, lateral profile showing channels and sternites between third and fourth thoracic somites, i, posterior part of telson, dorsal. Abbreviations: gc, genital coxa; iiist, ivst, third and fourth thoracic sternites, respectively.
Fig. 6 in Taxonomic Assessment of Acetes indicus H. Milne Edwards, 1830 (Crustacea, Decapoda, Sergestoidea) as Revealed from Molecular and Morphological Analyses: Re-validation of A. spiniger Hansen, 1919 and Designation of a New Species
Fig. 6. Acetes omorii Hanamura, Imai & Hardianto sp. nov. (a) holotype male (cl 5.3 mm) (NSMT-Cr 31621), and (b–d) paratype female (cl 6.0 mm) (NSMT-Cr 31622) from Matang Mangrove, Malaysia: a, b, right lower antennular flagellum of male and female, respectively; c, basal segments of third pereopod and third and fourth abdominal sternites, ventral; d, lateral profile showing channels and sternites between third and fourth thoracic somites. Abbreviations: iiist, ivst, third and fourth thoracic sternites, respectively.
Fig. 3 in Taxonomic Assessment of Acetes indicus H. Milne Edwards, 1830 (Crustacea, Decapoda, Sergestoidea) as Revealed from Molecular and Morphological Analyses: Re-validation of A. spiniger Hansen, 1919 and Designation of a New Species
Fig. 3. Map showing sampling localities and distribution ranges of Acetes indicus, A. omorii sp. nov. and A. spiniger recognised in this study with certainty: blue solid circles (nos. 1–2) for A. indicus, green solid squares and open square (museum vouchered specimens) for A. spiniger, and red solid triangles for A. omorii sp. nov. Numerals indicating sampling locations: 1, Chiringa; 2, Kumira-Sandwip Ship Ghat; 3, Merbok Mangrove; 4; Matang Mangrove, 5; Kuala Selangor; 6, Malacca; 7, Samut Prakan; 8, Setarap Estuary, South Kalimantan; and 9, Goa.
Fig. 2 in Taxonomic Assessment of Acetes indicus H. Milne Edwards, 1830 (Crustacea, Decapoda, Sergestoidea) as Revealed from Molecular and Morphological Analyses: Re-validation of A. spiniger Hansen, 1919 and Designation of a New Species
Fig. 2. Haplotype network (implemented in PopART) of the Acetes indicus, A. omorii sp. nov., and A. spiniger based on the mitochondrial 16S (a) and mitochondrial COI (b) markers using minimum spanning network (MSN) analysis with outgroups of congeneric species. Circles with different colours represent different species.
Fig. 1 in Taxonomic Assessment of Acetes indicus H. Milne Edwards, 1830 (Crustacea, Decapoda, Sergestoidea) as Revealed from Molecular and Morphological Analyses: Re-validation of A. spiniger Hansen, 1919 and Designation of a New Species
Fig. 1. Bayesian inference trees of Acetes indicus, A. omorii sp. nov., and A. spiniger with the outgroups of other congeneric species based on the mitochondrial 16S (a) and mitochondrial COI (b) markers. Values at the nodes are Bayesian posterior probabilities/Maximum Likelihood/Neighbor Joining support values. For the haplotype abbreviations, see Table 1.
ScienceDex guides
Understand access before you commit
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.