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13,397 results for “sp. nov.”
Figs 1–6 in Stenocephus janseni sp. nov., a new species of stem-sawfly from Germany (Hymenoptera: Cephidae)
Figs 1–6. Stenocephus janseni sp. nov., holotype, female. 1 – lateral, scale bar 5 mm; 2 – head, dorsal; 3 – head, frontal; 4 – head, lateral; 5 – thorax, dorsal; 6 – pronotum, dorsal.
Fig. 19 in Stenocephus janseni sp. nov., a new species of stem-sawfly from Germany (Hymenoptera: Cephidae)
Fig. 19. Maximum likelihood tree of Cephidae based on combined COI and nuclear (POL2 + NaK) genes. Numbers at branches show SH-aLRT support (%) / ultrafast bootstrap support (%) values. Support values for weakly supported branches (<90) are not shown. Letters "f" and "m" stand for "female" and "male" if known. Numbers at the end of the tip labels refer to the length of the sequence. The tree was rooted according to the results of Mൺඅආ & Nඒආൺඇ (2015) and Aඒൽൾආං*© & Kඈ*©κආൺඓ (2020). The scale bar showsthe number of estimated substitutions per nucleotide position.
Fig. 5. Comparison between M in Integrative description of a new Tunisian tardigrade species, Macrobiotus azzunae sp. nov. (Eutardigrada, Macrobiotidae, hufelandi group)
Fig. 5. Comparison between M. azzunae sp. nov. and M. sandrae Bertolani & Rebecchi, 1993. A. Placoids in M. azzunae sp. nov., paratype (UNIMORE, slide C4218–S30). B. Placoids in M. sandrae (UNIMORE, slide C442–S79); arrowheads evidence the different constriction depth of the first macroplacoid. C. Eggshell in M. azzunae sp. nov., paratype (UNIMORE, slide C4218–S4). D. Eggshell in M. sandrae (UNIMORE, slide C2346–S2); in M. azzunae sp. nov. there are smaller processes and reticulation with thinner wires and larger net around the processes than in M. sandrae. A–D: PhC.
Fig. 3 in Integrative description of a new Tunisian tardigrade species, Macrobiotus azzunae sp. nov. (Eutardigrada, Macrobiotidae, hufelandi group)
Fig. 3. Macrobiotus azzunae sp. nov., paratypes. A. In toto animal. B–D. Cuticular pores. E. Fourth pair of legs with smooth lunules and peculiar granulation on the legs. F. Granulation on the legs with a starshaped organization. G. Male with testis full of mature spermatozoa with elongate, helicoidal nucleus. A, D–F: SEM (stub-C4218); B: in vivo DIC; C, G: orcein (not permanent slide TN02–04) PhC.
Fig. 7 in Integrative description of a new Tunisian tardigrade species, Macrobiotus azzunae sp. nov. (Eutardigrada, Macrobiotidae, hufelandi group)
Fig. 7. Left: tree resulting from both the maximum likelihood analysis and the Bayesian inference of cytochrome c oxidase subunit I (COI) in M. azzunae sp. nov. specimens and sequences from GenBank. Values above branches point out bootstrap values, while values under branches represent posterior probability values. Results of the Poisson tree process analysis are provided using differently coloured branches: putative species are indicated using transitions from blue-coloured branches to red-coloured branches. Newly scored haplotypes are in bold. The scale bar shows the number of substitutions per nucleotide position. Centre: haplotype network of COI gene in M. hufelandi complex. Circles represent haplotypes, while circle surface denotes haplotype frequency. Networks falling below the value of the 95% connection limit are disconnected. Right: rectangles denote specimens grouped by ABGD analysis.
Fig. 2 in Integrative description of a new Tunisian tardigrade species, Macrobiotus azzunae sp. nov. (Eutardigrada, Macrobiotidae, hufelandi group)
Fig. 2. Macrobiotus azzunae sp. nov., holotype (UNIMORE, slide C4218–S32). A. In toto animal. B. Cuticular pores and leg granulation (arrow) on the hind legs. C. Buccal-pharyngeal apparatus. D. Buccal armature: dorsal crests (arrow). E. Buccal armature: ventral crests (arrow). F. Claw and lunulae of the third pair of legs. G. Claw and lunulae of the fourth pair of legs. A–G: PhC.
Fig. 4 in Integrative description of a new Tunisian tardigrade species, Macrobiotus azzunae sp. nov. (Eutardigrada, Macrobiotidae, hufelandi group)
Fig. 4. Egg of Macrobiotus azzunae sp. nov., paratype (UNIMORE, slide C4218–S11). A. In toto egg with buccal-pharyngeal apparatus of its embryo at the end of development. B. Processes of the eggshell (midsection). C. Distal discs of the eggshell processes. D. Surface of the eggshell between processes. A, C–D: PhC; B: DIC.
Fig. 6. Macrobiotus personatus Biserov, 1990 in Integrative description of a new Tunisian tardigrade species, Macrobiotus azzunae sp. nov. (Eutardigrada, Macrobiotidae, hufelandi group)
Fig. 6. Macrobiotus personatus Biserov, 1990, paratypes (Civic Museum of Natural History of Verona, Italy, CT14701). A. Buccal-pharyngeal apparatus with macroplacoids. B. Pores on the cuticle. C. Eggshell reticulation and egg processes. D. Egg processes. A–D: PhC.
Fig. 8 in Neanthes goodayi sp. nov. (Annelida, Nereididae), a remarkable new annelid species living inside deep-sea polymetallic nodules
Fig. 8. Neanthes goodayi sp. nov., live specimens, in situ images. A. Paratype (NHM_2026), burrowing within nodule crevice. B. Detail of paratype (NHM_2026), in burrow. C. Paratype (NHM_512), burrowing within a foraminiferan growing on nodule. D–E. Detail of paratype (NHM_512), in burrow. F. Detail of paratype (NHM_1624), burrowing within a mudball encrusting the nodule surface. G–H. Details of paratype (NHM_1624), in burrow. Scale bars: 1 cm.
Fig. 6 in Neanthes goodayi sp. nov. (Annelida, Nereididae), a remarkable new annelid species living inside deep-sea polymetallic nodules
Fig. 6. Neanthes goodayi sp. nov., epitoke paratype (NHM_1783), preserved specimen. A. Entire specimen, dorsal view. B. Extruded pharynx, dorsal view (left), ventral view (right). C. Detail of prenatatory parapodium 4, with modified dorsal and ventral cirri, posterior view. D. Detail of modified natatory swimming parapodium, chaetiger 31, posterior view. E. Detail of papillated dorsal cirrus, chaetiger 31, posterior view. F. Modified swimming spinigers, subacicular neurocheatal fascicle, chaetiger 32. Abbreviations: DC = dorsal cirrus; VC = ventral cirrus. Lobe at base of dorsal cirrus in D and E outlined with a fine white or black line. Parapodium in C dissected from left side of specimen; parapodium in D dissected from right side of specimen, with images D and E laterally inverted to follow direction of other plates. Scale bars: A = 1 mm; B = 500 µm; C–D = 200 µm; E = 100 µm; F = 50 µm.
Fig. 5 in Neanthes goodayi sp. nov. (Annelida, Nereididae), a remarkable new annelid species living inside deep-sea polymetallic nodules
Fig. 5. Neanthes goodayi sp. nov., juvenile specimens. A. Paratype (1254), entire specimen, dorsal view. B. Paratype (NHM_171) dorsal anterior view. C. Paratype (NHM_127) entire specimen, dorsal view. D. Paratype (NHM_127), close up of dorsal anterior, arrows mark position of anterior eye pair. Scale bars: A, C = 1 mm; B = 500 µm; D = 100 µm.
Fig. 4 in Neanthes goodayi sp. nov. (Annelida, Nereididae), a remarkable new annelid species living inside deep-sea polymetallic nodules
Fig. 4. Neanthes goodayi sp. nov., paratypes. A. Paratype (NHM_1624), preserved specimen; dorsal anterior view, live image (left); lateral anterior view, preserved specimen (right). B. Paratype (NHM_755); dorsal anterior view, live image (left), preserved specimen (right); arrows marking pigmentation. C. Paratype (NHM_238), dorsal anterior view, arrows mark pigmentation. D. Paratype (NHM_512), dorsal anterior view, arrows mark pigmentation. Scale bars = 1 mm.
Fig. 2 in Neanthes goodayi sp. nov. (Annelida, Nereididae), a remarkable new annelid species living inside deep-sea polymetallic nodules
Fig. 2. Neanthes goodayi sp. nov., holotype (NHM_739). A. Live image, entire specimen. B. Preserved entire specimen, dorsal view (left), ventral view (right). C. Live image, anterior view, arrows mark pigmentation. D. Preserved specimen, anterior view, arrows mark pigmentation. E. Dissected pharynx, with pharyngeal areas I, II, III, IV, VI, VII–VIII highlighted. Scale bars: B = 1 mm; D = 500 µm; E = 250 µm.
Fig. 3 in Neanthes goodayi sp. nov. (Annelida, Nereididae), a remarkable new annelid species living inside deep-sea polymetallic nodules
Fig. 3. Neanthes goodayi sp. nov., holotype (NHM_739). A. Chaetiger 1, posterior view. B. Chaetiger 3, posterior view. C. Chaetiger 6, posterior view. D. Chaetiger 20, posterior view. E. Chaetiger 29, posterior view. F. Chaetiger 29, posterior view, detail of neuracicular postchaetal lobe. G. Chaetiger 40, posterior view. H. Chaetiger 46, posterior view. I. Notochaetae, detail of homogomph spinigers, chaetiger 20. J. Supraciular neurochaetae, detail of homogomph spiniger, chaetiger 3. K. Supracicular neurochaetae, detail of heterogomph falciger, chaetiger 10. L. Subacicular neurochaetae, detail of homogomph spiniger (left) and homogomph falciger (right), chaetiger 20. M. Subacicular neurochaetae, detail of heterogomph falcigers, chaetiger 20. Abbreviations: PtL = postchaetal lobe; VC = ventral cirrus. Postchaetal lobe in A–D, F outlined with a fine white line. Parapodia in C, E–H dissected from left side of specimen; parapodia in A–B, D dissected from right side of specimen, with images laterally inverted follow direction of other plates. Scale bars: A–E, G–H = 200 µm; F, I–M = 50 µm.
Fig. 1 in Neanthes goodayi sp. nov. (Annelida, Nereididae), a remarkable new annelid species living inside deep-sea polymetallic nodules
Fig. 1. Sampling sites, showing occurrences of Neanthes goodayi sp. nov. A. UK-1 Stratum-A study area within the UK Seabed Resources UK-1 exploration contract area. B. UK-1 Stratum-B study area within the UK Seabed Resources UK-1 exploration contract area. C. OMS Stratum-A study area, in the Ocean Mineral Singapore (OMS) polymetallic nodule exploration contract area. D. Area of Particular Environmental Interest APEI-6. Inset map showing location of Clarion-Clipperton Fracture Zone in the Central Eastern Pacific. Bathymetric survey data and sampling localities from the AB01 2013 RV Melville survey cruise (MV1313) and AB02 2015 RV Thomas G. Thompson survey cruise (TN319); data courtesy of Craig R. Smith (University of Hawaii), UK Seabed Resources Ltd. and Seafloor Investigations, LLC.
Figure 2 in Phyllium (Phyllium) brossardi sp. nov. (Phasmida, Phylliidae), a new species of leaf insect from northern Borneo
Figure 2. Phyllium (Phyllium) brossardi Cumming, Le Tirant, and Teemsma, new species. A) Base of antennae, head, pronotum, and mesothorax [Coll. RC 17-278]. B) Genitalia, ventral view [Coll. RC 17-17-279]. C) Right foreleg [Coll. RC 17-278].
Figure 1 in Phyllium (Phyllium) brossardi sp. nov. (Phasmida, Phylliidae), a new species of leaf insect from northern Borneo
Figure 1. Phyllium (Phyllium) brossardi Cumming, Le Tirant, and Teemsma, new species holotype [Coll. RC 17-278]. A) Dorsal view. B) Ventral view.
FIG. 1 in Cassipourea atanganae sp. nov., a new species of Rhizophoraceae from Lower Guinea
FIG. 1. — Cassipourea atanganae Kenfack, sp. nov.: A, fruiting branch; B, dorsal view of stamens in bud; C, lateral view of stamens in bud; D, stamens in developing bud; E, opened flower; F, dorsal view of petal; G, androcium and pistil; H, fruit with persistent calyx, petals and stamens; I, fruit with all floral parts removed; J, seed; K, cotyledons. A, Thomas 2158; B-K, Sainge 470 et al. Scale bars: A, 9 mm; B-D, F, G, K, 2 mm; E, H-J, 5 mm. Drawing Alba Albarez.
FIG. 8 in Survey of Lagerstroemia L. (Lythraceae) in Indochina (excl. Thailand) with the description of Lagerstroemia densiflora, sp. nov., a new species from Vietnam
FIG. 8. — Delpy's drawing on flower and fruit details of the isolectotype of Lagerstroemia petiolaris Pierre ex Laness.,Pierre 928 (original herbarium collection not found).
FIG. 6. — Lagerstroemia kratiensis W.J in Survey of Lagerstroemia L. (Lythraceae) in Indochina (excl. Thailand) with the description of Lagerstroemia densiflora, sp. nov., a new species from Vietnam
FIG. 6. — Lagerstroemia kratiensis W.J.de Wilde & Duyfjes: A, flower bud; B, ditto seen from above; C, ditto, opening; D, petal; E, capsule with fruiting calyx, note calyx lobes glabrous within; A-D, Maxwell 07-453 (L, type); E, Maxwell 06-962 (L). Scale bar: 3 mm.
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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)
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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.