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FIGURE 37 in Morphological and taxonomic revision of species of Squatina from the Southwestern Atlantic Ocean (Chondrichthyes: Squatiniformes: Squatinidae)
FIGURE 37. Lectotype of Squatina dumeril (MNHN A-9692, off coast of New York state, United States, 1172 mm TL).
FIGURE 36 in Morphological and taxonomic revision of species of Squatina from the Southwestern Atlantic Ocean (Chondrichthyes: Squatiniformes: Squatinidae)
FIGURE 36. Morphology of female reproductive system of Squatina sp. showing right (A) and left (B) functional ovaries, while Squatina guggenheim and Squatina occulta present only left ovary functional (D and F, respectively), and right ovary reduced (C and E, respectively). Abbreviations: lov, left ovary; lv, liver; rov, right ovary; sch, stomach; spv, spiral valve. Scale bar = 10 mm."
FIGURE 20 in Morphological and taxonomic revision of species of Squatina from the Southwestern Atlantic Ocean (Chondrichthyes: Squatiniformes: Squatinidae)
FIGURE 20. Morphological details of symphysial tooth morphology in Squatina guggenheim (MZUSP 111961, adult, head only). Left upper tooth row in labial (A), lateral (B) and lingual (C) views (for upper teeth, refer to upper scale bar). Left lower tooth row in labial (D), lateral (E), and lingual (F) views (for lower teeth, refer to lower scale bar).
FIGURE 45 in Morphological and taxonomic revision of species of Squatina from the Southwestern Atlantic Ocean (Chondrichthyes: Squatiniformes: Squatinidae)
FIGURE 45. Visceral arches of S. occulta (NUPEC 2192, juvenile male, continental shelf of Southeastern Brazil, 448 mm TL) in dorsal (A) and ventral (B) views. Arrow indicates the lateral extension of the condyle on Meckel's cartilage for articulation with palatoquadrate. Abbreviations: alc, anterior upper labial cartilage; bb, basal plate; bh, basihyal; cb1, ceratobranchial 1; cb5, ceratobranchial 5; ch, ceratohyal; djc, double-jointed condyle; ep1, epibranchial 1; gpx, gill pickaxe; hb1, hipobranchial 1; hb2, hipobranchial 2; hyo, hyomandibula; lcb, lateral cartilage of basihyal; llc, lower labial cartilage; Mc, Meckel's cartilage; opq, orbital process of palatoquadrate; pb1, pharyngobranchial 1; plc, posterior upper labial cartilage; pq, palatoquadrate; qp, quadrate process; vpc, ventral process of ceratohyal. Anterior to top.
FIGURE 33 in Morphological and taxonomic revision of species of Squatina from the Southwestern Atlantic Ocean (Chondrichthyes: Squatiniformes: Squatinidae)
FIGURE 33. Morphological details of Squatina sp. (MNRJ 30190). A) Dorsal view of head. B) Ventral view of head and pectoral region. C) Ventral view of pelvic fins. D) Dorsal view of anterior region of trunk, pectoral and pelvic fins. E) Lateral view of dorsal fins. F) Lateral view of caudal fin. Scale bar = 50 mm.
FIGURE 2 in Morphological and taxonomic revision of species of Squatina from the Southwestern Atlantic Ocean (Chondrichthyes: Squatiniformes: Squatinidae)
FIGURE 2. Paratype of Squatina occulta in dorsal (A) and ventral (B) views (MCP 13999, preadult female, continental shelf of Rio Grande do Sul state, Brazil, 903 mm TL), and fresh specimen in dorsal (C) view photographed in field (NPM 1547, juvenile male, continental northern shelf of Rio de Janeiro state, Brazil, 343 mm TL).
FIGURE 1 in Morphological and taxonomic revision of species of Squatina from the Southwestern Atlantic Ocean (Chondrichthyes: Squatiniformes: Squatinidae)
FIGURE 1. Paratype of Squatina occulta in dorsal (A) and ventral (B) views (MZUSP 41518, preadult male, continental shelf of Rio Grande do Sul state, Brazil, 975 mm TL) and non-type specimen in dorsal (C) view (NUPEC 1651, juvenile male, continental shelf of southeastern Brazil, 743 mm TL).
Contribution of chemoautotrophy and heterotrophy to the microbial carbon cycle in the Southwestern Atlantic Ocean
<p>Supplementary Material of the article "Contribution of chemoautotrophy and heterotrophy to the microbial carbon cycle in the Southwestern Atlantic Ocean" </p> <p>Supplementary Table S1: Location and Oceanographic Instrumentation used at each station of the Project BIOIL in November 2019 on board the R/V Alpha Crucis.</p> <p>Supplementary Table S2: Microbial processes of the water column, including the zone of the water column, depth (m), the dark carbon fixation (DCF) (µgC.m<sup>-3</sup>.h<sup>-1</sup>) and heterotrophic microbial production (HMP) (µgC.m<sup>-3</sup>.h<sup>-1</sup>) rates.</p> <p>Supplementary Table S3: Microbial processes of the sediment samples, including layer (cm), the dark carbon fixation (DCF) (µgC.m<sup>-3</sup>.h<sup>-1</sup>) and heterotrophic microbial production (HMP) (µgC.m<sup>-3</sup>.h<sup>-1</sup>) rates.</p> <p>Supplementary Table S4: Correlation between the Dark Carbon Fixation (DCF), Heterotrophic Microbial Production (HMP) and the environmental parameters of the water column.</p> <p>Supplementary Table S5: Correlation between the Dark Carbon Fixation (DCF), Heterotrophic Microbial Production (HMP) and the environmental parameters of the sediments.</p>
FIGURE 1 in First records of the endemic and endangered yellow land crab, Johngarthia lagostoma (Milne Edwards, 1837) (Decapoda: Gecarcinidae), in the Southwestern Atlantic continental area
FIGURE 1. Location of the record of Johngarthia lagostoma on the mainland coast (purple triangles) and in its previous and natural distribution area (white triangles): A–B, locations of specimens of the Johngarthia lagostoma were recorded in Recife (A) and São José da Coroa Grande (B), Pernambuco state; C–D, specimens of Johngarthia lagostoma recorded on the Southwestern Atlantic mainland in the cities of (C) Recife and (D) São José da Coroa Grande, Pernambuco state. RA= Rocas Atoll, FN=Fernando de Noronha Archipelago, AS=Ascension Island, TR= Trindade and Martin Vaz Islands.
FIGURE 7 in New findings of the family Pardaliscidae from the deep-sea southwestern Atlantic the genus Caleidoscopsis Karaman, 1974
FIGURE 7. Caleidoscopsis karamani sp. nov. Male, 2.4 mm, holotype, Sta. HAB8 A08 R1, Campos Basin, MNRJ 24667. Pereopods 5–7, epimeral plates, uropods and telson. Scale = 0.1 mm.
FIGURE 6 in New findings of the family Pardaliscidae from the deep-sea southwestern Atlantic the genus Caleidoscopsis Karaman, 1974
FIGURE 6. Caleidoscopsis karamani sp. nov. Male, 2.4 mm, holotype, Sta. HAB8 A08 R1, Campos Basin, MNRJ 24667. Gnathopods 1–2, pereopods 3–4, urosomites dorsal view (left) and lateral view (right). Male, 2.7 mm, paratype, Sta. AMB6 CANWN7 R3, Espírito Santo Basin, MNRJ 30429. Gnathopod 2, pereopods 3–4 (asterisk). Scale = 0.1 mm.
FIGURE 5 in New findings of the family Pardaliscidae from the deep-sea southwestern Atlantic the genus Caleidoscopsis Karaman, 1974
FIGURE 5. Caleidoscopsis karamani sp. nov. Male, 2.4 mm, holotype, Sta. HAB8 A08 R1, Campos Basin, MNRJ 24667. Habitus, head (dorsal) and antennae. Male, 2.9 mm, paratype, Sta. HAB8 B09 R3, Campos Basin, MNRJ 24668. Mouthparts. Scale = 0.1 mm.
FIGURE 2 in New findings of the family Pardaliscidae from the deep-sea southwestern Atlantic the genus Caleidoscopsis Karaman, 1974
FIGURE 2. Caleidoscopsis carlosi sp. nov. Female, 3.9 mm, holotype, Sta. AMB5 D07 R2, Espírito Santo Basin, MNRJ 30434. Habitus, head (dorsal), antennae, mouthparts. Female, 3.0 mm, paratype, Sta. HAB8 F09 R2, Campos Basin, MNRJ 24601. Head (dorsal). Scale = 0.1 mm.
FIGURE 1 in New findings of the family Pardaliscidae from the deep-sea southwestern Atlantic the genus Caleidoscopsis Karaman, 1974
FIGURE 1. World distribution of Caleidoscopsis species. Stations along the Brazilian coast (19o–27o S) were collected between 417–1974 m depths, from projects AMBES, HABITATS and PCR–Santos, all from slope campaigns.
FIGURE 4 in New findings of the family Pardaliscidae from the deep-sea southwestern Atlantic the genus Caleidoscopsis Karaman, 1974
FIGURE 4. Caleidoscopsis carlosi sp. nov. Female, 3.9 mm, holotype, Sta. AMB5 D07 R2, Espírito Santo Basin, MNRJ 30434. Pereopods 6–7, uropods and telson. Female, 3.0 mm, paratype, Sta. HAB8 F09 R2, Campos Basin, MNRJ 24601. Epimeral plates, urosome dorsal view (above) and lateral view (below). Scale = 0.1 mm.
FIGURE 8—Phylogenetic tree inferred using Bayesian Inference derived from cytochrome c oxidase subunit I in How many species of genus Lernaeopoda Blainville, 1822 (Siphonostomatoida: Lernaeopodidae) are there in the southwestern Atlantic?
FIGURE 8—Phylogenetic tree inferred using Bayesian Inference derived from cytochrome c oxidase subunit I (COI) gene dataset. Numbers in the nodes represent posterior probability (<0.95 are not shown).
FIGURE 7. SEM micrograph. A in How many species of genus Lernaeopoda Blainville, 1822 (Siphonostomatoida: Lernaeopodidae) are there in the southwestern Atlantic?
FIGURE 7. SEM micrograph. A—armature on the antennule endopod of specimen X6, B—armature on the antennule endopod of specimen X9, C—other view of the antennule of specimen X9. D—partial view of maxillule of specimen X5, E—Maxilliped of specimen X9, F—claw of the specimen X9 showing the annexed barb, denticle and row of denticles, G—myxal area with spine in specimen X9. H—myxal area in specimen X5, Abbreviations: Ab = Annexed barb, Cl = Claw, D = Denticles, E = Endite, Rd = Rod denticles, s = Spine, Se = Spinules, in Sp = Spines on maxilliped, 1, 2, 3, 4, 5, 6, Armature.
FIGURE 5 in How many species of genus Lernaeopoda Blainville, 1822 (Siphonostomatoida: Lernaeopodidae) are there in the southwestern Atlantic?
FIGURE 5—Appendages of the female Lernaeopoda sp. (X3) from Schroederichthys bivius cloaca with "short" maxilla. A—Antennule. B—Antenna and detail of endopod armature. C—Mandible. D—Maxilulle. E—Maxilliped and details of claw, myxal area and pad of spinules. Abbreviations: Ab = Annexed barb, Cl = Claw, Co = Corpus, D = denticle, En = endopod, Ex = Exopodo, E = endite, P = palp, Rd = Rod denticles, S = Spine, So = Solus, Sp = spines on maxilliped, w = Whip, 1, 2, 3, 4, 5, 6 = Armature. Scale Bars: A = 50 µm, B= 200 µm, C = 25 µm, D = 25 µm, E = 25 µm.
FIGURE 6 in How many species of genus Lernaeopoda Blainville, 1822 (Siphonostomatoida: Lernaeopodidae) are there in the southwestern Atlantic?
FIGURE 6—Appendages of the female Lernaeopoda sp. (X4) from Schroederichthys bivius palate with "long" maxilla. A— Antennule and detail of distal armature. B—Antenna and detail of endopod and its armature C—Mandible. D—Maxilulle. E—Maxilliped and details of claw, myxal area and pad of spinules. Abbreviations: Ab = Annexed barb, Cl= Claw, Co = Corpus, Dp = Denticle pad, E = Endite, En = Endopod, Ex = Exopod, P = Palp, Rd = Rod denticles, s = Spine, Sp = Spines on maxilliped, w =whip, 1, 2, 3, 4, 5, 6 = Armature. Scale Bars: A=50 µm, B=100 µm, C=100 µm, D= 50 µm, E =50 µm.
FIGURE 3 in How many species of genus Lernaeopoda Blainville, 1822 (Siphonostomatoida: Lernaeopodidae) are there in the southwestern Atlantic?
FIGURE 3—Appendages of the Lernaeopoda sp. (X1) female on fins of Galeorhinus galeus. A—Antennule. B—Antenna and detail of endopod C—Mandible. D—Maxillule. E—Maxilliped and detail of claw, myxal area and pad of spinules. Abbreviations: Ab = Annexed barb, Cl = claw, Co = corpus, Dp = Denticles Pad, E = endite, En = endopod, Ex = exopod, P = palp, Rd = Rod denticles, sp = spines on maxilliped, w = Whip, 1, 2, 3, 4, 5, 6 = Armature. Scale Bars A = 50 µm. B = 100 µm. C = 25 µm, D = 25 µm, E = 200 µm.
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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.