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65 results for “Syngnathiformes”
FIGURE 4 in Population structure of the seahorse Hippocampus reidi (Syngnathiformes: Syngnathidae) in a Brazilian semi-arid estuary
FIGURE 4 | Proportion of color patterns (A) and holdfast use (B) of Hippocampus reidi in the Pacoti River estuary, Ceará, Brazil, between December 2017 and November 2018.
FIGURE 3 in Population structure of the seahorse Hippocampus reidi (Syngnathiformes: Syngnathidae) in a Brazilian semi-arid estuary
FIGURE 3 | Spatial variation in the proportion of pregnant males of Hippocampus reidi along the salinity gradient in the Pacoti River estuary, Ceará, Brazil, between December 2017 and November 2018. Y = pregnant male record, N = non-pregnant male record.
FIGURE 2 in Population structure of the seahorse Hippocampus reidi (Syngnathiformes: Syngnathidae) in a Brazilian semi-arid estuary
FIGURE 2 | Temporal variation of environmental variables: (A) salinity and (B) water transparency (cm), and Hippocampus reidi population variables: (C) population density (ind.m-2), (D) proportion of pregnant males (Y = pregnant male record, N = non-pregnant male record) and (E) individual height (cm), in the Pacoti River estuary, Ceará, Brazil, between December 2017 and November 2018. The months of the rainy season are highlighted in blue.
FIGURE 1 in Population structure of the seahorse Hippocampus reidi (Syngnathiformes: Syngnathidae) in a Brazilian semi-arid estuary
FIGURE 1 | Geographic location of the Pacoti River estuary, Ceará, Brazil (A, B), indicating Hippocampus reidi sampling locations (A to K) (C).
FIGURE 4 in Partial characterization of digestive proteases in juveniles of Microphis brachyurus (short-tailed pipefish) (Syngnathiformes: Syngnathidae)
FIGURE 4 | SDS-PAGE zymogram of alkaline digestive proteases of short-tailed pipefish (Microphis brachyurus) juveniles: Molecular weight marker (MWM), rabbit phosphorylase B (97.4 kDa), bovine serum albumin (66.2 kDa), ovalbumin (42.7 kDa), carbon anhydrase (31.0 kDa) and lysozyme (14.4 kDa); control (without inhibitor); inhibitors were the same as in Fig. 3.
FIGURE 3 in Partial characterization of digestive proteases in juveniles of Microphis brachyurus (short-tailed pipefish) (Syngnathiformes: Syngnathidae)
FIGURE 3 | Residual activity (%) of digestive proteases using several inhibitors on multienzyme extracts of short-tailed pipefish (Microphis brachyurus) juveniles. Alkaline proteases with no inhibitor (Alk control), tosylphenylanylchloromethyl ketone (TPCK), phenanthroline (PHEN), ethyl-diamine tetra-acetic acid (EDTA), tosyllysyl- chloromethyl ketone (TLCK), ovalbumin (OVO), soybean trypsin inhibitor (SBT1), phenyl methyl sulphonyl fluoride (PMSF), acidic proteases with no inhibitor (Acid control), pepstatin A (mean ± SD, n = 3). Columns with different letters represent significant differences (p <0.05).
Linked collectors and determiners for: Taxonomic review of the pipefish genus Pseudophallus Herald, with the description of a new species (Syngnathiformes: Syngnathidae).
Natural history specimen data linked to collectors and determiners held within, "Taxonomic review of the pipefish genus Pseudophallus Herald, with the description of a new species (Syngnathiformes: Syngnathidae)". Claims or attributions were made on Bionomia by volunteer Scribes, <a href="https://bionomia.net/dataset/ff9ddcdc-1340-4533-ae1e-da83b895158c">https://bionomia.net/dataset/ff9ddcdc-1340-4533-ae1e-da83b895158c</a> using specimen data from the dataset aggregated by the Global Biodiversity Information Facility, <a href="https://gbif.org/dataset/ff9ddcdc-1340-4533-ae1e-da83b895158c">https://gbif.org/dataset/ff9ddcdc-1340-4533-ae1e-da83b895158c</a>. Formatted as a Frictionless Data package.
FIGURE 4 in A new species of Pegasus (Syngnathiformes: Pegasidae) from the South China Sea
FIGURE 4. Dorsal view of the head of (A) Pegasus nanhaiensis (TMBC030695, 61.7 mm SL) and (B) Pegasus laternarius (TMBC030715, 58.4 mm SL).
FIGURE 5 in A new species of Pegasus (Syngnathiformes: Pegasidae) from the South China Sea
FIGURE 5. Sampling sites of Pegasus nanhaiensis sp. nov. (circle) and Pegasus laternarius (triangle). The red circle represents the type locality of Pegasus nanhaiensis.
FIGURE 3 in A new species of Pegasus (Syngnathiformes: Pegasidae) from the South China Sea
FIGURE 3. Comparison of morphological characteristics of carapace, and tail of two species of Pegasus with bone staining. Panels A and C show the dorsal ridge processes (arrowed), and tail spines (arrowed) of Pegasus nanhaiensis, TMBC030710, 56.9 mm SL. Panels B and D show the dorsal ridge processes (arrowed), and tail spines (arrowed) of Pegasus laternarius, TMBC030729, 61.1 mm SL.
FIGURE 7 in A new species of Pegasus (Syngnathiformes: Pegasidae) from the South China Sea
FIGURE 7. Molecular identification of Pegasus species based on the combined 16S rDNA and COI sequences using Bayesian approaches. Eurypegasus draconis was selected as the outgroup taxon. Bayesian posterior probabilities are shown above the nodes.
FIGURE 2 in A new species of Pegasus (Syngnathiformes: Pegasidae) from the South China Sea
FIGURE 2. Specimen of Pegasus laternarius in (A) dorsal, (B) lateral, and (C) ventral views, TMBC030715 (58.4 mm SL), Shantou, northern South China Sea, China, 20 July 2019.
FIGURE 1 in A new species of Pegasus (Syngnathiformes: Pegasidae) from the South China Sea
FIGURE 1. Holotype of Pegasus nanhaiensis in (A) dorsal, (B) lateral, and (C) ventral views, TMBC030695 (61.7 mm SL), Yangjiang, northern South China Sea, China, 20 July 2019.
FIGURE 4 in Taxonomic review of the pipefish genus Pseudophallus Herald, with the description of a new species (Syngnathiformes: Syngnathidae)
FIGURE 4: Distribution map of species of Pseudophallus occurring in drainages along the Atlantic coast, based on specimens examined in this study.
FIGURE 2 in Taxonomic review of the pipefish genus Pseudophallus Herald, with the description of a new species (Syngnathiformes: Syngnathidae)
FIGURE 2: Species of the genus Pseudophallus: A—Pseudophallus brasiliensis (paratype) USNM 212058, 69.1 mm SL, Igarapé Inó, Furo de Panaquera, Rio Tocantins, Pará, Brazil. B—Pseudophallus elcapitanensis MCZ 88623, 110.6 mm SL, Río Picuro, Darien, Panama. C—Pseudophallus mindii (holotype) USNM 81770, 90.3 mm SL, Mindi Creek, Canal Zone, Panama. D—Pseudophallus starksii USNM 208365, 171.1 mm SL, upper tributary of Río Jaque, Província de Darien, Panama. E—Pseudophallus galadrielae. (holotype) FMNH 126156, 63.1mm SL, Lago Izabal, Guatemala. Red arrow indicates the anal papilla.
FIGURE 6 in Taxonomic review of the pipefish genus Pseudophallus Herald, with the description of a new species (Syngnathiformes: Syngnathidae)
FIGURE 6. Scatterplot of scores of linear discriminant analysis for morphometric and meristic characters of the three species of Pseudophallus occurring in Atlantic drainages. LD1: Linear discriminant 1, LD2: Linear discriminant 2, A: Standard length, B: Head length, C: Snout Length, D: Snout depth, E: Pectoral-fin length, F: Pectoral-fin base length, G: Tail length, H: Dorsal-fin base length, I: Anal ring depth, J: Body depth, K: Head depth, L: Body width, M: Trunk depth, N: Orbital diameter, O: Snout width, P: Dorsal-fin rays, Q: Pectoral-fin rays, R: Trunk rings, S: Caudal rings, T: Subdorsal trunk rings, U: Subdorsal caudal rings, V: Origin of dorsal fin.
FIGURE 1 in Taxonomic review of the pipefish genus Pseudophallus Herald, with the description of a new species (Syngnathiformes: Syngnathidae)
FIGURE 1. Schematic view of Pseudophallus indicating measurements taken in the present study. Male, lateral view: 1. standard length, 5. brood pouch length, 7. anal-ring depth, 8. body depth, 9. trunk depth, 12. snout depth and 15. head depth. Female, lateral view: 2. head length, 3. tail length, 4. dorsal-fin base length and 13. pectoral-fin length. Anterior part of body, lateral view: 11. snout length, 14. pectoral-fin base length and 16. orbital diameter. Female, anal-papillae region, ventral view: 6. body width and 10. anal-papillae length. In red, trunk rings. In green, tail rings. Hatched pattern: subdorsal rings.
FIGURE 5 in Taxonomic review of the pipefish genus Pseudophallus Herald, with the description of a new species (Syngnathiformes: Syngnathidae)
FIGURE 5. Distribution map of species of Pseudophallus occurring in drainages along the Pacific coast based on specimens examined in this study.
FIGURE 3 in Taxonomic review of the pipefish genus Pseudophallus Herald, with the description of a new species (Syngnathiformes: Syngnathidae)
FIGURE 3: Detail of anterior portion of body of species of the genus Pseudophallus A—Pseudophallus brasiliensis (paratype) USNM 212058, 69.1 mm SL, Igarapé Inó Furo de Panaquera, Rio Tocantins, Pará, Brazil. B—Pseudophallus elcapitanensis MCZ 88623, 110.6 mm SL, Río Picuro, Darien, Panama. C—Pseudophallus mindii (holotype) USNM 81770, 90.3 mm SL, Mindi Creek, Canal Zone, Panama. D—Pseudophallus starksii USNM 208365, 171.1 mm SL, upper tributary of Río Jaque, Província de Darien, Panama. E—Pseudophallus galadrielae. (holotype), FMNH 126156, 63.1 mm SL, Lago Izabal, Guatemala.
FIGURE 7 in Taxonomic review of the pipefish genus Pseudophallus Herald, with the description of a new species (Syngnathiformes: Syngnathidae)
FIGURE 7. Maps of distribution of specimens of Pseudophallus available for study. Left side: distribution of specimens examined for the morphological analysis in this study. Right side map: distribution of voucher specimens with genetic sequences on GenBank (as of April 2020).
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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.