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432 results for “nominalization”
Processed data from "Human and rat skeletal muscle single-nuclei multi-omic integrative analyses nominate causal cell types, regulatory elements, and SNPs for complex traits"
<p>This is the processed data from our manscript "Human and rat skeletal muscle single-nuclei multi-omic integrative analyses nominate causal cell types, regulatory elements, and SNPs for complex traits"</p>
Processed data from "Human and rat skeletal muscle single-nuclei multi-omic integrative analyses nominate causal cell types, regulatory elements, and SNPs for complex traits"
<p>This is the processed data from our manscript "Human and rat skeletal muscle single-nuclei multi-omic integrative analyses nominate causal cell types, regulatory elements, and SNPs for complex traits"</p>
Processed data from "Human and rat skeletal muscle single-nuclei multi-omic integrative analyses nominate causal cell types, regulatory elements, and SNPs for complex traits"
<p>This is the processed data from our manscript "Human and rat skeletal muscle single-nuclei multi-omic integrative analyses nominate causal cell types, regulatory elements, and SNPs for complex traits"</p>
Processed data from "Human and rat skeletal muscle single-nuclei multi-omic integrative analyses nominate causal cell types, regulatory elements, and SNPs for complex traits"
<p>This is the processed data from our manscript "Human and rat skeletal muscle single-nuclei multi-omic integrative analyses nominate causal cell types, regulatory elements, and SNPs for complex traits"</p>
Processed data from "Human and rat skeletal muscle single-nuclei multi-omic integrative analyses nominate causal cell types, regulatory elements, and SNPs for complex traits"
<p>This is the processed data from our manscript "Human and rat skeletal muscle single-nuclei multi-omic integrative analyses nominate causal cell types, regulatory elements, and SNPs for complex traits"</p>
Gaia filters - nominal
<p>definitions in csv format</p>
FIGURE 6 in Merodoras nheco, new genus and species from Rio Paraguay basin, Brazil (Siluriformes, Doradidae), and nomination of the new subfamily Astrodoradinae
FIGURE 6. Ventral view of pectoral girdle of Merodoras nheco. CLE – cleithrum, COR – coracoid, fAV – fossae of arrector ventralis inferior, pCLE – postcleithral process, pCOR – process of coracoid, PFR – pectoral-fin rays, PFS – pectoral-fin spine, PR12 – first and second proximal radial, PR3 – third proximal radial, PR4 – forth proximal radial. Solid black indicates cartilage.
FIGURE 5 in Merodoras nheco, new genus and species from Rio Paraguay basin, Brazil (Siluriformes, Doradidae), and nomination of the new subfamily Astrodoradinae
FIGURE 5. Dorsal view of pelvic girdle of Merodoras nheco. BPT – basipterygium, alBPT – anterolateral process of basipterygium, amBPT – anteromesial process of basipterygium, mpBPT – mesial process of basipterygium, PFR – pelvic-fin rays, ppBPT – posterior process of basipterygium. Solid black indicates cartilage.
FIGURE 4 in Merodoras nheco, new genus and species from Rio Paraguay basin, Brazil (Siluriformes, Doradidae), and nomination of the new subfamily Astrodoradinae
FIGURE 4. Picture of (A) dorsal view of external surface, (B) ventral view of external surface, (C) dorsal view of internal surface of ventral half, and (D) lateral view of a para-saggital cut of the gas bladder of Merodoras nheco.
FIGURE 3 in Merodoras nheco, new genus and species from Rio Paraguay basin, Brazil (Siluriformes, Doradidae), and nomination of the new subfamily Astrodoradinae
FIGURE 3. Map of Rio Paraguay basin and adjoining area, showing the distribution of Merodoras nheco (type-locality represented by open circle). 1 – Rio Cuiabá, 2 – Rio Piquiri, 3 – Rio Negro.
FIGURE 2 in Merodoras nheco, new genus and species from Rio Paraguay basin, Brazil (Siluriformes, Doradidae), and nomination of the new subfamily Astrodoradinae
FIGURE 2. Dorsal view of cephalic shield of Merodoras nheco. 1IO – first infraorbital, 1TS – first tympanal scute, 2IO – second infraorbital, 2TS – second tympanal scute, 3IO – third infraorbital, 3TS – third tympanal scute, ANP – anterior nuchal plate, DFS – dorsal-fin spine, EPO – epioccipital, FRO – frontal, INS – infranuchal scute, LAC – lacrimal, LE – lateral ethmoid, MES – mesethmoid, MNP – medium nuchal plate, NAS – nasal, PMX – premaxillary, PNP – posterior nuchal plate, PTE – pterootic, SCL – supracleithrum, SOC –supraoccipital, SPH – sphenotic, SPI – spinelet.
FIGURE 2. Bomolochus bramus n in Bomolochus bramus n. sp. (Copepoda, Poecilostomatoida, Bomolochidae) from the pomfrets (Bramidae) off Taiwan, with a list of nominal species and key to valid species of Bomolochus von Nordmann, 1832
FIGURE 2. Bomolochus bramus n. sp., female. (A) leg 1 and intercoxal plate, anterior; (B) leg 2, ventral; (C) leg 3, ventral; (D) leg 4, ventral; (E) leg 5, ventral.
FIGURE 1. Bomolochus bramus n in Bomolochus bramus n. sp. (Copepoda, Poecilostomatoida, Bomolochidae) from the pomfrets (Bramidae) off Taiwan, with a list of nominal species and key to valid species of Bomolochus von Nordmann, 1832
FIGURE 1. Bomolochus bramus n. sp., female. (A) habitus, dorsal; (B) egg sac attachment area, dorsal; (C) abdomen and caudal rami, ventral; (D) rostral area, ventral; (E) antennule, ventral; (F) antenna, ventral; (G) labrum, ventral; (H) mandible; (I) paragnath; (J) maxillule; (K) maxilla; (L) maxilliped.
FIGURE 12 in Proposal of new specific status for tea-infesting populations of the nominal citrus spiny whitefly Aleurocanthus spiniferus (Homoptera: Aleyrodidae)
FIGURE 12. Phylogenetic tree of mtCOI sequences of Aleurocanthus camelliae sp. nov. based on the maximum-likelihood method using PhyML 3.0. Numbers at each node indicate bootstrap value. Horizontal branch lengths are drawn to scale, with the bar indicating 0.1-nt replacements per site. The outgroup was Aleurotrachelus camelliae.
FIGURE 11. Pulse intervals within a in Proposal of new specific status for tea-infesting populations of the nominal citrus spiny whitefly Aleurocanthus spiniferus (Homoptera: Aleyrodidae)
FIGURE 11. Pulse intervals within a train of male vibratory sounds of two spiny whitefly species, A. camelliae sp. nov. and A. spiniferus. Different letters in the figure indicate significant differences at p = 5% (Wilcoxon's rank-sum test).
FIGURE 6 in Proposal of new specific status for tea-infesting populations of the nominal citrus spiny whitefly Aleurocanthus spiniferus (Homoptera: Aleyrodidae)
FIGURE 6. (A–C, E, F) Aleurocanthus camelliae sp. nov. (D) A. spiniferus. (A) female puparium, dorsal view; (B) female antenna, lateral; (C, D) male genital segments, lateral; (E, F) abdominal segments (E, dorsal view; F, lateral view).
FIGURE 3 in Proposal of new specific status for tea-infesting populations of the nominal citrus spiny whitefly Aleurocanthus spiniferus (Homoptera: Aleyrodidae)
FIGURE 3. Habitus photographs. (A, C, E) A. camelliae sp. nov. (B, D, F) A. spiniferus. (A, B) Female right wings (A, Kyoto, Uji City; B, Fukuoka, Chikugo City). (C, D) Adult females, 30 min after emergence (C, Kyoto, Uji City; D, Shizuoka, Shimizu City). (E, F) Female puparia (E, Shiga, Koka City; F, Kumamoto, Toshima City). Scale bars show 500 µm.
FIGURE 5 in Proposal of new specific status for tea-infesting populations of the nominal citrus spiny whitefly Aleurocanthus spiniferus (Homoptera: Aleyrodidae)
FIGURE 5. (A, B, E) Aleurocanthus camelliae sp. nov. (C, D, F) A. spiniferus. (A–D) SEM of compound eyes; (A) Kyoto, Uji City, female; (B) Kyoto, Uji City, male; (C) Shizuoka, Shimizu City, female; (D) Shizuoka, Shimizu City, male); (E, F) SEM of marginal teeth (E, Kyoto, Uji City; F, Shizuoka, Shimizu City).
FIGURES 13–15. Milnesium tardigradum s.s in Redescriptions of three Milnesium Doyère, 1840 taxa (Tardigrada: Eutardigrada: Milnesiidae), including the nominal species for the genus
FIGURES 13–15. Milnesium tardigradum s.s. Doyère, 1840. 13—buccal tube (dorso-ventral section, neotype); 14—claws III (neotype); 15—claws IV (neotype). [All PCM]
FIGURE 16 in Redescriptions of three Milnesium Doyère, 1840 taxa (Tardigrada: Eutardigrada: Milnesiidae), including the nominal species for the genus
FIGURE 16. Type localities of all known Milnesium taxa. Open circles represent species of the tardigradum group, whereas filled circles represent species of the granulatum group. Alphabetically: 1—M. alabamae, 2—M. almatyense, 3—M. antarcticum, 4—M. asiaticum, 5—M. brachyungue, 6—M. dujiangensis, 7—M. eurystomum, 8—M. granulatum, 9—M. jacobi, 10— M. katarzynae, 11 —M. krzysztofi, 12—M. longiungue, 13—M. reductum, 14—M. reticulatum, 15—M. tardigradum s.s., 16— M. tardigradum trispinosa, 17—M. tetralamellatum, 18—M. zsalakoae. The map from Wikipedia, modified.
ScienceDex guides
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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)
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.