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3,750 results for “amber”
Figure 20-22. Fossil and Recent Amilenus. 20 in Fossil harvestmen (Arachnida, Opiliones) from Bitterfeld amber
Figure 20-22. Fossil and Recent Amilenus. 20 Amilenus deltshevi sp. n., M.BA 1659 (holotype), from Bitterfeld amber (Palaeogene: Oligocene) 21 A. deltshevi sp. n. M.BA 1660 (paratype), also from Bitterfeld amber 22 Juvenile Amilenus aurantiacus (Simon, 1881) (Recent harvestman for comparison), note the medial apophysis on the patella (arrowed). Scale bars equal 1.0 mm.
Replica exchange molecular dynamics simulation data of designed β-hairpins (implicit solvent, AMBER ff96)
<p>Raw REMD simulation data (protein only) of designed β-hairpins. AMBER ff96 and implicit solvent model is used. More details can be found in this paper: </p> <p>Yunhui Ge, Brandon Kier, Niels H. Andersen and Vincent A. Voelz. <a href="https://pubs.acs.org/doi/10.1021/acs.jcim.7b00132"><em>Computational and experimental evaluation of designed beta-cap hairpins using molecular simulations and kinetic network models.</em></a> J. Chem. Inf. Model., 2017, 57 (7), pp 1609–1620</p>
Replica exchange molecular dynamics simulation data of designed β-hairpins (implicit solvent, AMBER ff99SB-ildn)
<p>Raw REMD simulation data (protein only) of designed β-hairpins. AMBER ff99SB-ildn and implicit solvent model is used. More details can be found in this paper: </p> <p>Yunhui Ge, Brandon Kier, Niels H. Andersen and Vincent A. Voelz. <a href="https://pubs.acs.org/doi/10.1021/acs.jcim.7b00132"><em>Computational and experimental evaluation of designed beta-cap hairpins using molecular simulations and kinetic network models.</em></a> J. Chem. Inf. Model., 2017, 57 (7), pp 1609–1620</p>
Fig. 3 in New Baltic amber leafhoppers representing the oldest Aphrodinae and Megophthalminae (Hemiptera, Cicadellidae)
Fig. 3. Brevaphrodella nigra sp. nov. ♂. A. Body in dorsal view. B. Face. C. Pro- and mesothoracic legs in ventral view. D-E. Metathoracic leg. D. Apical portion of femur, tibia, and tarsomeres, dorsolateral view. E. First tarsomere, ventral view. F. Subgenital plates, and valve, ventral view. Scale bars: A-D, F = 0.5 mm; E = 0.25 mm.
Fig. 2. A-F in New Baltic amber leafhoppers representing the oldest Aphrodinae and Megophthalminae (Hemiptera, Cicadellidae)
Fig. 2. A-F. Eomegopthalmus lithuaniensis sp. nov. ♀. A. Crown, pronotum, and mesonotum, dorsal view. B. Face, anteroventral view. C. Right forewing, lateral view. D. Prothoracic leg, lateral view. E. Metathoracic leg, dorsal view. F. Second valvulae of ovipositor, general lateral view. G-I. Xestocephalites balticus sp. nov. ♂. G. Face. H. Apical portion of femur, tibia, and first tarsomere of metathoracic leg, lateral view. I. Subgenital plates, ventral view. Scale bars: A-H = 1 mm; I = 0.5 mm.
Fig. 1 in New Baltic amber leafhoppers representing the oldest Aphrodinae and Megophthalminae (Hemiptera, Cicadellidae)
Fig. 1. Habitus in dorsal and ventral view. A-B. Eomegopthalmus lithuaniensis sp. nov. ♀. C-D. Xestocephalites balticus sp. nov. ♂. E-F. Brevaphrodella nigra sp. nov. ♂. Scale bars = 1 mm.
Fig. 5 in New species of caddisflies with bipectinate antennae from Cretaceous Burmese amber (Insecta, Trichoptera: Odontoceratidae, Calamoceratidae)
Fig. 5. Bipectinata orientalis sp. nov. (NIGP172206) A. Holotype male in ventral view. B. Bipectinate antennae with scapus, pedicellus and flagellomeres. C. Drawing of fore- and hindwings. D. Drawing of the male genitalia. E. Male genitalia in dorsal view.
Fig. 2 in New species of caddisflies with bipectinate antennae from Cretaceous Burmese amber (Insecta, Trichoptera: Odontoceratidae, Calamoceratidae)
Fig. 2. Palaeopsilotreta burmanica sp. nov. (ZFMK-TRI000813) A. Holotype male in dorsal view. B. Head with maxillary palps and bipectinate antennae. C. Drawing of a forewing. D. Male genitalia in ventral view. E. Drawing of the male genitalia.
Fig. 3 in New species of caddisflies with bipectinate antennae from Cretaceous Burmese amber (Insecta, Trichoptera: Odontoceratidae, Calamoceratidae)
Fig. 3. Palaeopsilotreta cretacea sp. nov. (ZFMK-TRI000814) A. Holotype male in dorsal view. B. Head with bipectinate antennae, maxillary palps and labial palps. C. Drawing of a forewing. D. Drawing of the male genitalia. E. Male genitalia in ventral view.
Fig. 1 in New species of caddisflies with bipectinate antennae from Cretaceous Burmese amber (Insecta, Trichoptera: Odontoceratidae, Calamoceratidae)
Fig. 1. Palaeopsilotreta xiai Wichard & Wang, 2017. A. Male with bipectinate antennae in dorsal view (ZFMK-TRI000811). B. Drawing of a forewing. C. Male genitalia in dorsal view (ZFMK-TRI000812). D. Drawing of the male genitalia.
Figure 2 in First record of a non-pollinating fig wasp (Hymenoptera: Sycophaginae) from Dominican amber, with estimation of the size of its host figs
Figure 2. Linear regression between Idarnes carme sp. gp ovipositor sheath lengths and median host fig diameters. Lines represent fitted model (red) and fig diameter ±95% CI (blue) for a 1.2 mm ovipositor sheath length, which represents the ovipositor sheath length of I. thanatos sp. nov. Each point represents a different fig wasp species and the fig diameter of its host species.
Figure 1 in First described fossil representatives of the parasitoid wasp taxa Asaphesinae n. n. and Eunotinae (Hymenoptera: Chalcidoidea: Pteromalidae sensu lato) from Eocene Baltic amber
Figure 1. (a–c) Coriotela lasallei n. gen., n. sp. holotype female: (a) Body, dorso-lateral; (b) Head, mesosoma, and anterior part of metasomal, lateral, frl = frenal groove, occ = occipital carina. (c) Fore wing, clv = clava, clavomeres numbered. (d,e) Butiokeras costae n. gen., n. sp. holotype male: (d) Body, dorso-lateral; (e) Body, ventro-lateral.
Fig. 4 in Vladelektra, an enigmatic new genus of killer fungus gnats (Diptera: Keroplatidae: incertae sedis) from mid-Cretaceous Burmese amber.
Fig. 4. Vladelektra blagoderovi Evenhuis, sp. nov., antennae: male above, female below, both to scale. Abbreviations: I = flagellomere I; pe = pedicel.
Fig. 3 in Vladelektra, an enigmatic new genus of killer fungus gnats (Diptera: Keroplatidae: incertae sedis) from mid-Cretaceous Burmese amber.
Fig. 3. Vladelektra blagoderovi Evenhuis, sp. nov., lower portion of male head showing palpi and eye divided into upper and lower ommatidia. a. in situ. b. illustration to clarify structures.
Fig. 5 in Vladelektra, an enigmatic new genus of killer fungus gnats (Diptera: Keroplatidae: incertae sedis) from mid-Cretaceous Burmese amber.
Fig. 5. Vladelektra blagoderovi Evenhuis, sp. nov., male wing. a. in situ. b. illustration to clarify venation. c. detail of wing base showing effaced veins.
Fig. 7 in Vladelektra, an enigmatic new genus of killer fungus gnats (Diptera: Keroplatidae: incertae sedis) from mid-Cretaceous Burmese amber.
Fig. 7. Vladelektra blagoderovi Evenhuis, sp. nov., male genitalia. Abbreviations: ep = epandrium; gx - gonocoxa; gs = gonostylus; ta = tergal apodeme.
Fig. 1 in Vladelektra, an enigmatic new genus of killer fungus gnats (Diptera: Keroplatidae: incertae sedis) from mid-Cretaceous Burmese amber.
Fig. 1. Amber piece containing type specimens of Vladelektra blagoderovi Evenhuis, gen. nov. et sp. nov. Abbreviations: H = holotype male; P = paratype female.
Fig. 1 in Electrocambalidae fam. nov., a new family of Cambalidea from Cretaceous Burmese amber (Diplopoda, Spirostreptida)
Fig. 1. Electrocambala ornata gen. et sp. nov., holotype, ♂ (ZFMK-MYR7369). A. Habitus, lateral view, photograph. B. Head and anterior body rings, lateral view, photograph. C. Head and anterior body rings, lateral view, volume rendering. D. Head and anterior body rings, lateral view, drawing. E. Tarsus of midbody leg, photograph. F. Midbody ring, photograph. G. Gonopods, frontal view, segmentation. H. Gonopods, lateral view, segmentation. Abbreviations: ag = anterior gonopod; as = accessory spine; at = antennae; cl = claw; co = collum; cx = coxite; L = leg; la = labrum; md = mandible; mz = metazonite; om = ommatidia; pe = penis; pg = posterior gonopod; pz = prozonite; ta = tarsus; te = telopodite.
Fig. 3 in Electrocambalidae fam. nov., a new family of Cambalidea from Cretaceous Burmese amber (Diplopoda, Spirostreptida)
Fig. 3. Electrocambala cretacea gen. et sp. nov., holotype, ♀ (ZFMK-MYR7370). A. Amber piece, photograph. B. Habitus, lateral view, photograph. C. Head and anterior body rings, lateral view, photograph. D. Telson and posterior body rings, lateral view, photograph. E. Head and anterior body rings, lateral view, drawing. F. Antenna, drawing. G. Midbody leg, drawing. Abbreviations: 57 = body ring 57; as = apical spine; at = antennae; av = anal valve; cl = claw; co = collum; cx = coxa; il = incisura lateralis; L = leg; la = labrum; md = mandible; om = ommatidia; ta = tarsus; te = telson.
Fig. 5 in Electrocambalidae fam. nov., a new family of Cambalidea from Cretaceous Burmese amber (Diplopoda, Spirostreptida)
Fig. 5. Kachincambala distorta gen. et sp. nov., holotype, ♂ (ZFMK-MYR7368). A. Amber piece, photograph. B. Head and anterior body rings, lateral view, photograph. C. Head and anterior body rings, lateral view, volume rendering. D. Head, lateral view, drawing. E. Tarsus, drawing. F. Gonopods, anterior view, segmentation. G. Gonopods, lateral view, segmentation. Abbreviations: ag = anterior gonopod; at = antennae; cl = claw; co = collum; cx = coxite; L = leg; la = labrum; md = mandible; om = ommatidia; oz = ozopore; pg = posterior gonopod; ta = tarsus; te = telopodite.
ScienceDex guides
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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.