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76 results for “Armata”
FIGURES 1–6 in A new Rhagovelia in the armata group from Colombia (Hemiptera: Heteroptera: Veliidae)
FIGURES 1–6 Structural details of Rhagovelia quilichaensis sp. nov. 1–3 male, 1 hind tibiae, 2 paramere, 3 proctiger; 4–6 female, 4 dorsal habitus (legs omitted), 5 abdomen, lateral view, 6 middle femur, ventro-lateral view.
FIGURE 1. Pristina armata n in Description of Pristina armata n. sp. (Clitellata: Naididae: Pristininae) from a carnivorous plant (Nepenthes sp.) in Borneo, Indonesia
FIGURE 1. Pristina armata n. sp. A. Location of the type locality (circle) on the island of Borneo. B. Position of holotype and the paratypes (A–E) mounted together on one microscopic slide. C. Paratype: specimen with prostomium as wide as long, arrow: sign of future fission. D. Holotype, arrow: dorsal giant hook-like chaeta at IV and hair chaetae at II–V.
FIGURE 2. Pristina armata n in Description of Pristina armata n. sp. (Clitellata: Naididae: Pristininae) from a carnivorous plant (Nepenthes sp.) in Borneo, Indonesia
FIGURE 2. Pristina armata n. sp. A. Holotype, sexually immature, with giant dorsal chaetae. B. Dorsal giant hook-like chaeta at IV; C. Dorsal needle chaeta at V. D. Dorsal needle chaeta at VI. E. Ventral bifid chaeta at IV.
FIGURE 5 in The polyps of Oceania armata identified by DNA barcoding (Cnidaria, Hydrozoa)
FIGURE 5. Maximum likelihood phylogenetic tree of Oceania and Turritopsis species based on 579 bp of the COI gene: 50% majority consensus tree obtained with PhyMl (TIM+I model). Node–support values are bootstrap values (shown only if> 70%). The tree was rooted using the outgroup taxon. For more details see text and Table 1.
FIGURE 4 in The polyps of Oceania armata identified by DNA barcoding (Cnidaria, Hydrozoa)
FIGURE 4. Maximum likelihood phylogenetic tree of Oceania and Turritopsis species based on 591 bp of the 16S gene: 50% majority consensus tree obtained with PhyMl (GTR+G model). Node–support values are bootstrap values (shown only if> 70%). The tree was rooted using the outgroup taxon. For more details see text and Table 1.
FIGURE 3 in The polyps of Oceania armata identified by DNA barcoding (Cnidaria, Hydrozoa)
FIGURE 3. Oceaniidae hydroid from the Andaman Sea initially identified as Turritopsis chevalense, after molecular comparisons attributed to Oceania armata, MHNG-INVE-78812. A. Drawing of hydranth and medusa bud. B. Nematocysts: microbasic eurytele and desmoneme.
FIGURE 2 in The polyps of Oceania armata identified by DNA barcoding (Cnidaria, Hydrozoa)
FIGURE 2. Oceaniidae hydroid from the Andaman Sea initially identified as Turritopsis chevalense, after molecular comparisons attributed to Oceania armata, MHNG-INVE-78812. A. Preserved colony. B. Terminal branch after removal of soft tissue. Note that the side branch originating near the asterisk (*) remains adnate until it curves away (arrow).
FIGURE 1 in The polyps of Oceania armata identified by DNA barcoding (Cnidaria, Hydrozoa)
FIGURE 1. Oceania armata Kölliker, 1853. A. Living medusa (bell height and width about 9 mm) from the Bay of Villefranche–sur–Mer. The specimen was used to obtain the DNA sample DNA1148. B. Microphoto of mouth margin of sample MHNG-INVE-87094, note stalked nematocyst clusters.
FIGURE 1. Cladochaeta armata. A. Head, dorsal view. B. Head, lateral view. C. Head, frontal view. D. Thorax, lateral view. E. Thorax, dorsal view. F in Going beyond the tip of the Drosophilidae iceberg: New Cladochaeta Coquillett, 1900 (Diptera: Drosophilidae) from Brazil
FIGURE 1. Cladochaeta armata. A. Head, dorsal view. B. Head, lateral view. C. Head, frontal view. D. Thorax, lateral view. E. Thorax, dorsal view. F. Abdomen, dorsal view. Scale bars: 0.1mm.
FIGURES 7–11. C in Morphological description and DNA barcoding of Ceratophysella gracilimucronata sp. nov. (Collembola: Hypogastruridae) from China, with a key to species of the C. armata group of the Sino-Japanese Region
FIGURES 7–11. C. gracilimucronata sp. nov.: 7, furca; 8, chaetotaxy of Abd. V; 9, chaetotaxy of Abd. I–VI; 10, chaetotaxy of head; 11, chaetotaxy of Th. I–III.
FIGURES 1–6. C in Morphological description and DNA barcoding of Ceratophysella gracilimucronata sp. nov. (Collembola: Hypogastruridae) from China, with a key to species of the C. armata group of the Sino-Japanese Region
FIGURES 1–6. C. gracilimucronata sp. nov.: 1, chaetotaxy of Ant. I–IV, dorsal side; 2, chaetotaxy of Ant. III–IV, ventral side; 3, postantennal organ and ocelli; 4, labial palp; 5, claw I with empodial appendage; 6, labrum.
FIGURE 1. Tacinga armata. A. Stem-segments with a in Novelties in Cactaceae from Eastern Brazil: Adding two new species and one new nothospecies to Tacinga (Opuntioideae)
FIGURE 1. Tacinga armata. A. Stem-segments with a young fruit, under cultivation; B. Stem-segments with flowers and fruits, plant in habitat; C. Areoles, stem-segment close-up; D. Flower, lateral view; E. Flower, frontal view; F. Young fruit, lateral view; G. Mature fruit, lateral view; H. Mature fruit, longitudinal section to show pulp color and seeds; I. Shooting from a fallen mature fruit; J. Plant in natural habitat; K. Plant in natural habitat (left), sympatric with T. palmadora (plant at right); L. Panoramic view of species' habitat.
FIGURE 6. Floscularia armata. A in Key to sessile gnesiotrochan rotifers: Floscularia (Monogononta; Flosculariidae)
FIGURE 6. Floscularia armata. A. Trophi (caudal view). B. Apical region, ventral view showing mucrons and ventrolateral antennae. Dotted oval: variations of the mucrons and accessory projections may occur in different specimens: consult the original descriptions in Segers (1997). Scale bars: as indicated. (Reproduced with permission from the copyright holder [Hydrobiologia 354: 165–175] and the author (Segers 1997)).
FIGURE 2. Diagnostic characters for separating Aplocheilus andamanicus and A in The identity of Aplocheilus andamanicus (Köhler, 1906) (Teleostei: Cyprinodontiformes), an endemic Killifish from the Andaman Islands, with notes on Odontopsis armata van Hasselt
FIGURE 2. Diagnostic characters for separating Aplocheilus andamanicus and A. panchax. (A) One of the original syntypes of Aplocheilus andamanicus collected by Day (1878) from the Andamans, now lectotype, BMNH 1870.5.18.34-36, 74.8 mm SL, Port Blair, (B) topotypes of A. andamanicus, male, BNHS FWF 563, 65.2 mm SL, collected from south Andaman Island, (C) topotypes of A. panchax, male, BNHS FWF 569, 28.3 mm SL, collected from West Bengal, India. See-through vertical lines represent the relative positions of the pectoral-fin origin and the posterior extremity of dorsal, pelvic and anal fins.
FIGURE 6 in The identity of Aplocheilus andamanicus (Köhler, 1906) (Teleostei: Cyprinodontiformes), an endemic Killifish from the Andaman Islands, with notes on Odontopsis armata van Hasselt
FIGURE 6. Intra- and inter-species genetic distances for species in the 'Aplocheilus panchax complex'. There is a clear genetic gap, spanning from 2.5 to 6.6%, between the maximum intra-species distance and minimum inter-species distance, indicating that the three species are genetically distinct from each other. Black lines within the boxes indicate the medians, the red line the mean; box limits indicate the 25th and 75th percentiles; whiskers extend 1.5 times the interquartile range from the 25th and 75th percentiles, outliers are represented by solid circles.
FIGURE 1 in The identity of Aplocheilus andamanicus (Köhler, 1906) (Teleostei: Cyprinodontiformes), an endemic Killifish from the Andaman Islands, with notes on Odontopsis armata van Hasselt
FIGURE 1. Topotypes of Aplocheilus andamanicus and A. panchax in life. (A) Aplocheilus andamanicus, male, BNHS FWF 563, 65.2 mm SL, (B) A. andamanicus female, BNHS FWF 562, 65.0 mm SL, (C) A. andamanicus, female, BNHS FWF 564, 30.8 mm SL, and (D) A. panchax, male, BNHS FWF 569, 28.3 mm SL.
FIGURE 7 in The identity of Aplocheilus andamanicus (Köhler, 1906) (Teleostei: Cyprinodontiformes), an endemic Killifish from the Andaman Islands, with notes on Odontopsis armata van Hasselt
FIGURE 7. Aplocheilus armatus male (A) and female (B) from Singapore, Sungai Poyan. Photo: Heok Hui Tan.
FIGURE 5 in The identity of Aplocheilus andamanicus (Köhler, 1906) (Teleostei: Cyprinodontiformes), an endemic Killifish from the Andaman Islands, with notes on Odontopsis armata van Hasselt
FIGURE 5. Phylogeographical map showing the distribution of Aplocheilus andamanicus, A. panchax and A. armatus.
FIGURE 4 in The identity of Aplocheilus andamanicus (Köhler, 1906) (Teleostei: Cyprinodontiformes), an endemic Killifish from the Andaman Islands, with notes on Odontopsis armata van Hasselt
FIGURE 4. Phylogenetic position of Aplocheilus andamanicus, A. panchax and A. armatus based on Bayesian analysis. Bayesian topology is shown. Values along the nodes are Bayesian posterior probabilities followed by the bootstrap support from maximum likelihood analysis based on best partition scheme. Cubanichthys pengelleyi is used as the out-group. Sequences of topotypes of Aplocheilus andamanicus, A. panchax and A. armatus are labelled in red.
FIGURE 3. Diagnostic characters separating Aplocheilus andamanicus and A in The identity of Aplocheilus andamanicus (Köhler, 1906) (Teleostei: Cyprinodontiformes), an endemic Killifish from the Andaman Islands, with notes on Odontopsis armata van Hasselt
FIGURE 3. Diagnostic characters separating Aplocheilus andamanicus and A. panchax. (A) Diagrammatic representation of the frontal squamation pattern and neuromasts and (B) structural morphology and coloration pattern of caudal fin in Aplocheilus andamanicus (BNHS FWF 563) and A. panchax (BNHS FWF 569). Abbreviations: ais = anterior infraorbital series; an = anterior naris; arn = anterior rostral neuromast; ots = otic series; pan = parietal neuromast; pbs = preorbital series; pis = posterior infraorbital series; pn = posterior naris; prn = posterior rostral neuromast; sos = supraorbital series; stn = supratemporal neuromasts; A–F = frontal scales.
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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
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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
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