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8,038 results for “validation”
ESR-thermochronometry of the Hida range of the Japanese Alps: Validation and future potential
<p><strong>Supplementary data for the above titled paper published in <em>Geochronology</em>. </strong></p> <p><strong>Contents:</strong></p> <p>Raw OSL data, Raw ESR data, DRAC dose rate input spreadsheet.</p> <p><strong>OSL-thermochronometry Raw Data.</strong></p> <p>KRG16-05</p> <p>KRG16-06</p> <p>KRG16-101</p> <p>KRG16-104</p> <p>KRG16-111</p> <p>KRG16-112<br> </p> <p><strong>ESR-thermochronometry Raw Data.</strong></p> <p>KRG16-05 Al & Ti-centres</p> <p>KRG16-06 Al & Ti-centres</p> <p>KRG16-101 Al & Ti-centres</p> <p>KRG16-104 Al & Ti-centres (4.3 kGy isothermal holding experiment)</p> <p>KRG16-104 Al & Ti-centres (2.15 kGy isothermal holding experiment)</p> <p>KRG16-111 Al & Ti-centres</p> <p>KRG16-112 Al & Ti-centres</p> <p><strong>Dosimetry data.</strong></p>
Deliverable 3.4 - Anonymised dataset with all variables relevant for validating the ICT-system
<p>This data was collected as a part of the European Union's PEAKapp project (#695945) field test across four nations (Austria, Estonia, Sweden, and Latvia). Contained in the dataset are monthly consumption quantities for the participating households, along with monthly app usage statistics, and some characteristics about the participating households. For a complete description of the field tests please see PEAKapp Deliverable 4.1, Section 3, downloadable at: http://www.peakapp.eu/public-deliverables/</p>
Figure 3 in Earthworm, a novel in vivo system to validate antimitotic compounds
Figure 3. Microscopy analysis of blastema development. Worms treated with water showed development of blastema 3 days after amputation (A), whereas wound healing alone was observed in worms treated with colchicine (B) or aqueous extract of A. calamus (C). Healed wounds are indicated by arrows. Histological studies show the regenerating budding tissue in water-treated worms (D), healed wounds alone in colchicine-treated worms (E), or aqueous extract of A. calamus (F). All tissues (D, E, and F) were stained with hematoxylin and eosin and were photographed with 4× magnification using a light microscope. The arrows in panels D, E, and F indicate the borders of the lesion. rb - regenerating blastema, wh - wound healing, ECL - epithelial cell layer, CML - circular muscle layer, LCL - longitudinal cell layer. Scale bar equals 50 µm.
Figure 2 in Earthworm, a novel in vivo system to validate antimitotic compounds
Figure 2. Inhibition of blastema development in Eudrilus eugeniae by colchicine and aqueous extract of Acorus calamus. A) The adult earthworm, E. eugeniae, is marked to show anterior (ar), clitellum (cl), and posterior (pr) regions. The control worms were injected with distilled water every 24 h for a period of 7 days, and the development of the blastema was observed after day 3 (B), day 5 (C), or day 7 (D). Colchicine was injected similarly for 7 consecutive days and the development of blastema was not observed after day 3 (E), day 5 (F). or day 7 (G). Aqueous extract of A. calamus rhizomes was injected every 24 h for a period of 7 days and the development of blastema was not observed after day 3 (H), day 5 (I), or day 7 (J). rb - regenerating blastema, wh - wound healing.
Figure 1 in Earthworm, a novel in vivo system to validate antimitotic compounds
Figure 1. Inhibition of cell division in AllIum cepa root tips by colchicine and water extract of Acorus calamus. All root tips were incubated with respective samples for 16 h before the processing. A) Different stages of mitosis of roots treated with distilled water, observed with a 40× objective lens; B) the arrest of cell division predominantly in metaphase by colchicine (100 µg/mL); C) more prophases compared to the stages of metaphase and anaphase in samples treated with Acorus calamus (1 mg/mL); D) magnified images of all 4 phases of mitosis (prophase, metaphase, anaphase, and telophase) in water-treated samples; E) the magnified images of 6 metaphases and 1 anaphase in colchicine-treated samples; F) the magnified images of metaphase, anaphase, and prophase. The graph (G) shows the % of cells observed in different phases of mitotic cell division with mean ± SEM bar and P-value (***: P <0.05). Marked circles indicate the different phases of cell division.
Figure 3 in Validation of reference genes for quantitative expression analysis by qPCR in various tissues of date mussel (Lithophaga lithophaga)
Figure 3. Pairwise variation (V-value) of candidate reference genes in date mussel (L. lithophaga) using geNorm.
Fig. 12 in A new species of Geophis (Dipsadidae) from Veracruz, Mexico, with comments on the validity of related taxa
Fig. 12. Map showing the type localities and distribution of the Geophis dubius group members in southern Mexico and adjacent Guatemala. Circles represent localities and triangles represent known type localities. Type localities which are not known or not exact are not shown.
Fig. 4 in A new species of Geophis (Dipsadidae) from Veracruz, Mexico, with comments on the validity of related taxa
Fig. 4. Diagnostic characters of paratype Geophis cansecoi sp. nov. MZFZ 4437 from Los Capulínes, Municipio de Yecuatla, Veracruz, Mexico. (A) Dorso-lateral perspective in life. (B) Dorsal profile of head in life. (C) Lateral profile of head in life. (D) Ventral profile of head in life. (E) Ventral surface of tail in life.
Fig. 11 in A new species of Geophis (Dipsadidae) from Veracruz, Mexico, with comments on the validity of related taxa
Fig. 11. Bayesian phylogenetic inference of several members of the Geophis dubius group based on the mitochondrial loci 16S rRNA. Black circles represent nodes with a posterior support of 1. All nodes with support of less than 0.5 are collapsed. (A) Geophis occabus, (B) G. turbidus, (C) G. dubius, (D) G. lorancai, (E) G. cansecoi, (F) G. semmidoliatus. Photos by Christoph I. Grünwald (A, C, E, F), Raciel Cruz-Elizalde (B), and Miguel A. de la Torre-Loranca (D).
Fig. 10 in A new species of Geophis (Dipsadidae) from Veracruz, Mexico, with comments on the validity of related taxa
Fig. 10. Type locality of Geophis cansecoi sp. nov. at Los Capulínes, Municipio de Yecuatla, Veracruz. (A) Exact location where type specimen was collected. (B) General photo of type locality. (C) Decomposing log in clearing in cloud forest where several of the type specimens were collected.
Fig. 9 in A new species of Geophis (Dipsadidae) from Veracruz, Mexico, with comments on the validity of related taxa
Fig. 9. Comparative photos of similar species of the Geophis dubius group from southern Mexico and Guatemala. (A) Dorsal perspective of Geophis lorancai from the vicinity of Zongolica, Veracruz. ITSZ 025. (B) Ventral perspective of Geophis lorancai from the vicinity of Zongolica, Veracruz. MZFC ITSZ 025. (C) Dorsal perspective of Geophis nasalis from the vicinity of Quetzaltenango, Guatemala. UTA 20800. (D) Ventral perspective of Geophis nasalis from the vicinity of Quetzaltenango, Guatemala. UTA 20800. (E) Dorsal perspective of Geophis rhodogaster from vicinity of Guatemala, Guatemala. UTA28347. (F) Ventral perspective of Geophis rhodogaster from the Department of Quetzaltenango, Guatemala (UTA 22752). Photos by M.A. de la Torre Loranca (A–B) and J.A. Campbell (C–F).
Fig. 2 in A new species of Geophis (Dipsadidae) from Veracruz, Mexico, with comments on the validity of related taxa
Fig. 2. Holotype of Geophis cansecoi sp. nov. MZFZ 4432 from Los Capulínes, Municipio de Yecuatla, Veracruz, Mexico. (A) Dorsal perspective in preservative. (B) Ventral perspective in preservative.
Fig. 13 in A new species of Geophis (Dipsadidae) from Veracruz, Mexico, with comments on the validity of related taxa
Fig. 13. Holotype of Geophis fuscus (BMNH 1946.1.6.48) from "Jalapa," Mexico. (A) Dorsal perspective in preservative. (B) Ventral perspective in preservative. Photos by Jeff Streicher.
Fig. 1 in A new species of Geophis (Dipsadidae) from Veracruz, Mexico, with comments on the validity of related taxa
Fig. 1. Holotype of Geophis cansecoi sp. nov. MZFZ 4432 from Los Capulínes, Municipio de Yecuatla, Veracruz, Mexico. (A) Dorsolateral perspective in life. (B) Lateral perspective in life. (C) Ventral perspective in life.
Fig. 3 in A new species of Geophis (Dipsadidae) from Veracruz, Mexico, with comments on the validity of related taxa
Fig. 3. Diagnostic characters of paratype Geophis cansecoi sp. nov. MZFZ 4436 from Los Capulínes, Municipio de Yecuatla, Veracruz, Mexico. (A) Dorso-lateral perspective in life. (B) Dorsal profile of head in life. (C) Lateral profile of head in life. (D) Ventral profile of head in life. (E) Ventral surface of tail in life.
Fig. 6 in A new species of Geophis (Dipsadidae) from Veracruz, Mexico, with comments on the validity of related taxa
Fig. 6. Paratypes of Geophis cansecoi sp. nov. in life. (A–B) MZFZ 4435; (C–D) INIRENA 2812; (E) INIRENA 2814; (F) MZFZ 4434; all from the vicinity of Los Capulínes, Municipio de Yecuatla, Veracruz, Mexico.
Fig. 5 in A new species of Geophis (Dipsadidae) from Veracruz, Mexico, with comments on the validity of related taxa
Fig. 5. Diagnostic characters of paratype Geophis cansecoi sp. nov. INIRENA 2814 from Los Capulínes, Municipio de Yecuatla, Veracruz, Mexico. (A) Dorso-lateral perspective in life. (B) Dorsal profile of head in life. (C) Lateral profile of head in life. (D) Ventral profile of head in life. (E) Ventral surface of tail in life.
Fig. 7 in A new species of Geophis (Dipsadidae) from Veracruz, Mexico, with comments on the validity of related taxa
Fig. 7. Comparative photos of sympatric or nearly sympatric species of Geophis living in close proximity of Geophis cansecoi sp. nov. (A) Dorsal perspective of juvenile Geophis turbidus from vicinity of El Damo, Municipio de Tenango de Doria, Hidalgo. Photo by L. Fernández-Badillo. (B) Dorsal perspective of juvenile Geophis turbidus from vicinity of La Viejita, Municipio de Tenango de Doria, Hidalgo (CIB 04451). Photo by R. Cruz-Elizalde. (C) Dorsal perspective of Geophis semidoliatus from the vicinity of La Joya, Municipio de Tezonapa, Veracruz. UTA 52611. Photo by J.A. Campbell. (D) Ventral perspective of Geophis semidoliatus from the vicinity of La Joya, Municipio de Tezonapa, Veracruz. UTA 52611. Photo by J.A. Campbell. (E) Dorsal perspective of Geophis mutitorques from the vicinity of Chiconquiaco, Veracruz. CIG 1156. (F) Ventral perspective of Geophis mutitorques from the vicinity of Chiconquiaco, Veracruz. CIG 1156.
Fig. 8 in A new species of Geophis (Dipsadidae) from Veracruz, Mexico, with comments on the validity of related taxa
Fig. 8. Comparative photos of similar species of the Geophis dubius group from southern Mexico. (A) Dorsal perspective of Geophis dubius from the vicinity of Santa María Tlahuitoltepec, Oaxaca. CIG 00723. (B) Ventral perspective of Geophis dubius from the vicinity of Santa María Tlahuitoltepec, Oaxaca. CIG 00723. (C) Dorsal perspective of Geophis dubius from the vicinity of La Cumbre, Municipio de Santa Catarina Ixtepejí, Oaxaca. UTA 38826 (JAC 17793). Photo by J.A. Campbell. (D) Ventral perspective of Geophis dubius from the vicinity of La Cumbre, Municipio de Santa Catarina Ixtepejí, Oaxaca. UTA 38826 (JAC 17793). Photo by J.A. Campbell. (E) Dorsal perspective of Geophis anocularis from vicinity of Totontepec, Municipio de Totontepec Villa de Morelos, Oaxaca. CIG 00725. (F) Ventral perspective of Geophis anocularis from vicinity of Totontepec Villa de Morelos, Oaxaca. CIG 00725.
Fig. 6. Platypterygiine ophthalmosaurid Platypterygius hercynicus Kuhn, 1946 in New data on the ichthyosaur Platypterygius hercynicus and its implications for the validity of the genus
Fig. 6. Platypterygiine ophthalmosaurid Platypterygius hercynicus Kuhn, 1946, SMSS "SGS", holotype, from the late Aptian of Salzgitter, Germany. Skull roof of the type−specimen in dorsal view. A. Photograph. B. Interpretative drawing by Kolb and Sander (2009). C. Reinterpretation based on the nasal morphology of MHNH 2010.4 and on a cast of SMSS "SGS". As in MHNH 2010.4 (see Fig. 2), the nasal is markedly elongated anteriorly and wide posteriorly, overlapping the postfrontal extensively. The nasal is coloured grey. The foramen situated at the nasal−frontal suture is interpreted as the internasal foramen, and the holotype lacks the parietal foramen and most of the frontal. Illustrations borrowed from Kolb and Sander (2009) and used with the permission of both authors.
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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
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.