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Fig. 13 in The new spider genus Palindroma, featuring a novel synapomorphy for the Zodariidae (Araneae)
Fig. 13. Palindroma obmoimiombo gen. et sp. nov., holotype, ♂ (MRAC 241633). A. Palp, retrolateral view. B. Idem, dorsal view. Scale bars = 0.5 mm.
Fig. 11 in The new spider genus Palindroma, featuring a novel synapomorphy for the Zodariidae (Araneae)
Fig. 11. Palindroma obmoimiombo gen. et sp. nov., paratype, ♂ (MRAC 241634). A. Habitus, dorsal view. B. Idem, ventral view. C. Idem, lateral view. D. Left chelicera, ventral view, showing mesal field of spinules. E. Tarsus 4, retrolateral view. Scale bars: A–C = 1 mm, D–E = 0.5 mm).
Fig. 20. A in The new spider genus Palindroma, featuring a novel synapomorphy for the Zodariidae (Araneae)
Fig. 20. A. Trygetus sexoculatus (O. Pickard-Cambridge, 1872), ♂, left tibia-metatarsus joint III. B. As previous, left tibia-metatarsus joint II; arrows indicate tibial process and metatarsal concavity. C. Parazodarion raddei (Simon, 1889), ♂, right tibia-metatarsus joint III; arrow indicates tibial process. D. As previous, right tibia-metatarsus joint II; arrows indicate tibial process and metatarsal concavity. E. Diores poweri Tucker, 1920, ♀, right tibia-metatarsus joint IV; arrow indicates tibial process. F. Idem, detail; arrow indicates metatarsal concavity. Scale bars: A–B, E–F = 10 mm, C–D = 20 mm.
Fig. 9 in The new spider genus Palindroma, featuring a novel synapomorphy for the Zodariidae (Araneae)
Fig. 9. Palindroma avonova gen. et sp. nov. A–B. Holotype, ♂. C. ♀ from Maringa Forest. A. ♂, palp, retrolateral view. B. Idem, ventral view. C. ♀, epigyne, ventral view. Scale bars = 0.2 mm.
Fig. 7 in The new spider genus Palindroma, featuring a novel synapomorphy for the Zodariidae (Araneae)
Fig. 7. Palindroma aleykyela gen. et sp. nov., ♂ (MRAC 153248). A. Palp, retrolateral view. B. Idem, ventral view. Scale bar = 1 mm.
Fig. 6 in The new spider genus Palindroma, featuring a novel synapomorphy for the Zodariidae (Araneae)
Fig. 6. Palindroma aleykyela gen. et sp. nov., holotype, ♂. A. Habitus, dorsal view. B. Idem, ventral view. C. Palp, retrolateral view. D. Idem, ventral view. Scale bars: A–B = 1 mm, C–D = 0.5 mm.
Fig. 10 in The new spider genus Palindroma, featuring a novel synapomorphy for the Zodariidae (Araneae)
Fig. 10. Palindroma avonova gen. et sp. nov. A–B. Holotype, ♂. C. Paratype, ♂, from Marimba Forest. D. ♀ from Maringa forest. A. ♂, palp, retrolateral view. B. Idem, ventral view. C. Palp detail of paratype, enbolus, ventral view. D. ♀, epigyne, ventral view. Scale bars = 0.5 mm.
Fig. 4 in The new spider genus Palindroma, featuring a novel synapomorphy for the Zodariidae (Araneae)
Fig. 4. Palindroma morogorom gen. et sp. nov. A–B. Paratype, ♂. C–D. Paratype, ♀. A. ♂, palp, retrolateral view. B. Idem, ventral view. C. ♀, epigyne, ventral view. D. Idem, cleared in methylsalicylate, dorsal view. Scale bars = 0.2 mm.
Fig. 3 in The new spider genus Palindroma, featuring a novel synapomorphy for the Zodariidae (Araneae)
Fig. 3. Palindroma morogorom gen. et sp. nov. A–D. Paratype, ♂. E–G. Paratype, ♀. A. ♂, habitus, dorsal view. B. Idem, ventral view. C. Idem, lateral view. D. Idem, frontal view. E. ♀, habitus, dorsal view. F. Idem, ventral view. G. Idem, lateral view. Scale bars = 1 mm.
Fig. 2. — A–D in The new spider genus Palindroma, featuring a novel synapomorphy for the Zodariidae (Araneae)
Fig. 2. — A–D. Palindroma morogorom gen. et sp. nov. Scanning electron miocrographs. A–B. ♂ from Kigogo Reserve. C-D. ♀ from Uzungwa Scarp Forest Reserve, paratype. A. ♂ palp, expanded, retrolateral view. B. Idem, anterolateral view. Arrow shows tegular retrolateral boss. C. Epigyne, digested, dorsal view. D. Idem, detail. — E–F. Palindroma avonova gen. et sp. nov., paratype, ♀. E. Epigyne, digested, dorsal view F. Idem, detail. Scale bars: A–C, E = 200 mm, D, F = 100 mm.
Fig. 1 in The new spider genus Palindroma, featuring a novel synapomorphy for the Zodariidae (Araneae)
Fig. 1. Palindroma morogorom gen. et sp. nov. Scanning electron miocrographs. A–D. ♂ from Kigogo Reserve. E–F. Paratype ♀. A. Right chelicera, ventral view, arrow shows membranous lamina. B. As previous, detail. C. Leg I, tarsal claws, lateral view. D. Tibia I, hinged hair (black arrow), trichobothrium (white arrow). E. ♀ right palp, lateral view. F. Detail of previous. Scale bars: A, E–F = 100 mm, B–D = 50 mm.
Fig. 21. A in The new spider genus Palindroma, featuring a novel synapomorphy for the Zodariidae (Araneae)
Fig. 21. A. Amaurobius fenestralis (Ström, 1768), ♀, base of right metatarsus 3. B. Coelotes terrestris (Wider, 1834), ♂, right tibia-metatarsus joint III. C. Nurscia albomaculata (Lucas, 1846), ♂, right tibia-metatarsus joint III. D. Penestomus montanus Miller, Griswold & Haddad, 2010, ♀, right tibiametatarsus joint I. Scale bars: A–B, D = 100 mm, C = 50 mm.
Fig. 16 in The new spider genus Palindroma, featuring a novel synapomorphy for the Zodariidae (Araneae)
Fig. 16. Distribution map of P. avonova gen. et sp. nov. (●), P. aleykyela gen. et sp. nov. (●), P. morogorom gen. et sp. nov. (●), P. obmoimiombo gen. et sp. nov. (■) and P. sinis gen. et sp. nov. (▲).
Fig. 5 in The new spider genus Palindroma, featuring a novel synapomorphy for the Zodariidae (Araneae)
Fig. 5. Palindroma morogorom gen. et sp. nov. A–B. Holotype, ♂. C. Paratype, ♀. A. ♂, palp, retrolateral view. B. Idem, ventral view. C. ♀, epigyne, ventral view. Scale bars: A–B = 1mm, C = 0.5 mm.
Fig. 19. A in The new spider genus Palindroma, featuring a novel synapomorphy for the Zodariidae (Araneae)
Fig. 19. A. Lachesana blackwalli (O. Pickard-Cambridge, 1872), ♂, right tibia and metatarsus III, dorsal view. B. Mallinella sp., ♂, right tibia and metatarsus II. C. Suffrica gus Henrard & Jocqué, 2015, ♂, left tibia and metatarsus I. D. Zodarion nesiotes Denis, 1965, ♀, right tibia and metatarsus I. E. Microdiores sp., ♂, right tibia and metatarsus I. F. Ranops caprivi Jocqué, 1991, ♂, right tibia and metatarsus II. G. Diores milloti Jocqué, 1990, ♀, right tibia and metatarsus I. Scale bars: A = 100 mm, B, G = 50 mm, C, F = 20 mm, D–E = 10 mm. Arrow shows tibial process, asterisks indicate condyles.
Fig. 8 in The new spider genus Palindroma, featuring a novel synapomorphy for the Zodariidae (Araneae)
Fig. 8. Palindroma avonova gen. et sp. nov. A–B. Holotype, ♂. C–D. ♀ from Maringa Forest. A. ♂, habitus, dorsal view. B. Idem, ventral view. C. ♀, habitus, dorsal view. D. Idem, ventral view. Scale bars = 1 mm.
Genome-wide association meta-analysis of 30,000 samples identifies seven novel loci for quantitative ECG traits
<p><strong>Introduction</strong></p> <p>These are the <em>Summary Level-data</em> as presented in:</p> <p>"Genome-wide association meta-analysis of 30,000 samples identifies seven novel loci for quantitative ECG traits". Eur J Hum Genet. 2019 Jan 24. doi: 10.1038/s41431-018-0295-z.<em> [Epub ahead of print]</em></p> <p>If you use these data please cite the corresponding manuscript, which can be downloaded here: <a href="http://em.rdcu.be/wf/click?upn=lMZy1lernSJ7apc5DgYM8eFz0euOx0-2B13Abimi4Sb0A-3D_2NNavOiAD9A7CPFnsa04dGla3sU002fLfkDtL-2FhGlad0GuoM-2B3OlDb0C5GiEhwIvtH7ba4KKF45ipTOFodx6CqvVvoP2GQ992sPGoV9ZPWIe04tUd8-2BGWey0In0TXPII5zK-2Bfp8Wk9TpEqEcSd-2BEmywqZc8o5TW4xGPXZqmchfUH8chy3P4SEtpzHXMG1LwsIYrKfwegqTXG85RAJPr-2B21Tk9SobtpvFs0frMkJ4ekKsl33ryoZfFPk1byjQunJYn4-2BB0iqMgGs6cXv0AOgAxg-3D-3D">https://rdcu.be/bh8mu</a>. When you have any questions or comments regarding this study or these files, please contact me via:</p> <p>Jessica van Setten, PhD | <em>Department of Cardiology, University Medical Center Utrecht, Utrecht University</em> | j.vansetten [at] umcutrecht [dot] nl</p> <p> </p> <p><strong>Files and description</strong></p> <p>There are four files available:</p> <ol> <li>RR_summary_Sept2018.txt.gz - gzipped file containing all the (unfiltered) meta-analysis results for RR interval</li> <li>PR_summary_Sept2018.txt.gz - gzipped file containing all the (unfiltered) meta-analysis results for PR interval</li> <li>QT_summary_Sept2018.txt.gz - gzipped file containing all the (unfiltered) meta-analysis results for QT interval</li> <li>QRS_summary_Sept2018.txt.gz - gzipped file containing all the (unfiltered) meta-analysis results for QRS duration</li> </ol> <p>All these files have the same lay-out and are gzipped. The reference used for meta-analysis of GWAS was Genome of the Netherlands v4. </p> <ul> <li><em>SNP</em> - variantID (rsID), please note that few hundred variants do not have an rsID, but are NA instead. These can still be identified by chromosome and position.</li> <li><em>CHR</em> - chromosome numbers [1-22 and X].</li> <li><em>POS</em> - base pair position, hg19 / build37.</li> <li><em>CODED_ALLELE</em> - coded allele, <em>i.e.</em> the effect allele, as represented (and harmonized) across cohorts. Note that this is not necessarily the minor allele.</li> <li><em>NON_CODED_ALLELE</em> - the other allele, <em>i.e.</em> the non-effect allele.</li> <li><em>CODED_ALLELE_FREQ</em> - coded allele frequency, <em>i.e.</em> the effect allele frequency. Note that this is not necessarily the minor allele frequency.</li> <li><em>BETA</em> - beta from the fixed-effects model.</li> <li><em>SE </em>- standard error from the fixed-effects model.</li> <li><em>P </em>- P-value from the fixed-effects model.</li> <li><em>NEAREST_GENE</em> - the gene closest to the respective variant.</li> </ul> <p> </p>
Dataset of Paper "Novel procedure for the numerical simulation of solar water disinfection processes in flow reactors" (DOI: 10.1016/j.cej.2018.10.131)
<p>Datasets of Paper "Novel procedure for the numerical simulation of solar water disinfection processes in flow reactors".</p> <p>DOI: 10.1016/j.cej.2018.10.131</p> <p>Data of the velocity profiles at different distances from the inlet of a solar rainwater reactor.</p> <p>Data of the simulated radiation field inside of a solar rainwater reactor as a function of the location, date, time and CPC inclination.</p> <p>Data of the disinfection efficiency versus illumination time in a solar reactor under simulated and natural sunlight.</p>
Association mapping identified novel candidate loci affecting wood formation in Norway spruce
<p>Data sets associated with the study for the Association mapping and identification of novel candidate loci affecting wood formation in Norway spruce</p>
Characterizing Novel Olfactory Receptors Expressed in the Murine Renal Cortex: Supplemental Table S1
<p><strong>Ligand screening of Olfr90, Olfr461, Olfr558, Olfr1034, and Olfr1396.</strong> The complete screening results of all compounds tested on all 5 murine ORs. Compounds were tested at 0.5 mM unless otherwise specified. “+” indicates robust statistically signification activation, while “–” indicates no response. ORs listed in the Classification column are siblings of tested ORs. The term “general” is used for compounds in our library that are commonly used to screen ORs, and “biofluids” refers to compounds listed in the Human Metabolome Database which are detected in biofluids such as blood, urine, etc.</p> <p> </p> <p> </p>
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.