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Fig. 8 Erythraeus cinereus, adult. a Palp, medial view. b Crista metopica and eyes. c Dorsal opisthosomal setae. d in Towards resolving the double classification in Erythraeus (Actinotrichida: Erythraeidae): matching larvae with adults using 28S sequence data and experimental rearing
Fig. 8 Erythraeus cinereus, adult. a Palp, medial view. b Crista metopica and eyes. c Dorsal opisthosomal setae. d Serratala on genu I. e Serratala on genu IV. f Diversity of serratalae and setae of non-serratalae type on telofemora, genua, and tibiae of legs I–IV
Fig. 6 Erythraeus phalangoides, larva. a in Towards resolving the double classification in Erythraeus (Actinotrichida: Erythraeidae): matching larvae with adults using 28S sequence data and experimental rearing
Fig. 6 Erythraeus phalangoides, larva. a Gnathosoma and idiosoma, dorsal view. b Dorsal opisthosomal setae. c Gnathosoma and idiosoma, ventral view. d Seta ps
Fig. 10 Erythraeus cinereus, larva. a in Towards resolving the double classification in Erythraeus (Actinotrichida: Erythraeidae): matching larvae with adults using 28S sequence data and experimental rearing
Fig. 10 Erythraeus cinereus, larva. a Gnathosoma and idiosoma, dorsal view. b Dorsal opisthosomal setae. c Gnathosoma and idiosoma, ventral view. d Seta ps
Fig. 12 Erythraeus regalis, adult. a Palp, medial view. b Crista metopica and eyes. c Dorsal opisthosomal setae. d in Towards resolving the double classification in Erythraeus (Actinotrichida: Erythraeidae): matching larvae with adults using 28S sequence data and experimental rearing
Fig. 12 Erythraeus regalis, adult. a Palp, medial view. b Crista metopica and eyes. c Dorsal opisthosomal setae. d Serratala on genu I. e Serratala on genu IV. f Diversity of serratalae and setae of non-serratalae type on telofemora, genua, and tibiae of legs I–IV
Fig. 16 Erythraeus regalis, larva. a Leg I. b Leg II. c Leg III. d Genu-tarsus I. e Genu-tarsus II in Towards resolving the double classification in Erythraeus (Actinotrichida: Erythraeidae): matching larvae with adults using 28S sequence data and experimental rearing
Fig. 16 Erythraeus regalis, larva. a Leg I. b Leg II. c Leg III. d Genu-tarsus I. e Genu-tarsus II. Tibia-tarsus III (d–f, only specialized setae shown)
Fig. 7 Erythraeus phalangoides, larva. a Leg I. b Leg II. c Leg III. d Tarsus I. e Tarsus II. f in Towards resolving the double classification in Erythraeus (Actinotrichida: Erythraeidae): matching larvae with adults using 28S sequence data and experimental rearing
Fig. 7 Erythraeus phalangoides, larva. a Leg I. b Leg II. c Leg III. d Tarsus I. e Tarsus II. f Tarsus III (d–f, only specialized setae shown)
Fig. 5 Erythraeus phalangoides, larva. a in Towards resolving the double classification in Erythraeus (Actinotrichida: Erythraeidae): matching larvae with adults using 28S sequence data and experimental rearing
Fig. 5 Erythraeus phalangoides, larva. a Gnathosoma (and scutum), dorsal view. b Odontus. c Gnathosoma, ventral view. d Palp tarsus
Fig. 3 in Ontogenetic variation in Chironomus flaviplumus (Diptera, Chironomidae) larvae
Fig. 3. Chironomus flaviplumus body at different instar larvae. A: whole body shape of first instar; B: whole body shape of second instar; C: whole body shape of fourth instar; D: lateral tubules of third instar; E: lateral tubules of fourth instar; F: anal tubules and anal setae of first instar. Scale bars: A, B, D, E, 100 μm; F, 50 μm; C, 1 mm.
Fig. 2 in Ontogenetic variation in Chironomus flaviplumus (Diptera, Chironomidae) larvae
Fig. 2. Mentum and ventomental plate shape from first to fourth instar larvae of Chironomus flaviplumus. A: first instar; B: second instar; C: third instar; D: fourth instar. All scale bars: 50 μm.
Fig. 4 in Ontogenetic variation in Chironomus flaviplumus (Diptera, Chironomidae) larvae
Fig. 4. Antenna shape of Chironomus flaviplumus first to fourth instar larvae. A: first instar; B: second instar; C: third instar; D: fourth instar. All scale bars: 50 μm.
Enrichment of gene sets altered in dram1 mutant zebrafish larvae
<p>Enrichment of gene sets altered in dram1 mutant zebrafish larvae.</p> <p>A. Gene Ontology categories significantly over and underrepresented in the significant genes differentially regulated between <em>dram1</em><sup>∆19n/∆19n </sup>PBS-injected mutants compared to <em>dram1</em><sup>+/+</sup> larvae.</p> <p>B. Gene sets from the MSigDB C2 database significantly positively correlated to the <em>dram1</em><sup>∆19n/∆19n </sup>mutants transcriptome compared to <em>dram1</em><sup>+/+</sup> larvae.</p> <p>C. Gene sets from the MSigDB C2 database significantly negatively correlated to the <em>dram1</em><sup>∆19n/∆19n </sup>mutants transcriptome compared to <em>dram1</em><sup>+/+</sup> larvae.</p>
3dpf zebrafish larvae, 96 well plate,Tg(wt1b:EGFP), dorsal view, ACQUIFER Imaging Machine
<p>Datasets originate from internal test runs at ACQUIFER on the Imaging Machine (see also application note on "<a href="https://www.acquifer.de/downloads/Clicktoolappnote_ImagingMachine.pdf">The ACQUIFER PlateViewer: A tool for visualizing high content screening data and supervised feedback microscopy</a>")</p> <p>The datasets contain images acquired from 96 <em>Tg(wt1b:EGFP)</em> embryos at 3 dpf aligned in agarose cavities generated with 3d printed orientation tools (<a href="https://rdcu.be/byto9">Wittbrodt, Jonas N., Urban Liebel, and Jochen Gehrig. "Generation of orientation tools for automated zebrafish screening assays using desktop 3D printing." <em>BMC biotechnology</em> 14.1 (2014): 36.</a>):</p> <p>- 2x, 4x, 10x views</p> <p>- for each well (e.g. <em>A001</em>) a multi-color z-stack was acquired, with N z-slices (SL<em>NNN</em>) in two channels: BF (CO<em>6</em>) and GFP (CO<em>3</em>)</p> <p>Example file name containing metadata: -<strong><em>A001-</em></strong>-PO01--LO001--<em><strong>CO3</strong></em>--<em><strong>SL001</strong></em>--PX32500--PW0100--IN0100--TM281--X014580--Y011262--Z210710--T0200256066--WE00001.tif</p> <p>Used also as benchmark dataset for Multi-Template Matching by Thomas, LSV and Gehrig, J</p> <p>See implementation in Fiji <a href="https://github.com/LauLauThom/MultipleTemplateMatching">https://github.com/LauLauThom/MultipleTemplateMatching</a></p> <p>and in KNIME <a href="https://github.com/LauLauThom/MultipleTemplateMatching-KNIME">https://github.com/LauLauThom/MultipleTemplateMatching-KNIME</a></p> <p>Contact:</p> <p>j.gehrig(at)acquifer.de, l.thomas(at)acquifer.de</p> <p> </p> <p><strong>Ethic statement</strong></p> <p>The work presented does not involve work with animals according to German and European<br> legislation. All experiments have been performed at stages prior to the legal onset of animal life.<br> To obtain zebrafish embryos and larvae, fish were maintained in closed stocks at Heidelberg University.<br> Zebrafish husbandry and experiments are under the institutional control of the Universities animal<br> welfare agency. All the zebrafish husbandry and experimental procedures were performed in<br> accordance with the German animal welfare standards (Tierschutzgesetz §11, Abs. 1, Nr. 1, husbandry<br> permit number 35-9185.64/BH Wittbrodt) and in accordance with German and European Union animal<br> welfare guidelines. The fish facility is under the supervision of the local representative of the animal<br> welfare agency.</p>
Plate VIII: Figures 65-70. Fylgia amazonica lychnitina, male ultimate instar larva. (65) larva, dorsal view; (66) left antenna; (67) labium, ventral view; (68) apical portion of labium with right palp, dorsal view; (69) skyline of abdomen, left lateral view; (70) anal pyramid, dorsal view. in Dragonflies (Odonata) From The Sierras Of Tapirapeco And Unturan, In The Extreme South Of Venezuela
Plate VIII: Figures 65-70. Fylgia amazonica lychnitina, male ultimate instar larva. (65) larva, dorsal view; (66) left antenna; (67) labium, ventral view; (68) apical portion of labium with right palp, dorsal view; (69) skyline of abdomen, left lateral view; (70) anal pyramid, dorsal view.
Figs 13, 14 in Description of the male and larva of Schizomyia tuiuiu Urso- Guimarães & Amorim (Diptera, Cecidomyiidae), new records and a key to Neotropical species of Schizomyia Kieffer
Figs 13, 14. Schizomyia maricaensis Sousa & Maia, 2007: 13, ovipositor (ventro-lateral view, left); 14, terminal segment bilobed and sclerotized of pupa (dorsal view, right).
Fig. 12 in Description of the male and larva of Schizomyia tuiuiu Urso- Guimarães & Amorim (Diptera, Cecidomyiidae), new records and a key to Neotropical species of Schizomyia Kieffer
Fig. 12. Galls of Schizomyia tuiuiu Urso-Guimarães & Amorim, 2002 induced in leaves of Bauhinia holophylla (Bong.) Steud. (Fabaceae).
Figs 8-11 in Description of the male and larva of Schizomyia tuiuiu Urso- Guimarães & Amorim (Diptera, Cecidomyiidae), new records and a key to Neotropical species of Schizomyia Kieffer
Figs 8-11. Schizomyia tuiuiu Urso-Guimarães & Amorim, 2002. Figs 8, 9, pupa: 8, cephalic region (ventral view); 9, posterior region (dorsal view); Figs.10, 11, larva: 10, prothoracic spatula and lateral papillae (ventral view); 11, terminal segment (dorsal view).
Figs 1-6 in Description of the male and larva of Schizomyia tuiuiu Urso- Guimarães & Amorim (Diptera, Cecidomyiidae), new records and a key to Neotropical species of Schizomyia Kieffer
Figs 1-6. Male of Schizomyia tuiuiu Urso-Guimarães & Amorim, 2002: 1, head (frontal view); 2, third flagelomere; 3, palpus; 4, wing; 5, first tarsomere; 6, tarsal claw and empodium.
Fig 7 in Description of the male and larva of Schizomyia tuiuiu Urso- Guimarães & Amorim (Diptera, Cecidomyiidae), new records and a key to Neotropical species of Schizomyia Kieffer
Fig 7. Male of Schizomyia tuiuiu Urso-Guimarães & Amorim, 2002. Terminalia ventral view, left and dorsal view, right (ae, aedeagus; ce, cercus; gc, gonocoxite; gs, gonostyle; hy, hypoproct; pa, paramere).
РИС. 1. Личинки мидии Mytilus galloprovincialis на стадиЯх: A – стерробластулы (стрелками обоЗначены три рЯда ресничек) и B – трохофоры (стрелкоЙ обоЗначены реснички апикального султанчика). МасШтаб: 15 мкм. FIG. 1. Larvae of the mussel Mytilus galloprovincialis at two different stages: (A) –sterroblastula (arrows indicate three rows of cilia) and (B) – trochophore (the arrow indicates cilia of the parietal plume). Scale: 15 µm. in Морфометрические особенности личинок мидии Mytilus galloprovincialis (Lamarck, 1819) (Bivalvia: Mytilidae) в онтогенеЗе
РИС. 1. Личинки мидии Mytilus galloprovincialis на стадиЯх: A – стерробластулы (стрелками обоЗначены три рЯда ресничек) и B – трохофоры (стрелкоЙ обоЗначены реснички апикального султанчика). МасШтаб: 15 мкм. FIG. 1. Larvae of the mussel Mytilus galloprovincialis at two different stages: (A) –sterroblastula (arrows indicate three rows of cilia) and (B) – trochophore (the arrow indicates cilia of the parietal plume). Scale: 15 µm.
Figure 15 in Three new species of Bruggmannia Tavares, 1906 (Diptera: Cecidomyiidae) from Brazil and description of male and larva of B. monteiroi Maia & Couri, 1993
Figure 15 Bruggmannia monteiroi Maia & Couri, 1993, pupa: a) General aspect, ventral view, b) Prothoracic spiracle, dorsal view, c) 6th – 9th abdominal segments, dorsal view, d-e) Terminal segment, sexual dimorfism, ventral view: d) Male pupa, e) Female pupa.
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.