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575 results for “embryonic development”
Figure 9. Stage 4, about 60–64 h in Comparative investigation of the late embryogenesis of Leptodora kindtii (Focke, 1844) (Crustacea: Branchiopoda), with notes on types of embryonic development and larvae in Cladocera
Figure 9. Stage 4, about 60–64 h development: (A) general lateral view; (B) head and thorax; (C) abdomen and postabdomen; (D) carapace. Scale bar: 100 mm.
F in Effects of temperature on the embryonic development and hatchling size of Betaeus emarginatus (Decapoda: Caridea: Alpheidae)
F. 3. Duration of embryonic stages (indicated by different fillings) of Betaeus emarginatus at the three temperatures used in laboratory experiments; arrows depict the appearance of the eye pigment (E) and the hatching of the larvae (H).
F in Effects of temperature on the embryonic development and hatchling size of Betaeus emarginatus (Decapoda: Caridea: Alpheidae)
F. 1. Consumption of the egg yolk (expressed as a percentage) during the embryonic development of Betaeus emarginatus reared at 15°C.
F in Effects of temperature on the embryonic development and hatchling size of Betaeus emarginatus (Decapoda: Caridea: Alpheidae)
F. 2. Relation between temperature and duration of incubation period of Betaeus emarginatus maintained in the laboratory.
Figure 6 in Amblypygi parthenogenesis, embryonic and post-embryonic development: a case study with the Amazonian species Charinus guto Giupponi and Miranda, 2016 (Amblypygi: Charinidae)
Figure 6. Graphs showing the correlation between clutch size (number eggs; left) and number of prenymphs (right) against female carapace length for 43 Amblypygi species in four families. Details on the values are listed in Table 3.
Figure 3 in Amblypygi parthenogenesis, embryonic and post-embryonic development: a case study with the Amazonian species Charinus guto Giupponi and Miranda, 2016 (Amblypygi: Charinidae)
Figure 3. Dorsal habitus of Charinus guto Miranda and Giupponi, 2016 (upper); retrolateral view of ovigerous female (bottom). Photos: César Favacho.
Figure 1 in Amblypygi parthenogenesis, embryonic and post-embryonic development: a case study with the Amazonian species Charinus guto Giupponi and Miranda, 2016 (Amblypygi: Charinidae)
Figure 1. Flowchart illustrating the female specimens of Charinus guto Miranda and Giupponi, 2016 used in the study.
Figure 2 in Amblypygi parthenogenesis, embryonic and post-embryonic development: a case study with the Amazonian species Charinus guto Giupponi and Miranda, 2016 (Amblypygi: Charinidae)
Figure 2. Total number of moults per month of Charinus guto Giupponi and Miranda, 2016 in captivity.
Figure 1 in Life-history traits of the Brazilian litter-dwelling scorpion: post-embryonic development and reproductive behaviour in Ananteris mauryi Lourenço, 1982 (Scorpiones: Buthidae)
Figure 1. The courtship and mating sequences in Ananteris mauryi Lourenço (1982). (a) Initiation; (b) promenade à deux; (c) insemination and separation. M, male; F, female.
(11)-Strobl2023A-DS0001--0010 – Ten Tribolium castaneum long-term live imaging datasets of embryonic development acquired with light sheet fluorescence microscopy
<p>(11)-Strobl2023A-DS0001--0010 – Ten <em>Tribolium castaneum</em> long-term live imaging datasets of embryonic development acquired with light sheet fluorescence microscopy</p>
Figure 5 in A comparative account of the embryonic lineage and gonad development in two species of Rhabditidae (Nematoda)
Figure 5. Schematic and LM micrograph showing sequence of vulva formation in Cephaloboides anisospiculus (a, c, e, g, i, k, m) and Mesorhabditis paucipapillata (b, d, f, h, j, l, n). C, D: Second-stage juvenile showing 12 Pn.ps; e, f: third-stage juvenile showing 12 vulval precursor cells with five cells forming vulval prominence group; i, j: fourth-stage juvenile showing vulval prominence group aggregating at vulval site; k, l: moulting fourth-stage juvenile with vulval precursor cells; m, n: vulval region: o, p: SEM of vulval region. Scale bars = 10 µm.
Figure 2 in A comparative account of the embryonic lineage and gonad development in two species of Rhabditidae (Nematoda)
Figure 2. Embryonic stages in Mesorhabditis paucipapillata. a: Egg showing pronuclei before fusion (arrow pointing to the male pronucleus); b: two-celled stage; c: four-celled stage; d: rhomboid arrangement of blastomeres; e: five-celled stage; f: eight-celled stage; g: sixteen-celled stage; h, i: morula stage; j: blastula stage; k: gastrula stage; l: lima bean stage; m: comma stage; n: tadpole stage; o: plum stage; p: pretzel stage. Scale bar = 10 µm.
Figure 4 in A comparative account of the embryonic lineage and gonad development in two species of Rhabditidae (Nematoda)
Figure 4. Gonad development in Mesorhabditis paucipapillata. Genital primordium a–e, h, i. a: Firststage juvenile; b: moulting second-stage male juvenile; c: moulting second-stage female juvenile; d: third-stage male juvenile; e: third-stage female juvenile; f: tail of third-stage male juvenile showing spicular primordium; g: tail of third-stage female juvenile; h: fourth-stage male juvenile; i: fourth-stage female juvenile; j: adult male gonad; k: adult female gonad. Scale bars = 10 µm.
Figure 7 in A comparative account of the embryonic lineage and gonad development in two species of Rhabditidae (Nematoda)
Figure 7. Gonad development in Cephaloboides anisospiculus. Genital primordium a–e, h, i. a: Firststage juvenile; b: moulting second-stage male juvenile; c: moulting second-stage female juvenile; d: third-stage male juvenile; e: third-stage female juvenile; f: tail of third-stage male juvenile showing spicular primordium; g: tail of third-stage female juvenile; h: fourth-stage male juvenile; i: fourth-stage female juvenile; j: adult male gonad; k, l: adult female genital branch. Scale bar = 10 µm.
Figure 1 in A comparative account of the embryonic lineage and gonad development in two species of Rhabditidae (Nematoda)
Figure 1. Early embryonic cell lineages in Mesorhabditis paucipapillata and Cephaloboides anisospiculus as compared to Caenorhabditis elegans.
Figure 6 in A comparative account of the embryonic lineage and gonad development in two species of Rhabditidae (Nematoda)
Figure 6. Embryonic stages in Cephaloboides anisospiculus. a: Single-celled egg; b: two-celled stage; c: four-celled stage; d: rhomboid arrangement of blastomeres; e: six-celled stage; f: ten-celled stage; g: sixteen-celled stage; h: 20–24 celled stage; i: blastula stage; j: lima bean stage; k: comma stage; l: tadpole stage: m: plum stage; n: loop stage; o, p: pretzel stage. Scale bar = 10 µm.
Figure 3 in A comparative account of the embryonic lineage and gonad development in two species of Rhabditidae (Nematoda)
Figure 3. Duration of landmark stages during embryonic development of Mesorhabditis paucipapillata and Cephaloboides anisospiculus.
Genetic Screening and Assisted Oocyte Activation in Couples with Diminished/aberrant Embryonic Development.
ClinicalTrials.gov study NCT03354013. IPD Sharing: NO. Countries: 1. Publications: 1.
Effect of Ca2+ Ionophore on Embryonic Development and Clinical Outcome in Cases With Previous Fertilization Arrest
ClinicalTrials.gov study NCT02683031. IPD Sharing: UNDECIDED. Countries: 1. Publications: 3.
Evaluation of the Impact of Reduced Oxygen Concentration on Embryonic Development
ClinicalTrials.gov study NCT02919384. IPD Sharing: NO. Countries: 1. Publications: 4.
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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.