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990 results for “Hippocampus”
FIGURE 9. Range map for Hippocampus capensis. See Figure 2 in A global revision of the Seahorses Hippocampus Rafinesque 1810 (Actinopterygii: Syngnathiformes): Taxonomy and biogeography with recommendations for further research
FIGURE 9. Range map for Hippocampus capensis. See Figure 2 caption for further details.
FIGURE 4. Range map for Hippocampus angustus. See Figure 2 in A global revision of the Seahorses Hippocampus Rafinesque 1810 (Actinopterygii: Syngnathiformes): Taxonomy and biogeography with recommendations for further research
FIGURE 4. Range map for Hippocampus angustus. See Figure 2 caption for further details.
FIGURE 1 in A global revision of the Seahorses Hippocampus Rafinesque 1810 (Actinopterygii: Syngnathiformes): Taxonomy and biogeography with recommendations for further research
FIGURE 1. The parts of a seahorse. Adapted from Lourie et al. (2004).
FIGURE 16. Range map for Hippocampus erectus. See Figure 2 in A global revision of the Seahorses Hippocampus Rafinesque 1810 (Actinopterygii: Syngnathiformes): Taxonomy and biogeography with recommendations for further research
FIGURE 16. Range map for Hippocampus erectus. See Figure 2 caption for further details.
FIGURE 20. Range map for Hippocampus histrix. See Figure 2 in A global revision of the Seahorses Hippocampus Rafinesque 1810 (Actinopterygii: Syngnathiformes): Taxonomy and biogeography with recommendations for further research
FIGURE 20. Range map for Hippocampus histrix. See Figure 2 caption for further details.
FIGURE 25. Range map for Hippocampus kuda. See Figure 2 in A global revision of the Seahorses Hippocampus Rafinesque 1810 (Actinopterygii: Syngnathiformes): Taxonomy and biogeography with recommendations for further research
FIGURE 25. Range map for Hippocampus kuda. See Figure 2 caption for further details.
FIGURE 7. Range map for Hippocampus breviceps. See Figure 2 in A global revision of the Seahorses Hippocampus Rafinesque 1810 (Actinopterygii: Syngnathiformes): Taxonomy and biogeography with recommendations for further research
FIGURE 7. Range map for Hippocampus breviceps. See Figure 2 caption for further details.
FIGURE 11. Range map for Hippocampus comes. See Figure 2 in A global revision of the Seahorses Hippocampus Rafinesque 1810 (Actinopterygii: Syngnathiformes): Taxonomy and biogeography with recommendations for further research
FIGURE 11. Range map for Hippocampus comes. See Figure 2 caption for further details.
FIGURE 8. Range map for Hippocampus camelopardalis. See Figure 2 in A global revision of the Seahorses Hippocampus Rafinesque 1810 (Actinopterygii: Syngnathiformes): Taxonomy and biogeography with recommendations for further research
FIGURE 8. Range map for Hippocampus camelopardalis. See Figure 2 caption for further details.
FIGURE 12. Range map for Hippocampus coronatus. See Figure 2 in A global revision of the Seahorses Hippocampus Rafinesque 1810 (Actinopterygii: Syngnathiformes): Taxonomy and biogeography with recommendations for further research
FIGURE 12. Range map for Hippocampus coronatus. See Figure 2 caption for further details.
FIGURE 10. Range map for Hippocampus colemani. See Figure 2 in A global revision of the Seahorses Hippocampus Rafinesque 1810 (Actinopterygii: Syngnathiformes): Taxonomy and biogeography with recommendations for further research
FIGURE 10. Range map for Hippocampus colemani. See Figure 2 caption for further details.
FIGURE 15. Range map for Hippocampus denise. See Figure 2 in A global revision of the Seahorses Hippocampus Rafinesque 1810 (Actinopterygii: Syngnathiformes): Taxonomy and biogeography with recommendations for further research
FIGURE 15. Range map for Hippocampus denise. See Figure 2 caption for further details.
FIGURE 24. Range map for Hippocampus kelloggi. See Figure 2 in A global revision of the Seahorses Hippocampus Rafinesque 1810 (Actinopterygii: Syngnathiformes): Taxonomy and biogeography with recommendations for further research
FIGURE 24. Range map for Hippocampus kelloggi. See Figure 2 caption for further details.
FIGURE 18. Range map for Hippocampus guttulatus. See Figure 2 in A global revision of the Seahorses Hippocampus Rafinesque 1810 (Actinopterygii: Syngnathiformes): Taxonomy and biogeography with recommendations for further research
FIGURE 18. Range map for Hippocampus guttulatus. See Figure 2 caption for further details.
FIGURE 23. Range map for Hippocampus jugumus. See Figure 2 in A global revision of the Seahorses Hippocampus Rafinesque 1810 (Actinopterygii: Syngnathiformes): Taxonomy and biogeography with recommendations for further research
FIGURE 23. Range map for Hippocampus jugumus. See Figure 2 caption for further details.
FIGURE 19. Range map for Hippocampus hippocampus. See Figure 2 in A global revision of the Seahorses Hippocampus Rafinesque 1810 (Actinopterygii: Syngnathiformes): Taxonomy and biogeography with recommendations for further research
FIGURE 19. Range map for Hippocampus hippocampus. See Figure 2 caption for further details.
mRNA expression analysis of the hippocampus in a Vervet monkey model of FASD
<p>The vervet monkey (<i>Chlorocebus </i>aethiops) has proven to be an invaluable tool for researching voluntary alcohol ingestion and the sequelae that can arise from such behaviour. In this study, a vervet monkey model for fetal alcohol spectrum disorder was generated by providing a cohort of alcohol preferring, pregnant dams the option to ingest alcohol between gestational days 90-165 with a corresponding sucrose matched control group. Subsequently, gene expression analysis of the hippocampus was contrasted at 5 months and 2 years using the GeneChip Rhesus Macaque Genome Array in a 2x2 study design which interrogated two independent variables, Age and Alcohol consumption. The analysis identified a global downregulation of expression when interrogating Alcohol as a main effect with a relative balance of upregulation and downregulation using Age as a main effect. Functional annotation of both independent variables was performed with Alcohol generating broad functional annotation clusters which could implicate an epigenetic role in downregulation, while Age reliably produced functional annotation clusters predominantly related to development. Furthermore, our data reveal a novel connection between <i>EFNB1</i> and FASD which is highly plausible given its role in development as well as its central role in craniofrontal nasal syndrome (CFNS).</p>
Basic Hippocampus Interneuron subgroups diagram
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Sagittal brain with emphasis on hippocampus
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Sagittal brain with emphasis on hippocampus
SciDraw upload
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.
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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.