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990 results for “Hippocampus”
Supplementary material 1 from: Short G, Harasti D, Hamilton H (2019) Hippocampus whitei Bleeker, 1855, a senior synonym of the southern Queensland seahorse H. procerus Kuiter, 2001: molecular and morphological evidence (Teleostei, Syngnathidae). ZooKeys 824: 109-133. https://doi.org/10.3897/zookeys.824.30921
: Data type: molecular data
Figure 3 from: Heard J, Chen J-P, Wen CKC (2019) Citizen science yields first records of Hippocampus japapigu and Hippocampus denise (Syngnathidae) from Taiwan: A hotspot for pygmy seahorse diversity. ZooKeys 883: 83-90. https://doi.org/10.3897/zookeys.883.39662
Figure 3 Comparison of AHippocampus denise in situ, Orchid Island, Taiwan at 28 m depth, with its most similar congener BHippocampus bargibanti in situ, Green Island, Taiwan. Note the differences in body colouration (orange in H. denise vs. purple in H. bargibanti), the number and size of tubercles (fewer and less pronounced in H. denise), snout length (bulbous tip in H. bargibanti vs. non-bulbous in H. denise) and overall shape (slender and elongate in H. denise vs. rotund in H. bargibanti) (Photographs A Yung-Kuang Ting B Ryan Ku).
Figure 2 from: Heard J, Chen J-P, Wen CKC (2019) Citizen science yields first records of Hippocampus japapigu and Hippocampus denise (Syngnathidae) from Taiwan: A hotspot for pygmy seahorse diversity. ZooKeys 883: 83-90. https://doi.org/10.3897/zookeys.883.39662
Figure 2 Hippocampus japapigu in situ A Green Island, Taiwan B Hejie, Kenting, Taiwan at 5 m depth C Hejie, Kenting, Taiwan D 82.5 k near Longdong, northern Taiwan (Photographs A Jolly Huang B Jay Chiu C Chao-Tsung Chen D Jung-Chao Yeh).
Figure 4 from: Heard J, Chen J-P, Wen CKC (2019) Citizen science yields first records of Hippocampus japapigu and Hippocampus denise (Syngnathidae) from Taiwan: A hotspot for pygmy seahorse diversity. ZooKeys 883: 83-90. https://doi.org/10.3897/zookeys.883.39662
Figure 4 Comparison of A–CHippocampus colemani in situ, Green Island, Taiwan with D–FHippocampus pontohi in situ, Green Island, Taiwan. Note the differences in the shape and angle of the coronet (low and rounded in H. colemani vs. distinct and angular in H. pontohi), as well as differences in body colouration (H. colemani is known only to occur in shades of off-white, whereas H. pontohi is highly variable) (Photographs A Joe Chiu B Ryan Ku C, E, F Ming-Hung Yu D Ryan Ku).
Figure 1 from: Heard J, Chen J-P, Wen CKC (2019) Citizen science yields first records of Hippocampus japapigu and Hippocampus denise (Syngnathidae) from Taiwan: A hotspot for pygmy seahorse diversity. ZooKeys 883: 83-90. https://doi.org/10.3897/zookeys.883.39662
Figure 1 Map showing A the original collection locations of specimens for the five pygmy seahorse species recorded in Taiwan during this study, as well as B their distributions in Taiwan and surrounding islands (Penghu islands, Green Island, and Orchid Island). Symbols are scaled relatively according to the number of observations per species at each location obtained through social media.
Figure 2 in First record of the near threatened native seahorse Hippocampus reidi (Teleostei: Syngnathidae) in an ecosystem dominated by the invasive seagrass Halophila stipulacea in the Caribbean Sea
Figure 2. – Map of the study area with observation site; Madiana beach, Schoelcher, West coast of Martinique Island. June 2017.
Proteomics and Transcriptomics of the Hippocampus and Cortex in SUDEP and High-Risk SUDEP Patients
<p class="AbstractSummary">To identify the molecular signaling pathways underlying sudden unexpected death in epilepsy (SUDEP) and high-risk SUDEP compared to control patients with epilepsy. For proteomics analyses, we evaluated the hippocampus and frontal cortex from microdissected postmortem brain tissue of 12 patients with SUDEP and 14 with non-SUDEP epilepsy. For transcriptomics analyses, we evaluated hippocampus and temporal cortex surgical brain tissue from patients with mesial temporal lobe epilepsy: 6 low-risk and 8 high-risk SUDEP as determined by a short (<50 seconds) or prolonged (=50 seconds) postictal generalized EEG suppression (PGES) that may indicate severely depressed brain activity impairing respiration, arousal, and protective reflexes. In autopsy hippocampus and cortex, we observed no proteomic differences between patients with SUDEP and those with non-SUDEP epilepsy, contrasting with our previously reported robust differences between epilepsy and controls without epilepsy. Transcriptomics in hippocampus and cortex from patients with surgical epilepsy segregated by PGES identified 55 differentially expressed genes (37 protein-coding, 15 long noncoding RNAs, 3 pending) in hippocampus. The SUDEP proteome and high-risk SUDEP transcriptome were similar to those in other patients with epilepsy in hippocampus and cortex, consistent with diverse epilepsy syndromes and comorbid conditions associated with SUDEP. Studies with larger cohorts and different epilepsy syndromes, as well as additional anatomic regions, may identify molecular mechanisms of SUDEP.</p>
Aversive stimulus-tuned responses in the CA1 of the dorsal hippocampus (dataset 9)
<p>Multichannel electrophysiology data for the manuscript with the same title. (2305_20)</p>
Aversive stimulus-tuned responses in the CA1 of the dorsal hippocampus (dataset 11)
<p>Multichannel electrophysiology data for the manuscript with the same title.</p>
Aversive stimulus-tuned responses in the CA1 of the dorsal hippocampus (dataset 7)
<p>Multichannel electrophysiology data for the manuscript with the same title.</p>
Aversive stimulus-tuned responses in the CA1 of the dorsal hippocampus (dataset 4)
<p>Multichannel electrophysiology data for the manuscript with the same title.</p>
Aversive stimulus-tuned responses in the CA1 of the dorsal hippocampus (dataset 10)
<p>Multichannel electrophysiology data for the manuscript with the same title.</p>
Aversive stimulus-tuned responses in the CA1 of the dorsal hippocampus (dataset 2)
<p>Multichannel electrophysiology data for the manuscript with the same title.</p>
Aversive stimulus-tuned responses in the CA1 of the dorsal hippocampus (dataset 5)
<p>Multichannel electrophysiology data for the manuscript with the same title.</p>
Aversive stimulus-tuned responses in the CA1 of the dorsal hippocampus (dataset 12)
<p>Multichannel electrophysiology data for the manuscript with the same title.</p>
Aversive stimulus-tuned responses in the CA1 of the dorsal hippocampus (dataset 6)
<p>Multichannel electrophysiology data for the manuscript with the same title.</p>
Aversive stimulus-tuned responses in the CA1 of the dorsal hippocampus (dataset 1)
<p>Multichannel electrophysiology data for the manuscript with the same title.</p>
Exploring the Effects of Corticosteroids on the Human Hippocampus
ClinicalTrials.gov study NCT03896659. IPD Sharing: NO. Countries: 1. Publications: 0.
Memory and the Hippocampus in Twins
ClinicalTrials.gov study NCT00638885. IPD Sharing: Not stated. Countries: 1. Publications: 0.
Comparing Whole Brain Radiotherapy Using a Technique That Avoids the Hippocampus to Stereotactic Radiosurgery in Patients With Cancer That Has Spread to the Brain and Come Back in Other Areas of the B
ClinicalTrials.gov study NCT04588246. IPD Sharing: Not stated. Countries: 3. Publications: 0.
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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
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.