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74 results for “Ferret”

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zenodo44/100

Development of ferret immune repertoire reference resources and single-cell-based high- throughput profiling assays

<p>We performed long read transcriptome sequencing of ferret splenocyte and lymph node samples full-length, non-chimeric circular consensus sequencing (CCS) reads&nbsp;to obtain over 120,000 high-quality&nbsp;immunoglobin (Ig) and T cell receptor (TCR) transcripts.</p>

opencc-by-4.0May 2024View details →
zenodo40/100

MSME T2 data from the Ferret Interactive Integrated Neurodevelopment Atlas

<p>The first days after birth in ferrets provide a unique view of the development of a complex brain. Unlike mice, ferrets develop a rich pattern of deep neocortical folds and cortico-cortical connections. Unlike humans and other primates, whose brains are well differentiated and folded at birth, ferrets are born with a very immature and completely smooth neocortex: folds, neocortical regionalisation and cortico-cortical connectivity develop in ferrets during the first days after birth. After a period of fast neocortical expansion, during which brain volume increases by up to a factor of 4 in 2 weeks, the ferret brain reaches its adult volume at about 6 weeks of age. This dataset contains brain MRI T2 data from 28 ferrets from P0 to Adults. It can be visualised at http://brainbox.pasteur.fr/project/FIIND.</p>

opencc-by-sa-4.0Sep 2017View details →
zenodo40/100

High-Level and Productive Stream Parallelism for Dedup, Ferret, and Bzip2

<p>Parallel programming has been a challenging task for application programmers. Stream processing is an application domain present in several scientific, enterprise, and financial areas that lack suitable abstractions to exploit parallelism.<br> Our goal is to assess the feasibility of state-of-the-art frameworks/libraries (Pthreads, TBB, and FastFlow) and the SPar domain-specific language for real-world streaming applications (Dedup, Ferret, and Bzip2) targeting multi-core architectures. SPar was specially designed to provide high-level and productive stream parallelism abstractions, supporting programmers with standard C++-11 annotations. For the experiments, we implemented three streaming applications. We discussed SPar&rsquo;s programmability advantages compared to the frameworks in terms of productivity and structured parallel programming. The results demonstrate that SPar improves productivity and provides the necessary features to achieve similar performances compared to the state-of-the-art.</p>

opencc-by-4.0Mar 2018View details →
zenodo36/100

Ferret mating (active thrust trial)

<p>X-ray trial taken on 23rd May 2019.</p> <p>Trial 5A and Trial 5B: biplanar x-ray motion of two ferrets copulating</p> <p>.csv file: Behaviour coding spreadsheet from the same trial&nbsp;</p>

opencc-by-4.0Nov 2024View details →
zenodo36/100

Twenty-five metagenome assembled genomes recovered from the gut microbiome of the domestic ferret, Mustela putorius

<p>This dataset is composed of 25 unique metagenome assembled genomes (MAGs) recovered from the gut microbiome of three domestic ferrets (<em>Mustela putorius</em>). Details on both MAG and host ferret metadata, as well as information on sample collection, DNA sequencing, and bioinformatic processing can be found in the American Society for Microbiology Resource Announcement by Amundson et al. (in prep).&nbsp;</p>

opencc-by-4.0Feb 2022View details →
zenodo36/100

dwi ferret P32

<p>dwi ferret P32</p>

opencc-by-4.0Oct 2022View details →
zenodo36/100

Chronic Imaging of ferret 2181

<p>Calcium Imaging Experiments for one animal (F2181) imaged on 5 imaging sessions. Experiments were performed every two days, starting two days prior to the natural time of eye opening (EO-2) until six days after eye opening (EO+6).</p> <p>Imaging experiments were performed by Jeremy T. Chang and David E. Whitney in the lab of David Fitzpatrick at the Max Planck Florida Institute. The data were used in (Chang, Whitney, Fitzpatrick, 2020) and (Tr&auml;genap et al., 2025).</p> <p><br>Each folder contains:</p> <ul> <li>large scale spontaneous events extracted from 10 min of imaging without visual stimulation (see Smith et al., 2018) in shape (#events, #X-Dim, #Y-dim)</li> <li>trials recorded for 16 moving grating stimuli and one blank, response measures at different timepoint after stimulus onset (0.5 s interval from 0s to 3.5s) in shape (#timepoints, #trials, #stim, #X-Dim, #Y-dim) <ul> <li>for binocular, contralateral, and ipsilateral stimulation</li> </ul> </li> </ul> <p>The file 'c<a href="https://zenodo.org/api/records/13928397/draft/files/commonROI.npy/content" target="_blank" rel="noopener noreferrer">ommonROI.npy</a>' contains a mask outlining the region of high GCaMP6s expression and excluded bloodvessels.</p>

opencc-by-4.0Oct 2024View details →
zenodo36/100

fUS imaging of ferret auditory cortex during passive listening of natural sounds

<p>Source data for paper: Distinct higher-order representations of natural sounds in human and ferret (BiorXiv, 2020), Landemard A, Bimbard C, Demen&eacute; C, Shamma S, Norman-Haigner&eacute; S, Boubenec Y.</p> <p>This data repository contains several folders:<br>-&nbsp;<em>fUSData&nbsp;</em>contains raw data for all recording sessions. Information on data&nbsp;formatting can be found in README_fUSData text file.<br>-&nbsp;<em>Analysis</em> contains processed and denoised data. This data can be readily used to produce our figures using our publicly available scripts. This data can also be re-generated using data from <em>fUSData&nbsp;</em>folder using our denoising scripts.&nbsp;<br>-&nbsp;<em>AdditionalData&nbsp;</em>contains additional files necessary to run some of the analyses.&nbsp;</p> <p>Code implementing our denoising procedure and reproducing figures from the paper can be found on <a href="http://github.com/agneslandemard/naturalsounds_analysis">https://github.com/agneslandemard/naturalsounds_analysis&nbsp;</a></p> <p>&nbsp;</p>

opencc-by-4.0Jan 2021View details →
zenodo36/100

Shape data ferrets and polecat (from paper: Gruwier, B.: A geometric morphometric approach to distinguish ferret from polecat and its application to an archaeological specimen from Mechelen (Belgium))

<p>Shape data ferrets and polecat (used in&nbsp;paper: Gruwier, B.: A geometric morphometric approach to distinguish ferret from polecat and its application to an archaeological specimen from Mechelen (Belgium))</p>

opencc-by-4.0May 2023View details →
zenodo32/100

The black-footed ferret sighting dates

<p>Dates of sightings (with months used as time units) of the black-footed ferret in Wyoming during January 1972 - December 1990 (from Solow 1993). For instance, numbers 5, 8 and 10 in one row mean that the species was sighted during that year in May, August and October.</p> <p>Solow, A.R. (1993) Inferring extinction in a declining population.Journal of Mathematical Biology,32, 79&ndash;82.</p> <p>*&nbsp;Data used with permission of&nbsp; Andrew Solow (WHOI)&nbsp; and was based on information given in the US Department of the Interior<br> records of&nbsp;the black-footed ferret sighting&nbsp; (as conveyed by Solow (1993).</p> <p>&nbsp;</p>

opencc-by-4.0Dec 2020View details →
zenodo32/100

On following pages: 42. Steppe Polecat (Mustela eversmanii); 43. Colombian Weasel (Mustela felipei); 44. Long-tailed Weasel (Mustela frenata); 45. Japanese Weasel (Mustela itatsi); 46. Yellow-bellied Weasel (Mustela kathiah); 47. European Mink (Mustela lutreola); 48. Indonesian Mountain Weasel (Mustela lutreolina); 49. Black-footed Ferret (Mustela nigripes); 50. Least Weasel (Mustela nivalis); 51. Malay Weasel (Mustela nudipes); 52. European Polecat (Mustela putorius); 53. Siberian Weasel (Mustela sibirica); 54. Back-striped Weasel (Mustela strigidorsa); 55. Egyptian Weasel (Mustela subpalmata); 56. American Mink (Neovison vison); 57. Patagonian in Mustelidae

On following pages: 42. Steppe Polecat (Mustela eversmanii); 43. Colombian Weasel (Mustela felipei); 44. Long-tailed Weasel (Mustela frenata); 45. Japanese Weasel (Mustela itatsi); 46. Yellow-bellied Weasel (Mustela kathiah); 47. European Mink (Mustela lutreola); 48. Indonesian Mountain Weasel (Mustela lutreolina); 49. Black-footed Ferret (Mustela nigripes); 50. Least Weasel (Mustela nivalis); 51. Malay Weasel (Mustela nudipes); 52. European Polecat (Mustela putorius); 53. Siberian Weasel (Mustela sibirica); 54. Back-striped Weasel (Mustela strigidorsa); 55. Egyptian Weasel (Mustela subpalmata); 56. American Mink (Neovison vison); 57. Patagonian

opennotspecifiedJan 2009View details →
zenodo32/100

On following pages: 42. Steppe Polecat (Mustela eversmanii); 43. Colombian Weasel (Mustela felipei); 44. Long-tailed Weasel (Mustela frenata); 45. Japanese Weasel (Mustela itatsi); 46. Yellow-bellied Weasel (Mustela kathiah); 47. European Mink (Mustela lutreola); 48. Indonesian Mountain Weasel (Mustela lutreolina); 49. Black-footed Ferret (Mustela nigripes); 50. Least Weasel (Mustela nivalis); 51. Malay Weasel (Mustela nudipes); 52. European Polecat (Mustela putorius); 53. Siberian Weasel (Mustela sibirica); 54. Back-striped Weasel (Mustela strigidorsa); 55. Egyptian Weasel (Mustela subpalmata); 56. American Mink (Neovison vison); 57. Patagonian Weasel (Lyncodon patagonicus). in Mustelidae

On following pages: 42. Steppe Polecat (Mustela eversmanii); 43. Colombian Weasel (Mustela felipei); 44. Long-tailed Weasel (Mustela frenata); 45. Japanese Weasel (Mustela itatsi); 46. Yellow-bellied Weasel (Mustela kathiah); 47. European Mink (Mustela lutreola); 48. Indonesian Mountain Weasel (Mustela lutreolina); 49. Black-footed Ferret (Mustela nigripes); 50. Least Weasel (Mustela nivalis); 51. Malay Weasel (Mustela nudipes); 52. European Polecat (Mustela putorius); 53. Siberian Weasel (Mustela sibirica); 54. Back-striped Weasel (Mustela strigidorsa); 55. Egyptian Weasel (Mustela subpalmata); 56. American Mink (Neovison vison); 57. Patagonian Weasel (Lyncodon patagonicus).

opennotspecifiedJan 2009View details →
zenodo32/100

Slices of ferret brains

<p>Image with 4 slices of ferret brains</p>

opencc-by-4.0Jun 2022View details →
zenodo32/100

Figure 1 in Widespread population of invasive ferrets Mustela furo (Carnivora: Mustelidae) on the island of Madeira, Macaronesia

Figure 1: Distribution of the observations of Mustela furo in Madeira island, Portugal. Coordinates and year of observation are provided in Supplementary Table S1.

opennotspecifiedApr 2024View details →
zenodo32/100

Figure 2 in Widespread population of invasive ferrets Mustela furo (Carnivora: Mustelidae) on the island of Madeira, Macaronesia

Figure 2: Examples of Mustela furo observations in Madeira island. Ferret predation on (A) IUCN endangered Zino's petrel (Pterodroma madeira), (B) juvenile of Cory's shearwater (Calonectris diomedea) and (C) rodent (Rattus spp.). Photos (D) and (E) were captured during camera-trap surveys conducted in 2021 and 2023 in the Ecological Park of Funchal, respectively. Photo (F) depicts a road-killed individual.

opennotspecifiedApr 2024View details →
zenodo32/100

Twenty-five metagenome assembled genomes recovered from the gut microbiome of the domestic ferret, Mustela putorius

<p>This is metadata provided in a single excel file for&nbsp;25 unique metagenome assembled genomes (MAGs) recovered from the gut microbiome of three domestic ferrets (<em>Mustela putorius</em>). Details on both MAG and host ferret metadata, as well as information on sample collection, DNA sequencing, and bioinformatic processing can be found here, in association with&nbsp;the American Society for Microbiology Resource Announcement by Amundson et al. (in prep).&nbsp;</p>

opencc-by-4.0Feb 2022View details →
zenodo32/100

Genetic variation data derived from ferret transmission experiments of avian H3N8 influenza viruses

<p>Supplementary Dataset 1. Genetic variation data derived from ferret transmission experiment of HN/4-10 virus<br> Supplementary Dataset 2. Genetic variation data derived from ferret transmission experiment of CS/1000 virus<br> Supplementary Dataset 3. Genetic variation &nbsp;data derived from ferret transmission experiment of CK/FE12 virus<br> Supplementary Dataset 4. Genetic variation data derived from ferret transmission experiment of CK/F0316 virus</p>

opencc-by-4.0Jul 2023View details →
zenodo32/100

Quantifying the Effects of Vagus Nerve Stimulation on Gastric Myoelectric Activity in Ferrets Using an Interpretable Machine Learning Approach

<p>Raw data</p>

opencc-by-4.0Oct 2023View details →
dryad32/100

Data from: Founder events, isolation, and inbreeding: Intercontinental genetic structure of the domestic ferret

Open the record for dataset details and reuse information.

publicOct 2017View details →
dryad32/100

Data from: The genetic legacy of the 19th century decline of the British polecat: evidence for extensive introgression from feral ferrets

Open the record for dataset details and reuse information.

publicJul 2013View details →

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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.

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behavioral-neuroscienceopenPublic sessions can be searched and loaded from the IBL public data server through ONE.
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Last verified 2026-04-29Open record