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13,349 results for “mice”
Ultrasound Vevo 2100 data on ascending and abdominal aneurysms in ApoE-deficient mice - baseline and early stage
<p>This dataset contains raw data of ultrasound measurements taken of the ascending and abdominal aorta of Ang II-infused mice. Data were taken at baseline (prior to pump implantation) and at an early stage of disease development. Data can be openend with the Vevo 2100 analysis software provided by Fujifilm.</p> <p> </p> <p> </p>
Data of "Thalamic drive of cortical parvalbumin-positive interneurons during down-states in anesthetized mice"
<p>This dataset and relative code support the scientific article "Thalamic drive of cortical parvalbumin-positive interneurons during down-states in anesthetized mice" by the same authors accepted for publication in Current Biology (2019).</p> <p>For further detail, please refer to README.txt.</p>
P10 2B/- SMA Mice Righting Reflex
<p> </p> <p><strong>Supplemental Video 1:</strong> Righting reflex of control and Smn<sup>2B/-</sup> mice at P10.</p> <p><strong>DOI:</strong> 10.1152/jn.00652.2018</p> <p><strong>Hyperexcitability precedes motoneuron loss in the Smn<sup>2B/-</sup> mouse model of spinal muscular atrophy.</strong></p> <p>Quinlan KA<sup>1*</sup>, Reedich E<sup>2*</sup>, Arnold WD<sup>3</sup>, Puritz A<sup>4</sup>, Cavarsan CF<sup>1</sup>, Heckman CJ<sup>5</sup>, DiDonato CJ<sup>6</sup>.</p> <p>*These authors contributed equally to this work. </p> <p>1 Department of Biomedical and Pharmaceutical Sciences, University of Rhode Island, United States.</p> <p>2 Lurie Childrens/Northwestern Univ., United States.</p> <p>3 The Ohio State University, United States.</p> <p>4 Northwestern University, United States.</p> <p>5 Physiology, Physical Medicine and Rehabilitation, Physical Therapy and Human Movement Sciences, Northwestern University, United States.</p> <p>6 Lurie Children's Hospital, United States.</p>
Figure 1 in Mammals under a colony of great cormorants: population structure and body condition of yellow-necked mice
Figure 1. Location of Zones A–E in the colony of great cormorants near Juodkrantė, West Lithuania, 2011–2013.
Figure 2 in Peptidoglycan from Immunobiotic Lactobacillus rhamnosus Improves Resistance of Infant Mice to Respiratory Syncytial Viral Infection and Secondary Pneumococcal Pneumonia
Figure 2. – Photography of a juvenile lemon shark identified as Negaprion acutidens with an estimated total length of 70 cm (Photo MI).
Figure 1 in Peptidoglycan from Immunobiotic Lactobacillus rhamnosus Improves Resistance of Infant Mice to Respiratory Syncytial Viral Infection and Secondary Pneumococcal Pneumonia
Figure 1. – The Chesterfield islands (A) lie in the Coral Sea with New Caledonia (NC) to the east and Australia (AUS) to the west. The atoll structure of the Chesterfield (B) includes a V shaped barrier reef in the South (C) where the juvenile lemon sharks were observed (arrow).
Extended data of the article "Lockbox enrichment facilitates manipulative and cognitive activities for mice": Supplementary Figure
<p><span>Figure and results of the distance traveled in the Free Exploratory Paradigm, Open Field Test, and Elevated Plus Maze Test during habituation are shown</span>.</p>
Fig. 1 in Borrelia miyamotoi infection in Apodemus spp. mice populating an urban habitat (Warsaw, Poland)
Fig. 1. Scheme of the study area (city of Warsaw, Poland) showing the arrangement of mice-trapping locations. Black points – locations where B. miyamotoi infected mice were present; White points – locations where none of the captured mice were B. miyamotoi infected; N1–N3 – locations within northern suburbs; C1–C5 - locations within city centre; S1–S2 – locations within southern suburbs; numbers in boxes – B. miyamotoi prevalence in mice inhabiting respective areas.
Fig. 1 in Presence of IgG antibodies is not a reliable marker of Toxoplasma gondii infection in feral mice
Fig. 1. Frequency distribution of body weight in Toxoplasma gondii B1 PCRnegative (in green) and positive mice (in red). (For interpretation of the references to colour in this figure legend, the reader is referred to the Web version of this article.)
Fig. 2 in Efficacy of a federally approved flea bait, orally administered to white-footed mice (Peromyscus leucopus), against blood feeding Ixodes scapularis larvae under simulated field conditions
Fig. 2. Representative images of Day 2 and Day 4 capsules observations. Nonengorging larvae attached to Treatment mouse at (A) Day 2 and (B) Day 4. Engorging larvae attached and actively feeding on Control mouse at (C) Day 2 and (D) Day 4. At Day 4, the majority of larvae fed to repletion and detached from the Control mice, while the majority died in situ on the Treatment mice. Green arrows indicate live larvae and red arrows indicate dead larvae. (For interpretation of the references to color in this figure legend, the reader is referred to the Web version of this article.)
Fig. 1 in Efficacy of a federally approved flea bait, orally administered to white-footed mice (Peromyscus leucopus), against blood feeding Ixodes scapularis larvae under simulated field conditions
Fig. 1. Capsule observations via microscopy. (A) Non-engorged (deceased) larvae, (B) engorging larvae, (C) fully engorged (replete) larvae nearing detachment.
Intermittent protein restriction in male and female mice
<div> <div>For full methods see paper submitted as a pre-print at <a href="https://www.biorxiv.org/content/10.1101/2024.03.01.582931v1" rel="nofollow">https://www.biorxiv.org/content/10.1101/2024.03.01.582931v1</a></div> <div> </div> <div># Description of datafiles</div> <div>*fig_1_body_weight.csv*</div> <div>Each row is a different mouse. Columns with animal characteristics (ID, sex, and group) are followed by 9 columns (“week_0” through “week_8”), each of which contains the average body weight (in grams) for that mouse.</div> <br> <div>*fig_2_body_composition.csv*</div> <div>Each row is a different mouse. Columns with animal characteristics (ID, sex, and group) are followed by columns with each mouse’s echoMRI measurements of fat mass and lean mass at baseline (“fat_baseline” and “lean_baseline”), and at the experiment’s conclusion (“fat_end” and “lean_end”). Finally, there are two columns for the change in body composition between experiment start and end (“change_in_fat” and “change_in_lean”). All numbers are in grams.</div> <br> <div>*fig_3_food_intake.csv*</div> <div>Each row is a different mouse. Columns with animal characteristics (ID, sex, and group) are followed by 9 columns (“week_0” through “week_8”), each of which contains the average daily food intake, in grams, for that mouse. The last two columns have the average daily food intake in weeks during which the IPR group was on PR diet (weeks 1,3, 5, and 7) and on weeks when the IPR group was on NR diet (weeks 2,4,6, and 8).</div> <br> <div>There are 3 cells that contain estimated intakes. Cell F16 (MPX301, NR, week 2) was estimated by averaging this mouse’s intake in all other weeks, as was cell H61 (IPR18, PR, week 4) with the exception that this mouse’s baseline intake was not included as it was on a different diet. Lastly, cell D31 (MPX306, PR, baseline) was estimated by averaging the baseline intakes of all other male mice.</div> <br> <div>*fig_4_protein_intake.csv*</div> <div>Each row is a different mouse. Columns with animal characteristics (ID, sex, and group) are followed by 9 columns (“week_0” through “week_8”), each of which contains the average protein intake in grams consumed by that particular mouse on that week. The final columns have the average protein intake for each mouse on weeks when the IPR group was on PR diet (weeks 1,3, 5, and 7) and on weeks when the IPR group was on NR diet (weeks 2,4,6, and 8).</div> <br> <div>*fig_5_ghrelin.csv*</div> <div>Each row is a different mouse. Columns with animal characteristics (ID, sex, and group) are followed by the time in which plasma was collected (“dark_onset” or “light_onset”), and the final column shows the concentration of ghrelin (pg/ml).</div> <br> <div>Note that the value in cell E17 (MPX325, NR in dark onset) was excluded from statistical analyses because it is an outlier (2 standard deviations above the group mean).</div> </div>
Data set for "Dopamine dynamics in nucleus accumbens across reward-based learning of goal-directed whisker-to-lick sensorimotor transformations in mice"
<p>Data set for: Huang J, Crochet S, Sandi C, Petersen CCH (2024) Dopamine dynamics in nucleus accumbens across reward-based learning of goal-directed whisker-to-lick sensorimotor transformations in mice. Heliyon 10: e37831. https://doi.org/10.1016/j.heliyon.2024.e37831<br><br></p> <p>There are 2 files in this upload:</p> <p>1. The file named "2024_Huang_Heliyon.pdf" is the Open Access pdf of the online publication in Heliyon.</p> <p>2. The file named "Huang_data_code.zip" (~6 GB) is a zipped version of a folder "Huang_data_code" (~6 GB), which contains the data analysed in the study along with the Matlab codes used to generate the published figures. To access the data and codes, first unzip the file. You need to install the Matlab 'Signal Processing' and 'Curve Fitting' Toolboxes. In Matlab, add the path of the folder "Huang_data_code" and all subfolders. The main folder unzips into three subfolders: i) "Huang_dLight_data_code", which contains the dLight data; ii) "Huang_muscimol_data_code", which contains the behavioral data for muscimol inactivation experiments; and iii) "Huang_singletrial_example", which contains the data for the single trial example data shown in Figure 1C (note for this to run you first need to load the data file "JH056_190308_WD.mat"). In the folder "Huang_dLight_data_code", you can also find a "DataViewer" to visualise the data trial-by-trial, which you can run by executing "DataViewer.mlapp" directly from the subfolder "Huang_dLight_data_code" after loading the data "Huang_database.mat".</p>
Transgenic A53T mice have astrocytic a-synuclein aggregates in dopamine and striatal regions
<p>Quantification of astrocyte expression, co-expression of astrocytes with a-syn, and astrocyte morphological data (soma size and number of processes) from 6 month transgenic A53T PD mice.</p>
Pre-existing natural variations of adult neurogenesis and anxiety predict hierarchical social status of inbred male mice.
<p>CVS files and image files of all data presented in the correcponding figures. </p>
FIG. 9 in Systematics of Neotropical Spiny Mice, Genus Neacomys Thomas, 1900 (Rodentia: Cricetidae), from Southeastern Amazonia, with Descriptions of Three New Species
FIG. 9. Dorsal, ventral, lateral cranial views and lateral view of mandible of Neacomys vossi (UFPA 1583, holotype).
FIG. 6 in Systematics of Neotropical Spiny Mice, Genus Neacomys Thomas, 1900 (Rodentia: Cricetidae), from Southeastern Amazonia, with Descriptions of Three New Species
FIG. 6. Habitat of Neacomys marajoara at Tauari Farm, municipality of Chaves, Marajó Island, state of Pará, Brazil. Photo by Rogério V. Rossi.
FIG. 12 in Systematics of Neotropical Spiny Mice, Genus Neacomys Thomas, 1900 (Rodentia: Cricetidae), from Southeastern Amazonia, with Descriptions of Three New Species
FIG. 12. Dorsal, ventral, lateral cranial views and lateral view of mandible of Neacomys xingu (UFMT 1268, holotype).
FIG. 3 in Systematics of Neotropical Spiny Mice, Genus Neacomys Thomas, 1900 (Rodentia: Cricetidae), from Southeastern Amazonia, with Descriptions of Three New Species
FIG. 3. Scatter plots of PC1 (horizontal axis) and PC2 (vertical axis) for pairwise analyses of craniodental measurement data for species in the Dubosti Group of Neacomys. In each plot, species are represented by minimum convex polygons that enclose all points in the plane of PC1 and PC2. A, N. dubosti (dub) versus N. marajoara (mar); B, N. dubosti versus N. vossi (vos); C, N. dubosti versus N. xingu (xin); D, N. marajoara versus N. vossi; E, N. marajoara versus N. xingu; F, N. vossi versus N. xingu.
FIG. 7 in Systematics of Neotropical Spiny Mice, Genus Neacomys Thomas, 1900 (Rodentia: Cricetidae), from Southeastern Amazonia, with Descriptions of Three New Species
FIG. 7. Dorsal, ventral, and lateral cranial views and lateral view of mandible of Neacomys marajoara (MPEG 40432, holotype).
ScienceDex guides
Understand access before you commit
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.
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.