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1,598 results for “genetic diversity”
Genetic Diversity Through RNA Editing: Apobec1-mediated RNA editing in bulk and single cell macrophages and dendritic cells
GEO Series GSE74720. Mus musculus. 26 samples. Type: Expression profiling by high throughput sequencing; Other.
Diverse Non-Genetic Allele Specific Expression Effects Shape Genetic Architecture at the Cellular Level in the Mammalian Brain
GEO Series GSE93788. Macaca fascicularis; Mus musculus. 71 samples. Type: Expression profiling by high throughput sequencing; Methylation profiling by high throughput sequencing.
Systems genetics uncover new loci containing functional gene candidates in Mycobacterium tuberculosis-infected Diversity Outbred mice
GEO Series GSE267006. Mus musculus. 134 samples. Type: Expression profiling by array.
Single nucleus RNA sequencing of the cerebral cortex from genetically diverse inbred mouse strains reveals differences in pericyte and endothelial cell composition
GEO Series GSE263649. Mus musculus. 16 samples. Type: Expression profiling by high throughput sequencing.
Genetic diversity study for Entamoeba strains
GEO Series GSE3207. Entamoeba histolytica. 21 samples. Type: Genome variation profiling by array.
Figure 4 in DNA Barcodes Reveal High Genetic Diversity in Philippine Fruit Bats
Figure 4. Sub-tree of the M. minimus / M. sobrinus clade from Figure 3 showing the Philippine clade (red line) and Southeast Asian clade (black line). Scale indicates five nucleotides substitutions per 1000 nucleotides.
Fig. 8 in Taxonomy, genetic diversity, and phylogeny of the Antarctic mud dragon, Polacanthoderes (Kinorhyncha: Echinorhagata: Echinoderidae)
Fig. 8. Polar-coordinate diagram of mouth cone, introvert, and placids in Polacanthoderes shiraseae sp. nov. Grey area and heavy line arcs show mouth cone and placids, respectively. The table lists the arrangement of styles and scalids by sector.
Dataset for 'Phylogenetic Diversity vs H-Index – does genetics or culture lead conservation science?'
Open the record for dataset details and reuse information.
Fig. 4 Phylogenetic chronogram, a in Mitochondrial evidence for genetic diversity and low phylogeographic differentiation in the Marsh Warbler Acrocephalus palustris (Aves: Acrocephalidae)
Fig. 4 Phylogenetic chronogram, a coalescent analysis implemented in BEAST with lognormal relaxed clock (uniform distribution and 0.01105– 0.02500 substitutions per million years) and population expansion model as priors. Thick horizontal bars represent the 95 % HDP of the age of major nodes and numbers indicate node posterior probability values
Fig. 1 in Mitochondrial evidence for genetic diversity and low phylogeographic differentiation in the Marsh Warbler Acrocephalus palustris (Aves: Acrocephalidae)
Fig. 1 Approximate locations of the sampling sites of A. palustris. Breeding (yellow) and wintering (light blue) distributions (del Hoyo et al. 2006). The names of localities are abbreviated as in Table 1. Germany includes Franconia, Treysa, and Saar
Fig. 4 in Phylogeographic patterns of genetic diversity in the common spadefoot toad, Pelobates fuscus (Anura: Pelobatidae), reveals evolutionary history, postglacial range expansion and secondary contact
Fig. 4 Geographic location of populations sampled in the contact zone between Pelobates fuscus fuscus and P. f. vespertinus in Kursk Province of Russia. a Light and dark sectors show the proportion of membership of each population in clusters of P. f. fuscus and P. f. vespertinus, respectively, according to results of the Structure analysis based on allozyme data; b sectors show proportion of individuals determined as pure parental species (P. f. fuscus in light and P. f. vespertinus in dark colors) and hybrid plus "intermediate" individuals (gray color) in each population, according to results of the New Hybrids analysis based on allozyme data; c light and dark sectors show the proportion of membership of each population in clusters of P. f. fuscus and P. f. vespertinus, respectively, according to cyt b data. Localities are numbered as in Table 1 and Fig. 1
Fig. 6 in Phylogeographic patterns of genetic diversity in the common spadefoot toad, Pelobates fuscus (Anura: Pelobatidae), reveals evolutionary history, postglacial range expansion and secondary contact
Fig. 6 Potential niche models (dark gray area) of Pelobates f. fuscus (a) and P. f. vespertinus (b) based on Maxent. Localities of P. f. fuscus and P. f. vespertinus are designated as triangles (b) and squares (a), respectively. Models are above the average 10-percentile training threshold
Pangenomes of Human Gut Microbiota Uncover Links Between Genetic Diversity and Stress Response
<p>Data S1: Genes statistics</p> <p>Data S2: Genes conservation</p> <p>Data S3: Strain variability</p> <p>Data S4: Antibiotic resistances</p> <p>Data S5: Genes annotations</p>
F in Genetic diversity in the Carabodes marginatus species group (Acarida, Oribatida, Carabodidae) as inferred from allozymes
F. 2. Cladogram based on UPGMA clustering of genetic distance data showing genetic relationships between populations.
Figure 4 in Cryptic diversity in coastal Australasia: a morphological and mitonuclear genetic analysis of habitat-forming sibling species
Figure 4. World map indicating the known distribution of the different species of the Pyura stolonifera species complex. The magnified maps show the sites in south-east Australia and New Zealand at which samples of Pyura praeputialis and Pyura doppelgangera sp. nov. were collected. Site numbers correspond to those used in Tables 1 and 2. Neither lineage was present at sites A–H, indicating possible distribution gaps at sites in South Australia (SA; A–F) and Victoria (Vic; G, H) (see details in Table 2). NSW, New South Wales; TAS, Tasmania.
Fig. 9 in Multivariate analysis of chemical and genetic diversity of wild Humulus lupulus L. (hop) collected in situ in northern France
Fig. 9. Identification of the common structures of the variable blocks by multifactorial analysis. This multifactorial analysis has been done on the five datasets of this study: the soil analysis, the genetic characterization and the phytochemical analysis (volatile compounds analysis, quantitation of main prenylated phenolic compounds and untargeted metabolomic analysis) of the 63 hops samples (10 commercial varieties, 3 heirloom varieties and 50 wild hops). A. Multiple factor analysis scores plot B. Table coordinate plot C. Hierarchical clustering Ward's method (distance scale) (N = 7).
Fig. 4 in Assessing the genetic and chemical diversity of Taraxacum species in the Korean Peninsula
Fig. 4. The multivariate analysis of the metabolite data derived from 13 Taraxacum extracts. (A) The score plot and (B) loading plot of the PCA model showing PC1- PC2. (C) The score plot and (D) S-plot of the OPLS-DA model for T. campylodes (TCA) and T. coreanum (TCO), showing PC1-PC2. (E) The score plot and (F) S-plot of the OPLS-DA model for T. platycarpum (TP) and T. ussuriense (TU), showing PC1-PC2. In the score plots, the orange hexagons, blue squares, brown plus signs, pink circles, and yellow triangles correspond to T. platycarpum, T. ussuriense, T. coreanum, T. campylodes, and T. erythrospermum (TE), respectively. In the loading plots, important markers are labelled with xxx/yy, where xxx means m/z values and yy means retention time. (For interpretation of the references to colour in this figure legend, the reader is referred to the Web version of this article.)
Fig. 4 in Genetic and chemical diversity of the toxic herb Jacobaea vulgaris Gaertn. (syn. Senecio jacobaea L.) in Northern Germany
Fig. 4. Mean PA composition per population. Percentage proportion of single PAs from all individuals were averaged and summarized in populations. Only single PAs that count for more than 2% of total PA concentrations were included.
Prenatal Cell-free DNA Screening in Pregnancies With Diverse Genetic Risk Profiles Utilizing Targeted and Whole-exome Sequencing
ClinicalTrials.gov study NCT07106853. IPD Sharing: YES. Countries: 0. Publications: 0.
Genetic basis of transcriptome diversity in Drosophila melanogaster
GEO Series GSE67505. Drosophila melanogaster. 2 samples. Type: Expression profiling by high throughput sequencing.
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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.