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763 results for “Mitochondrial DNA”
Figure 1 in Mitochondrial Dna Sequence Data Indicate Evidence For Multiple Species Within Peromyscus Maniculatus
Figure 1. Distribution of selected populations and species of the Peromyscus maniculatus species group from Canada, Mexico, and the United States. Shaded areas represent distributions of taxa (defined in figure insert) as originally defined by Hall (1981) and modified based on the results of this study. Closed circles represent collecting localities listed in the Appendix; note that multiple individuals may be represented by a single closed circle. White boxes with black stars indicate type localities for each taxon and triangles indicate localities where haplotypes representing P. sonoriensis were found to be in sympatry with samples of P. gambelii and P. labecula, respectively.
Figure 3 in Mitochondrial Dna Sequence Data Indicate Evidence For Multiple Species Within Peromyscus Maniculatus
Figure 3. Time-calibrated ultrametric tree obtained from the BEAST analysis (Version 2.4, Bouckaert et al. 2014) of the mitochondrial cytochrome-b gene dataset. Scale bars at nodes represent the 95% highest posterior densities and numbers associated to each node are the estimated divergence times in million years ago.
Fig. 1 in Genetic Diversity In Peripheral And Central Populations Of Rusty-Necklaced Partridge (Alectoris Magna) Based On Mitochondrial And Microsatellite Dna
Fig. 1. Rusty-necklaced partridge sampling sites: 1 = Lanzhou, 2 = Jingyuan, 3 = Haiyuan, 4 = Dingxi, 5 = Huining, 6 = Wushan, 7 = Beidao, 8 = Lixian
Fig. 1 in Mitochondrial Dna Diversity Of The Alpine Newt (Ichthyosaura Alpestris) In The Carpathian Basin: Evidence For Multiple Cryptic Lineages Associated With Pleistocene Refugia*
Fig. 1. Sampling sites and haplotypes found in and around the Carpathian Basin. Sam- ples collected in this study are marked with circles and haplotype codes, and previously
Fig. 5 in Mitochondrial Dna Diversity Of The Alpine Newt (Ichthyosaura Alpestris) In The Carpathian Basin: Evidence For Multiple Cryptic Lineages Associated With Pleistocene Refugia*
Fig. 5. Original drawings by O. Gy. Dely: male (A, B) and female (C, D) Ichthyosaura alpestris alpestris head shape from dorsal (A, C) and lateral (B, D) view
Fig. 4 in Mitochondrial Dna Diversity Of The Alpine Newt (Ichthyosaura Alpestris) In The Carpathian Basin: Evidence For Multiple Cryptic Lineages Associated With Pleistocene Refugia*
Fig. 4. Holotype of Triturus (=Ichthyosaura) alpestris bakonyiensis (Dely, 1964) (HNHM- HER-61.27.1.) from dorsal (A), lateral (B) and ventral (C) view
Fig. 8 in Mitochondrial Dna Diversity Of The Alpine Newt (Ichthyosaura Alpestris) In The Carpathian Basin: Evidence For Multiple Cryptic Lineages Associated With Pleistocene Refugia*
Fig. 8. Original drawings by O. Gy. Dely: female (A–D) and male (E–H) Ichthyosaura alpestris bakonyiensis skull from dorsal (A, E), ventral (B, F), lateral (C, G) and posterior (D, H) view
Fig. 7 in Mitochondrial Dna Diversity Of The Alpine Newt (Ichthyosaura Alpestris) In The Carpathian Basin: Evidence For Multiple Cryptic Lineages Associated With Pleistocene Refugia*
Fig. 7. Original drawings by O. Gy. Dely: female (A–D) and male (E–H) Ichthyosaura alpestris alpestris skull from dorsal (A, E), ventral (B, F), lateral (C, G) and posterior (D, H) view
Fig. 3 in Mitochondrial Dna Diversity Of The Alpine Newt (Ichthyosaura Alpestris) In The Carpathian Basin: Evidence For Multiple Cryptic Lineages Associated With Pleistocene Refugia*
Fig. 3. Median-joining network of the combined mtDNA haplotypes found in and around the Carpathian Basin (drawn with PopArt 1.7). Inset: distribution of Ichthyosaura alpestris in this region. On the network, circles with haplotype names mark haplotypes found in this
Fig. 6 in Mitochondrial Dna Diversity Of The Alpine Newt (Ichthyosaura Alpestris) In The Carpathian Basin: Evidence For Multiple Cryptic Lineages Associated With Pleistocene Refugia*
Fig. 6. Original drawings by O. Gy. Dely: male (A, B) and female (C, D) Ichthyosaura alpestris bakonyiensis head shape from dorsal (A, C) and lateral (B, D) view
Fig. 2 in Phylogeography of Hypostomus strigaticeps (Siluriformes: Loricariidae) inferred by mitochondrial DNA reveals its distribution in the upper Paraná River basin
Fig. 2. Map of the river system in Brazil, highlighting the upper rio Paraná basin and the collection points.
Fig. 1 in Phylogeography of Hypostomus strigaticeps (Siluriformes: Loricariidae) inferred by mitochondrial DNA reveals its distribution in the upper Paraná River basin
Fig. 1. Dorsal, lateral and ventral views of Hypostomus strigaticeps. MZUSP 79646, Tietê River, São Paulo State, Brazil. 127.6 mmSL.
Fig. 3 in Variation In Cone And Seed Morphology Traits Among The Mitochondrial Dna Haplotypes Of Scots Pine (Pinus Sylvestris L.)
Fig. 3. Dependence of seed number per cone on cone length for the type A and type B mitotypes of Scots pine. Individual cone values are shown.
Fig. 3 in Phylogeography of Hypostomus strigaticeps (Siluriformes: Loricariidae) inferred by mitochondrial DNA reveals its distribution in the upper Paraná River basin
Fig. 3. Phylogenetic tree based on the ATPase 6/8 mitochondrial gene using NJ, MP and BI methods. Values on branches represent bootstrap values for NJ, MP and posterior probabilities for BI.
Fig. 3. Minimum spanning network for Haemoproteus and Plasmodium mitochondrial DNA cytochrome b in Spatial, temporal, molecular, and intraspecific differences of haemoparasite infection and relevant selected physiological parameters of wild birds in Georgia, USA
Fig. 3. Minimum spanning network for Haemoproteus and Plasmodium mitochondrial DNA cytochrome b haplotypes detected in four species of passerines from Georgia (USA). Circles are drawn proportional to the frequency at which haplotypes were observed. Color represents the host species from which haplotypes originated: red for Northern Cardinal (Cardinalis cardinalis), blue for Indigo Bunting (Passerina cyanea), yellow for White-throated Sparrow (Zonotrichia albicollis), and grey for Tufted Titmouse (Baeolophus bicolor). A single mutation separates nodes unless explicitly indicated by number. Letters within each node refer to Table 8 which indicates the haplotype name, sampling location, and other factors associated with hosts.
Fig. 4. Minimum spanning network for hematozoa mitochondrial DNA cytochrome b in Evaluation of blood and muscle tissues for molecular detection and characterization of hematozoa infections in northern pintails (Anas acuta) wintering in California
Fig. 4. Minimum spanning network for hematozoa mitochondrial DNA cytochrome b haplotypes detected in Central Valley northern pintails. Circles are drawn proportional to the frequency at which haplotypes were observed. Shading represents the sample collection from which haplotypes originated: white (2006– 2007 wing muscle), grey (2011–2012 wing muscle), and black (2011–2012 blood). A single mutation separates nodes unless explicitly indicated by number. Lines separating nodes are drawn to scale unless indicated by a break. Parasite taxa have been abbreviated in haplotype names (Leu = Leucocytozoon, Hae = Haemoproteus and Pla = Plasmodium).
Fig. 5 in Mitochondrial DNA diversity in the acanthocephalan Prosthenorchis elegans in Colombia based on cytochrome c oxidase I (COI) gene sequence
Fig. 5. Distribution and frequency of Prosthenorchis elegans haplotypes (A–F) and haplogroups (I–II) by locality and individual. URRAS: Unidad de Rescate y Rehabilitacíon de Animales Silvestres, Universidad Nacional de Colombia; AMVA: Area Metropolitana del Valle de Aburŕa; WCS: Wildlife Conservation Society-Colombia.
Fig. 4 in Mitochondrial DNA diversity in the acanthocephalan Prosthenorchis elegans in Colombia based on cytochrome c oxidase I (COI) gene sequence
Fig. 4. Phylogenetic tree obtained using Bayesian Inference (BI) and Maximum Likelihood (ML); node supports are provided for BI\ML. Outgroup taxa: Oncicola sp, AF417000; O. luehe = Oncicola luehe, JN710452; M. ingens = Macracanthorhynchus ingens, AF416997; M. hirudinaceus = Macracanthorhynchus hirudinaceus, FR856886; O. tortuous = Oligacanthorhynchus tortuous, AF416999.
Fig. 3 in Mitochondrial DNA diversity in the acanthocephalan Prosthenorchis elegans in Colombia based on cytochrome c oxidase I (COI) gene sequence
Fig. 3. Haplotype network of Prosthenorchis elegans. Network shows relationships among P.elegans haplotypes (A–F) recovered from Saguinus leucopus and Cebus albifrons based on 633 bp of COI. All branches are of unit length (one mutational step). Labeled open circles represent observed haplotypes; areas of circles are proportional to the number observed for each haplotype. Filled circles indicate inferred haplotypes not found among sampled individuals. Double lines indicate variable sites (49, 274 and 293) resulting in changes in amino acid. Haplogroups are identified.
Fig. 2 in Mitochondrial DNA diversity in the acanthocephalan Prosthenorchis elegans in Colombia based on cytochrome c oxidase I (COI) gene sequence
Fig. 2. External morphology of Prosthenorchis elegans via scanning electron microscopy (SEM). A. View of entire body of parasite. B. Proboscis armed with hooks.
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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.
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.