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3,292 results for “DNA Barcode”
Fig. 5 in DNA barcoding and genetic variability of earthworms (Clitellata: Oligochaeta) with new records from Mizoram, India
Fig. 5 Haplotype networking of 20 earthworm species of Mizoram, NER. In the network, each haplotype is represented by a circle, and the size of the circle is directly proportional to the number of homozygous haplotypes. The undetected haplotypes are indicated in small red circles, while the different colors indicate different haplotypes of 20 earthworm species. The out-group D. japonica is represented in a black circle (for more information, see Table 4)
FIGURE 2 in Complementary studies of the Perlidae (Insecta: Plecoptera) fauna from the Paranapiacaba Mountains using DNA barcode data
FIGURE 2. Anacroneuria itajaimirim nymph. (A) head and pronotum; (B) mesonotum and metanotum; (C) abdomen; (D) leg; (E) labium; (F) mandible; (G) maxilla; (H) cercus. Scales: 1 mm.
FIGURE 1 in Complementary studies of the Perlidae (Insecta: Plecoptera) fauna from the Paranapiacaba Mountains using DNA barcode data
FIGURE 1. Molecular analysis. Maximum-Likelihood tree of Perlidae from Intervales State Park obtained using mitochondrial cytochrome c oxidase subunit I (COI) sequences (635 bp). The values represent ML posterior probabilities and green squares denote new sequences of COI barcode region. Voucher codes are present in parentheses. A. = Anacroneuria, K. = Kempnyia, M. = Macrogynoplax
FIGURE 2 in Effectiveness of DNA barcoding markers in the description of a new and unusual calyptrate species of Myrcianthes (Myrtaceae)
FIGURE 2. Myrcianthes roncesvallensis. (A) Closed calyx detaching as a unit (C. Parra-O. & A. F. Bohórquez 853), (B) closed calyx tearing in two or three more or less regular lobes (C. Parra-O. & A. F. Bohórquez 849), (C) both types of calyx opening in flowers of the same inflorescence (C. Parra-O. & A. F. Bohórquez 857), (D) tissue remnants from the calyx opening that persist attached to the hypanthium (C. Parra-O. & A. F. Bohórquez 852), (E) remnants of the calyx in the fruit (C. Parra-O. & A. F. Bohórquez 852), (F) remnants of the calyx in the fruit (C. Parra-O. & A. F. Bohórquez 856). Photos: A. F. Bohórquez (A); C. Parra-O. (B, C, D, E, and F). Scale bar = 5 mm.
FIGURE 1 in Effectiveness of DNA barcoding markers in the description of a new and unusual calyptrate species of Myrcianthes (Myrtaceae)
FIGURE 1. Myrcianthes roncesvallensis. (A) flowering branch, (B) inflorescence, (C) flower bud, (D) petal, (E) longitudinal section of hypanthium and ovary, (F) cross section of ovary, (G) fruit, (H) embryo. Illustration by Laura Giraldo Kalil; A, C, D, E, and F drawn from the holotype, B drawn from C. Parra-O. & A. F. Bohórquez 857, G and H drawn from C. Parra-O. & A. F. Bohórquez 852.
FIGURE 6 in DNA Barcoding of Endangered Paphiopedilum species (Orchidaceae) of Peninsular Malaysia
FIGURE 6. Barcoding gap assessment based on the distribution of intraspecific and interspecific distances. No overlap of intraspecific and interspecific distances indicates a barcoding gap. a: matK (present), b: ITS (not present), c: trnH-psbA (not present), d: rbcL (not present).
FIGURE 4 in DNA Barcoding of Endangered Paphiopedilum species (Orchidaceae) of Peninsular Malaysia
FIGURE 4. NJ bootstrap consensus condensed (cutoff at 50%) phylogenetic tree of trnH-psbA barcodes. Constructed with Kimura-2- parameter and 1000 bootstrap replicates. Outgroups (family Orchidaceae) were obtained from GenBank.
FIGURE 5 in DNA Barcoding of Endangered Paphiopedilum species (Orchidaceae) of Peninsular Malaysia
FIGURE 5. NJ bootstrap consensus condensed (cutoff at 50%) phylogenetic tree using rbcL barcodes. Constructed with Kimura-2- parameter and 1000 bootstrap replicates. Outgroups (family Orchidaceae) were obtained from GenBank.
FIGURE 3 in DNA Barcoding of Endangered Paphiopedilum species (Orchidaceae) of Peninsular Malaysia
FIGURE 3. NJ bootstrap consensus condensed (cutoff at 50%) phylogenetic tree of ITS barcodes. Constructed with Kimura-2-parameter and 1000 bootstrap replicates. Outgroups (family Orchidaceae) were obtained from GenBank.
FIGURE 2 in DNA Barcoding of Endangered Paphiopedilum species (Orchidaceae) of Peninsular Malaysia
FIGURE 2. NJ bootstrap consensus condensed (cutoff at 50%) phylogenetic tree of matK barcodes. Constructed with Kimura-2-parameter and 1000 bootstrap replicates. Outgroups (family Orchidaceae) were obtained from GenBank.
FIGURE 1 in DNA Barcoding of Endangered Paphiopedilum species (Orchidaceae) of Peninsular Malaysia
FIGURE 1. BLASTn results of DNA barcodes. Percentage of accuracy was based on the total number of correct matches with the GenBank database.
FIGURE 16. Neighborjoiningtreesbasedonthe COI-5P in Morphological description and DNA barcoding of Thalassomya paraskevae sp. nov. (Diptera: Chironomidae: Telmatogetoninae) from coast of the Black Sea
FIGURE 16. Neighborjoiningtreesbasedonthe COI-5P (A) and COI-3P (B) nucleotidesequencedataof thegenus Thalassomya Schiner with Telmatogeton Schiner as an outgroup. Bootstrap support values (higher than 70%) are given above tree nodes. The sequences obtained in this study are in bold.
FIGURES 12–15 in Morphological description and DNA barcoding of Thalassomya paraskevae sp. nov. (Diptera: Chironomidae: Telmatogetoninae) from coast of the Black Sea
FIGURES 12–15. Habitats of Thalassomya paraskevae sp. nov. on the coast of the Black Sea near New Athos (Abkhazia) (12– 13, type locality) and Cape Kadosh in the vicinity of Tuapse (Krasnodar Territory, Russia) (14–15). Arrows indicate collection points.
FIGURES 1–8 in Morphological description and DNA barcoding of Thalassomya paraskevae sp. nov. (Diptera: Chironomidae: Telmatogetoninae) from coast of the Black Sea
FIGURES 1–8. Adult male of Thalassomya paraskevae sp. nov. 1, head; 2, antenna; 3, wing; 4, claws of mid leg; 5, claws of hind leg; 6, endomeres and phallapodemes; 7–8, hypopygium, in dorsal view; 9, part of hypopygium, in ventral view; 10, dorsobasal lobe of gonocoxite; 11, gonostylus.
FIGURE 4 in Taxonomic delimitation of endemic Ficus amplocarpa and Ficus dalhousiae Complexes (Moraceae) by DNA barcoding
FIGURE 4. Bayesian majority consenus tree based on ITS2 + trnH-psbA combined datasets. Highlight with red color shows the cladogenesis of both Ficus anamalayana and Ficus dalhousiae (clade A) and the clade with Ficus amplocarpa, Ficus guttata and Ficus laevis (clade B). The black color represents the cladogenesis of other Ficus species for comparison. The posterior probabilities values in percentage are shown at the nodes.
FIGURE 1 in Taxonomic delimitation of endemic Ficus amplocarpa and Ficus dalhousiae Complexes (Moraceae) by DNA barcoding
FIGURE 1. Selected typical morphology of Ficus dalhousiae complex. A–B Ficus anamalayana J.V. Sudhakar & G.V.S. Murthy twig and figs (PC: Jana Venkata Sudhakar). C–D Ficus dalhousiae (Miq.) Miq. twig and figs. (PC: Jana Venkata Sudhakar).
FIGURE 2 in Taxonomic delimitation of endemic Ficus amplocarpa and Ficus dalhousiae Complexes (Moraceae) by DNA barcoding
FIGURE 2. Selected typical morphology of Ficus amplocarpa complex. A–B Ficus amplocarpa Govind. & Masil. twig and figs. (PC: Jana Venkata Sudhakar). C–D Ficus guttata (Wight) Wight ex. King twig and figs. (PC: Jana Venkata Sudhakar).
FIGURE 2 in DNA barcode polymorphism within a common widespread rove beetle Quedius molochinus (Coleoptera: Staphylinidae)
FIGURE 2. Habitus and aedeagus (in lateral view) of Quedius molochinus specimens from each of three molecular clades: UTMN_LISP_252 from clade-1; NHMD_2304 from clade-2 and NHMD_2301 from clade-3. Scale bar for habitus images: 1 mm; scale bar for aedeagi 0.5 mm.
FIGURE 1 in DNA barcode polymorphism within a common widespread rove beetle Quedius molochinus (Coleoptera: Staphylinidae)
FIGURE 1. Distribution of the material of Quedius molochinus used in this study. Color filled circles—sequenced specimens; empty circles—non-sequenced specimens. Orange circles correspond to specimens of molecular clade-1, blue circles to clade-2, and pink circles to clade-3.
FIGURE 3 in DNA barcode polymorphism within a common widespread rove beetle Quedius molochinus (Coleoptera: Staphylinidae)
FIGURE 3. Everted internal sac (endophallus) of Quedius molochinus, specimen from Denmark, in lateral view. Scale bar: 1mm.
ScienceDex guides
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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.