Find research datasets worth reusing
Search datasets from major research repositories and use ShareScore to quickly assess how well each record supports discovery, access, and reuse.
3,292
datasets available to search
ShareScore release 0.9.0
Dataset results
3,292 results for “DNA Barcode”
FIGURES 45–57 in Taxonomy of Diamesa steinboecki group (Diptera: Chironomidae: Diamesinae) with description and DNA barcoding of new species. I. Subgroups steinboecki and longipes
FIGURES 45–57. Some details of male's hypopygium of Diamesa sakartvella Kownacki et Kownacka (45, 50–51, 57), D. moubayedi sp. nov. (46–47, 52, 55), D. zagrosica sp. nov. (48–49, 53–54, 56). 45–49, gonostylus; 46, apex of gonostylus; 50–54, transverse sternapodeme; 55–57, superior volsellae.
FIGURES 58–67 in Taxonomy of Diamesa steinboecki group (Diptera: Chironomidae: Diamesinae) with description and DNA barcoding of new species. I. Subgroups steinboecki and longipes
FIGURES 58–67. Diamesa praecipua Saether et Willassen, male. 58, total view; 59, antenna; 60, head; 61, wing; 62, thorax; 63, hypopygium in dorsal view; 64, apex of gonostylus; 65, transverse sternapodeme; 66, aedeagal lobe; 67, gonostylus.
FIGURES 30–36 in Taxonomy of Diamesa steinboecki group (Diptera: Chironomidae: Diamesinae) with description and DNA barcoding of new species. I. Subgroups steinboecki and longipes
FIGURES 30–36. Wings of Diamesa dragani sp. nov. (30), D. kownackii sp. nov. (31), D. maisaraensis sp. nov. (32), D. marinskiyi sp. nov. (33) and D. steinboecki Goetghebuer from Swiss Alps (34), French Alps (35) and Pamir Mountains (36).
FIGURES 22–25 in Taxonomy of Diamesa steinboecki group (Diptera: Chironomidae: Diamesinae) with description and DNA barcoding of new species. I. Subgroups steinboecki and longipes
FIGURES 22–25. Diamesa marinskiyi sp. nov., male. 22, head; 23, tergite IX; 24, gonocoxite and gonostylus; 25, transverse sternapodeme, phallapodeme and aedeagal lobe.
FIGURES 15–21 in Taxonomy of Diamesa steinboecki group (Diptera: Chironomidae: Diamesinae) with description and DNA barcoding of new species. I. Subgroups steinboecki and longipes
FIGURES 15–21. Diamesa maisaraensis sp. nov., males. 15, head; 16, part of thorax in lateral view; 17, gonocoxite and gonostylus; 18, tergite IX; 19–20, anal point in lateral view; 21, phallapodeme and aedeagal lobe. AAII—anterior anepisternum II, Pa—prealars.
FIGURES 26–29 in Taxonomy of Diamesa steinboecki group (Diptera: Chironomidae: Diamesinae) with description and DNA barcoding of new species. I. Subgroups steinboecki and longipes
FIGURES 26–29. Males of Diamesa steinboecki Goetghebuer from Pamir Mountains (26), Swiss Alps (27–28) and French Alps (29). 26, gonocoxite and gonostylus; 27, 29, hypopygium in dorsal view; 28, transverse sternapodeme, phallapodeme and aedeagal lobe. Designations are the same as in Figures 1–8.
FIGURES 9–14 in Taxonomy of Diamesa steinboecki group (Diptera: Chironomidae: Diamesinae) with description and DNA barcoding of new species. I. Subgroups steinboecki and longipes
FIGURES 9–14. Diamesa kownackii sp. nov., male. 9, head; 10, tergite IX; 11–12, transverse sternapodeme, phallapodeme and aedeagal lobe; 13, gonocoxite and gonostylus; 14, anal point in lateral view.
Figure 1 in DNA barcoding and coalescent-based delimitation of endosymbiotic clevelandellid ciliates (Ciliophora: Clevelandellida): a shift to molecular taxonomy in the inventory of ciliate diversity in panesthiine cockroaches
Figure 1. Phylogenetic tree based on the 18S rRNA gene, ITS1-5.8S-ITS2 region and 28S rRNA gene, showing relationships among ciliates isolated from the digestive tract of panesthiine cockroaches. All tree-building methods resulted in very similar topologies. The single exception is the Anteclevelandella constricta cluster, where the IQTree topology differs from that of both Bayesian trees (shown in the box). Bootstrap values for the maximum likelihood conducted in IQTrees and posterior probabilities for Bayesian inferences conducted in MrBayes and Phycas are listed at corresponding nodes of the best scoring IQTree. Specimen codes and further details are listed in Table 1. The scale bar denotes two substitutions per one hundred nucleotide positions.
Figure 4 in DNA barcoding and coalescent-based delimitation of endosymbiotic clevelandellid ciliates (Ciliophora: Clevelandellida): a shift to molecular taxonomy in the inventory of ciliate diversity in panesthiine cockroaches
Figure 4. Consensus secondary structure of the ITS2 molecule of 54 members of the order Clevelandellida isolated from the digestive tract of cockroaches. Note that the central loop radiates four highly conserved helices. The structure logo of helices is shown on the right side. The height of a base is proportional to its frequency in the multiple sequence alignment.
Figure 3 in DNA barcoding and coalescent-based delimitation of endosymbiotic clevelandellid ciliates (Ciliophora: Clevelandellida): a shift to molecular taxonomy in the inventory of ciliate diversity in panesthiine cockroaches
Figure 3. MDS diagrams (A, C, E) and TCS networks (B, D, F) based on 18S rRNA gene (A, B), ITS1-5.8S-ITS2 region (C, D) and 28S rRNA gene (E, F) sequences of the family Clevelandellidae. The MDS diagrams show the distribution of specimens in the genotype space. Species belonging to the same genus form a cluster distinctly isolated from other such clusters. The TCS networks reflect the most parsimonious relationships among species given the individual markers. Numbers along edges indicate mutational steps between adjacent nodes. Species belonging to the same genus are marked by the same colour code.
Figure 7 in DNA barcoding and coalescent-based delimitation of endosymbiotic clevelandellid ciliates (Ciliophora: Clevelandellida): a shift to molecular taxonomy in the inventory of ciliate diversity in panesthiine cockroaches
Figure 7. Putative secondary structure models of the highly divergent helix c3-1 in the D2 domain of the 28S rRNA molecule of 17 species of the order Clevelandellida isolated from the digestive tract of cockroaches. Arrowheads denote the molecular diagnostic characters.
Figure 2. Coalescent species trees with 13 in DNA barcoding and coalescent-based delimitation of endosymbiotic clevelandellid ciliates (Ciliophora: Clevelandellida): a shift to molecular taxonomy in the inventory of ciliate diversity in panesthiine cockroaches
Figure 2. Coalescent species trees with 13 (A) and 14 (B) assumed species based on 18S rRNA gene, ITS1-5.8S-ITS2 region and 28S rRNA gene sequences. Posterior probabilities of clades are provided along internal branches and posterior probabilities for the presence of individual species are provided behind the terminal branches. Scale bars denote the fraction of substitutions per site.
Figure 9 in DNA barcoding and coalescent-based delimitation of endosymbiotic clevelandellid ciliates (Ciliophora: Clevelandellida): a shift to molecular taxonomy in the inventory of ciliate diversity in panesthiine cockroaches
Figure 9. MDS diagram (A) and TCS network (B) based on concatenated 18S rRNA gene, ITS1-5.8S-ITS2 region and 28S rRNA gene sequences of the family Clevelandellidae. The MDS diagram shows the distribution of specimens in the genotype space. Species belonging to the same genus form a cluster distinctly isolated from other such clusters. The TCS network reflects the most parsimonious relationships among species given the concatenated dataset. Numbers along edges indicate mutational steps between adjacent nodes. Species belonging to the same genus are marked by the same colour code.
Figure 6 in DNA barcoding and coalescent-based delimitation of endosymbiotic clevelandellid ciliates (Ciliophora: Clevelandellida): a shift to molecular taxonomy in the inventory of ciliate diversity in panesthiine cockroaches
Figure 6. Putative secondary structure models of helices 39‒44 in the V7 region of the 18S rRNA molecule of four Nyctotherus species isolated from the digestive tract of cockroaches. Arrowheads denote the molecular diagnostic characters. CBC, compensatory base change; hemi-CBC, hemi-compensatory base change.
Figure 5 in DNA barcoding and coalescent-based delimitation of endosymbiotic clevelandellid ciliates (Ciliophora: Clevelandellida): a shift to molecular taxonomy in the inventory of ciliate diversity in panesthiine cockroaches
Figure 5. Putative secondary structure models of the highly divergent helix 23e1 in the V4 region of the 18S rRNA molecule of 17 species of the order Clevelandellida isolated from the digestive tract of cockroaches. Arrowheads denote the molecular diagnostic characters.
FIGURE 1 in DNA barcoding reveals new records of invasive terrestrial flatworms (Platyhelminthes, Tricladida, Geoplanidae) in the Macaronesian region
FIGURE 1. Maximum-likelihood tree of invasive terrestrial flatworms, based on COI sequences. Bootstrap values are presented only for main clades. Countries are indicated after GenBank accession number. Red: specimens sequenced in this study. A. Caenoplana coerulea tree. B. Endeavouria septemlineata tree. C. Obama nungara tree.
FIGURE 13 in DNA barcoding of Sclerogibbidae and confirmation of the opposite sexes of Sclerogibba berlandi Benoit (Hymenoptera: Sclerogibbidae)
FIGURE 13. NJ tree based on 623bp COI sequences. The numbers in the tree indicate bootstrap values from 1,000 replicates. JN = unidentified species from Belize, probably belonging to Probethylus. KY = unidentified species from Pakistan M = male. F = female.
FIGURES 1–4. Sclerogibba berlandi Benoit. 1–2 in DNA barcoding of Sclerogibbidae and confirmation of the opposite sexes of Sclerogibba berlandi Benoit (Hymenoptera: Sclerogibbidae)
FIGURES 1–4. Sclerogibba berlandi Benoit. 1–2, ♀ (A1) in dorsal (1) and lateral (2) view. 3–4, ♂ (A2) in dorsal (3) and lateral (4) view. Specimens from Abu Dhabi, Houbara Protected Area. Scale bar: 1.6 mm for 1; 1.7 mm for 2; 2.6 mm for 3; 1.3 mm for 4.
FIGURES 9–12. 9–10 in DNA barcoding of Sclerogibbidae and confirmation of the opposite sexes of Sclerogibba berlandi Benoit (Hymenoptera: Sclerogibbidae)
FIGURES 9–12. 9–10, Sclerogibba crassifemorata Riggio & De Stefani-Perez: ♂ (A5) from Abu Dhabi, Houbara Protected Area, in dorsal (9) and lateral (10) view. 11–12, Caenosclerogibba longiceps (Richards), ♀ (A9) from Japan, Kyushu Island, Kagoshima Pref., Shiroyama, in dorsal (11) and lateral (12) view. Scale bar: 0.9 mm for 9; 1.1 mm for 10; 0.6 mm for 11 and 12.
FIGURES 5–8. 5–6 in DNA barcoding of Sclerogibbidae and confirmation of the opposite sexes of Sclerogibba berlandi Benoit (Hymenoptera: Sclerogibbidae)
FIGURES 5–8. 5–6, Sclerogibba talpiformis Benoit: ♂ (A6) from Abu Dhabi, Houbara Protected Area, in dorsal (5) and lateral (6) view. 7–8, Sclerogibba rossi Olmi: ♀ (A8) from Japan, Okinawa-jima Isl., Mihama, in dorsal (7) and lateral (8) view. Scale bar: 1.9 mm for 5; 1.6 mm for 6; 0.9 mm for 7 and 8.
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.