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133 results for “Barcode of Life”
FIGURE 11 in Description of a new Oriental stonefly species, Phanoperla constanspina (Plecoptera: Perlidae) from Mindanao, Philippines and association of life stages using DNA barcoding
FIGURE 11. Phanoperla constanspina sp. nov. male nymphal habitus illustrating two general body pigmentation types. (A) (Haplotype: N-J 25. m) Pale to lighter brown, sometimes with darker wingpad tips. (B) (Haplotype: N-G 49. m). Dark to darker brown, sometimes with dark to black wingpads.
FIGURE 8 in Description of a new Oriental stonefly species, Phanoperla constanspina (Plecoptera: Perlidae) from Mindanao, Philippines and association of life stages using DNA barcoding
FIGURE 8. Phanoperla constanspina sp. nov. egg. (A) Entire egg. (B) Chorionic details. (C) Collar end (D) Anterior end. Scale = 100 µm.
Linked collectors and determiners for: International Barcode of Life project (iBOL).
Natural history specimen data linked to collectors and determiners held within, "International Barcode of Life project (iBOL)". Claims or attributions were made on Bionomia by volunteer Scribes, <a href="https://bionomia.net/dataset/040c5662-da76-4782-a48e-cdea1892d14c">https://bionomia.net/dataset/040c5662-da76-4782-a48e-cdea1892d14c</a> using specimen data from the dataset aggregated by the Global Biodiversity Information Facility, <a href="https://gbif.org/dataset/040c5662-da76-4782-a48e-cdea1892d14c">https://gbif.org/dataset/040c5662-da76-4782-a48e-cdea1892d14c</a>. Formatted as a Frictionless Data package.
Barcode of Life Data Systems: BOLDS main resource (81) DwCA
<p>http://www.boldsystems.org/. The Barcode of Life Data Systems (BOLD), is a web platform that provides an integrated environment for the assembly and use of DNA barcode data. It delivers an online database for collection and management of specimen, distributional, and molecular data as well as analytical tools to support their validation. Over the past few years, BOLD has grown to become a powerful online workbench and the central informatics hub of the DNA barcoding community. BOLD is freely available to any researcher with interests in DNA Barcoding. By providing specialized services, it aids in the publication of records that meet the standards needed to gain BARCODE designation in the global sequence databases. Because of its web-based delivery and flexible data security model, it is also well positioned to support projects that involve broad research alliances.</p> <p> </p>
Data from: Meroplankton diversity, seasonality and life-history traits across the Barents Sea Polar Front revealed by high-throughput DNA barcoding
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Data from: Life cycle matters: DNA barcoding reveals contrasting community structure between fern sporophytes and gametophytes
Ferns are the only major lineage of vascular plants that have nutritionally independent sporophyte (diploid) and gametophyte (haploid) life stages. However, the implications of this unique life cycle for fern community ecology have rarely been considered. To compare patterns of community structure between fern sporophytes and gametophytes, we conducted a survey of the ferns of the islands of Moorea and Tahiti (French Polynesia). We first constructed a DNA barcode library (plastid rbcL and trnH–psbA) for the two island floras including 145 fern species. We then used these DNA barcodes to identify more than 1300 field-collected gametophytes from 25 plots spanning an elevational gradient from 200 to 2000 m. We found that species richness of fern sporophytes conforms to the well-known unimodal (i.e., mid-elevation peak) pattern, reaching a maximum at ca. 1000 – 1200 m. Moreover, we found that fern sporophyte communities become increasingly phylogenetically clustered at high elevations. In contrast, species richness of fern gametophytes was consistent across sites, and gametophytes showed no correlation of phylogenetic community structure with elevation. Turnover of sporophyte and gametophyte communities was closely linked with elevation at shallow phylogenetic levels, but not at deeper nodes in the tree. Finally, we found several species for which gametophytes had broader ranges than sporophytes, including a vittarioid fern with abundant gametophytes but extremely rare sporophytes. Our study highlights the importance of including diverse life history stages in surveys of community structure, and has implications for the possible impacts of climate change on the distribution of fern diversity.
Data from: Life cycle matters: DNA barcoding reveals contrasting community structure between fern sporophytes and gametophytes
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FIGURES 9–10 in Description of a new Oriental stonefly species, Phanoperla constanspina (Plecoptera: Perlidae) from Mindanao, Philippines and association of life stages using DNA barcoding
FIGURES 9–10. Phanoperla constanspina sp. nov. male nymph. (9) Right mandible. (10) Right foreleg. Scale = 0.5 mm.
FIGURE 12 in Description of a new Oriental stonefly species, Phanoperla constanspina (Plecoptera: Perlidae) from Mindanao, Philippines and association of life stages using DNA barcoding
FIGURE 12. Phanoperla constanspina sp. nov. male nymph. (A) Suture of anterolateral submental lobes. (B) Mesosternum posterior margin pointing fringes of hairs. (C) One pair of posterocoxal gill of hindleg.
FIGURE 7 in Description of a new Oriental stonefly species, Phanoperla constanspina (Plecoptera: Perlidae) from Mindanao, Philippines and association of life stages using DNA barcoding
FIGURE 7. Phenotypic variation of six adult male Phanoperla constanspina sp. nov. based on the shape and structure of hemitergites (HT) and unbranched anterior process (AP), adorned with variable short setae on tergum 9. (A) (Haplotype: A- G23.m) Medium-sized AP, body and slightly bent on the pointed apex, setal patches isolated from each other. (B) (Haplotype: A-H7.m) AP small and pointed, setae located above the apical tip adjacent to each other. (C) (Haplotype: A-H16.m) Plump base and small AP (Fig. 5), with slightly pointed tip, paired setal patches adjacent and overlapping. (D) (Haplotype: A-H12.m) Medium and longer AP, bent on the inner side near the apex, setal patches fused, distributed along and near the process. (E) (Haplotype: A-E23.m) AP blunt on the tip in a medium-sized body, setal patches adjacent. (F) (Haplotype: A-H11.m) HT and AP broad and plump, resembling a hook-like structure at the tip, setal patches adjacent.
FIGURE 2 in Description of a new Oriental stonefly species, Phanoperla constanspina (Plecoptera: Perlidae) from Mindanao, Philippines and association of life stages using DNA barcoding
FIGURE 2. Phanoperla constanspina sp. nov. male wing. (2A) Right forewing, showing the forking of Cu2 from Cu1. (2B) Right hindwing. Scale = 1.00 mm.
FIGURES 1 in Description of a new Oriental stonefly species, Phanoperla constanspina (Plecoptera: Perlidae) from Mindanao, Philippines and association of life stages using DNA barcoding
FIGURES 1. Phanoperla constanspina sp. nov. head and pronotum. (1A) Male adult, indicating occipital line. (1B) Female adult. Scale = 1.00 mm.
FIGURES 3–4 in Description of a new Oriental stonefly species, Phanoperla constanspina (Plecoptera: Perlidae) from Mindanao, Philippines and association of life stages using DNA barcoding
FIGURES 3–4. Phanoperla constanspina sp. nov. male. (3) Right foreleg. (4) Abdominal sternite showing hair brushes on each segment (S5–S8). Penial capsule visible on S9. Scale = 1.00 mm.
FIGURE 5 in Description of a new Oriental stonefly species, Phanoperla constanspina (Plecoptera: Perlidae) from Mindanao, Philippines and association of life stages using DNA barcoding
FIGURE 5. Phanoperla constanspina sp. nov. male dorsal terminalia showing the hemitergal (arrow) and paired clumps of short setae located on medial tergum 9. Scale = 1.00 mm.
FIGURES 33–40. Tanytarsus larvae mandibles with accessory dorsal teeth. 33 in Exploring unknown life stages of Arctic Tanytarsini (Diptera: Chironomidae) with DNA barcoding
FIGURES 33–40. Tanytarsus larvae mandibles with accessory dorsal teeth. 33: T. lugens, 34: T. bathophilus, 35: T. mancospinosus, 36: T. minutipalpus, 37: T. gracilentus, 38: T. lapponicus, 39: T. recurvatus, 40: T. heliomesonyctios.
FIGURES 27–32. Tanytarsus heliomesonyctios. 28 in Exploring unknown life stages of Arctic Tanytarsini (Diptera: Chironomidae) with DNA barcoding
FIGURES 27–32. Tanytarsus heliomesonyctios. 28: premandible, 29–30: mentum, 31: mouthparts ventral view, 32: mandible.
FIGURES 2–16 in Exploring unknown life stages of Arctic Tanytarsini (Diptera: Chironomidae) with DNA barcoding
FIGURES 2–16. Tanytarsini of Svalbard, association of adult male hypopygia with larval head capsules and posterior parapods. Columns from left to right: Tanytarsus heliomesonyctios (2, 7, 12), Paratanytarsus austriacus (3, 8, 13), Micropsectra radialis (2, 9, 14), Micropsectra insignilobus (5, 10, 15) and Micropsectra logani (6, 11, 16). Scale bar for hypopygia = 300 µm, for head capsules and parapods = 100 µm.
FIGURE 1 in Exploring unknown life stages of Arctic Tanytarsini (Diptera: Chironomidae) with DNA barcoding
FIGURE 1. Neighbour joining ID-tree based on partial COI-sequences (DNA barcodes) and the Kimura 2-parameter substitution model. Values above branches are bootstrap support. DNA barcodes enabled association of different life stages.
FIGURES 17–26. Larvae. 17–21 in Exploring unknown life stages of Arctic Tanytarsini (Diptera: Chironomidae) with DNA barcoding
FIGURES 17–26. Larvae. 17–21: Micropsectra insignilobus. 17: spur of antennal pedestal, 18: antenna, 19: pecten epipharyngis, 20: mentum, 21: mandible. 22–26: Micropsectra radialis. 22: antennal pedestal, 23–24: premandible, 25: mentum, 26: mandible.
FIGURE 1 in Epinotia cinereana (Haworth, 1811) bona sp., a Holarctic tortricid distinct from E. nisella (Clerck, 1759) (Lepidoptera: Tortricidae: Eucosmini) as evidenced by DNA barcodes, morphology and life history
FIGURE 1. Neighbor-joining tree (implemented under K2P model) of 61 barcoded specimens of E. cinereana and 45 barcoded specimens of E. nisella. The height of the terminal triangles is proportional to the number of individuals, the depth of the triangles to variation within the lineage. The scale bar indicates 1% change in nucleotide composition.
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Allen Brain Atlas
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DANDI Archive for NWB datasets
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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.