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3,292 results for “DNA Barcode”
Supplementary material 6 from: Rozo-Lopez P, Mengual X (2015) Mosquito species (Diptera, Culicidae) in three ecosystems from the Colombian Andes: identification through DNA barcoding and adult morphology. ZooKeys 513: 39-64. https://doi.org/10.3897/zookeys.513.9561
NJ tree based on 1,292 sequences of Neotropical mosquitoes: Explanation note: Original Neighbour-Joining tree of the barcoding sequences of mosquito species listed for the Neotropics, based on Tamura-Nei genetic distances (.tre).
Supplementary material 2 from: Rozo-Lopez P, Mengual X (2015) Mosquito species (Diptera, Culicidae) in three ecosystems from the Colombian Andes: identification through DNA barcoding and adult morphology. ZooKeys 513: 39-64. https://doi.org/10.3897/zookeys.513.9561
COI mosquito sequences downloaded from NCBI and BOLD: Explanation note: Sequences from NCBI and BOLD. Sequences downloaded between December 2013 and February 2014 for all identified species with a minimum length of 480 bp of COI barcoding region, no stop codons and possible alignment among the majority of the sequences. Total of 1,159 sequences. In blue: Additional species sequences from other geographic areas for those Neotropical groups without available sequences from the Neotropics.
Supplementary material 8 from: Rozo-Lopez P, Mengual X (2015) Mosquito species (Diptera, Culicidae) in three ecosystems from the Colombian Andes: identification through DNA barcoding and adult morphology. ZooKeys 513: 39-64. https://doi.org/10.3897/zookeys.513.9561
ML tree based on 1,292 sequences of Neotropical mosquitoes: Explanation note: Original Maximum likelihood tree of the barcoding sequences of mosquito species listed for the Neotropics (.tre).
Supplementary material 1 from: Rozo-Lopez P, Mengual X (2015) Mosquito species (Diptera, Culicidae) in three ecosystems from the Colombian Andes: identification through DNA barcoding and adult morphology. ZooKeys 513: 39-64. https://doi.org/10.3897/zookeys.513.9561
Mosquito specimens collected in the present study: Explanation note: Full collection site details, including geo-references and environmental conditions, of the mosquito taxa identified in this study.
Supplementary material 7 from: Rozo-Lopez P, Mengual X (2015) Mosquito species (Diptera, Culicidae) in three ecosystems from the Colombian Andes: identification through DNA barcoding and adult morphology. ZooKeys 513: 39-64. https://doi.org/10.3897/zookeys.513.9561
ML tree based on 1,292 sequences of Neotropical mosquitoes: Explanation note: Original Maximum likelihood tree of the barcoding sequences of mosquito species listed for the Neotropics.
Supplementary material 4 from: Rozo-Lopez P, Mengual X (2015) Mosquito species (Diptera, Culicidae) in three ecosystems from the Colombian Andes: identification through DNA barcoding and adult morphology. ZooKeys 513: 39-64. https://doi.org/10.3897/zookeys.513.9561
Outgroup taxa used in the present study: Explanation note: Outgroup taxa used in the present study. Sequences downloaded from BOLD between December 2013 and February 2014.
Supplementary material 3 from: Rozo-Lopez P, Mengual X (2015) Mosquito species (Diptera, Culicidae) in three ecosystems from the Colombian Andes: identification through DNA barcoding and adult morphology. ZooKeys 513: 39-64. https://doi.org/10.3897/zookeys.513.9561
Mosquito specimens collected in Uraba during 2009 (unpublish data): Explanation note: Additional sequences of mosquitoes collected in rural areas of Uraba (Antioquia, Colombia) during 2009, including sampling information.
Supplementary material 5 from: Rozo-Lopez P, Mengual X (2015) Mosquito species (Diptera, Culicidae) in three ecosystems from the Colombian Andes: identification through DNA barcoding and adult morphology. ZooKeys 513: 39-64. https://doi.org/10.3897/zookeys.513.9561
NJ tree based on 1,292 sequences of Neotropical mosquitoes: Explanation note: Original Neighbour-Joining tree of the barcoding sequences of mosquito species listed for the Neotropics, based on Tamura-Nei genetic distances.
Supplementary material 1 from: Huemer P, Mutanen M (2015) Alpha taxonomy of the genus Kessleria Nowicki, 1864, revisited in light of DNA-barcoding (Lepidoptera, Yponomeutidae). ZooKeys 503: 89-133. https://doi.org/10.3897/zookeys.503.9590
Sample information for specimens used in this study.: Explanation note: Details of collecting data, images, sequences, and trace files for the barcoded specimens are available in the public BOLD dataset "DS-LEAKE", accessed at https://doi.org/10.5883/DS-LEAKE
Supplementary material 1 from: Garcia-Robledo C, Staines CL, Kress WJ (2015) A new species of bromeliad-feeding Cephaloleia Chevrolat (Coleoptera, Chrysomelidae, Cassidinae) from Costa Rica: evidence from DNA barcodes, larval and adult morphology and insect diets. ZooKeys 477: 143-155. https://doi.org/10.3897/zookeys.477.8220
DNA barcodes (COI) for specimens of Cephaloleia histrionica and Cephaloleia kuprewiczae included in this study.: Explanation note: Single-line descriptions for each sequence include: Collection number, Cephaloleia species, host plant species, elevation and locality. DNA sequences from type specimens include the tag genseq-1 in the description line.
Supplementary material 1 from: Huemer P, Karsholt O, Mutanen M (2014) DNA barcoding as a screening tool for cryptic diversity: an example from Caryocolum, with description of a new species (Lepidoptera, Gelechiidae). ZooKeys 404: 91-111. https://doi.org/10.3897/zookeys.404.7234
Sample information for specimens included in this study.: Explanation note: Process IDs are sequence identifiers in BOLD; Sample IDs are specimen identifiers; BINs are Barcode Identification Numbers in BOLD. Details of collecting data, images, sequences, and trace files for the barcoded specimens are available in the public BOLD dataset "DS-LECARY", accessed at dx.doi.org/10.5883/DS-LECARY.
FIGURES 1–8 in DNA barcoding and morphological data reveal a new Hyposoter (Hymenoptera: Ichneumonidae: Porizontinae) reared from a rare zygaenid moth Artona flavipuncta Hampson, 1900 in Taiwan
FIGURES 1–8. Male of Hyposoter distriangulum sp. nov. 1, Front view of head (scale bar = 1 mm); 2, Mandibles, maxillary and labial palpUs (scale bar = 300 µm); 3, Close view of mandibles (scale bar = 200 µm); 4, Scape and pedicel of antanna (scale bar = 300 µm); 5, Dorsal-lateral view of mesosoma with right wings removed (scale bar = 1 mm); 6, TarsUs and tibial spUr of fore leg (scale bar = 500 µm); 7, Fore leg claws (scale bar = 300 µm); 8, Coxae of median and hind legs (scale bar = 1 mm).
FIGURES 21–27 in DNA barcoding and morphological data reveal a new Hyposoter (Hymenoptera: Ichneumonidae: Porizontinae) reared from a rare zygaenid moth Artona flavipuncta Hampson, 1900 in Taiwan
FIGURES 21–27. Hyposoter distriangulum sp. nov. and its host Artona flavipuncta 21, Holotype (scale bar = 5 mm); 22, Dorsal view of head (scale bar = 1 mm); 23, Fore wing (scale bar = 2 mm); 24, Dorsal view of cocoon (scale bar = 1 cm); 25, Lateral view of cocoon (scale bar = 1 cm); 26, Larvae of Artona flavipuncta on the leaf of Zingiber kawagoii, with the one in the middle parasitized by H. distriangulum sp. nov.; 27, Cocoon of H. distriangulum sp. nov. on the leaf of Z. kawagoii.
FIGURES 17–20 in DNA barcoding and morphological data reveal a new Hyposoter (Hymenoptera: Ichneumonidae: Porizontinae) reared from a rare zygaenid moth Artona flavipuncta Hampson, 1900 in Taiwan
FIGURES 17–20. Female of Hyposoter distriangulum sp. nov. 17, Lateral view of head and mesosoma (scale bar = 1 mm); 18, Lateral view of abdomen (scale bar = 2 mm); 19, Ovipositor (scale bar = 500 µm); 20, Ovipositor sheaths (scale bar = 500 µm).
FIGURES 9–16 in DNA barcoding and morphological data reveal a new Hyposoter (Hymenoptera: Ichneumonidae: Porizontinae) reared from a rare zygaenid moth Artona flavipuncta Hampson, 1900 in Taiwan
FIGURES 9–16. Male of Hyposoter distriangulum sp. nov. 9, TarsUs of median leg (scale bar = 1 mm); 10, Tibial spUr of median leg (scale bar = 500 µm); 11, Median leg claw (scale bar = 200 µm); 12, Lateral view of abdomen (scale bar = 1 mm); 13, Lateral view of first to third tergites (scale bar = 1 mm); 14, First tergite and apical area of propodeUm (scale bar = 500 µm); 15, Lateral view of seventh tergite and gonoforceps (scale bar = 500 µm); 16, Close view of gonoforceps (scale bar = 200 µm).
Fig. 6 in Identification of the polyp stage of three leptomedusa species using DNA barcoding
Fig. 6. Racemoramus panicula (G. O. Sars, 1874), sample MHNG-INVE-48748 from Korsfjord after DNA extraction, schematic drawing of part of main stem and some side-branches (some broken off).
Fig. 5 in Identification of the polyp stage of three leptomedusa species using DNA barcoding
Fig. 5. Earleria quadrata (Hosia & Pages, 2007), living medusa from Korsfjord, one individual in a catch of four used to obtain DNA isolate 1162.
Fig. 4 in Identification of the polyp stage of three leptomedusa species using DNA barcoding
Fig. 4. Stegopoma plicatile (M. Sars, 1863), preserved sample MHNG-INVE-69614 (yielding DNA isolate 803) from Korsfjord, Norway, 650 m. (A) Whole colony. (B) Hydrotheca. (C) Branch with gonotheca (arrow). ►
Fig. 3 in Identification of the polyp stage of three leptomedusa species using DNA barcoding
Fig. 3. Ptychogena crocea Kramp & Dumas, 1925, living medusae, except C, from Korsfjord, Norway. (A) MHNG-INVE-94101, lateral view, bell diameter 23 mm height 14 mm. (B) Same specimen as in A, close up of gonads. (C) Same specimen as in A, nematocysts. (D) Younger individual, used to obtain DNA isolate 1163. (E) Same as D, close up of bell margin seen from oral side, showing tentacles, tentacle stumps and several cordyli.
Fig 7 in Identification of the polyp stage of three leptomedusa species using DNA barcoding
Fig 7. Cyclocanna welshi, lateral view, width about 10 mm, living medusa one day after capture, the bell is inverted and has shrunken considerably as it is usual for sensitive hydromedusae. Details: go = gonad, ma = manubrium, rt = short type of tentacle, st = statocyst, tb = bulb of large tentacle type.
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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.