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.
185
datasets available to search
ShareScore release 0.9.0
Dataset results
185 results for “Multigene”
FIGURE 2. A, C. Hypopygium, ventral. B. Maxillary palpus, dorsolateral. A in Phylogenetic position of Aerumnosa Mohrig (Diptera, Sciaridae) as revealed by multigene analysis, with the description of four new Oriental species
FIGURE 2. A, C. Hypopygium, ventral. B. Maxillary palpus, dorsolateral. A: Aerumnosa bituberculata sp. n. (paratype). B, C: A. gemmifera sp. n. (holotype). Scale for A 0.25 mm, for B 0.10 mm, for C 0.20 mm.
FIGURE 1. A. Wing, dorsal. B in Phylogenetic position of Aerumnosa Mohrig (Diptera, Sciaridae) as revealed by multigene analysis, with the description of four new Oriental species
FIGURE 1. A. Wing, dorsal. B. Apical part of fore tibia, prolateral. C. Apical tooth of gonostylus, ventral. D. Apical part of apical tooth of gonostylus, ventral. A, B, D: Aerumnosa horrifica sp. n. (holotype). C: A. furcillata Mohrig, 1999 (PNG). Scale for A 0.5 mm, for B-D 0.05 mm.
FIGURE 3. A, D. Hypopygium, ventral. B. 4 in Phylogenetic position of Aerumnosa Mohrig (Diptera, Sciaridae) as revealed by multigene analysis, with the description of four new Oriental species
FIGURE 3. A, D. Hypopygium, ventral. B. 4th antennal flagellomere, frontal. C. Maxillary palpus, dorsal. A, C: Aerumnosa impar sp. n. (holotype). B, D: A. horrifica sp. n. (holotype). Scale for A 0.20 mm, for B, C and D 0.10 mm.
Fig. 3 in Multigene fossil-calibrated analysis of the African lampeyes (Cyprinodontoidei: Procatopodidae) reveals an early Oligocene origin and Neogene diversification driven by palaeogeographic and palaeoclimatic events
Fig. 3 Phylogenetic relationships between African lampeyes genera as depicted in Huber (1999) and Ghedotti (2000)
Fig. 1 Phylogenetic relationships among 36 in Multigene fossil-calibrated analysis of the African lampeyes (Cyprinodontoidei: Procatopodidae) reveals an early Oligocene origin and Neogene diversification driven by palaeogeographic and palaeoclimatic events
Fig. 1 Phylogenetic relationships among 36 species of Procatopodidae, including all genera but Aapticheilichthys, inferred by using partial sequences of the nuclear-encoded genes GLYT1, ENC1, RAG1, MYH6, and SREB2, a total of 5009 bp. Numbers left to the bar indicate posterior probability values and in the right are bootstrap support values taken from the maximum likelihood analysis. Asterisk means maximum values. The green dot next to species name refers to species occurring in rainforests, red dot refers to species occurring in savannahs, green/red dot refer to
Fig. 1 Phylogenetic relationships among the 26 in A multigene phylogeny demonstrates that Tuber aestivum and Tuber uncinatum are conspecific
Fig. 1 Phylogenetic relationships among the 26 Tuber aestivumuncinatum isolates inferred using maximum likelihood (ML) and Bayesian inference (BI) from the concatenated nine-gene data set (4,722 bp total). The same topology was obtained for both phylogenetic analyses after 1,000 bootstrap replicates for ML and 2,000,000 generations for BI using the GTR+G model for both analyses. The tree is rooted with T. macrosporum and T. magnatum (in italics). Only bootstrap values higher than 70 % (number above) and posterior probabilities higher than 0.95 (number below) are indicated. The two pre-assigned types T. aestivum and T. uncinatum are indicated by A (boldface) and U, respectively. The geographic origin is indicated after for each sample ID
Fig. 2 Coalescent tree reconstruction for all concatenated genes. Only posterior probabilities higher than 0.95 in A multigene phylogeny demonstrates that Tuber aestivum and Tuber uncinatum are conspecific
Fig. 2 Coalescent tree reconstruction for all concatenated genes. Only posterior probabilities higher than 0.95 are indicated. The tree is rooted with MAC (T. macrosporum) and MAG (T. magnatum)
FIGURE 2 in Morphology and multigene phylogeny reveal a novel Stagonospora species (Massarinaceae, Dothideomycetes) from Thailand
FIGURE 2. Stagonospora samroiyotensis (MFLU 24-0020, holotype). a. Decaying stem of Typha species from a lotic wetland. b, c. Close up of conidiomata on the host surface. d. Vertical section of conidioma. e. Vertical section of partial conidiomatal wall. f–h. Developing conidia and conidiogenous cells. i–m. Conidia. n. Germinated conidium. o. Colonies on PDA from above; p reverse. Scale bars: b–c = 1 mm, d = 50 μm, e–h, j–n = 10 μm, i = 20 μm.
FIGURE 2 in Multigene phylogeny and morphology reveal Phaeobotryon rhois sp. nov. (Botryosphaeriales, Ascomycota)
FIGURE 2. Phaeobotryon rhois (BJFC-S1007, holotype). A, B. Habit of conidiomata on a twig. C. Transverse sections through conidioma. F. Longitudinal section through conidioma. D, E. Conidiogenous cells, immature and mature conidia (arrows pointing to process of conidia maturity). G. Colonies on PDA at 3 days (left) and 30 days (right). Scale bars: A = 1 mm; B = 0.5 mm; C, F = 40 μm; D, E = 20 μm.
FIGURE 1 in Multigene phylogeny and morphology reveal Phaeobotryon rhois sp. nov. (Botryosphaeriales, Ascomycota)
FIGURE 1. Phylogram of the combined genes of ITS, LSU and EF-1α based on MP, ML and BI analysis. The values above the branches indicate bootstrap values. The thickened branches indicate PP ≥ 0.95 from the Bayesian inferences. Bars: 40 nucleotide substitutions. The taxa resulting from the current study are shown in blue. Ex-type taxa are in bold. Type species representing the genus are marked with an *.
FIGURE 2 in Multigene phylogeny and morphology reveal a new species, Ophiocordyceps tettigonia, from Guizhou Province, China
FIGURE 2. Ophiocordyceps tettigonia (holotype). a. Overview of stromata and the host. b. Pale, superficial ascomata on stroma. c. Cross section showing the complete stroma and perithecia. d–f. Sections of ascomata. g, h. Part of peridium. i–k. Asci. l. Ascus with apical cap. m. Ascus with apical cap stained by iodine solution. n. Ascus stained by iodine solution. o. Secondary ascospores. p. Secondary ascospores stained by iodine solution. Scale bars: d = 1000 μm, e, f = 200 μm, g, h = 30 μm, i–k = 100 μm, l, m, o, p = 10 μm, n = 20 μm.
FIGURE 1 in Multigene phylogeny and morphology reveal a new species, Ophiocordyceps tettigonia, from Guizhou Province, China
FIGURE 1. Phylogenetic relationships among Ophiocordyceps tettigonia and related species based on combined analysis of ITS, SSU, TEF, and RPB1 sequence data. Bootstrap values (1,000 replicates) are indicated above the nodes. Ex-type cultures or holotypes have an asterisk. The tree is rooted to Aschersonia placenta Berk.
FIGURE 3 in Multigene phylogeny and morphology reveal that the Chinese medicinal mushroom 'Cordyceps gunnii' is Metacordyceps neogunnii sp. nov.
FIGURE 3. Metacordyceps neogunnii (GZUHHS14061253, overmature) a. Overview of the stroma and the host. b. Cross section of the stroma. c, d. Sections of ascomata. e. Section of an ascoma. f. Part of a peridium. g. An ascus. h, i. Asci stained with methylene blue. j. Ascospore stained with methylene blue. k. Ascus with an apical cap. l. Secondary ascospores. Scale bars: c, d = 400 μm, e = 100 μm, f = 50 μm, g–j = 80 μm, k–m = 10 μm.
FIGURE 2 in Multigene phylogeny and morphology reveal that the Chinese medicinal mushroom 'Cordyceps gunnii' is Metacordyceps neogunnii sp. nov.
FIGURE 2. Metacordyceps neogunnii (holotype) a. Overview of stroma and host (dry specimen). b. Stroma. c. Dorsal view of the host. d. Ventral view of the host. e, f. Sections of ascomata. g. Section of a peridium. h. Ascus with apical cap. i. Immature ascus. j. Mature asci. k. Ascospore. l. Secondary ascospores. m. Czapek agar culture viewed from above. n. Czapek agar culture viewed from below. o, p. Conidiogenous cells, conidiophores and developing conidia, stained with cotton blue. Scale bars: f = 400 μm, e, i = 100 μm, k, o = 50 μm, j, h, l = 10 μm, g, p = 20 μm.
FIGURE 1 in Multigene phylogeny and morphology reveal that the Chinese medicinal mushroom 'Cordyceps gunnii' is Metacordyceps neogunnii sp. nov.
FIGURE 1. Phylogenetic relationships among Metacordyceps neogunnii and related species based on combined analysis of ITS, 18S, TEF1 and RPB1 sequence data. Bootstrap values (1,000 replicates) are indicated above the nodes. The tree is rooted to Glomerella cingulata. Ex-type culture or holotype has an asterisk.
FIGURE 3. Donkia pulcherrima. a in Reappraisal of Climacodon (Basidiomycota, Meruliaceae) and reinstatement of Donkia (Phanerochaetaceae) using multigene data
FIGURE 3. Donkia pulcherrima. a. Basidiomata (AH 45801); b–c. Detail of context and hydnoid hymenophore (AH 31805); d–e. Pileipellis hyphae with multiple clamp connections at septa (Holotype, K 135348). Bars =1 cm (a); 5 mm (b, c); 10 μm (d, e).
FIGURE 1. Bayesian inference 50 in Reappraisal of Climacodon (Basidiomycota, Meruliaceae) and reinstatement of Donkia (Phanerochaetaceae) using multigene data
FIGURE 1. Bayesian inference 50 % majority rule consensus phylogram of the Phlebia clade from LSU-5.8S-SSU-RPB2-EF-RPB1 sequence data. Bayesian posterior probabilities (PP) ≥ 0.95 / Maximum Likelihood bootstrap values (ML-BP) ≥ 70 % are shown by nodes. Thickened branches received support by both ML-BP ≥ 70 % and PP ≥ 95 %. Recognized species are indicated by vertical bars.
FIGURE 2. Climacodon sanguineus. Holotype Beeli 1353 in Reappraisal of Climacodon (Basidiomycota, Meruliaceae) and reinstatement of Donkia (Phanerochaetaceae) using multigene data
FIGURE 2. Climacodon sanguineus. Holotype Beeli 1353 (BR). a. Labels of type material; b. Basidiomata of type material; c. Clamped hypha from pileipellis; d. Clamped hypha with double-clamp appearance; e–f. Different stages of development of connective hyphae; g–h. Cystidia cylindrical and thick-walled; i. Ellipsoid spores, scarce in the type specimen; k. Cystidia protruding from the hymenium. Climacodon sanguineus J. Degreef 560 (BR5020180728797); j. Ellipsoid spores; l. Protruding cystidia with crystals at the apex; m. Basidiomata. Bars = 1 cm (b, m); 10 μm (c to l).
FIGURE 3 in Multigene phylogeny and morphology reveal Cytospora spiraeae sp. nov. (Diaporthales, Ascomycota) in China
FIGURE 3. Morphology of Cytospora spiraeae from Spiraea salicifolia (BJFC-S784). A: Habit of ascomata on twig. B: Transverse section of ascomata. C: Longitudinal section through ascomata. D: Habit of conidiomata on twig. E: Transverse section of conidiomata. F: Longitudinal section through conidiomata. G–H: Asci. I: Ascospores. J–K: Conidiophores and Conidiogenous cells. L: Conidia. M: Colonies on PDA at 3 days (left) and 30 days (right). Scale bars: B–C, E–F = 500 μm; G–L = 10 μm.
FIGURE 2 in Multigene phylogeny and morphology reveal Cytospora spiraeae sp. nov. (Diaporthales, Ascomycota) in China
FIGURE 2. Phylogram of Cytospora based on combined ITS, LSU, ACT and RPB2 genes. MP and ML bootstrap support values above 50 % are shown at the first and second position. Thickened branches represent posterior probabilities above 0.95 from BI. Ex-type strains are in bold. Strains in current study are in blue.
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.