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FIGURE 3 in Species delimitation of the northeastern Anatolian Symphytum (Boraginaceae) taxa
FIGURE 3. Delimitations of S. asperum aggregate species under different methods. The ultrametric tree was constructed using the ITS dataset with the GTR + G + I model. Numbers above branches represent values of the PP and bootstrap values, respectively (Detailed locality information of populations (abbreviated as "Pop." in the tree) was given in Appendix 2).
FIGURE 4 in Species delimitation of Hymenasplenium obliquissimum group (Aspleniaceae) in southwestern China
FIGURE 4. Maximum likelihood phylogeny of the nuclear gene LEAFY dataset. Maximum parsimony and Bayesian analyses recovered identical topologies. For each node, the following values are provided: maximum parsimony bootstrap (%), maximum likelihood bootstrap (%), and posterior confidence (p-value). Columns on the right refer to clade abbreviations obtained from the chloroplast phylogeny (Fig. 3), inferred ploidy level (2x, 4x), reproduction mode (apomictic/sexual), and clade abbreviation (A–B). Terminals with the same OTU name represent different sequences at the duplicated gene locus of the same accession.
FIGURE 6. A in Species delimitation of Hymenasplenium obliquissimum group (Aspleniaceae) in southwestern China
FIGURE 6. A comparison of pinnae, stipes, and rachis sketches, of representative specimens of chloroplast clades I–V. Sketches of the segregated two samples that represented two lineages (IIb, IV) were missing because the specimens were not accessible.
FIGURE 3 in Species delimitation of Hymenasplenium obliquissimum group (Aspleniaceae) in southwestern China
FIGURE 3. Maximum likelihood phylogeny based on the concatenated plastid DNA sequence dataset. Maximum parsimony and Bayesian analyses recovered identical topologies with respect to the relationships among the main clades of the Hymenasplenium obliquissimum group. For each node, the following values are provided: maximum parsimony bootstrap (%), maximum likelihood bootstrap (%), and posterior confidence (p-value). Columns on the right refer to inferred ploidy level (2x, 4x), reproduction mode (apomictic/sexual), and clade abbreviation (I–V). Outgroup taxa are shown as sisters to the Hymenasplenium obliquissimum group.
FIGURE 5 in Species delimitation of Hymenasplenium obliquissimum group (Aspleniaceae) in southwestern China
FIGURE 5. The reticulate evolutionary history of the Hymenasplenium obliquissimum group as revealed by the LFY network. The network was constructed from the LFY maximum parsimony strict consensus tree. Plastid lineages are indicated by different colors: red = clade I; blue = subclade IIc; green = clade V. Columns on the right indicate inferred ploidy levels (2x, 4x), reproduction mode and clade abbreviations (I–V) obtained from the chloroplast phylogeny (Fig. 3).
FIGURE 2 in Species delimitation of Hymenasplenium obliquissimum group (Aspleniaceae) in southwestern China
FIGURE 2. Spore measurements taken from collected specimens. Spore size arranged from smallest to largest. Dot = mean value and interval = maximum and minimum values measured.
FIGURE 1 in Sorting out the muddle: taxonomy and nomenclature of Thymus ×porcii (Lamiaceae) and related nothotaxa, with comments on parent species delimitation
FIGURE 1. Distribution map of Thymus pulegioides, Thymus pannonicus and Thymus ×porcii. A. General range of Thymus pulegioides. B. European part of range of Thymus pannonicus. C. Thymus pulegioides and Thymus pannonicus hybridization zone with the occurence of Thymus ×porcii. D, E. Current known localities of Thymus pulegioides var. vestitus within the hybridization zone, with the existing (D) and predicted (E) occurrences of Thymus ×porcii nothovar. opizii [Thymus pannonicus × Thymus pulegioides var. vestitus].
FIGURE 4 in Sorting out the muddle: taxonomy and nomenclature of Thymus ×porcii (Lamiaceae) and related nothotaxa, with comments on parent species delimitation
FIGURE 4. Thymus ×porcii nothovar. calvariensis from locus classicus (Lysa hill in Lviv city, Ukraine). A. General habit. B. Inflorescence. C. Habitat.
FIGURE 6 in Sorting out the muddle: taxonomy and nomenclature of Thymus ×porcii (Lamiaceae) and related nothotaxa, with comments on parent species delimitation
FIGURE 6. Lectotype of Thymus ×opizii, the basionym of Thymus ×porcii nothovar. opizii (PR751622-A and PR751623-B).
Figure 20 in Intraspecific or interspecific variation: delimitation of species boundaries within the genus Gammarus (Crustacea, Amphipoda, Gammaridae), with description of four new species
Figure 20. Gammarus parvioculus sp. nov., male. A, gnathopod 1; B, gnathopod 2; C, propodus of gnathopod 1 (inner surface); D, propodus of gnathopod 2 (inner surface); E, propodus of gnathopod 2 (outer surface).
Figure 16 in Intraspecific or interspecific variation: delimitation of species boundaries within the genus Gammarus (Crustacea, Amphipoda, Gammaridae), with description of four new species
Figure 16. Gammarus hypolithicus sp. nov., male. A, pereopod 3; B, pereopod 4; C, pereopod 5; D, pereopod 6; E, pereopod 7; F, dactylus of pereopod 3; G, dactylus of pereopod 4; H, dactylus of pereopod 5; I, dactylus of pereopod 6; J, dactylus of pereopod 7.
Figure 15 in Intraspecific or interspecific variation: delimitation of species boundaries within the genus Gammarus (Crustacea, Amphipoda, Gammaridae), with description of four new species
Figure 15. Gammarus hypolithicus sp. nov., male. A, gnathopod 1; B, gnathopod 2; C, propodus of gnathopod 1; D, propodus of gnathopod 2; E, epimeral plate 1; F, epimeral plate 2; G, epimeral plate 3; H, telson.
Figure 7 in Intraspecific or interspecific variation: delimitation of species boundaries within the genus Gammarus (Crustacea, Amphipoda, Gammaridae), with description of four new species
Figure 7. Gammarus illustris sp. nov., male, A–E; female, F–K. A, urosomites 1–3 (dorsal view); B, uropod 1; C, uropod 2; D, uropod 3; E, telson; F, pereopod 3; G, oostegite of gnathopod 2; H, oostegite of pereopod 3; I, oostegite of pereopod 4; J, oostegite of pereopod 5; K, telson.
Figure 5 in Intraspecific or interspecific variation: delimitation of species boundaries within the genus Gammarus (Crustacea, Amphipoda, Gammaridae), with description of four new species
Figure 5. Gammarus illustris sp. nov., holotype, male. A, gnathopod 1; B, gnathopod 2; C, propodus of gnathopod 1; D, propodus of gnathopod 2; E, epimeral plate 1; F, epimeral plate 2; G, epimeral plate 3; H, pleopod 1; I, pleopod 2; J, pleopod 3.
Figure 4 in Intraspecific or interspecific variation: delimitation of species boundaries within the genus Gammarus (Crustacea, Amphipoda, Gammaridae), with description of four new species
Figure 4. Gammarus illustris sp. nov., holotype, male. A, head; B, antenna 1; C, antenna 2; D, upper lip; E, left mandible; F, incisor of right mandible; G, lower lip; H, left maxilla 1; I, outer plate of left maxilla; J, palp of right maxilla; K, maxilla 2; L, maxilliped.
Figure 9 in Intraspecific or interspecific variation: delimitation of species boundaries within the genus Gammarus (Crustacea, Amphipoda, Gammaridae), with description of four new species
Figure 9. Gammarus clarus sp. nov., male. A, head; B, antenna 1; C, antenna 2; D, upper lip; E, left mandible; F, incisor of right mandible; G, lower lip; H, left maxilla 1; I, palp of right maxilla 1; J, maxilla 2; K, maxilliped.
Figure 3. The 50 in Intraspecific or interspecific variation: delimitation of species boundaries within the genus Gammarus (Crustacea, Amphipoda, Gammaridae), with description of four new species
Figure 3. The 50% majority rule consensus tree from the Bayesian analysis of the Gammarus 28S data set. Numbers above the lines are Bayesian posterior probabilities. Sinogammarus species are underlined. Voucher numbers follow the species names.
Figure 2. The 50 in Intraspecific or interspecific variation: delimitation of species boundaries within the genus Gammarus (Crustacea, Amphipoda, Gammaridae), with description of four new species
Figure 2. The 50% majority rule consensus tree from the Bayesian analysis of the Gammarus cytochrome c oxidase subunit I data set. Numbers above the lines are Bayesian posterior probabilities. Sinogammarus species are underlined. Voucher numbers follow the species names.
Figure 6 in Intraspecific or interspecific variation: delimitation of species boundaries within the genus Gammarus (Crustacea, Amphipoda, Gammaridae), with description of four new species
Figure 6. Gammarus illustris sp. nov., holotype, male. A, pereopod 3; B, pereopod 4; C, pereopod 5; D, pereopod 6; E, pereopod 7; F, dactylus of pereopod 3; G, dactylus of pereopod 4; H, dactylus of pereopod 5; I, dactylus of pereopod 6; J, dactylus of pereopod 7.
Figure 10 in Intraspecific or interspecific variation: delimitation of species boundaries within the genus Gammarus (Crustacea, Amphipoda, Gammaridae), with description of four new species
Figure 10. Gammarus clarus sp. nov., male. A, gnathopod 1; B, gnathopod 2; C, propodus of gnathopod 1; D, propodus of gnathopod 2; E, epimeral plate 1; F, epimeral plate 2; G, epimeral plate 3; H, urosomites 1–3 (dorsal view); I, urosomites 1–3 (lateral view); J, telson.
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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)
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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.