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FIGURE 3 in Morphology and molecular evidence reveal hidden diversity among snapping shrimp of the Alpheus obesomanus group (Decapoda: Alpheidae) with the description of a new species from Brazil
FIGURE 3. Alpheus coralvivo sp. nov., Parque Municipal Marinho do Recife de Fora, Porto Seguro, Bahia, Brazil: (A, B) specimens retrieved from a dead fragment of a Millepora alcicornis colony evidencing color pattern. Photographs: P.S. Santos.
FIGURE 1 in Description of a new species of freshwater shrimp (Decapoda: Caridea: Atyidae) from Mount Danxia, Guangdong, China, based on morphological and molecular evidence
FIGURE 1. Caridina danxiaensis sp. nov.: A, C–E from holotype male, (SYS_Csp_GDDXWLG3_13); B, F–J from paratype female (SYS_Csp_GDDXWLG3_7). A, cephalothorax and cephalic appendages, lateral view; B, left antennule, lateral view; C, right antenna with scaphocerite, lateral view; D, telson, dorsal view; E, right uropodal diaeresis, lateral view; F, mandible, lateral view; G, maxillula, lateral view; H, maxilla, lateral view; I, first maxilliped, lateral view; J, second maxilliped, lateral view.
Fig 3 in The good, the bad and the boa: An unexpected new species of a true boa revealed by morphological and molecular evidence
Fig 3. Dorsal (A), ventral (B), and lateral (C) views of the head of the holotype of Boa atlantica sp. nov. (MNRJ 27242) from Rio de Janeiro, Atlantic coast of Brazil. https://doi.org/10.1371/journal.pone.0298159.g003
Fig 2 in The good, the bad and the boa: An unexpected new species of a true boa revealed by morphological and molecular evidence
Fig 2. Phylogenetic tree inferred by using Maximum Likelihood and general time reversible model. The matrix is composed of 39 samples from South America, being 35 samples with the four concatenated markers (cyt-b, ND4, NTF3, and ODC resulting in 2305 positions in the final dataset) and the outgroup (Charina bottae, Corallus hortulana, Epicrates cenchria, and Eunectes murinus) with cytb only). The percentage of trees in which the associated taxa clustered together is shown above the branches (bootstrap). The tree is drawn to scale, with branch lengths measured in the number of substitutions per site. Group colours: Black: Outgroup; blue: B. occidentalis; green: B. atlantica sp. nov.; orange: B. constrictor and red: B. amarali. Photographs: A) B. c. amarali, no locality; B. c. constrictor, no locality, Brazil; C) B. c. constrictor, from Cuiabá, Mato Grosso, Brazil; B. atlantica sp. nov., from Rio de Janeiro, Brazil; B. occidentalis from Tucumán, Argentina. https://doi.org/10.1371/journal.pone.0298159.g002
Fig 7 in The good, the bad and the boa: An unexpected new species of a true boa revealed by morphological and molecular evidence
Fig 7. Distribution of Boa atlantica sp. nov. based on the examined vouchers and tissue samples. A) Detailment in Rio de Janeiro City, including type locality. B) records in northern Rio de Janeiro and Espírito Santo States, C) records in Rio de Janeiro State. See also S4 Table. https://doi.org/10.1371/journal.pone.0298159.g007
Fig 1 in The good, the bad and the boa: An unexpected new species of a true boa revealed by morphological and molecular evidence
Fig 1. Map showing the locations of origin of the specimens whose sequences were used for phylogenetic analyses in this study (see also Tables 1 and 2, Figs 2 and S1). A) sampling in western Brazil; B) sampling in southeastern Brazil. https://doi.org/10.1371/journal.pone.0298159.g001
Fig 5 in The good, the bad and the boa: An unexpected new species of a true boa revealed by morphological and molecular evidence
Fig 5. Sulcate (A) and asulcate (B) sides of hemipenis of the holotype of Boa atlantica sp. nov. (MNRJ 27242) from Rio de Janeiro, Atlantic coast of Brazil. https://doi.org/10.1371/journal.pone.0298159.g005
FIGURE 9 in Diversity of Tropidurus (Squamata: Tropiduridae) in Paraguay-an integrative taxonomic approach based on morphological and molecular genetic evidence
FIGURE 9. Dextral lateral views of specimens of T. catalanensis (A, SMF 100093) indicating inguinal (left arrow) and axillary (right arrow) folds, compared with T. etheridgei (B, SMF 87389), which lacks these folds.
FIGURE 8 in Diversity of Tropidurus (Squamata: Tropiduridae) in Paraguay-an integrative taxonomic approach based on morphological and molecular genetic evidence
FIGURE 8. Differences in the mucronation of dorsal scales of Tropidurus catalanensis (above, SMF 100091) and T. torquatus (below, SMF 100097).
FIGURE 5 in Diversity of Tropidurus (Squamata: Tropiduridae) in Paraguay-an integrative taxonomic approach based on morphological and molecular genetic evidence
FIGURE 5. Maximum Likelihood (left) and Bayesian (right) trees inferred using concatenated mitochondrial (16S and COI) and nuclear (PRLR) DNA genes for samples of Tropidurus from Paraguay. Support values on nodes represent SH-aLRT/ UFBoot (in percentages) for ML (only values above 65 are shown), and posterior probability for BI (only values above 70 are shown). See Appendix 3 and Figure 1 for geographic location of samples. Reference bar represents substitutions per site.
FIGURE 3 in Diversity of Tropidurus (Squamata: Tropiduridae) in Paraguay-an integrative taxonomic approach based on morphological and molecular genetic evidence
FIGURE 3. Location of genetic samples used for the analyses. See Appendix 1 for information on the specimens.
FIGURE 4 in Diversity of Tropidurus (Squamata: Tropiduridae) in Paraguay-an integrative taxonomic approach based on morphological and molecular genetic evidence
FIGURE 4. Phylogenetic trees of Paraguayan samples of Tropidurus inferred from 16S (A), COI (B), 16S+COI (C), and PRLR (D) partial gene sequences. For each analysis we present maximum likelihood (ML, left) and Bayesian inference (BI, right) trees. Red dots indicate support values (basedon on SH-aLRT/UFBoot for ML and posterior probability for BI) equal or superior to 80 for ML and 0.85 for BI. Roots to outgroup Plica plica (AMCC-106953). Reference bar represents substitutions per site.
FIGURE 11 in Diversity of Tropidurus (Squamata: Tropiduridae) in Paraguay-an integrative taxonomic approach based on morphological and molecular genetic evidence
FIGURE 11. Distribution maps of Tropidurus catalanensis (A), T. etheridgei (B), T. spinulosus (C), and T. lagunablanca (D).
FIGURE 13 in Diversity of Tropidurus (Squamata: Tropiduridae) in Paraguay-an integrative taxonomic approach based on morphological and molecular genetic evidence
FIGURE 13. Differences in the color of females of T. lagunablanca (above, SMF 103315) and T. spinulosus (below, SMF 103322). Note the black stripes (the upper one behind the eye, and the lower beyond the ear opening) of T. lagunablanca, absent in T. spinulosus.
FIGURE 12 in Diversity of Tropidurus (Squamata: Tropiduridae) in Paraguay-an integrative taxonomic approach based on morphological and molecular genetic evidence
FIGURE 12. Diagram showing the theory of a ring species, where populations accumulate gradual changes along temporal and spatial scales (represented here by black arrows), originating different species.
FIGURE 7 in Diversity of Tropidurus (Squamata: Tropiduridae) in Paraguay-an integrative taxonomic approach based on morphological and molecular genetic evidence
FIGURE 7. Detailed view of the left hind claws of T. torquatus (A, SMF 100097) showing a paler color than observed in T. catalanensis (B, SMF 100093). This coloration is also present in the fore claws.
FIGURE 6 in Diversity of Tropidurus (Squamata: Tropiduridae) in Paraguay-an integrative taxonomic approach based on morphological and molecular genetic evidence
FIGURE 6. Graphic visualization of genetic distances among specimens of the Tropidurus spinulosus group (red dots). The width of the lines refer to the p-distance between specimens (reference at the upper right corner). At the bottom is presented the mean p-distance between species of the torquatus group (T. catalanensis and T. etheridgei) and the two bigger clades of the spinulosus group.
FIGURE 10 in Diversity of Tropidurus (Squamata: Tropiduridae) in Paraguay-an integrative taxonomic approach based on morphological and molecular genetic evidence
FIGURE 10. Asulcate (left) and sulcate (right) views of the left hemipenes of T. lagunablanca (SMF 103316). White bar = 5 mm.
Supplementary material 1 from: Sakuragui CM, Calazans LSB, de Oliveira LL, de Morais EB, Benko-Iseppon AM, Vasconcelos S, Schrago CEG, Joseph Mayo SJ (2018) Recognition of the genus Thaumatophyllum Schott − formerly Philodendron subg. Meconostigma (Araceae) − based on molecular and morphological evidence. PhytoKeys 98: 51-71. https://doi.org/10.3897/phytokeys.98.25044
Taxon sampling, voucher information and GenBank : Explanation note: Taxon sampling, voucher information and GenBank accession numbers of Philodendron, Homalomena and outgroup species.
FIGURE 14 in The Rhyacophila fasciata Group in Western Europe: Confirmation of Rhyacophila denticulata McLachlan 1879 (stat. prom.) and Rhyacophila sociata Navás 1916 (stat. res.), based on morphological and molecular genetic evidence (Trichoptera: Rhyacophilidae)
FIGURE 14. Spatial distribution of Rhyacophila denticulata McLachlan 1879 (14a), and R. sociata Navás 1916 in France (14b), and Spain (14c).
ScienceDex guides
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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.