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.
190
datasets available to search
ShareScore release 0.9.0
Dataset results
190 results for “molecular species delimitation”
FIGURE 10 in Coralliidae (Anthozoa: Octocorallia) from the INDEMARES 2010 expedition to north and northwest Spain (northeast Atlantic), with delimitation of a new species using both morphological and molecular approaches
FIGURE 10. Corallium tricolor (Johnson, 1898), SMF 9514. (A) “ Front ” view of colony, arrow indicating small raised bumps. (B) “ Back ” view of colony, black arrow indicating opening of siphonozooid; white arrows indicating the axis distorted. (C) Cortical sclerites; (a) asymmetrical 6 - radiate, (b) asymmetrical 8 - radiates, (c) symmetrical 8 - radiates, (d) double clubs. (D) Sclerites from the autozooids; (a) pharyngeal sclerites, (b) tentacle sclerites ..
FIGURE 9. Corallium johnsoni Gray, 1860, NHM 1933.3. 13.55 in Coralliidae (Anthozoa: Octocorallia) from the INDEMARES 2010 expedition to north and northwest Spain (northeast Atlantic), with delimitation of a new species using both morphological and molecular approaches
FIGURE 9. Corallium johnsoni Gray, 1860, NHM 1933.3. 13.55. (A) Cortical sclerites (B) Sclerites from the autozooids. Sclerites were grouped by shape: (a) crosses, (b) 6 - radiates, (c) 7 - radiates, (d) symmetrical 8 - radiates, (e) elongated 8 - radiates, (f) asymmetrical 8 - radiates, (g) double clubs, and (h) rods that are only present in autozooids.
FIGURE 8. Corallium johnsoni Gray, 1860 in Coralliidae (Anthozoa: Octocorallia) from the INDEMARES 2010 expedition to north and northwest Spain (northeast Atlantic), with delimitation of a new species using both morphological and molecular approaches
FIGURE 8. Corallium johnsoni Gray, 1860. (A) NHM 1933.3.13.55, "front" and "back" views of colony. (B) SMF 2426, view of colony, and sclerites from the autozooids.
FIGURE 7 in Coralliidae (Anthozoa: Octocorallia) from the INDEMARES 2010 expedition to north and northwest Spain (northeast Atlantic), with delimitation of a new species using both morphological and molecular approaches
FIGURE 7. Corallium cf. bayeri Simpson & Watling, 2011, Galicia Bank, Stn. DR15. (A) View of colony. (B) Cortical sclerites; double club (uppermost right) seen in top down view. (C) Corallium niobe Bayer, 1964, Avilés Canyon System, Stn. DR16. Note modification of axis resulting from the presence of a commensal worm.
FIGURE 3. Corallium occultum n in Coralliidae (Anthozoa: Octocorallia) from the INDEMARES 2010 expedition to north and northwest Spain (northeast Atlantic), with delimitation of a new species using both morphological and molecular approaches
FIGURE 3. Corallium occultum n. sp., holotype (MNCN 2.04/1128), Avilés Canyon System, Stn. DR18. (A) Cortical sclerites. (B) Sclerites from the autozooids.
FIGURE 2. Corallium occultum n in Coralliidae (Anthozoa: Octocorallia) from the INDEMARES 2010 expedition to north and northwest Spain (northeast Atlantic), with delimitation of a new species using both morphological and molecular approaches
FIGURE 2. Corallium occultum n. sp., Avilés Canyon System, Stn. DR18. (A) Holotype, "front", "back" and close views (MNCN 2.04/1128). (B) Paratype (MNCN 2.04/1129), Avilés Canyon System, Stn. DR18, close view of cortical mounds. (C) Right image, paratype (MNCN 2.04/1130), Avilés Canyon System, Stn. DR16. Arrows indicating siphonozooids.
FIGURE 5. Corallium medea Bayer, 1964. Holotype, USNM 52512 in Coralliidae (Anthozoa: Octocorallia) from the INDEMARES 2010 expedition to north and northwest Spain (northeast Atlantic), with delimitation of a new species using both morphological and molecular approaches
FIGURE 5. Corallium medea Bayer, 1964. Holotype, USNM 52512. (A) Front, back and close-up view of colony. (B) Sclerites from cortex.
FIGURE 10 in Coralliidae (Anthozoa: Octocorallia) from the INDEMARES 2010 expedition to north and northwest Spain (northeast Atlantic), with delimitation of a new species using both morphological and molecular approaches
FIGURE 10. Corallium tricolor (Johnson, 1898), SMF 9514. (A) "Front" view of colony, arrow indicating small raised bumps. (B) "Back" view of colony, black arrow indicating opening of siphonozooid; white arrows indicating the axis distorted. (C) Cortical sclerites; (a) asymmetrical 6-radiate, (b) asymmetrical 8-radiates, (c) symmetrical 8-radiates, (d) double clubs. (D) Sclerites from the autozooids; (a) pharyngeal sclerites, (b) tentacle sclerites..
FIGURE 9. Corallium johnsoni Gray, 1860, NHM 1933.3.13.55 in Coralliidae (Anthozoa: Octocorallia) from the INDEMARES 2010 expedition to north and northwest Spain (northeast Atlantic), with delimitation of a new species using both morphological and molecular approaches
FIGURE 9. Corallium johnsoni Gray, 1860, NHM 1933.3.13.55. (A) Cortical sclerites (B) Sclerites from the autozooids. Sclerites were grouped by shape: (a) crosses, (b) 6-radiates, (c) 7-radiates, (d) symmetrical 8-radiates, (e) elongated 8-radiates, (f) asymmetrical 8-radiates, (g) double clubs, and (h) rods that are only present in autozooids.
FIGURE 4 in Coralliidae (Anthozoa: Octocorallia) from the INDEMARES 2010 expedition to north and northwest Spain (northeast Atlantic), with delimitation of a new species using both morphological and molecular approaches
FIGURE 4. (A) Cortical sclerites of Corallium occultum n. sp., paratype (MNCN 2.04/1130). (B) Box plots indicate the width, height, and width/height ratio of double clubs from Corallium johnsoni (Gray, 1860), NHM 1933.3.13.55 and SMF 2426; Corallium medea Bayer, 1964, USNM 52512 (holotype) and USNM 52513 (paratype); Corallium occultum n. sp., MNCN 2.04/1128 (holotype) and MNCN 2.04/1130 (paratype). The box delimits the first and 3rd quartile, the horizontal line represents the median, and the whiskers delimit values that are within 1.5 x the inter-quartile range; values outside that range are represented by circles and considered as statistical outliers. (C) Mean (± one standard error, n= 40) of width, height, and width/ height ratio of double clubs. Means within a column (in small letter) followed by the same letter are not significantly different based on multiple comparisons (at alpha = 1% significance level).
FIGURE 1 in Coralliidae (Anthozoa: Octocorallia) from the INDEMARES 2010 expedition to north and northwest Spain (northeast Atlantic), with delimitation of a new species using both morphological and molecular approaches
FIGURE 1. Map of the north of Spain showing the two sampling areas of the INDEMARES 2010 expedition. 1) Avilés Canyon System. 2) Galicia Bank. Modified from Altuna (2013).
FIGURE 5 in Applying n-dimensional hypervolumes for species delimitation: unexpected molecular, morphological, and ecological diversity in the Leaf-Toed Gecko Phyllodactylus reissii Peters, 1862 (Squamata: Phyllodactylidae) from northern Peru
FIGURE 5. Dorsal and ventral views of the holotype of Phyllodactylus pachamama sp. nov. (ZFMK 90886). Scale bars represent 5 mm.
FIGURE 3. N in Applying n-dimensional hypervolumes for species delimitation: unexpected molecular, morphological, and ecological diversity in the Leaf-Toed Gecko Phyllodactylus reissii Peters, 1862 (Squamata: Phyllodactylidae) from northern Peru
FIGURE 3. N-dimensional hypervolumes of morphological data show the position of the delimited species in the Phyllodactylus reissii group in multidimensional morphological space. Circles mark PCA-derived observations.
FIGURE 2 in Applying n-dimensional hypervolumes for species delimitation: unexpected molecular, morphological, and ecological diversity in the Leaf-Toed Gecko Phyllodactylus reissii Peters, 1862 (Squamata: Phyllodactylidae) from northern Peru
FIGURE 2. Bayesian consensus tree of Ecuadorian and Peruvian Phyllodactylus based on 835 bp of mitochondrial DNA (12S and 16S rRNA). Node support in terms of Bayesian posterior probabilities is indicated by circles at nodes (nodes with a BPP ≥ 0.90 are white, BPP ≥ 0.95 are grey, BPP> 0.99 are black, values <0.90 are not marked). Outgroup (Phyllopezus maranjonensis) not shown for clarity. Results of the species delimitations in the P. reissii group are illustrated by vertical bars. Each bar represents a species detected by the respective approach. Coloration of the bars is according to the species resulting from the consensus of all species delimitation hypotheses.
FIGURE 1 in Applying n-dimensional hypervolumes for species delimitation: unexpected molecular, morphological, and ecological diversity in the Leaf-Toed Gecko Phyllodactylus reissii Peters, 1862 (Squamata: Phyllodactylidae) from northern Peru
FIGURE 1. Geographical distribution of the different clades of Phyllodactylus reissii and related species. Colors refer to delimited species (see Fig. 2). Insets show clades endemic to the inter-Andean valley of the upper Marañón River. Circles mark occurrence records used for climatic niche distribution modeling. Localities with a thick margin were also genetically sampled.
FIGURE 6 in Applying n-dimensional hypervolumes for species delimitation: unexpected molecular, morphological, and ecological diversity in the Leaf-Toed Gecko Phyllodactylus reissii Peters, 1862 (Squamata: Phyllodactylidae) from northern Peru
FIGURE 6. Phyllodactylus pachamama sp. nov. from the type locality (Balsas, Amazonas, Peru) in life.
FIGURE 4. N in Applying n-dimensional hypervolumes for species delimitation: unexpected molecular, morphological, and ecological diversity in the Leaf-Toed Gecko Phyllodactylus reissii Peters, 1862 (Squamata: Phyllodactylidae) from northern Peru
FIGURE 4. N-dimensional hypervolumes representing the climatic niches of the delimited species in the Phyllodactylus reissii group. Circles mark centroids and outlines are the 90% confidence interval of the hypervolumes (note that these only approximate the actual hypervolumes and are only used for a more clear illustration).
Figure 9 in Species delimitation in the Andean grasshopper genus Orotettix Ronderos & Carbonell (Orthoptera: Melanoplinae): an integrative approach combining morphological, molecular and biogeographical data
Figure 9 Orotettix males. Phallic complex, species as indicated. A, D, G, J, M, distal portion of aedeagal valves, lateral view; B, E, H, K, N, distal portion of aedeagal valves, dorsal view; C, F, I, L, O, epiphallus, dorsal view. Numbers indicate characters and states used in the phylogenetic analyses.
Figure 11 in Species delimitation in the Andean grasshopper genus Orotettix Ronderos & Carbonell (Orthoptera: Melanoplinae): an integrative approach combining morphological, molecular and biogeographical data
Figure 11 Outgroup taxa used in the phylogenetic analyses, species as indicated. A–D, male habitus. Scale bars: 5 mm. Numbers indicate characters and states used in the phylogenetic analyses.
Figure 12 in Species delimitation in the Andean grasshopper genus Orotettix Ronderos & Carbonell (Orthoptera: Melanoplinae): an integrative approach combining morphological, molecular and biogeographical data
Figure 12 Outgroup taxa used in the phylogenetic analyses, species as indicated. A, C, E, G, male distal abdominal segments, dorsal view; B, D, F, H, male distal abdominal segments, lateral view. Numbers indicate characters and states used in the phylogenetic analyses.
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.