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.
22
datasets available to search
ShareScore release 0.9.0
Dataset results
22 results for “Iberian endemic species”
Figure 5. Hexabathynella sevillaensis n in Expanding the taxonomic conundrum: Three new species of groundwater crustacean (Syncarida, Bathynellacea, Parabathynellidae) endemic to the Iberian Peninsula
Figure 5. Hexabathynella sevillaensis n. sp., male. (A) Antennule (dorsal view); (B) antenna (dorsal view); (C) labrum; (D) mandible (lateral view); (E) maxillule (lateral view); (F) maxilla (lateral view); (G) thoracopod 1; (H) thoracopod 8 male (latero-external view); (I) thoracopod 8 male (frontal view); (J) thoracopod 8 male (latero-internal view); (K) thoracopod 8 female (ventro-lateral view); (L) pleopod female (ventro-lateral view). Scale bars in mm.
Figure 3 in Expanding the taxonomic conundrum: Three new species of groundwater crustacean (Syncarida, Bathynellacea, Parabathynellidae) endemic to the Iberian Peninsula
Figure 3. Iberobathynella (Asturibathynella) cornejoensis n. sp., male. (A) Antennule; (B) labrum; (C) mandible; (D) maxillule; (E) maxilla; (F) thoracopod 8 female (dorsal view); (G) thoracopod 8 male (latero-external view); (H) thoracopod 8 male (latero-internal view); (I) thoracopod 8 male (internal view). Scale bars in mm.
Figure 4 in Expanding the taxonomic conundrum: Three new species of groundwater crustacean (Syncarida, Bathynellacea, Parabathynellidae) endemic to the Iberian Peninsula
Figure 4. Iberobathynella (Asturibathynella) cornejoensis n. sp., male. (A) Thoracopod 1; (B) thoracopod 2; (C) thoracopod 3; (D) thoracopod 4; (E) thoracopod 5; (F) thoracopod 6; (G) thoracopod 7; (H) pleotelson and furca (dorsal view); (I) uropod (latero-internal view). Scale bar in mm.
Figure 1 in Expanding the taxonomic conundrum: Three new species of groundwater crustacean (Syncarida, Bathynellacea, Parabathynellidae) endemic to the Iberian Peninsula
Figure 1. Iberobathynella (Asturibathynella) lamasonensis n. sp., male. (A) Antennule (dorsal view); (B) antenna (ventral view); (C) labrum; (D) mandible; (E) maxillule; (F) maxilla; (G) thoracopod 8 male (latero-internal view); (H) thoracopod 8 male (latero-external view); (I) thoracopod 8 female (ventral view). Scale bars in mm.
Figure 2 in Expanding the taxonomic conundrum: Three new species of groundwater crustacean (Syncarida, Bathynellacea, Parabathynellidae) endemic to the Iberian Peninsula
Figure 2. Iberobathynella (Asturibathynella) lamasonensis n. sp., male. (A) Thoracopod 1; (B) thoracopod 2; (C) thoracopod 3; (D) thoracopod 4; (E) thoracopod 5; (F) thoracopod 6; (G) thoracopod 7; (H) pleotelson and furca (dorsal view); (I) uropod (latero-internal view). Scale bar in mm.
Figure 6. Hexabathynella sevillaensis n in Expanding the taxonomic conundrum: Three new species of groundwater crustacean (Syncarida, Bathynellacea, Parabathynellidae) endemic to the Iberian Peninsula
Figure 6. Hexabathynella sevillaensis n. sp. male. (A) Thoracopod 2; (B) thoracopod 3; (C) thoracopod 4; (D) thoracopod 5; (E) thoracopod 6; (F) thoracopod 8 male and pleopod (dorsal view); (G) pleotelson and furca (dorsal view); (H) pleotelson and furca female (lateral view); (I) uropod (latero-internal view). Scale bars in mm.
Figure 3 in Taxonomy, biogeography and evolution of Euproctus (Amphibia: Salamandridae), with the resurrection of the genus Calotriton and the description of a new endemic species from the Iberian Peninsula
Figure 3. Maximum likelihood (ML) tree for some representatives of the Western brook newts (log likelihood −955.08162, HKY + G model of sequence evolution) inferred from a reduced dataset, which included 354 bp of cytb mtDNA. Bootstrap support and Bayesian posterior probabilities for particular nodes are shown in the boxes with the figures indicating the percentage support for different analyses. Upper left, bootstrap support derived by ML (HKY + G). Upper right, posterior probability values from the Bayesian analysis (HKY + G). Lower left, maximum parsimony (MP) bootstrap support derived by MP (ts = 1; tv = 1). Lower right, bootstrap support derived by MP (ts = 1; tv = 6). When the difference between the four support values was <5%, only the average value is shown. Numbers in square brackets refer to localities shown in Fig. 1 and listed in Table 1.
Figure 7 in Taxonomy, biogeography and evolution of Euproctus (Amphibia: Salamandridae), with the resurrection of the genus Calotriton and the description of a new endemic species from the Iberian Peninsula
Figure 7. Plot of first and second canonical variables for male Western brook newts. Filled squares indicate specimens from the El Montseny massif and filled circles the remaining specimens analysed.
Figure 10. A in Taxonomy, biogeography and evolution of Euproctus (Amphibia: Salamandridae), with the resurrection of the genus Calotriton and the description of a new endemic species from the Iberian Peninsula
Figure 10. A, female Calotriton arnoldi sp. nov. from population A2 with uniform chocolate coloration. B, male specimen of C. arnoldi from population A2 showing several yellowish blotches on the sides of the tail and body. C, close up of same female as in A. D, female C. arnoldi from population B2 showing the typical uniform chocolate coloration of this population. E, larvae of C. arnoldi from population B1. F, same female as in A in ventral view. G–H, juvenile of C. arnoldi from population A2 with several yellowish blotches on the sides of the tail and body (note the absence of the vertebral line that is typical of C. asper). I–J, details of the female cloaca of the same specimen as in A. K–L, detail of the female cloaca of a living specimen of C. asper from Berga, Spain (K) and Ordesa, Spain (L).
Figure 2 in Taxonomy, biogeography and evolution of Euproctus (Amphibia: Salamandridae), with the resurrection of the genus Calotriton and the description of a new endemic species from the Iberian Peninsula
Figure 2. Maximum likelihood (ML) tree for some representatives of the Salamandridae (log likelihood −6882.66489, GTR + I + G model of sequence evolution) inferred from the combined dataset, which included cytb, 12S and 16S mtDNA sequences. Bootstrap support and Bayesian posterior probabilities for particular nodes are shown in the boxes with the figures indicating the percentage support for different analyses. Upper left, bootstrap support derived by ML (GTR + I + G). Upper right, posterior probability values from the Bayesian analysis (GTR + I + G). Lower left, maximum parsimony (MP) bootstrap support derived by MP (ts = 1; tv = 1). Lower right, bootstrap support derived by MP (ts = 1; tv = 4 and cytb 3rd codon ts = 0). When the difference between the four support values was <5%, only the average value is shown. The '<' symbol is used to show that the bootstrap/posterior probability value for that node is lower than 50% and the '–' symbol indicates that a particular node is never recovered when using this method. Estimated ages are given for some bifurcations, which are marked by filled circles. Numbers in square brackets refer to localities shown in Fig. 1 and listed in Table 1.
Figure 1 in Taxonomy, biogeography and evolution of Euproctus (Amphibia: Salamandridae), with the resurrection of the genus Calotriton and the description of a new endemic species from the Iberian Peninsula
Figure 1. Map showing the distribution range of the Thyrrenian brook newts and the Western brook newts (shadowed areas). Numbers refer to the following localities: 1, El Montseny. 2, Irati. 3, Vidrà. 4, Xixarella. 5, Vall d'en Bac. 6, Collada de Tosses. 7, Font de l'Ús. 8, Berga. 9, Ordesa. 10, Monrepos. 11, Susqueda. 12, Vilanova de Meià, 13 Corsica. 14, Sardinia. Additional data are given in Table 1.
Figure 8 in Taxonomy, biogeography and evolution of Euproctus (Amphibia: Salamandridae), with the resurrection of the genus Calotriton and the description of a new endemic species from the Iberian Peninsula
Figure 8. Plot of first and second canonical variables for female Western brook newts. Filled squares indicate specimens from the El Montseny massif and filled circles the remaining specimens analysed.
Figure 5 in Taxonomy, biogeography and evolution of Euproctus (Amphibia: Salamandridae), with the resurrection of the genus Calotriton and the description of a new endemic species from the Iberian Peninsula
Figure 5. Scatter plot of principal component scores for the first three principal axes of the principal component analysis of male Western brook newts. Filled squares indicate specimens from the El Montseny massif and open circles the remaining specimens analysed.
Figure 9. A in Taxonomy, biogeography and evolution of Euproctus (Amphibia: Salamandridae), with the resurrection of the genus Calotriton and the description of a new endemic species from the Iberian Peninsula
Figure 9. A, detail of a hind leg of a male Euproctus platycephalus showing the spur (s) that characterizes the Tyrrhenian brook newts. B, detail of hind leg of a male E. montanus showing the spur (s). C, detail of a male cloaca of E. platycephalus; the spur on the right hind leg is also visible. D, detail of a male cloaca of E. montanus showing the pseudopenis (pp) and the spur. E, detail of a female cloaca of E. platycephalus. F, detail of a female cloaca of E. montanus.
Figure 4. X in Taxonomy, biogeography and evolution of Euproctus (Amphibia: Salamandridae), with the resurrection of the genus Calotriton and the description of a new endemic species from the Iberian Peninsula
Figure 4. X-ray images of several species of newts and pictures of two clear-stained specimens showing a close-up of the caudosacral and caudal vertebrae. Numbers from 1 to 4 correspond to the first caudosacral vertebrae. A, Calotriton arnoldi sp. nov. female from El Montseny (MZB2004-0188). B, C. arnoldi male from El Montseny (MZB 82–8789). C, C. arnoldi male from El Montseny (MZB2004-0187). D, C. arnoldi male from El Montseny (MZB 82-8784). E, C. arnoldi female from El Montseny (MZB2004-0189). F, C. asper male from Baños de Benasque, Huesca, Spain (BMNH, 1970.2448). G, C. asper male from Torrent de Castelmouly, near Bagnères de Bigorre, France (BMNH, 1928.11.18-22). H, C. asper male from Pla de l'Estany, northern slope of the Maladeta, Spain (BMNH, 1928.11.22.13-14). I, C. asper female from Lac d'Oncet, French Pyrenees (BMNH, 1920.1.20.20). J, Euproctus montanus male (BMNH 82.11.15.50-55). K, E. platycephalus male (BMNH, 1947.1.4.4.x6). L, Neurergus kaisseri male (paratype – BMNH, 1952.4.2.85). M, Triturus marmoratus male (BMNH 86.6.29.52-56). N, T. cristatus male (BMNH, 1950.1.4.81-82). O, T. karelinii male (BMNH 96.3.28.18-19). P, ventral view of the caudosacral and caudal vertebrae of a clear-stained male of C. asper from Berga (locality 8 in Fig. 1). Q, dorsal view of the same C. asper specimen as in P. R, ventral view of male from Bergo. S, dorsal view of C. arnoldi from population B1 (locality 1 in Fig. 1).
Data from: Endemic species may have complex histories: within-refugium phylogeography of an endangered Iberian vole
Glacial refugia protected and promoted biodiversity during the Pleistocene, not only at a broader scale, but also for many endemics that contracted and expanded their ranges within refugial areas. Understanding the evolutionary history of refugial endemics is especially important in the case of endangered species to recognise the origins of their genetic structure and thus produce better informed conservation practices. The Iberian Peninsula is an important European glacial refugium, rich in endemics of conservation concern, including small mammals, such as the Cabrera vole (Microtus cabrerae). This near-threatened rodent is characterised by an unusual suite of genetic, life history and ecological traits, being restricted to isolated geographic nuclei in fast-disappearing Mediterranean sub-humid herbaceous habitats. To reconstruct the evolutionary history of the Cabrera vole, we studied sequence variation at mitochondrial, autosomal and sex-linked loci, using invasive and noninvasive samples. Despite low overall mitochondrial and nuclear nucleotide diversities, we observed two main well-supported mitochondrial lineages, west and east. Phylogeographic modelling in the context of the Cabrera vole's detailed fossil record, supports a demographic scenario of isolation of two populations during the Last Glacial Maximum (LGM) from a single focus in the southern part of the Iberian Peninsula. In addition, our data suggests subsequent divergence within the east, and secondary contact and introgression of the expanding western population, during the late Holocene. This work emphasises that refugial endemics may have a phylogeographic history as rich as that of more widespread species, and conservation of such endemics includes the preservation of that genetic legacy.
FIGURES 2–10. Cybaeodes indalo n in Description of three new troglobiontic species of Cybaeodes (Araneae, Liocranidae) endemic to the Iberian Peninsula
FIGURES 2–10. Cybaeodes indalo n. sp. 2: Epigynum ventral view, 3: Vulva dorsal view, 4: male palp dorsal view, 5: male palp ventral view, 6: male palp retrolateral view. Cybaeodes dosaguas n. sp. 7: Epigynum ventral view, 8: Vulva dorsal view. Cybaeodes magnus n. sp. 9: Epigynum ventral view, 10: Vulva dorsal view.
FIGURES 11–16. Cybaeodes indalo n in Description of three new troglobiontic species of Cybaeodes (Araneae, Liocranidae) endemic to the Iberian Peninsula
FIGURES 11–16. Cybaeodes indalo n. sp. 11: male palp retrolateral view, 12: male palp ventral view, 13: male habitus, 14: Epigynum ventral view, 15: male spinnerets ventral view, 16: female spinnerets ventral view.
FIGURES 17–22. Cybaeodes dosaguas n in Description of three new troglobiontic species of Cybaeodes (Araneae, Liocranidae) endemic to the Iberian Peninsula
FIGURES 17–22. Cybaeodes dosaguas n. sp. 17: Epigynum ventral view, 18: female habitus. Cybaeodes magnus n. sp. 19: Epigynum ventral view, 20: female habitus. 21: Cybaeodes mallorcensis epigynum ventral view. 22: Cybaeodes magnus n. sp. Eyes frontal view.
Data from: Endemic species may have complex histories: within-refugium phylogeography of an endangered Iberian vole
Open the record for dataset details and reuse information.
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.