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.
186
datasets available to search
ShareScore release 0.9.0
Dataset results
186 results for “disjunct distributions”
Figure 1 in Disjunct distribution of Szeptyckiella gen. nov. from New Caledonia and South China undermines the monophyly of Willowsiini (Collembola: Entomobryidae)
Figure 1. Szeptyckiella boulouparica sp. nov. (A) Habitus; (B) chaetae on Ant. IV; (C) Ant. III organ; (D) scales on Abd. III; (E) lateral bothriotrichum of Abd. III; (F) scales on manubrium. Scale bar: 0.5 mm, A; 10 µm, B–F.
Figure 4 in Disjunct distribution of Szeptyckiella gen. nov. from New Caledonia and South China undermines the monophyly of Willowsiini (Collembola: Entomobryidae)
Figure 4. Szeptyckiella sinelloides sp. nov. (A) Habitus; (B) base of Ant. (I) dorsal side; (C) mucro; (D) scales on head. Scale bar: 0.5 mm, A; 10 µm, B–D.
Figure 3 in Disjunct distribution of Szeptyckiella gen. nov. from New Caledonia and South China undermines the monophyly of Willowsiini (Collembola: Entomobryidae)
Figure 3. Szeptyckiella boulouparica sp. nov., abdominal chaetotaxy: (A) Abd. I–III; (B) Abd. IV; (C) Abd. V. Scale bar: 50 µm.
Figure 2 in Forest monkeys and Pleistocene refugia: a phylogeographic window onto the disjunct distribution of the Chlorocebus lhoesti species group
Figure 2. All possible patterns of relationships among the lhoesti group species. A, topology consistent with a vicariant scenario in which the distribution of a widespread common ancestor fragments into three segments – nearly simultaneously – as the result of habitat deterioration associated with a Pleistocene glacial cycle. B, topology consistent with an alternative vicariant scenario, in which ancestral populations of Chlorocebus preussi and Chlorocebus solatus remain in contact for a short time after the divergence of Chlorocebus lhoesti, because the former two stocks range within the same Pleistocene refuge. C, tree consistent with a dispersal hypothesis in which early C. preussi populations (following divergence from C. solatus) migrate along the northern rim of the Congo Basin, and found a new lineage (C. lhoesti) in the Albertine region (see Fig. 1). D, tree consistent with a dispersal hypothesis in which early C. solatus populations (following divergence from C. preussi) conduct a similar transcontinental migration, but along the southern rim of the Congo Basin (see Fig. 1).
Fig. 5 in Pereboriidae: a Permian clade of hemipteran insects with disjunctive distribution in the Northern and Southern parts of Pangea
Fig. 5. Hemipteran insect Afropereboria magnifica gen. et sp. nov. (paratype AM11141b), from Onder Karoo locality, South Africa, lowermost Abrahamskraal Formation, Wordian Stage (Permian). Forewing, photograph dry specimen.
Fig. 4 in Pereboriidae: a Permian clade of hemipteran insects with disjunctive distribution in the Northern and Southern parts of Pangea
Fig. 4. Hemipteran insect Afropereboria magnifica gen. et sp. nov. (paratype AM11141a), from Onder Karoo locality, South Africa, lowermost Abrahamskraal Formation, Wordian Stage (Permian). Forewing, photograph under alcohol.
Fig. 3 in Pereboriidae: a Permian clade of hemipteran insects with disjunctive distribution in the Northern and Southern parts of Pangea
Fig. 3. Hemipteran insect Afropereboria magnifica gen. et sp. nov. (paratype AM11447a) from Onder Karoo locality, South Africa, lowermost Abrahamskraal Formation, Wordian Stage (Permian). Hind wing, photograph under alcohol (A1), explanatory drawing (A2).
Fig. 1 in Pereboriidae: a Permian clade of hemipteran insects with disjunctive distribution in the Northern and Southern parts of Pangea
Fig. 1. Hemipteran insect Afropereboria magnifica gen. et sp. nov. (holotype AM11157a) from Onder Karoo locality, South Africa, lowermost Abrahamskraal Formation, Wordian Stage (Permian). Forewing, photograph (A1), explanatory drawing (A2).
Fig. 2 in Pereboriidae: a Permian clade of hemipteran insects with disjunctive distribution in the Northern and Southern parts of Pangea
Fig. 2. Hemipteran insect Afropereboria magnifica gen. et sp. nov. (holotype AM11157b) from Onder Karoo locality, South Africa, lowermost Abrahamskraal Formation, Wordian Stage (Permian). Forewing, photograph dry specimen (A1), under alcohol (A2).
Fig. 1. Pelomedusa galeata from the Ratelfontein farm near Calvinia observed directly after rainfall, 16 February 2019 in Mind the gap-Is the distribution range of Pelomedusa galeata really disjunct in western South Africa?
Fig. 1. Pelomedusa galeata from the Ratelfontein farm near Calvinia observed directly after rainfall, 16 February 2019. For the location of the farm, see Fig. 2 (locality 1). Photos: C.A. van Niekerk.
Fig. 2 in Mind the gap-Is the distribution range of Pelomedusa galeata really disjunct in western South Africa?
Fig. 2. Distribution range of Helmeted Terrapins (shaded in grey), with our records of Pelomedusa galeata in South Africa (white circles). New records of P. galeata in or close to the putative distribution gap: 1 – Nineteen turtles at Ratelfontein farm, near Calvinia (16 February 2019), 2 – Observations of locals at Williston, 3 – Near Carnarvon (shell, collected 25 October 2018), 4 – One terrapin near Beaufort West (4 March 2017), 5 – Two terrapins near Griekwastad (28 October 2018). Inset: Pelomedusa galeata from the Ratelfontein farm. Photo: C.A. van Niekerk.
FIGURE 4 in Integrative taxonomy reveals disjunct distribution and first record of Hoplias misionera (Characiformes: Erythrinidae) in the Amazon River basin: morphological, DNA barcoding and cytogenetic considerations
FIGURE 4 | Neighbor joining (NJ) tree of Hoplias inferred from partial COI (Cytochrome c Oxidase Subunit I gene) sequences using the Kimura 2-parameter model. The lateral bar indicates the partitions of species delimitation performed by the GMYC, ABGD and BIN analysis. The clade Hoplias misionera nested individuals from the La Plata and Amazon basins (blue tips).
FIGURE 7 in Integrative taxonomy reveals disjunct distribution and first record of Hoplias misionera (Characiformes: Erythrinidae) in the Amazon River basin: morphological, DNA barcoding and cytogenetic considerations
FIGURE 7 | Updated distribution map of Hoplias misionera showing former known localities in Argentina and southern Brazil (Rosso et al., 2016) and the new records from Amazon basin (triangles). Star = type locality.
FIGURE 1 in Integrative taxonomy reveals disjunct distribution and first record of Hoplias misionera (Characiformes: Erythrinidae) in the Amazon River basin: morphological, DNA barcoding and cytogenetic considerations
FIGURE 1 | Hoplias misionera, UFOPA AMTRA131-19, 237 mm SL, Amazonas River, Alenquer, Pará, Brazil. Lateral view. Scale bar = 1 cm. Photo by L.R.R. Rodrigues.
FIGURE 2 in Integrative taxonomy reveals disjunct distribution and first record of Hoplias misionera (Characiformes: Erythrinidae) in the Amazon River basin: morphological, DNA barcoding and cytogenetic considerations
FIGURE 2 | Configuration of the medial margins of the dentary in Hoplias misionera. A. Y-shaped, UFOPA AMTRA126-19, 214 mm SL. B. V-shaped, UFOPA AMTRA127-19, 232 mm SL. Scale bars = 1 cm. Photos by L. R. R. Rodrigues. Illustration by T. M. A. Lima.
FIGURE 6 in Integrative taxonomy reveals disjunct distribution and first record of Hoplias misionera (Characiformes: Erythrinidae) in the Amazon River basin: morphological, DNA barcoding and cytogenetic considerations
FIGURE 6 | Partial idiogram of the four largest chromosome pairs of Hoplias malabaricus (karyomorphs C and F) and H. misionera showing marked size reduction from the first to second metacentric pair only in the karyomorph F.
FIGURE 3 in Integrative taxonomy reveals disjunct distribution and first record of Hoplias misionera (Characiformes: Erythrinidae) in the Amazon River basin: morphological, DNA barcoding and cytogenetic considerations
FIGURE 3 | Last vertical series of scales on the base of the caudal-fin rays. Comparison between Hoplias misionera (A), UFOPA AMTRA131-19, 237 mm SL and Hoplias cf. malabaricus (B), UFOPA AMTRA110, 201 mm SL. Scale bars = 1 cm. Photos by L. R. R. Rodrigues. Illustration by T. M. A. Lima.
FIGURE 5 in Integrative taxonomy reveals disjunct distribution and first record of Hoplias misionera (Characiformes: Erythrinidae) in the Amazon River basin: morphological, DNA barcoding and cytogenetic considerations
FIGURE 5 | Karyotype of Hoplias misionera from Amazon basin (2n=40 chromosomes). Conventional Giemsa stained (A), C-banded (B) and mapping of 18S rDNA FISH probes (green signals) (C). The Ag-NOR bearing chromosomes are showed in the box.
Linked collectors and determiners for: Amphi-Indian Ocean Disjunction in the Trans-Pacific Genus Archaeoglenes Brown (Coleoptera: Tenebrionidae: Phrenapatinae): New Taxonomic and Distributional Data.
Natural history specimen data linked to collectors and determiners held within, "Amphi-Indian Ocean Disjunction in the Trans-Pacific Genus Archaeoglenes Brown (Coleoptera: Tenebrionidae: Phrenapatinae): New Taxonomic and Distributional Data". Claims or attributions were made on Bionomia by volunteer Scribes, <a href="https://bionomia.net/dataset/3574f6e2-f633-43f4-8079-53cc3eee22eb">https://bionomia.net/dataset/3574f6e2-f633-43f4-8079-53cc3eee22eb</a> using specimen data from the dataset aggregated by the Global Biodiversity Information Facility, <a href="https://gbif.org/dataset/3574f6e2-f633-43f4-8079-53cc3eee22eb">https://gbif.org/dataset/3574f6e2-f633-43f4-8079-53cc3eee22eb</a>. Formatted as a Frictionless Data package.
Figure 25. Tree number 90 in Phylogeny of cardiid bivalves (cockles and giant clams): revision of the Cardiinae and the importance of fossils in explaining disjunct biogeographical distributions
Figure 25. Tree number 90 of 208 most parsimonious trees from ordered analysis. Synapomorphies for each numbered node indicated in Table 5.
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.