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.
715
datasets available to search
ShareScore release 0.9.0
Dataset results
715 results for “folding”
FIGURE 8 in A new Cinygmula McDunnough, 1933 species with distinct imaginal frontal fold from eastern Chinese Himalaya (Ephemeroptera: Heptageniidae)
FIGURE 8. Nymphal claw and egg of Cinygmula longissima sp. nov. A: claw; B: egg
FIGURE 7 in A new Cinygmula McDunnough, 1933 species with distinct imaginal frontal fold from eastern Chinese Himalaya (Ephemeroptera: Heptageniidae)
FIGURE 7. Subimaginal habitus of Cinygmula longissima sp. nov. A: male; B: female
FIGURE 1 in A new Cinygmula McDunnough, 1933 species with distinct imaginal frontal fold from eastern Chinese Himalaya (Ephemeroptera: Heptageniidae)
FIGURE 1. Nymphal habitus of Cinygmula longissima sp. nov. A: dorsal view; B: ventral view
Data - Synthetic mammalian RNA-based gene circuits for high fold change expression
Open the record for dataset details and reuse information.
A Folding–Docking–Affinity framework for protein–ligand binding affinity prediction
Open the record for dataset details and reuse information.
Four-fold rotational symmetry in art: example n.4
<p>The image shows a bowl with pool, tilapia fishes and lotus buds, It is a faience coming from Egypt, mold-made faience, 1550-1300 BCE, Cincinnati Art Museum. The image on the left is a courtesy by Wmpearl for Wikimedia. On the right, the processed image (Retinex, generic erode filter, grey scale) to enhance the detail of the design. </p>
Fig. 28 in Systematic revision of the parasitoid wasp genus Glyptapanteles Ashmead (Hymenoptera: Braconidae: Microgastrinae) for Australia results in a ten-fold increase in species
Fig. 28. Glyptapanteles doreyi Fagan-Jeffries, Bird & Austin sp. nov., paratypes, ♀, 'clade A'. A, F–G. AUMIC412-18. B–E. AUMIC389-18. A. Lateral habitus. B. Fore wing. C. Dorsal mesosoma. D. Anterior head. E. Lateral head. F. Dorsal head. G. Dorsal metasoma.
Fig. 22 in Systematic revision of the parasitoid wasp genus Glyptapanteles Ashmead (Hymenoptera: Braconidae: Microgastrinae) for Australia results in a ten-fold increase in species
Fig. 22. Glyptapanteles austini Fagan-Jeffries & Bird sp. nov. A, D–F. Paratype, ♀ (SAMA 32-46151). B–C, G. Holotype, ♀ (SAMA 32-45047). A. Dorsal mesosoma. B. Lateral head. C. Dorsal metasoma. D. Fore wing. E. Dorsal head. F. Anterior head. G. Lateral habitus.
Fig. 41 in Systematic revision of the parasitoid wasp genus Glyptapanteles Ashmead (Hymenoptera: Braconidae: Microgastrinae) for Australia results in a ten-fold increase in species
Fig. 41. Glyptapanteles kurandaensis Fagan-Jeffries, Bird & Austin sp. nov., paratypes, ♀. A–B, D–E. (QM T250969). C, F–G. QM T250971. A. Lateral habitus. B. Fore wing. C. Dorsal mesosoma. D. Anterior head. E. Lateral head. F. Dorsal metasoma. G. Lateral metasoma.
Fig. 10. A in Systematic revision of the parasitoid wasp genus Glyptapanteles Ashmead (Hymenoptera: Braconidae: Microgastrinae) for Australia results in a ten-fold increase in species
Fig. 10. A. Glyptapanteles eburneus Fagan-Jeffries, Bird & Austin sp. nov., holotype, ♀ (AM K.517935), propodeum with median carina clear and complete (indicated by arrow). B. G. rixi Fagan-Jeffries, Bird & Austin sp. nov., paratype, ♀ (QM T250982), propodeum with median carina absent.
Fig. 1 in Systematic revision of the parasitoid wasp genus Glyptapanteles Ashmead (Hymenoptera: Braconidae: Microgastrinae) for Australia results in a ten-fold increase in species
Fig. 1. COI ML phylogeny of all sequences identified as Glyptapanteles Ashmead, 1904 on BOLD as of 5 June 2021. Australian taxa are highlighted in red, New Zealand taxa in purple, Papua New Guinean taxa in yellow and taxa from Fiji in blue (only one lineage, difficult to discern in circular tree – see expanded phylogeny in Supp. file 5). Lineages in black are from elsewhere in the world.
Figure 4 from: Chakona A, Skelton PH (2017) A review of the Pseudobarbus afer (Peters, 1864) species complex (Teleostei, Cyprinidae) in the eastern Cape Fold Ecoregion of South Africa. ZooKeys 657: 109-140. https://doi.org/10.3897/zookeys.657.11076
Figure 4 - Scatter plots of scale counts and selected morphometric characters of Pseudobarbus afer s.s., Pseudobarbus senticeps and Pseudobarbus swartzi sp. n.
Figure 5 from: Chakona A, Skelton PH (2017) A review of the Pseudobarbus afer (Peters, 1864) species complex (Teleostei, Cyprinidae) in the eastern Cape Fold Ecoregion of South Africa. ZooKeys 657: 109-140. https://doi.org/10.3897/zookeys.657.11076
Figure 5 - Live colours of Pseudobarbus afer s.s (SAIAB 203790) from the Waterkloof River, Swartkops River system, Pseudobarbus senticeps (RS17AL01) from the source pool in the Upper Krom River system and Pseudobarbus swartzi sp. n. (SAIAB 203792) from a tributary of the Wabooms River, Gamtoos River system.
Figure 3 from: Chakona A, Skelton PH (2017) A review of the Pseudobarbus afer (Peters, 1864) species complex (Teleostei, Cyprinidae) in the eastern Cape Fold Ecoregion of South Africa. ZooKeys 657: 109-140. https://doi.org/10.3897/zookeys.657.11076
Figure 3 - a Scatter plot of PC1 against PC2 for a PCA carried out on five raw meristic characters (scale counts) for 162 specimens of the Pseudobarbus afer complex b Scatter plot of PC1 against PC2 for a PCA carried out on 17 morphometric characters for 154 specimens of the Pseudobarbus afer complex. Syntypes were not included in the analyses as all three specimens are in very poor condition, with very few intact scales, flaccid bodies and damaged fins. The plots indicate that Pseudobarbus senticeps, Pseudobarbus afer s.s. and Pseudobarbus swartzi can be clearly separated based on scale counts, but the three species show considerable overlap in morphological characters.
Figure 7 from: Chakona A, Skelton PH (2017) A review of the Pseudobarbus afer (Peters, 1864) species complex (Teleostei, Cyprinidae) in the eastern Cape Fold Ecoregion of South Africa. ZooKeys 657: 109-140. https://doi.org/10.3897/zookeys.657.11076
Figure 7 - Map of the eastern Cape Fold Ecoregion showing confirmed distributions of Pseudobarbus senticeps (turquois diamonds) restricted to the Krom River system), Pseudobarbus swartzi sp. n. (blue squares) (restricted to the Gamtoos River system and the Kabeljous and Seekoei Rivers) and Pseudobarbus afer s.s (red circles)(Baakens, Swartkops and Sundays River systems) based on recent surveys (2000–2016). Additional surveys are required to more accurately map the distribution ranges of these species in the Krom, Gamtoos, Swart, Kabeljous, Baakens and Sundays, and determine the status of populations in the Seekoei and Maitland River systems (open squares).
Figure 2 from: Chakona A, Skelton PH (2017) A review of the Pseudobarbus afer (Peters, 1864) species complex (Teleostei, Cyprinidae) in the eastern Cape Fold Ecoregion of South Africa. ZooKeys 657: 109-140. https://doi.org/10.3897/zookeys.657.11076
Figure 2 - Bayesian phylogenetic tree showing genetic distances between Pseudobarbus afer s. s, Pseudobarbus senticeps and Pseudobarbus swartzi sp. n. and their relationships with the other single barbeled Pseudobarbus species and lineages in the Cape Fold Ecoregion of South Africa. Bayesian posterior probabilities are shown on the branches. The symbols correspond to the distribution map of the three species in Figure 7.
Figure 8 from: Chakona A, Skelton PH (2017) A review of the Pseudobarbus afer (Peters, 1864) species complex (Teleostei, Cyprinidae) in the eastern Cape Fold Ecoregion of South Africa. ZooKeys 657: 109-140. https://doi.org/10.3897/zookeys.657.11076
Figure 8 - a An illustration of part of the Cape Fold Belt showing the drainage of the Gamtoos River system, sites of drainage capture of adjacent river systems and historical direction of flow of captured rivers (modified from Skelton, 1980) b Part of the eastern Cape Fold Ecoregion showing reconstructed Palaeoriver systems during the Last Glacial Maximum (modified from Swartz et al., 2007). The numerals represent present day river systems in the study area for the present study: 1, Krom; 2, Seekoei; 3, Swart; 4, Kabeljous; 5, Gamtoos; 6, Van Stadens; 7, Maitland; 8, Baakens; 9, Swartkops; 10, Coega; 11, Sundays).
Figure 6 from: Chakona A, Skelton PH (2017) A review of the Pseudobarbus afer (Peters, 1864) species complex (Teleostei, Cyprinidae) in the eastern Cape Fold Ecoregion of South Africa. ZooKeys 657: 109-140. https://doi.org/10.3897/zookeys.657.11076
Figure 6 - Preserved colours of Pseudobarbus afer s.s topotype (SAIAB 203790) from the Waterkloof River, Swartkops River system, Pseudobarbus senticeps holotype (SAIAB 304) from the Assegaaibosch River, Krom River system, Pseudobarbus senticeps topotype (SAIAB 200302) from the Assegaaibosch River, Krom River system, and Pseudobarbus swartzi sp. n. holotype (SAIAB 203792) from a tributary of the Wabooms River, Gamtoos River system. Note the differences in the arrangement of melanophores which produces distinct patterns on the latero-ventral scales of the three species.
The ribosome lowers the entropic penalty of protein folding
<p>This dataset contains concatenated MD trajectories for unfolded, isolated FLN5 A3A3 (iso.pdb and iso_traj.xtc) and the unfolded FLN5+31 A3A3 ribosome-nascent chain complex (RNC, nc.pdb and nc_traj.xtc). A representative structure of the ribosome model used in the simulations is also provided (ribosome_sim.pdb). Numpy array files (ending in .npy) contain the weights obtained for every frame in the ensembles after reweighting with PRE-NMR data. Text files including the trajectory frames (1-indexed, frames_nc.ndx and frames_iso.ndx) corresponding to the weights are also included (a few frames were removed because MTSL/spinlabel rotamers could not be accomdated sterically to allow for PRE calculations at protein labelling sites of interest). Both ensembles consist of ~100,000 frames. The FLN5 A3A3 ensemble was generated from ten independent MD trajectories of 2 microseconds, and FLN5+31 A3A3 consists of ten independent simulations lasting 1.5 microseconds (20 and 15 microseconds total, respectively). Independent simulations were initiated from different starting structures. The *.tar files contain initial coordinate files, MD input files and topologies. </p>
Figures 82-84 from: Fernandez N, Theron P, Leiva S (2018) Two new species of the family Nippobodidae (Acari, Oribatida), including a description of the leg-folding process. ZooKeys 781: 109-139. https://doi.org/10.3897/zookeys.781.27389
Figures 82-84 Complementary figures of leg-folding process. SEM observations of Nippobodespanemorfis sp. n. 82. position close to the final stage of the leg-folding process 83 moment when the femur II approaches the back of the femur III 84 femur III and IV, femur III moving towards femoral groove. Scale bars: 200 μm (82); 100 μm (83, 84).
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.