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.
656
datasets available to search
ShareScore release 0.9.0
Dataset results
656 results for “Tarantula”
Figure 8A-D in Silks and silk-producing organs of Neotropical tarantula Avicularia metallica (Araneae, Mygalomorphae, Theraphosidae)
Figure 8A-D. Amorphous and fibrous structures in attachment fields: A – Spot of amorphous (i.e. nongranular) secretion on the surface of plastic wall with fibrils of various lengths leading from it in numerous places. B – enlarged view of framed section in A. C – Detailed view of surface of the spot. Granular secretion in center of image is the main structural material of a fibril. D – detailed view of fibril (150–170 nm in diameter) with characteristic globular ultrastructure, formed on the underlying layer of nongranular component of silken spot. GS – granular secretion, NGS – nongranular secretion, NF – nanofibril.
Figure 7A-C in Silks and silk-producing organs of Neotropical tarantula Avicularia metallica (Araneae, Mygalomorphae, Theraphosidae)
Figure 7A-C. SEM micrographs of attachment field silk: A – Cut-out section of plastic container, covered with silk of attachment fields – AFS. Places with the highest concentration of nanofibrils appear in the image as whitish spots without clear borders. This silk constitutes an adhesive foundation layer onto which the spider attaches connecting fibers, B – attachment of a connecting fiber (CF) to the substratum covered with adhesive silk. Before joining with the silk of attachment fields, the thick connecting fibers ramify into several thinner fibers with fewer nanofibrils. As the fibers progressively ramify before they are anchored in the AFS-covered substratum, the bundles become gradually less compact until separate nanofibrils remain. C – enlarged view of framed section in B.
Figure 9A-B in Silks and silk-producing organs of Neotropical tarantula Avicularia metallica (Araneae, Mygalomorphae, Theraphosidae)
Figure 9A-B. Connection between nongranular silken secretion and fibrils: A – Solidified drop of amorphous secretion joined with fibrils. B – enlarged view of ultrastructure of silk where the two types of secretion connect.
Fig. 16 in Figs. 18-21 in Using the Integrative Approach to Update a Gap of One Century: Redescription and New Distribution Records of the South American Tarantulas (Araneae: Mygalomorphae: Theraphosidae).
Fig. 16. Mothocya parvostis manca (2.96 mm) infesting a yellowfin seabream Acanthopagrus latus juvenile (12.22 mm). (A–D) Pereopods 3–6, respectively. (E, F) Pleopods 1, 2, respectively. Scale bars = 0.1 mm.
Fig. 14 in Figs. 18-21 in Using the Integrative Approach to Update a Gap of One Century: Redescription and New Distribution Records of the South American Tarantulas (Araneae: Mygalomorphae: Theraphosidae).
Fig. 14. Mothocya parvostis manca (3.12 mm) infesting a cobaltcap silverside Hypoatherina tsurugae juvenile (14.54 mm). (A–D) Pereopods 3–6, respectively. (E, F) Pleopods 1, 2, respectively. Scale bars = 0.1 mm.
Fig. 15 in Figs. 18-21 in Using the Integrative Approach to Update a Gap of One Century: Redescription and New Distribution Records of the South American Tarantulas (Araneae: Mygalomorphae: Theraphosidae).
Fig. 15. Mothocya parvostis manca (2.96 mm) infesting a yellowfin seabream Acanthopagrus latus juvenile (12.22 mm). (A) Body, dorsal view. (B) Cephalon, ventral view. (C) Pleotelson. (D, E) Pereopods 1, 2, respectively. Scale bars: A = 1 mm; B, C = 0.2 mm; D, E = 0.1 mm.
Fig. 12 in Figs. 18-21 in Using the Integrative Approach to Update a Gap of One Century: Redescription and New Distribution Records of the South American Tarantulas (Araneae: Mygalomorphae: Theraphosidae).
Fig. 12. Mothocya parvostis juvenile (6.89 mm) infesting a yellowfin seabream Acanthopagrus latus juvenile (23.27 mm). (A–E) Pereopods 3–7, respectively. (F, G) Pleopods 1, 2, respectively. Scale bars = 0.2 mm.
Fig. 11 in Figs. 18-21 in Using the Integrative Approach to Update a Gap of One Century: Redescription and New Distribution Records of the South American Tarantulas (Araneae: Mygalomorphae: Theraphosidae).
Fig. 11. Mothocya parvostis juvenile (6.89 mm) infesting a yellowfin seabream Acanthopagrus latus juvenile (23.27 mm). (A) Body, dorsal view. (B) Cephalon, ventral view. (C) Pleotelson. (D, E) Pereopods 1, 2, respectively. Scale bars: A–C = 1 mm; D, E = 0.2 mm.
Fig. 10 in Figs. 18-21 in Using the Integrative Approach to Update a Gap of One Century: Redescription and New Distribution Records of the South American Tarantulas (Araneae: Mygalomorphae: Theraphosidae).
Fig. 10. Mothocya parvostis juvenile (7.19 mm) infesting a cobaltcap silverside Hypoatherina tsurugae juvenile (50.84 mm). (A–E) Pereopods 3–7, respectively. (F, G) Pleopods 1, 2, respectively. Scale bars = 0.2 mm.
Fig. 9 in Figs. 18-21 in Using the Integrative Approach to Update a Gap of One Century: Redescription and New Distribution Records of the South American Tarantulas (Araneae: Mygalomorphae: Theraphosidae).
Fig. 9. Mothocya parvostis juvenile (7.19 mm) infesting a cobaltcap silverside Hypoatherina tsurugae juvenile (50.84 mm). (A) Body, dorsal view. (B) Cephalon, ventral view. (C) Pleotelson. (D, E) Pereopods 1, 2, respectively. Scale bars: A–C = 1 mm; D, E = 0.2 mm.
Fig. 7 in Figs. 18-21 in Using the Integrative Approach to Update a Gap of One Century: Redescription and New Distribution Records of the South American Tarantulas (Araneae: Mygalomorphae: Theraphosidae).
Fig. 7. Prevalence of the standard-length range of juveniles of cobaltcap silverside Hypoatherina tsurugae and yellowfin seabream Acanthopagrus latus. Diagonal shading bars (red), dot bars (blue), grid bars (green), and plain bars (light blue) indicate the manca-prevalence, juvenile-prevalence, the percentage of fish parasitised by both mancae and juveniles, and non-infested fishes, respectively. The asterisk indicates no data.
Fig. 13 in Figs. 18-21 in Using the Integrative Approach to Update a Gap of One Century: Redescription and New Distribution Records of the South American Tarantulas (Araneae: Mygalomorphae: Theraphosidae).
Fig. 13. Mothocya parvostis manca (3.12 mm) infesting a cobaltcap silverside Hypoatherina tsurugae juvenile (14.54 mm). (A) Body, dorsal view. (B) Cephalon, ventral view. (C) Pleotelson. (D, E) Pereopods 1, 2, respectively. Scale bars: A = 1 mm; B, C = 0.2 mm; D, E = 0.1 mm.
Fig. 8 in Figs. 18-21 in Using the Integrative Approach to Update a Gap of One Century: Redescription and New Distribution Records of the South American Tarantulas (Araneae: Mygalomorphae: Theraphosidae).
Fig. 8. Neighbor-joining trees showing seven and eight haplotypes of the cytochrome c oxidase subunit I (COI) and 16S rRNA gene infesting juveniles of cobaltcap silverside Hypoatherina tsurugae and yellowfin seabream Acanthopagrus latus along with selected sequences of other cymothoids downloaded from GenBank. Bootstrap values less than 98% are not shown. The accession numbers were deposited in GenBank (under registration).
Fig. 6 in Figs. 18-21 in Using the Integrative Approach to Update a Gap of One Century: Redescription and New Distribution Records of the South American Tarantulas (Araneae: Mygalomorphae: Theraphosidae).
Fig. 6. Prevalence, manca-prevalence, and juvenile-prevalence for each sampling day in juveniles of cobaltcap silverside Hypoatherina tsurugae and yellowfin seabream Acanthopagrus latus. Closed circles (green), closed triangles (blue), and closed squares (red) indicate the prevalence, the mancaprevalence, and the juvenile-prevalence, respectively.
Fig. 4 in Figs. 18-21 in Using the Integrative Approach to Update a Gap of One Century: Redescription and New Distribution Records of the South American Tarantulas (Araneae: Mygalomorphae: Theraphosidae).
Fig. 4. Scatter plots of the standard length of non-infested and infested fish for each sampling date in juveniles of cobaltcap silverside Hypoatherina tsurugae and yellowfin seabream Acanthopagrus latus. The open circles (black) indicate non-infested fish, and the closed triangles (red) indicate infested fish. The solid lines (black) for non-infested fishes and the broken lines (red) for infested fishes are regression lines.
Fig. 3 in Figs. 18-21 in Using the Integrative Approach to Update a Gap of One Century: Redescription and New Distribution Records of the South American Tarantulas (Araneae: Mygalomorphae: Theraphosidae).
Fig. 3. Dorsal and ventral views of Mothocya parvostis infesting juveniles of cobaltcap silverside Hypoatherina tsurugae (A and B) and yellowfin seabream Acanthopagrus latus (C and D). A and C: mancae, B and D: M. parvostis juveniles. Scale bars = 1 mm.
Fig. 5 in Figs. 18-21 in Using the Integrative Approach to Update a Gap of One Century: Redescription and New Distribution Records of the South American Tarantulas (Araneae: Mygalomorphae: Theraphosidae).
Fig. 5. Scatter plots of the standard length of fishes and the total length of M. parvostis in juveniles of cobaltcap silverside Hypoatherina tsurugae and yellowfin seabream Acanthopagrus latus. The solid lines are regression lines.
Fig. 2 in Figs. 18-21 in Using the Integrative Approach to Update a Gap of One Century: Redescription and New Distribution Records of the South American Tarantulas (Araneae: Mygalomorphae: Theraphosidae).
Fig. 2. Juveniles of cobaltcap silverside Hypoatherina tsurugae and yellowfin seabream Acanthopagrus latus infested with Mothocya parvostis. Arrows indicate M. parvostis. Scale bars = 5 mm.
Fig. 1 in Figs. 18-21 in Using the Integrative Approach to Update a Gap of One Century: Redescription and New Distribution Records of the South American Tarantulas (Araneae: Mygalomorphae: Theraphosidae).
Fig. 1. Diagram of cymothoid life cycles including optional intermediate and final hosts. Solid lines indicate migration by freeswimming and broken lines indicate development of cymothoids.
Fig. 1 in Using the Integrative Approach to Update a Gap of One Century: Redescription and New Distribution Records of the South American Tarantulas (Araneae: Mygalomorphae: Theraphosidae).
Fig. 1. Maximum likelihood tree based on the partial sequence of Cytochrome c oxidase subunit I of Grammostola from South America and related Theraphosidae genus. Capital letters above nodes refer to lineages discussed in the text. Numbers close to nodes are the Bayesian posterior probabilities (PPs)/maximum likelihood bootstrap support (ML), respectively. Only nodal support above PP = 0.5 or ML = 50 is displayed ('*' indicates lower support values). Lineage assignments of distance-base (ASAP1 and ASAP2 means first and second best results of ASAP, respectively) and tree-based (bPTP) methods. Habitus photos of male and female of Grammostola pulchra. G. pulchra* means sensu Montes de Oca et al. 2016.
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.