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.
762
datasets available to search
ShareScore release 0.9.0
Dataset results
762 results for “Spider phylogeny”
Figure 68. Selkirkiella magallanes. A, B, D–F, female. A in Morphological phylogeny of cobweb spiders and their relatives (Araneae, Araneoidea, Theridiidae)
Figure 68. Selkirkiella magallanes. A, B, D–F, female. A, labium (la) and tips of chelicera. B, cheliceral promarginal teeth. C, epiandrous gland spigots. D, spinnerets. E, PLS. F colulus (arrow). G, epigynum. Scale bars: A, D–G, 100 Mm. B, 20 Mm. C, 50 Mm.
Figure 61. Pholcomma hirsutum. A–F, male. A, sternum. B in Morphological phylogeny of cobweb spiders and their relatives (Araneae, Araneoidea, Theridiidae)
Figure 61. Pholcomma hirsutum. A–F, male. A, sternum. B, close-up of sternal 'scaly ridges' (123-3). C–F, spinnerets. C, all (female spinnerets are identical, except for the presence of CY). D, left field. E, PLS; note functional araneoid triplet (219-1). F, 'leaf shaped' colulus, a putative synapomorphy of Pholcomma and relatives. G, epigynum. Scale bars: A, 100 Mm. B, D, E, G, 10 Mm. C, F, 20 Mm.
Figure 62 in Morphological phylogeny of cobweb spiders and their relatives (Araneae, Araneoidea, Theridiidae)
Figure 62. Phoroncidia sp., male. A–D, palp. A, mesial; note spines on tegulum, such spines are also present in Sternodes foraminatus Butler (see Moran, 1986), originally in Palpimanidae, later made the type of Sternodidae (Moran, 1986) and then transferred to Malkaridae by Platnick & Forster (1987). Sternodes shares several additional features with Phoroncidia. B, ventral. C, dorsal. D, close-up of tegular spines (TS). E, prosoma, head shape is typical for males of this genus (103-2). F, stridulatory area of abdomen, highly reduced. G, posterior end of prosoma, no stridulatory ridges visible (150-0). H, epiandrous gland spigots. Scale bars: A–C, E–G, 100 Mm. D, H, 10 Mm.
Figure 55. Latrodectus geometricus. A–E, female. A, epigynum. B in Morphological phylogeny of cobweb spiders and their relatives (Araneae, Araneoidea, Theridiidae)
Figure 55. Latrodectus geometricus. A–E, female. A, epigynum. B, fourth tarsal claws and accessory claws (Acl). C, ALS. D, PMS and PLS. E, cheliceral claws. F–H, male. F, epiandrous gland spigots (arrows). G, right spinning field, the triplet is nonfunctional (arrow, 219-0). H, details of a fleshy, triangular colulus (172-0, 173-0), bearing two basal and one central setae (arrows, 174-0, 175-0). Scale bars: A, B, E, 100 Mm; C, D, 50 Mm; F, G, 20 Mm; H, 10 Mm.
Figure 42. Crustulina guttata. A–E, male palp. A, mesial. B in Morphological phylogeny of cobweb spiders and their relatives (Araneae, Araneoidea, Theridiidae)
Figure 42. Crustulina guttata. A–E, male palp. A, mesial. B, ventral; note cymbial apophysis (CA, 24-1). C, ectal. D, embolus base with apophysis and ridges. E, femur and tibia with a single trichobothrium (18-2, 19-2). F, male SPR. G, male prosomal stridulatory ridges. H, Crustulina sticta female SPR; note pair of lyriform organs (rows of slit sensilla) at side of pedicel (141-0). Scale bars: A–C, E, F, 100 Mm; D, G, H, 50 Mm.
Figure 40. Chrysso nigriceps. A, epiandrous gland spigots. B, epigynum. C, prolateral cheliceral teeth. D, retrolateral teeth. E, F, male prosoma. E, lateral view. F in Morphological phylogeny of cobweb spiders and their relatives (Araneae, Araneoidea, Theridiidae)
Figure 40. Chrysso nigriceps. A, epiandrous gland spigots. B, epigynum. C, prolateral cheliceral teeth. D, retrolateral teeth. E, F, male prosoma. E, lateral view. F, posterior tip. Scale bars: A, 10 Mm; B, C, 50 Mm; D, 20 Mm; E, F, 100 Mm.
Figure 44. Enoplognatha ovata, male. A–E, palp. A, mesial. B, ventral. C, ectal. D in Morphological phylogeny of cobweb spiders and their relatives (Araneae, Araneoidea, Theridiidae)
Figure 44. Enoplognatha ovata, male. A–E, palp. A, mesial. B, ventral. C, ectal. D, BC-lock mechanism. E, dorsal tibia with three trichobothria (arrows). F, epiandrous gland spigots. G, ridged stridulatory picks. H, stridulatory ridges on prosoma. I, chelicera. Scale bars: A, E, G–I, 100 Mm; B, C, F, 50 Mm; D, 10 Mm.
Figure 46. Episinus maculipes, male. A–E, palp. A, mesial. B, ventral. C, ectal. D in Morphological phylogeny of cobweb spiders and their relatives (Araneae, Araneoidea, Theridiidae)
Figure 46. Episinus maculipes, male. A–E, palp. A, mesial. B, ventral. C, ectal. D, close-up ventral. E, apical. F, prosoma with palp; the palp of Episinus, almost as large as the prosoma, is one of the relatively largest sperm transfer organs in the animal kingdom. G, prosoma dorsal view. Scale bars: 100 Mm.
Figure 38. Cerocida strigosa, female. A, prosoma. B–D, spinnerets. B, a in Morphological phylogeny of cobweb spiders and their relatives (Araneae, Araneoidea, Theridiidae)
Figure 38. Cerocida strigosa, female. A, prosoma. B–D, spinnerets. B, a small colulus (173-1), bearing two (175-1) long setae. C, all. D, PMS and PLS; note dimorphism of AGs. E, pedicel area of abdomen; note reduced number of proprioreceptors and absence of stridulatory picks (150-0, male is similar). F, epigastric furrow, the small epigynum (arrow) has a slit-like opening (5-1). Scale bars: A, E, F, 100 Mm; B, C, 50 Mm; D, 10 Mm.
Figure 15. Anelosimus analyticus. A–D, male palp. A, mesial. B, ventral. C, ectal. D in Morphological phylogeny of cobweb spiders and their relatives (Araneae, Araneoidea, Theridiidae)
Figure 15. Anelosimus analyticus. A–D, male palp. A, mesial. B, ventral. C, ectal. D, details of E and T. E, female cheliceral promargin. F, epiandrous gland spigots. G, epigynum. Scale bars: A–C, 100 mm; D, G, 50 mm; E, F, 20 mm.
Figure 13. Ameridion, male. A–C in Morphological phylogeny of cobweb spiders and their relatives (Araneae, Araneoidea, Theridiidae)
Figure 13. Ameridion, male. A–C, Ameridion nr. petrum, palp. A, mesial. B, ventral; note elongated tibia. C, ventral closeup. D, E, Ameridion sp. palp. D, mesial. E, expanded; note cymbial outgrowth containing Chd (22-1). F, Ameridion nr. petrum, prosoma and left palp; note basal cheliceral knobs (upper arrow, 115-1) and a relatively long palpal tibia (lower arrow). Scale bars, A–C, E, F, 100 mm; D, 50 mm.
Figure 37. Cerocida strigosa, male. A–C, palp. A, mesial. B in Morphological phylogeny of cobweb spiders and their relatives (Araneae, Araneoidea, Theridiidae)
Figure 37. Cerocida strigosa, male. A–C, palp. A, mesial. B, ventral; note enormous TTA (84-1), C, dorsal. D, cheliceral fang and teeth. E, fourth tarsal claws, the edentate, thin claws are unusual. F, genital furrow, epiandrous gland spigots absent (168-1). G, posterior tip of prosoma, the cylindrical extension presumably mimics an ant's thorax. Scale bars: A–C, 50 Mm; D, E, 10 Mm; F, 20 Mm; G, 100 Mm.
Figure 41. Coleosoma floridanum. A, B, male palp. A, ventral. B, ectal. C, chelicera. D, prolateral cheliceral teeth. E, abdominal SPR. F, prosomal stridulatory ridges. G in Morphological phylogeny of cobweb spiders and their relatives (Araneae, Araneoidea, Theridiidae)
Figure 41. Coleosoma floridanum. A, B, male palp. A, ventral. B, ectal. C, chelicera. D, prolateral cheliceral teeth. E, abdominal SPR. F, prosomal stridulatory ridges. G, epigynum. Scale bars: A, B, E–G, 50 Mm; C, 100 Mm; D, 20 Mm.
Figure 3. A–E in Systematics of the spider genus Metabus O. P.-Cambridge, 1899 (Araneoidea: Tetragnathidae) with additions to the tetragnathid fauna of Chile and comments on the phylogeny of Tetragnathidae
Figure 3. A–E, male genital anatomy of Metabus ocellatus. A, pedipalp ventral view. B, ectal view. C, dorsal view. D, apical view. E, mesal view. F, Leucauge venusta male pedipalp.
Figure 15. Metabus conacyt. A, female habitus. C, epigynum ventral view. C, caudal view. D, ventral view cleared. E, dorsal view cleared. F–G, male pedipalp. F, ectal view. G, ventral view. H, mesal view. Scale bars 0.2 in Systematics of the spider genus Metabus O. P.-Cambridge, 1899 (Araneoidea: Tetragnathidae) with additions to the tetragnathid fauna of Chile and comments on the phylogeny of Tetragnathidae
Figure 15. Metabus conacyt. A, female habitus. C, epigynum ventral view. C, caudal view. D, ventral view cleared. E, dorsal view cleared. F–G, male pedipalp. F, ectal view. G, ventral view. H, mesal view. Scale bars 0.2 mm, except in habitus 1 mm.
Figures 23-27 from: Maddison W, Li D, Bodner M, Zhang J, Xin X, Liu Q, Liu F (2014) The deep phylogeny of jumping spiders (Araneae, Salticidae). ZooKeys 440: 57-87. https://doi.org/10.3897/zookeys.440.7891
Figures 23-27 - Phylogeny from gene regions analyzed alone, complete taxon sample. 23 myosin HC 24 actin 5C 25 Histone 3 26 CO1 27 16sND1. Colors of branches are the same as those highlighting taxa in Fig. 14.
Figures 20-22 from: Maddison W, Li D, Bodner M, Zhang J, Xin X, Liu Q, Liu F (2014) The deep phylogeny of jumping spiders (Araneae, Salticidae). ZooKeys 440: 57-87. https://doi.org/10.3897/zookeys.440.7891
Figures 20-22 - Phylogeny from gene regions analyzed alone, complete taxon sample. 20 28s 21 18s 22 wingless. Colors of branches are the same as those highlighting taxa in Fig. 14.
Figures 16-17 from: Maddison W, Li D, Bodner M, Zhang J, Xin X, Liu Q, Liu F (2014) The deep phylogeny of jumping spiders (Araneae, Salticidae). ZooKeys 440: 57-87. https://doi.org/10.3897/zookeys.440.7891
Figures 16-17 - Phylogeny from Non-salticoid dataset, All Genes analysis. Numbers beside branches show percentage of RAxML likelihood bootstrap replicates with clade. 16 Non-salticoid analysis with all taxa included (1500 bootstrap replicates used) 17 Non-salticoid analysis with Eupoa, Spartaeus spinimanus, and "Spartaeus" uplandicus excluded (500 bootstrap replicates used). Colors of branches are the same as those highlighting taxa in Fig. 14.
Figures 18-19 from: Maddison W, Li D, Bodner M, Zhang J, Xin X, Liu Q, Liu F (2014) The deep phylogeny of jumping spiders (Araneae, Salticidae). ZooKeys 440: 57-87. https://doi.org/10.3897/zookeys.440.7891
Figures 18-19 - Phylogeny from Salticoida dataset, All Genes analysis. 18 Salticoida analysis with all taxa included 19 Salticoida analysis with Agorius and Synagelides excluded. Numbers beside branches show percentage of 1000 RAxML likelihood bootstrap replicates with clade. Colors of branches are the same as those highlighting taxa in Fig. 14.
Figure 15 from: Maddison W, Li D, Bodner M, Zhang J, Xin X, Liu Q, Liu F (2014) The deep phylogeny of jumping spiders (Araneae, Salticidae). ZooKeys 440: 57-87. https://doi.org/10.3897/zookeys.440.7891
Figure 15 - Phylogeny from complete taxon sample, All Genes analysis. Numbers beside branches show percentage of 1000 RAxML likelihood bootstrap replicates with clade in analysis with Eupoa and agoriines excluded. In analyses with these taxa included (500 bootstrap replicates), bootstrap percentages are within 5 of those shown, except for branches with two values (e.g. "100/60"), in which case the first value is from an analysis with Eupoa and agoriines excluded, the second value with them included. Colors of branches are the same as those highlighting taxa in Fig. 14.
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.