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759 results for “crab spiders”
Figure 7. G1 in Spider Crabs of the Samadinia pulchra complex (Crustacea: Decapoda: Epialtidae)
Figure 7. G1 (A–C, E–I) and G2 (D), left pleonal view. Samadinia pulchra (Miers in Tizard, Moseley, Buchanan & Murray, 1885): (A) holotype, pcl 19.3 mm, Philippines, NHM 1884.31; (B) male (pcl 17.3 mm, cw 11.6 mm), South China Sea, ZRC 1968.2.13.4. Samadinia jimlowryi sp. nov.: (C–D) male holotype (pcl 32.7 mm, cw 22.3 mm), NMV J58025; (E) male (pcl 15.9 mm, cw10.1 mm), Bali, AM P.34657; (F–H) male (pcl 12.3 mm, cw 7.9 mm), male (pcl 20.6 mm, cw 13.6 mm), male (pcl 38.5 mm, cw 26.3 mm), MNHN B29100. Samadinia livermorii (Wood-Mason in Wood-Mason & Alcock, 1891): (I) male (pcl 15.1 mm, cw 10.2 mm), Madagascar, MNHN IU-2011- 5989; (J) male (pcl 20.3 mm, cw 14.6 mm), Indonesia, ZRC 2020.0038. Scale bars: A, C, D, J = 2.0 mm; B, F–I = 1.0 mm, E = 0.5 mm.
Figure 4 in A New Species of Spider Crab of the Genus Leptomithrax Miers, 1876 (Crustacea: Brachyura: Majidae) from New Caledonia
Figure 4. Leptomithrax lowryi sp. nov., holotype male (cl 40.7 mm, pcl 34.3 mm) (MNHN-IU-2022-187), New Caledonia: (A) right side of orbital region (dorsal view); (B) right side of orbital region (ventral view); (C, D) epistome, antennae, antennules, buccal cavity and third maxillipeds; (E) left third maxilliped; (F) posterior view of carapace.
Figure 1 in Phenology and impact of abiotic factors with a temporal lag on the abundance of common crab spider, Xysticus cristatus (Clerck, 1757) (Araneae: Thomisidae) in the agroecosystems of Kashmir
Figure 1. Survey areas of Xysticus cristatus in Kashmir valley (ArcGIS package-version 10.2.2).
Fig. 26 in Kryptochroma: a new genus of bark-dwelling crab spiders (Araneae, Thomisidae)
Fig. 26. Syntypes of Stephanopis salobrensis Mello-Leitão, 1929 (MNHN 3973). A. Male habitus, dorsal view. B. Left palp, ventral view. C. Female habitus, dorsal view. D. Epigynal plate, ventral view.
Fig. 17 in Kryptochroma: a new genus of bark-dwelling crab spiders (Araneae, Thomisidae)
Fig. 17. Male of Kryptochroma septata Machado & Teixeira gen. et sp. nov., paratype (22431). A. Habitus, dorsal view. B. Front. C–F. Left male palp. C, E. Ventral view. D, F. Retrolateral view.
Fig. 11 in Kryptochroma: a new genus of bark-dwelling crab spiders (Araneae, Thomisidae)
Fig. 11. Male of Kryptochroma pentacantha (Mello-Leitão, 1929) gen. et comb. nov. (MCTP 25762). A. Habitus, dorsal view. B. Front. C–F. Left male palp. C, E. Ventral view. D, F. Retrolateral view.
Fig. 4 in Kryptochroma: a new genus of bark-dwelling crab spiders (Araneae, Thomisidae)
Fig. 4.Female of Kryptochroma hilaris Machado & Teixeira gen. etsp. nov. Holotype (MPEG 13322). A. Habitus, dorsal view (arrows indicate the pair of circular taints on the posterior slope of the prosoma. B. Front. C, E. Epigynal plate, ventral view. D, F. Spermathecae, dorsal view.
Fig. 2. A–D in Kryptochroma: a new genus of bark-dwelling crab spiders (Araneae, Thomisidae)
Fig. 2. A–D. Color variations of live specimens of Kryptochroma Machado gen. nov. Photo credits: Thiago Carvalho.
Fig. 27. A–B in Kryptochroma: a new genus of bark-dwelling crab spiders (Araneae, Thomisidae)
Fig. 27. A–B. Female of Epicadus caudatus (Mello-Leitão, 1929) (MCTP 7593) for comparison. A. Habitus, dorsal view. B. Epigynal plate, ventral view. — C–D. Sketches from the original description of Stephanopis stelloides (Walckenaer, 1837). C. Habitus, dorsal view. D. Epigynal plate, ventral view. — E–F. Stephanopis trilobata Mello-Leitão, 1929. Holotype, ♀ (MNHN 21629). E. Habitus, dorsal view. F. Epigynal plate, ventral view.
Supplementary material 6 from: Urfer K, Spasojevic T, Klopfstein S, Baur H, Lasut L, Kropf C (2021) Incongruent molecular and morphological variation in the crab spider Synema globosum (Araneae, Thomisidae) in Europe. ZooKeys 1078: 107-134. https://doi.org/10.3897/zookeys.1078.64116
Morphomatrix of the examined Synema globosum individuals
Supplementary material 2 from: Urfer K, Spasojevic T, Klopfstein S, Baur H, Lasut L, Kropf C (2021) Incongruent molecular and morphological variation in the crab spider Synema globosum (Araneae, Thomisidae) in Europe. ZooKeys 1078: 107-134. https://doi.org/10.3897/zookeys.1078.64116
Genbank and Bold numbers of the Synema globosum specimens that were obtained from these databases
Figure 9 from: Urfer K, Spasojevic T, Klopfstein S, Baur H, Lasut L, Kropf C (2021) Incongruent molecular and morphological variation in the crab spider Synema globosum (Araneae, Thomisidae) in Europe. ZooKeys 1078: 107-134. https://doi.org/10.3897/zookeys.1078.64116
Figure 9 A Shape PC1 plotted against isometric size of 28 males. Colours correspond to the CO1 clades. B PCA Ratio Spectrum for shape PC1. The three specimens with grey symbols could not be included in the molecular analysis and therefore could not be attributed to a clade. Regression lines follow a least-squares model.
Figure 8 from: Urfer K, Spasojevic T, Klopfstein S, Baur H, Lasut L, Kropf C (2021) Incongruent molecular and morphological variation in the crab spider Synema globosum (Araneae, Thomisidae) in Europe. ZooKeys 1078: 107-134. https://doi.org/10.3897/zookeys.1078.64116
Figure 8 Variation in morphology in the male II. A palp with all variable structures B outlines of the palps from two additional males that showadditional variation C–E tips of embolus C Italy, Siena D, E Italy Toskana F–G two out of three individuals where the rta shows a second tip F Greece, Marathonas G Italy, Tuscany. Abbreviations: cy cymbium, et embolus tip, rta retrolateral tibial apophysis, brta base of the retrolateral tibial apophysis, ti tibia, vta ventral tibial apophysis
Supplementary material 1 from: Urfer K, Spasojevic T, Klopfstein S, Baur H, Lasut L, Kropf C (2021) Incongruent molecular and morphological variation in the crab spider Synema globosum (Araneae, Thomisidae) in Europe. ZooKeys 1078: 107-134. https://doi.org/10.3897/zookeys.1078.64116
Coordinates of the collected specimens
Figure 7 from: Urfer K, Spasojevic T, Klopfstein S, Baur H, Lasut L, Kropf C (2021) Incongruent molecular and morphological variation in the crab spider Synema globosum (Araneae, Thomisidae) in Europe. ZooKeys 1078: 107-134. https://doi.org/10.3897/zookeys.1078.64116
Figure 7 Variation in morphology in the male I. A, B habitus males with different colour pattern on femora III and IV A Greece, Marathonas B Portugal C–E Different sizes of palp in ventral view C France, Savoy D Italy, Siena E Greece, Marathonas F–I palp, ventral view, the variation of the retrolateral tibial apophysis and the tibial apophysis F Greece, West Macedonia G Czech Republic, Brno H, I Italy, Tuscany J–M retrolateral view of the palp, variation in the retrolateral tibial apophysis J Czech Republic, Brno K Greece, Attiki L Italy, Siena M Greece, west Macedonia.
Figure 5 from: Urfer K, Spasojevic T, Klopfstein S, Baur H, Lasut L, Kropf C (2021) Incongruent molecular and morphological variation in the crab spider Synema globosum (Araneae, Thomisidae) in Europe. ZooKeys 1078: 107-134. https://doi.org/10.3897/zookeys.1078.64116
Figure 5 CO1 haplotype network of Synema globosum. Nodes represent different haplotypes with the size corresponding to the frequency of the haplotype. The short black lines represent mutations. The colours represent the countries of the origin of the sequences.
Figure 4 from: Urfer K, Spasojevic T, Klopfstein S, Baur H, Lasut L, Kropf C (2021) Incongruent molecular and morphological variation in the crab spider Synema globosum (Araneae, Thomisidae) in Europe. ZooKeys 1078: 107-134. https://doi.org/10.3897/zookeys.1078.64116
Figure 4 ITS2 haplotype network of Synema globosum. Nodes represent haplotypes with the size corresponding to the frequency of the haplotype. The short black lines represent mutations. The colours represent the countries of origin of sequences and have no relation with the CO1 clades.
Figure 3 from: Urfer K, Spasojevic T, Klopfstein S, Baur H, Lasut L, Kropf C (2021) Incongruent molecular and morphological variation in the crab spider Synema globosum (Araneae, Thomisidae) in Europe. ZooKeys 1078: 107-134. https://doi.org/10.3897/zookeys.1078.64116
Figure 3 Bayesian majority rule consensus tree for CO1. The analysis included 72 individuals of Synema globosum and eight outgroup sequences. Node supports represent Bayesian posterior probabilities/ML bootstrap support based on 1,000 replicates; colours correspond to the three distinct clades. The specimen labels contain country information after the specimen number. Four different symbols before each specimen correspond to the states of four scored morphological traits; circles indicate the colour of the opisthosoma, squares the number of teeth on the prolateral claw of leg one, upside triangles the percentage of white colour starting at the base of leg IV in males, downside triangles the entrance state of the vulval hood; black filled symbols indicate a not applicable state (NA).
Figure 1 from: Urfer K, Spasojevic T, Klopfstein S, Baur H, Lasut L, Kropf C (2021) Incongruent molecular and morphological variation in the crab spider Synema globosum (Araneae, Thomisidae) in Europe. ZooKeys 1078: 107-134. https://doi.org/10.3897/zookeys.1078.64116
Figure 1 Map of localities of 72 Synema globosum individuals used for the CO1 phylogeny. The specimens were collected in Portugal, France, Italy, Czech Republic, North Macedonia, Greece, and Turkey. Sequences of specimens from Switzerland, Austria, Germany, and Bulgaria were obtained from BOLD. The colours correspond to the three clades in the CO1 phylogeny of S. globosum.
Supplementary material 3 from: Urfer K, Spasojevic T, Klopfstein S, Baur H, Lasut L, Kropf C (2021) Incongruent molecular and morphological variation in the crab spider Synema globosum (Araneae, Thomisidae) in Europe. ZooKeys 1078: 107-134. https://doi.org/10.3897/zookeys.1078.64116
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Allen Brain Atlas
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Annotated Behaviour and Observability Dataset (ABODe)
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DANDI Archive for NWB datasets
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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.