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1,337 results for “genetic variations”
Fig. 3 in Genetic and morphological variation of metacercariae of Microphallus piriformes (Trematoda, Microphallidae): Effects of paraxenia and geographic location
Fig. 3. Bayesian inference based on COI sequence (369 bp); 15000000 generation; GTR + I + G substitution model; A posteriori probabilities are indicated by node shapes; sample name includes parasite species (pir – M. piriformes, pyg – M. pygmaeus, tri – M. triangulatus, sim – M. similis), sample number, geographic region and location (WSk – White Sea, Korga-Islet; WSy – White Sea, Yakovleva; DZe – Barents Sea, Dalnie Zelentsy; Kib - Barents Sea, Kiberg; Tro - Norwegian Sea, Tromsø), host species (sax – L. saxatilis; arc – L. arcana; comp – L. compressa; obt – L. obtusata; fab – L. fabalis). Identical haplotypes and the FST-value of differentiation between populations (Weir, and Cockerham, 1984) are shown in Supplementary Table 1. Branch color reflects geographic region.
Fig. 2 in An Examination Of Call And Genetic Variation In Three Wide-Ranging Southeast Asian Anuran Species
Fig. 2. Spectrograms of Polypedates leucomystax calls from Singapore (top) and Thailand (bottom). Calls are from a single individual in each population. For the Thai individual, call elements did not occur consecutively, but were cut and pasted from a 5 minute recording.
Figure 1 in Morphological and genetic variations of Diplodus vulgaris along the Tunisian coasts
Figure 1. - Locations of sampling sites along the Tunisian coasts. Ì: marine samples. ●: lagoon samples. STS: Siculo-Tunisian Strait. West-Med: Western Mediterranean basin. East-Med: Eastern Mediterranean basin.
Figure 2. - A in Morphological and genetic variations of Diplodus vulgaris along the Tunisian coasts
Figure 2. - A: Location of the 11 landmarks (1-11) used for constructing the truss network on D. vulgaris and the six additional points (12-17) used to draw the conventional linear measurements. Landmarks and additional points illustrated as black dots. Truss network illustrated as continuous lines. Conventional linear measurements illustrated as discontinuous lines. B: Discriminated head region and discrimination related variables.
Figure 3 in Morphological and genetic variations of Diplodus vulgaris along the Tunisian coasts
Figure 3. - DFA scores of morphometric characters using conventional linear measurements and truss elements on the plan DF1-DF2.
Linked collectors and determiners for: Tettigettalna josei (Boulard, 1982) (Hemiptera: Cicadoidea): first record in Spain, with notes on the distribution, genetic variation and behaviour of the species.
Natural history specimen data linked to collectors and determiners held within, "Tettigettalna josei (Boulard, 1982) (Hemiptera: Cicadoidea): first record in Spain, with notes on the distribution, genetic variation and behaviour of the species". Claims or attributions were made on Bionomia by volunteer Scribes, <a href="https://bionomia.net/dataset/88ce1fb7-0566-4486-bd63-9c1fbc422b30">https://bionomia.net/dataset/88ce1fb7-0566-4486-bd63-9c1fbc422b30</a> using specimen data from the dataset aggregated by the Global Biodiversity Information Facility, <a href="https://gbif.org/dataset/88ce1fb7-0566-4486-bd63-9c1fbc422b30">https://gbif.org/dataset/88ce1fb7-0566-4486-bd63-9c1fbc422b30</a>. Formatted as a Frictionless Data package.
Data from: Genetic and functional variation across regional and local scales is associated with climate in a foundational prairie grass
<ul> <li>Global change forecasts in ecosystems require knowledge of within species diversity, particularly of dominant species within communities. We assessed site-level diversity and capacity for adaptation of the dominant species of the shortgrass steppe biome of the Central US, Bouteloua gracilis.</li> <li>We quantified genetic diversity from 17 sites across regional scales, north-south from New Mexico to South Dakota, and local scales in Northern Colorado. We also quantified phenotype and plasticity within and among sites and determined the extent to which phenotypic diversity in B. gracilis was related to climate.</li> <li>Genome sequencing indicated pronounced population structure at the regional scale, and local differences indicated gene flow and/or dispersal may also be limited. Within a common environment, we found evidence for genetic divergence in biomass-related phenotypes, plasticity, and phenotypic variance, indicating functional divergence and different adaptive potential. Phenotypes differentiated according to climate, chiefly median Palmer Hydrological Drought Index and other aridity metrics.</li> <li>Our results indicate conclusive differences in genetic variation, phenotype, and plasticity in this species and suggest a mechanism explaining variation in shortgrass steppe community responses to global change. This analysis of B. gracilis intraspecific diversity across spatial scales will improve conservation and management of the shortgrass steppe ecosystem moving forward.</li> </ul>
Fig. 22. Misgolas linklateri n in Trapdoor Spiders of the Genus Misgolas (Mygalomorphae: Idiopidae) from Eastern New South Wales, With Notes on Genetic Variation
Fig. 22. Misgolas linklateri n.sp. A,E,G?, paratype AM KS5383: (A), right palp retrolateral. (E), right cymbium dorsal. (G), venter. B,C,D,F?, holotype AM KS5460: (B,C), right bulb: B, dorsal; C, prolateral. (D), right tarsus and metatarsus IV retrolateral. (F), venter.
Fig. 21. Misgolas browningi n in Trapdoor Spiders of the Genus Misgolas (Mygalomorphae: Idiopidae) from Eastern New South Wales, With Notes on Genetic Variation
Fig. 21. Misgolas browningi n.sp. A–C,H?, paratype AM KS5418. (A), right palp retrolateral. (B,C), right bulb: B, dorsal; C, prolateral. (H), venter. D–G?, holotype AM KS5437: (D,E), right leg I: D, prolateral; E, retrolateral. (F,G), right leg IV: F, prolateral; G, retrolateral.
Fig. 14. Misgolas watsonorum n in Trapdoor Spiders of the Genus Misgolas (Mygalomorphae: Idiopidae) from Eastern New South Wales, With Notes on Genetic Variation
Fig. 14. Misgolas watsonorum n.sp. A–E?, holotype AM KS22419: (A), right palp retrolateral. (B,C), right bulb: B, dorsal; C, prolateral. (D), venter. (E), right tarsus and metatarsus IV retrolateral. F–H!, allotype AM KS92877: (F), right leg I retrolateral. (G), right leg IV retrolateral. (H), venter. (I), burrow entrance.
Fig. 13. Misgolas crawfordorum n in Trapdoor Spiders of the Genus Misgolas (Mygalomorphae: Idiopidae) from Eastern New South Wales, With Notes on Genetic Variation
Fig. 13. Misgolas crawfordorum n.sp. A–E?, holotype AM KS86231: (A), right palp retrolateral. (B,C), right bulb: B, dorsal; C, prolateral. (D), venter. (E), right leg IV retrolateral. F–H!, allotype AM KS86232. (F), right leg I retrolateral. (G), right leg IV retrolateral. (H), venter. (I),! and? spiders relative sizes. (J),! and? spiders courting. (K), burrow entrance.
Fig. 24. A–D in Trapdoor Spiders of the Genus Misgolas (Mygalomorphae: Idiopidae) from Eastern New South Wales, With Notes on Genetic Variation
Fig. 24. A–D. Distribution of Misgolas species in the New South Wales Central Coast (eastern Australia) based on material examined (Inset [Fig. 24A] with catchment area).
Fig. 12. Misgolas davidwilsoni n in Trapdoor Spiders of the Genus Misgolas (Mygalomorphae: Idiopidae) from Eastern New South Wales, With Notes on Genetic Variation
Fig. 12. Misgolas davidwilsoni n.sp. A–F?, holotype AM KS51761: (A), right palp retrolateral. (B,C), right bulb: B, dorsal; C, prolateral. (D), right tarsus and metatarsus II ventral. (E), right leg IV retrolateral. (F), venter.
Fig. 16. Misgolas fredcoylei n in Trapdoor Spiders of the Genus Misgolas (Mygalomorphae: Idiopidae) from Eastern New South Wales, With Notes on Genetic Variation
Fig. 16. Misgolas fredcoylei n.sp. A–C,E,F?, holotype AM KS36704: (A), right palp retrolateral. (B,C), right bulb: B, dorsal; C, prolateral. D?, paratype AM KS38604: (D), right palp prolateral. (E), venter. (F), right tarsus/metatarsus IV retrolateral.
Fig. 11. Misgolas sydjordanae n in Trapdoor Spiders of the Genus Misgolas (Mygalomorphae: Idiopidae) from Eastern New South Wales, With Notes on Genetic Variation
Fig. 11. Misgolas sydjordanae n.sp. A–H?, holotype AM KS16132: (A), right palp retrolateral. (B,C), right bulb: B, dorsal; C, prolateral. (D), right tarsus and metatarsus IV retrolateral. (E), right cymbium dorsal. (F), venter. (G), right tarsus and metatarsus I retrolateral. (H), right tarsus and metatarsus II retrolateral.
Fig. 9. Misgolas weigelorum n in Trapdoor Spiders of the Genus Misgolas (Mygalomorphae: Idiopidae) from Eastern New South Wales, With Notes on Genetic Variation
Fig. 9. Misgolas weigelorum n.sp. A–F?, holotype AM KS10406: (A), right palp retrolateral. (B,C), right bulb: B,
Fig. 20. Misgolas grayi n in Trapdoor Spiders of the Genus Misgolas (Mygalomorphae: Idiopidae) from Eastern New South Wales, With Notes on Genetic Variation
Fig. 20. Misgolas grayi n.sp. A–E?, holotype AM KS86203: (A), right palp retrolateral. (B,C), right bulb: B, dorsal; C, prolateral. (D), carapace. (E), venter. (F–I)!, allotype AM KS69976: F, venter; G, right tarsus and metatarsus IV retrodorsal; H, carapace; I, spider at burrow entrance (photo by Garry K. Smith). (J), burrows of unidentified spiders at Wootton, NSW.
Fig. 7. Misgolas yorkmainae n in Trapdoor Spiders of the Genus Misgolas (Mygalomorphae: Idiopidae) from Eastern New South Wales, With Notes on Genetic Variation
Fig. 7. Misgolas yorkmainae n.sp. A–J?, holotype AM KS38616. (A), right palp retrolateral. (B,C), right bulb: B, dorsal; C, prolateral. (D), left cymbium dorsal. (E,F), right tarsus and metatarsus I: E, prolateral; F, retrolateral. (G,H), right tarsus and metatarsus II: G, prolateral; H, retrolateral. (I), right tarsus and metatarsus IV retrolateral. (J), venter.
Fig. 17. Misgolas billsheari n in Trapdoor Spiders of the Genus Misgolas (Mygalomorphae: Idiopidae) from Eastern New South Wales, With Notes on Genetic Variation
Fig. 17. Misgolas billsheari n.sp. A–J?, holotype AM KS86222: (A), right palp retrolateral. (B,C), right bulb: B, dorsal; C, prolateral. (D), venter. (E), dorsum. (F,G), right tarsus/metatarsus joint I: F, prolateral; G, retrolateral. (H,I), right tarsus/metatarsus joint II: H, prolateral; I, retrolateral. (J), right tarsus and metatarsus IV retrolateral.
Fig. 6. Misgolas campbelli n in Trapdoor Spiders of the Genus Misgolas (Mygalomorphae: Idiopidae) from Eastern New South Wales, With Notes on Genetic Variation
Fig. 6. Misgolas campbelli n.sp. A–I?, holotype AM KS44302. (A), right palp retrolateral. (B,C), right bulb: B, dorsal; C, prolateral. (D), venter. (E,F), right tarsus and metatarsus I: E, prolateral; F, retrolateral. (G,H), right tarsus and metatarsus II: G, prolateral; H, retrolateral. (I), carapace.
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Allen Brain Atlas
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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.
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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.
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