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Appendix Morphometric parameters of Chaetonotus (Chaetonotus) antrumus Kolicka sp. nov. Abbreviations: N = number of specimens or structures analysed; Range = the smallest and the largest structure measurement found among all specimens measured; SD = standard deviation. All measurements are given in micrometers (μm); all indicators are given as a percentage (%) and italicized. in A new species of freshwater Chaetonotidae (Gastrotricha, Chaetonotida) from Obodska Cave (Montenegro) based on morphological and molecular characters
Appendix Morphometric parameters of Chaetonotus (Chaetonotus) antrumus Kolicka sp. nov. Abbreviations: N = number of specimens or structures analysed; Range = the smallest and the largest structure measurement found among all specimens measured; SD = standard deviation. All measurements are given in micrometers (μm); all indicators are given as a percentage (%) and italicized.
Fig. 10 in A new species of freshwater Chaetonotidae (Gastrotricha, Chaetonotida) from Obodska Cave (Montenegro) based on morphological and molecular characters
Fig. 10. Chaetonotus (Chaetonotus) antrumus Kolicka sp. nov., juvenile specimen, differential interference contrast microphotographs. A. Body, dorsal view. B. Body, internal view. C. Ventral body view. D. Dorsal view of scales. E. Dorsal view of spines.
Fig. 9 in A new species of freshwater Chaetonotidae (Gastrotricha, Chaetonotida) from Obodska Cave (Montenegro) based on morphological and molecular characters
Fig. 9. Chaetonotus (Chaetonotus) antrumus Kolicka sp. nov., bright field microphotographs. A. Lateral view of scales on trunk. B. Lateral view of spines on trunk.
Fig. 8 in A new species of freshwater Chaetonotidae (Gastrotricha, Chaetonotida) from Obodska Cave (Montenegro) based on morphological and molecular characters
Fig. 8. Chaetonotus (Chaetonotus) antrumus Kolicka sp. nov., bright field microphotographs. A. Dorsal view of scales on trunk region. B. Dorsal view of spines on trunk region. C. Ventral view of scales on trunk region. D. Ventral view of spines on trunk region. E. Dorsal view of scales on posterior trunk region. F. Dorsal view of spines on posterior trunk region. G. Dorsal view of scales on furcal base and furcal appendages. H. Ventral view of posterior trunk region with visible interciliary field scales and posteriormost interciliary field scales.
Fig. 7 in A new species of freshwater Chaetonotidae (Gastrotricha, Chaetonotida) from Obodska Cave (Montenegro) based on morphological and molecular characters
Fig. 7. Chaetonotus (Chaetonotus) antrumus Kolicka sp. nov. A. Dorsal view of scales on head and neck. B. Dorsal view of spines on head and neck. C. Internal view of head and neck. D. Head and neck, ventral view. (Bright field microphotographs.)
Fig. 6 in A new species of freshwater Chaetonotidae (Gastrotricha, Chaetonotida) from Obodska Cave (Montenegro) based on morphological and molecular characters
Fig. 6. Chaetonotus (Chaetonotus) antrumus Kolicka sp. nov., schematic drawings of the posterior trunk region, furcal base and furcal appendages.
Fig. 11 in A new species of freshwater Chaetonotidae (Gastrotricha, Chaetonotida) from Obodska Cave (Montenegro) based on morphological and molecular characters
Fig. 11. Phylogenetic relationships of Chaetonotidae inferred from the Bayesian analysis of 18S rRNA, 28S rRNA and COI sequence data (for details on the species names see Table 3).
Fig. 4 in A new species of freshwater Chaetonotidae (Gastrotricha, Chaetonotida) from Obodska Cave (Montenegro) based on morphological and molecular characters
Fig. 4. Chaetonotus (Chaetonotus) antrumus Kolicka sp. nov., schematic drawings. A. Dorsal body view. B. Internal body view. C. Ventral body view.
Fig. 5 in A new species of freshwater Chaetonotidae (Gastrotricha, Chaetonotida) from Obodska Cave (Montenegro) based on morphological and molecular characters
Fig. 5. Chaetonotus (Chaetonotus) antrumus Kolicka sp. nov., schematic drawings of the scales. A. Head region scales. B. Neck region scales. C. Trunk region scales. D. Ventral interciliary field scales. E. Posteriormost ventral field scales. F, H. Furcal appendages dorsolateral one–lobed scales. G. Furcal appendages dorsal three-lobed scales.
Fig. 3 in A new species of freshwater Chaetonotidae (Gastrotricha, Chaetonotida) from Obodska Cave (Montenegro) based on morphological and molecular characters
Fig. 3. Photographs of Obodska Cave. A. Entrance to the Cave. B. Sampling area inside the Cave. (Photographs by Przemysław Śmietana.)
Text-fig. 9. Phylogenetic tree indicating the number of required character state changes (steps) under parsimony for various positions of Miranthus gen. nov. in a molecular based backbone tree (see material and methods for additional details). in Early Flowers Of Primuloid Ericales From The Late Cretaceous Of Portugal And Their Ecological And Phytogeographic Implications
Text-fig. 9. Phylogenetic tree indicating the number of required character state changes (steps) under parsimony for various positions of Miranthus gen. nov. in a molecular based backbone tree (see material and methods for additional details).
Figure 5 A–B in Phylogenetic relationships of the bacchine Flower Flies (Diptera: Syrphidae) based on molecular characters, with a description of a new species of Melanostoma (Schiner, 1860)
Figure 5 A–B: Melanostoma quadripunctatum (Skevington & Thompson, 2014) comb. nov., male holotype. A, lateral view; B, habitus. C, Melanostoma janeceki Mengual, sp. nov., male holotype, ventral view. D, Melanostoma janeceki Mengual, sp. nov., male paratype (ZFMK-DIP-00015941), detail of metasternum (ms). E, Melanostoma janeceki Mengual, sp. nov., female paratype (ZFMK-DIP-00015957), ventral view. F, Melanostoma quadripunctatum, female (ZFMK-DIP-00015952), ventral view.
Figure 4 A–B in Phylogenetic relationships of the bacchine Flower Flies (Diptera: Syrphidae) based on molecular characters, with a description of a new species of Melanostoma (Schiner, 1860)
Figure 4 A–B: Melanostoma sp. from Cameroon (ZFMK-DIP-00015959) with complete metasternum. A, lateral view; B, habitus. C–H: Platycheirus solitarius (van Doesburg, 1955) comb. nov. C, female holotype, lateral view; D, female holotype, habitus; E, female holotype, Downloaded frontal from view; F, Brill. female com 12/ holotype 12/2023, labels 03:06;: G 37, PM female paratype, lateral viewvia; H, Open femaleAccess. paratypeThis, is headan, open lateralaccess view. article distributed under the terms of the CC-BY 4.0 License. https://creativecommons.org/licenses/by/4.0/
Figure 2 in Phylogenetic relationships of the bacchine Flower Flies (Diptera: Syrphidae) based on molecular characters, with a description of a new species of Melanostoma (Schiner, 1860)
Figure 2 Maximum-likelihood tree based on the combined dataset (COI, 28S, and 18S) using Garli v.2.1.17 and the structural alignment for 28S and 18S. Bootstrap support values (above) and Bayesian posterior probabilities (below) are depicted at the nodes (only>50 or>0.5, respectively). BS = Bootstrap support Downloaded from Brill.com 12/12/2023 03:06:37PM values; PP = Bayesian posteriorvia Open probabilities Access.. This is an open access article distributed under the terms of the CC-BY 4.0 License. https://creativecommons.org/licenses/by/4.0/
Figure 1 50 in Phylogenetic relationships of the bacchine Flower Flies (Diptera: Syrphidae) based on molecular characters, with a description of a new species of Melanostoma (Schiner, 1860)
Figure 1 50% majority rule consensus cladogram produced from Bayesian analysis of COI data. Bayesian posterior probabilities are shown at each node.
Figure 3 in Phylogenetic relationships of the bacchine Flower Flies (Diptera: Syrphidae) based on molecular characters, with a description of a new species of Melanostoma (Schiner, 1860)
Figure 3 Melanostoma janeceki Mengual, sp. nov. A, male holotype (ZFMK-DIP-00015940), lateral view; B, female paratype (ZFMK-DIP-00015958), lateral view; C, male holotype, habitus; D, female paratype (ZFMK-DIP-00015958), habitus; E, male holotype, frontal Downloadedview; F, fromfemale Brill.com paratype12/12 (/ ZFMK- 2023 03:06:37PM DIP-00015958), frontal view; G,via maleOpen holotype Access,. labels This; H is, an femaleopenparatype access (article ZFMK-DIP-distributed 00015958), underlabelsthe. terms of the CC-BY 4.0 License. https://creativecommons.org/licenses/by/4.0/
Figure 32 in New species of Paratya (Decapoda: Atyidae) from Australian inland waters - linking morphological characters with molecular lineages
Figure 32. Distribution of material examined in this study: a, P. arrostra; b, P. whitemae; c, P. tasmaniensis. Maps created in Cartographica.
Figure 31 in New species of Paratya (Decapoda: Atyidae) from Australian inland waters - linking morphological characters with molecular lineages
Figure 31. Paratya gariwerdensis sp. nov.: a, pereiopod 3; b, dactylus 3; c, pereiopod 4; d, dactylus 4; e, pereiopod 5; f, dactylus 5; g, telson; h, telson terminal spines; i, pleopod 1 of female; j, endopod of pleopod 1 of male. Scale lines 0.2 mm.
Figure 29 in New species of Paratya (Decapoda: Atyidae) from Australian inland waters - linking morphological characters with molecular lineages
Figure 29. Paratya rouxi sp. nov.: a, pereiopod 4; b, dactylus 4; c, pereiopod 5; d, dactylus 5; e, telson; f, telson terminal spines; g, pleopod 1 of female; h, pleopod 1 of male; i, endopod 1 of male. Scale lines 0.2 mm.
Figure 28 in New species of Paratya (Decapoda: Atyidae) from Australian inland waters - linking morphological characters with molecular lineages
Figure 28. Paratya rouxi sp. nov.: a, maxilliped 3; b, pereiopod 1; c, pereiopod 2; d, pereiopod 3; e, dactylus 3. Scale lines 0.2 mm.
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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)
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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.