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Figure 10 in Two new species of Bonnetina tarantulas (Theraphosidae: Theraphosinae) from Mexico: contributions to morphological nomenclature and molecular characterization of types
Figure 10. Bonnetina juxtantricola sp. n. Male holotype, left pedipalpal bulb, stereomicroscope images. (A) Prolateral view; (B) retrolateral view; (C); dorsal view; (D) ventral view Scale line: 1 mm.
Figure 9 in Two new species of Bonnetina tarantulas (Theraphosidae: Theraphosinae) from Mexico: contributions to morphological nomenclature and molecular characterization of types
Figure 9. Bonnetina juxtantricola sp. n. Male holotype. (A) Carapace; (B) posterior margin of carapace, showing thick erect setae; (C) ocular area, lateral view; (D) ocular area, dorsal view; (E) sternum; (F) labium and maxillae. Scale lines: 1 mm.
Figure 8 in Two new species of Bonnetina tarantulas (Theraphosidae: Theraphosinae) from Mexico: contributions to morphological nomenclature and molecular characterization of types
Figure 8. Bonnetina tenuiverpis sp. n. (A) Type locality (near Zuluapan, State of Mexico, Mexico); (B) landscape surrounding type locality. Photos by Carlos E. Santibáñez.
Figure 13 in Two new species of Bonnetina tarantulas (Theraphosidae: Theraphosinae) from Mexico: contributions to morphological nomenclature and molecular characterization of types
Figure 13. Bonnetina juxtantricola sp. n. Female allotype. (A) Carapace; (B) posterior margin of carapace, showing thick erect setae; (C) ocular area, dorsal view; (D) sternum; (E) labium and maxillae; (F) spermatheca, dorsal view; (G) spermatheca, ventral view. Scale lines: 1 mm.
Figure 5 in Two new species of Bonnetina tarantulas (Theraphosidae: Theraphosinae) from Mexico: contributions to morphological nomenclature and molecular characterization of types
Figure 5. Bonnetina tenuiverpis sp. n. Male holotype. (A) Left tibia–metatarsus I joint, ventral view, showing prolateral (left) and retrolateral (right) apophyses; (B) left tibia–metatarsus I joint, retrolateral view, showing retrolateral (left) and accessory (front) apophyses and nodule of granules; (C) left metatarsus I, prolateral view. Arrow indicates nodule of granules. Scale lines: 0.5 mm.
Figure 4 in Two new species of Bonnetina tarantulas (Theraphosidae: Theraphosinae) from Mexico: contributions to morphological nomenclature and molecular characterization of types
Figure 4. Bonnetina tenuiverpis sp. n. Male holotype, left pedipalpal bulb, SEM images. (A) Embolus apical half, prolateral view; (B) embolus apex, ventral–frontal view; (C) apex, prolateral view; (D) apex, frontal view. Arrow colours represent keels: prolateral superior (black), sperm pore (white), dorsal (grey) and prolateral inferior (hatched). Chevron: sperm pore. Scale lines: 10 µm (except A: 100 µm).
Figure 12 in Two new species of Bonnetina tarantulas (Theraphosidae: Theraphosinae) from Mexico: contributions to morphological nomenclature and molecular characterization of types
Figure 12. Bonnetina juxtantricola sp. n. Male holotype. (A) Left tibia–metatarsus I joint, ventral view, showing prolateral (left) and retrolateral (right) apophyses; (B) left tibia–metatarsus I joint, retrolateral view, showing retrolateral (left) and accessory (front) apophyses and nodule of granules; (C) left metatarsus I, prolateral view. White arrows: nodule of granules; grey arrows: basal metatarsi I rounded structures. Scale lines: 1 mm.
Figure 11 in Two new species of Bonnetina tarantulas (Theraphosidae: Theraphosinae) from Mexico: contributions to morphological nomenclature and molecular characterization of types
Figure 11. Bonnetina juxtantricola sp. n. Male holotype, right pedipalpal bulb, SEM images. (A) Embolus, prolateral view; (B) sperm pore; (C) embolus, ventral–retrolateral view; (D) apex, frontal view. Arrow colours represent keels: prolateral superior (black), sperm pore (white), prolateral sub-apical (grey) and prolateral inferior (hatched). Chevron: sperm pore.
Figure 7 in Two new species of Bonnetina tarantulas (Theraphosidae: Theraphosinae) from Mexico: contributions to morphological nomenclature and molecular characterization of types
Figure 7. Bonnetina tenuiverpis sp. n. Spermathecae. (A) Female allotype, dorsal view; (B) female allotype, ventral view; (C) female paratype AMNH, dorsal view; (D) female paratype CNAN-T0757, dorsal view. Scale lines: 1 mm.
Figure 6 in Two new species of Bonnetina tarantulas (Theraphosidae: Theraphosinae) from Mexico: contributions to morphological nomenclature and molecular characterization of types
Figure 6. Bonnetina tenuiverpis sp. n. Female allotype. (A) Carapace; (B) posterior margin of carapace, showing thin setae; (C) ocular area, dorsal view; (D) sternum; (E) labium and maxillae; (F) ventral view of metatarsus and tarsus of left leg III. Scale lines: 1 mm.
Figure 1 in Two new species of Bonnetina tarantulas (Theraphosidae: Theraphosinae) from Mexico: contributions to morphological nomenclature and molecular characterization of types
Figure 1. Bonnetina tenuiverpis sp. n. Habitus. (A) Male holotype; (B) female allotype. Scale line: 10 mm. Photos by David Ortiz.
Supplementary material 1 from: Knapp S, Chiarini F, Cantero JJ, Barboza GE (2020) The Morelloid clade of Solanum L. (Solanaceae) in Argentina: nomenclatural changes, three new species and an updated key to all taxa. PhytoKeys 164: 33-66. https://doi.org/10.3897/phytokeys.164.54504
SM 1 – all morelloid species
Figure 1 from: Knapp S, Chiarini F, Cantero JJ, Barboza GE (2020) The Morelloid clade of Solanum L. (Solanaceae) in Argentina: nomenclatural changes, three new species and an updated key to all taxa. PhytoKeys 164: 33-66. https://doi.org/10.3897/phytokeys.164.54504
Figure 1 Solanum hunzikeri Chiarini & Cantero (A–C) compared to S. tweedieanum Hook. (D–F) and S. physalidicalyx Bitter (G–I) A habit (Barboza et al. 4763) B calyx morphology of developing fruits (Barboza et al. 4763) C leaf from mature stem (Barboza et al. 4763) D habit (Barboza et al. 3496) E calyx morphology of developing fruits (Barboza et al. 4798) F leaf from mature stem (Barboza et al. 4798) G habit (Barboza et al. 3983) H calyx morphology of developing fruits (Barboza et al. 3983) I leaf from mature stem (Barboza et al. 3983). Photos A–C, E, F by M. Gritti, D by S. Knapp, G–I by G.E. Barboza.
Supplementary material 2 from: Knapp S, Chiarini F, Cantero JJ, Barboza GE (2020) The Morelloid clade of Solanum L. (Solanaceae) in Argentina: nomenclatural changes, three new species and an updated key to all taxa. PhytoKeys 164: 33-66. https://doi.org/10.3897/phytokeys.164.54504
SM 2– the three new species described here
Figure 7 from: Knapp S, Chiarini F, Cantero JJ, Barboza GE (2020) The Morelloid clade of Solanum L. (Solanaceae) in Argentina: nomenclatural changes, three new species and an updated key to all taxa. PhytoKeys 164: 33-66. https://doi.org/10.3897/phytokeys.164.54504
Figure 7 Solanum tiinae Barboza & S. Knapp A habit (Barboza et al. 3491) B details of the attenuate leaf base and winged stems with antrorse trichomes (Barboza et al. 3491) C flower bud (Barboza et al. 3496) D inflorescence (Barboza et al. 3491) E flowers at anthesis, note the changing colour and size (Barboza et al. 3491) F mature fruits (Barboza et al. 3491). All photographs by S. Knapp.
Figure 2 from: Knapp S, Chiarini F, Cantero JJ, Barboza GE (2020) The Morelloid clade of Solanum L. (Solanaceae) in Argentina: nomenclatural changes, three new species and an updated key to all taxa. PhytoKeys 164: 33-66. https://doi.org/10.3897/phytokeys.164.54504
Figure 2 Solanum hunzikeri Chiarini & Cantero A flowering stem B inflorescence C flower D open flower E immature fruit showing the accrescent calyx not completely covering the berry F flower showing pubescent adaxial surface of the filaments G calyx H style with pubescence confined to the portion inside the anther cone I adaxial surface of the anther showing the pores elongating with age J abaxial surface of the anther K seed L stone cell (sclereid).
Figure 4 from: Knapp S, Chiarini F, Cantero JJ, Barboza GE (2020) The Morelloid clade of Solanum L. (Solanaceae) in Argentina: nomenclatural changes, three new species and an updated key to all taxa. PhytoKeys 164: 33-66. https://doi.org/10.3897/phytokeys.164.54504
Figure 4 Solanum marmoratum Barboza & S. Knapp A habit (Barboza et al. 5099) B, C details of the winged stems (both at the same scale, B from Barboza et al. 5136, C from Barboza et al. 5073) D inflorescence (Barboza et al. 5136) E flowers, showing the included style and the filaments that elongate with flower age (Barboza et al. 5136) F mature fruits (Barboza et al. 5073) G Detail of berries showing the spreading fleshy calyx in fruit (Barboza et al. 5130). All photographs by S. Knapp.
Figure 4 from: Toledo CAP, Castro Souza V, Lucas EJ (2020) Nomenclatural and taxonomic updates in Rourea subgen. Rourea sect. Multifoliolatae (Connaraceae). PhytoKeys 169: 137-175. https://doi.org/10.3897/phytokeys.169.54297
Figure 4 Rourea chrysomalla: A flowering branchlet B fruiting branchlet (photo by Jair Faria) C leaves (photo by Jair Faria) D habit.
Figure 11 from: Toledo CAP, Castro Souza V, Lucas EJ (2020) Nomenclatural and taxonomic updates in Rourea subgen. Rourea sect. Multifoliolatae (Connaraceae). PhytoKeys 169: 137-175. https://doi.org/10.3897/phytokeys.169.54297
Figure 11 Geographic distribution of Rourea macrocalyx (circles), R. prostrata (triangles) and R. tenuis (squares).
Figure 10 from: Toledo CAP, Castro Souza V, Lucas EJ (2020) Nomenclatural and taxonomic updates in Rourea subgen. Rourea sect. Multifoliolatae (Connaraceae). PhytoKeys 169: 137-175. https://doi.org/10.3897/phytokeys.169.54297
Figure 10 Rourea glazioui: A fruiting branchlet B leaf, adaxial surface C inflorescence (photo by Thiago Flores) D leaf, abaxial surface.
ScienceDex guides
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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.