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3,761 results for “phylogenetic relationships”

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Fig. 8 in Phylogenetic relationships of Actinacantha Simon, Gasteracantha Sundevall, Macracantha Hasselt and Thelacantha Simon spiny orbweavers (Araneae: Araneidae) in Peninsular Malaysia

Fig. 8. Epigynal structure of Gasteracantha kuhli C. L. Koch, 1837. A, Ventral view; B, Posterior view; C, Lateral view; D, Dorsal view; E, Anterior view. Scale = 100 µm. CO = Copulatory opening; FD = Fertilisation duct; S = Spermatheca.

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Fig. 10 in Phylogenetic relationships of Actinacantha Simon, Gasteracantha Sundevall, Macracantha Hasselt and Thelacantha Simon spiny orbweavers (Araneae: Araneidae) in Peninsular Malaysia

Fig. 10. Holotype sample of Gasteracantha mengei Keyserling, 1864 deposited in the Natural History Museum, London. A, Dorsal view of abdomen; B, Posteroventral view of epigyne. Scale not available. (Photo reproduced with permission from Joseph Koh).

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Fig. 9. Gasteracantha mengei Keyserling, 1864. A in Phylogenetic relationships of Actinacantha Simon, Gasteracantha Sundevall, Macracantha Hasselt and Thelacantha Simon spiny orbweavers (Araneae: Araneidae) in Peninsular Malaysia

Fig. 9. Gasteracantha mengei Keyserling, 1864. A, Dorsal habitus; B−E, Epigynal structure. A, Ventral view; B, Posterior view; C, Lateral view; D, Dorsal view; E, Anterior view. Scale A = 5 mm; B−E = 100 µm. S = Spermatheca.

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Fig. 7 in Phylogenetic relationships of Actinacantha Simon, Gasteracantha Sundevall, Macracantha Hasselt and Thelacantha Simon spiny orbweavers (Araneae: Araneidae) in Peninsular Malaysia

Fig. 7. Epigynal structure of Gasteracantha hasselti C. L. Koch, 1837. A, Ventral view; B, Posterior view; C, Lateral view; D, Dorsal view; E, Anterior view. Scale = 100 µm. CO = Copulatory opening; FD = Fertilisation duct; S = Spermatheca.

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Fig. 6 in Phylogenetic relationships of Actinacantha Simon, Gasteracantha Sundevall, Macracantha Hasselt and Thelacantha Simon spiny orbweavers (Araneae: Araneidae) in Peninsular Malaysia

Fig. 6. Gasteracantha diardi (Lucas, 1835). A, Dorsal habitus; B−E, Epigynal structure. A, Ventral view; B, Posterior view; C, Lateral view; D, Dorsal view; E, Anterior view. Scale A = 5 mm; B−E = 100 µm. S = Spermatheca.

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Fig. 3 in Phylogenetic relationships of Actinacantha Simon, Gasteracantha Sundevall, Macracantha Hasselt and Thelacantha Simon spiny orbweavers (Araneae: Araneidae) in Peninsular Malaysia

Fig. 3. Bayesian tree based on the concatenated 16S+CO1+CO2+H3A dataset of samples used in the present study. Numeric values at nodes arranged in an order of Ultrafast ML bootstrap support/MP bootstrap support/Bayesian posterior probability.

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Fig. 11 in Phylogenetic relationships of Actinacantha Simon, Gasteracantha Sundevall, Macracantha Hasselt and Thelacantha Simon spiny orbweavers (Araneae: Araneidae) in Peninsular Malaysia

Fig. 11. Epigynal structure of Macracantha arcuata (Fabricius, 1793). A, Ventral view; B, Posterior view; C, Lateral view; D, Dorsal view; E, Anterior view. Scale = 100 µm. CO = Copulatory opening; FD = Fertilisation duct; S = Spermatheca.

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Fig. 4 in Phylogenetic relationships of Actinacantha Simon, Gasteracantha Sundevall, Macracantha Hasselt and Thelacantha Simon spiny orbweavers (Araneae: Araneidae) in Peninsular Malaysia

Fig. 4. Bayesian tree based on the CO1 dataset of Actinacantha, Gasteracantha, Macracantha and Thelacantha. Numeric values at nodes arranged in an order of Ultrafast ML bootstrap support/MP bootstrap support/Bayesian posterior probability.

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Fig. 5 in Phylogenetic relationships of Actinacantha Simon, Gasteracantha Sundevall, Macracantha Hasselt and Thelacantha Simon spiny orbweavers (Araneae: Araneidae) in Peninsular Malaysia

Fig. 5. Sub-female Actinacantha globulata (Walckenaer, 1841). A, Dorsal habitus; B, Ventral habitus; C, Lateral habitus. Scale = 5 mm.

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Fig. 12 in Phylogenetic relationships of Actinacantha Simon, Gasteracantha Sundevall, Macracantha Hasselt and Thelacantha Simon spiny orbweavers (Araneae: Araneidae) in Peninsular Malaysia

Fig. 12. Epigynal structure of Thelacantha brevispina (Doleschall, 1857). A, Ventral view; B, Posterior view; C, Lateral view; D, Dorsal view; E, Anterior view. Scale = 100 µm. CO = Copulatory opening; FD = Fertilisation duct; S = Spermatheca.

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Fig. 1. General habitus. A in Phylogenetic relationships of Actinacantha Simon, Gasteracantha Sundevall, Macracantha Hasselt and Thelacantha Simon spiny orbweavers (Araneae: Araneidae) in Peninsular Malaysia

Fig. 1. General habitus. A, Actinacantha globulata (Walckenaer, 1841), sub-female; B, Gasteracantha diardi (Lucas, 1835), female; C, G. diardi yellow morph, female; D, G. diardi white morph, sub-female; E, G. kuhli, female; F, Gasteracantha hasselti C. L. Koch, 1837, female; G, Macracantha arcuata (Fabricius, 1793), female; H, Thelacantha brevispina (Doleschall, 1857), female; I, G. mengei Keyserling, 1864, female. Photos by Tan Ji.

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Fig. 8 in Scanning the Hyocephalidae: details of their external morphology with respect to phylogenetic relationships within Eutrichophora (Hemiptera: Heteroptera)*

Fig. 8. Abdominal trichobothria in Hyocephalus aprugnus Bergroth, 1906, female: A – position of trichobothria on sternites III and IV (AT3 and AT4) (magnification 45×); B – AT3 (300×); C–D – AT4 (C – 400×, D – 800×); E–G – AT5 (E – 160×, F – 300×, G – 800×); H – AT6 (300×). Abbreviations: AT3–4 – abdominal trichobothria on sternites III to IV; bo – bothrium; cs – crocus-like structure; sp – spiracle; tr – trichome. Scale bars: 50 μm (D, G), 0.1 mm (B–C, F, H), 0.3 mm (E), 1 mm (A).

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Fig. 5 in Scanning the Hyocephalidae: details of their external morphology with respect to phylogenetic relationships within Eutrichophora (Hemiptera: Heteroptera)*

Fig. 5. External scent efferent system of dorsoabdominal glands in Hyocephalidae. A–F – Hyocephalus aprugnus Bergroth, 1906, female: A – abdomen, dorsal view (magnification 19×); B, D, E – dorsoabdominal scent efferent system on tergites IV–V (B – 47×, D – 200×, E – 400×); C, F – dorsoabdominal scent efferent system on tergites V–VI (C – 80×, F – 200×). G–K – Maevius luridus Brailovsky, 2002, male: abdomen, dorsal view (30×); H – suture between tergites III and IV (42×); I, K – dorsoabdominal scent efferent system on tergites IV–V (I – 130×, K – 500×); J – dorsoabdominal scent efferent system on tergites V–VI (120×). Abbreviations: DAGIV–V, DAGV–VI – scent efferent system of dorsoabdominal scent glands on tergites IV–V and V–VI, respectively. Scale bars: 0.1 mm (E, K), 0.2 mm (D, F), 0.4 mm (I–J), 0.5 mm (C), 1 mm (B, G–H), 3 mm (A).

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Fig. 4 in Scanning the Hyocephalidae: details of their external morphology with respect to phylogenetic relationships within Eutrichophora (Hemiptera: Heteroptera)*

Fig. 4. Ultrastructure of thoracic spiracles in Hyocephalidae. A–C – Hyocephalus aprugnus Bergroth, 1906, male: A – mesothoracic spiracle (magnifi- cation 400×); B–C – metathoracic spiracle (B – 200×, C – 500×). D – Maevius luridus Brailovsky, 2002: metathoracic spiracle (500×). Scale bars: 0.1 mm (A, C–D), 0.2 mm (B).

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Fig. 2 in Scanning the Hyocephalidae: details of their external morphology with respect to phylogenetic relationships within Eutrichophora (Hemiptera: Heteroptera)*

Fig. 2. Head and prothorax of Hyocephalidae. A–C – Maevius luridus Brailovsky, 2002, male: A – dorsal habitus (magnification 13×); B – head and pronotum, dorsal view (32×), C – apex of profemur with spines (130×). D–H – Hyocephalus aprugnus Bergroth, 1906, female: D–F – head and prothorax (D – dorsal view, 23×; E – lateral view, 21×; F – ventral view, 23×); G–H – head (G – dorsal view, 40×; H – lateral view, 30×). Scale bars: 0.4 mm (C), 1 mm (B, G–H), 2 mm (D–F), 4 mm (A).

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Fig. 1 in Scanning the Hyocephalidae: details of their external morphology with respect to phylogenetic relationships within Eutrichophora (Hemiptera: Heteroptera)*

Fig. 1. Dorsal habitus of Hyocephalidae. A – Hyocephalus aprugnus Bergroth, 1906, female (15.4 mm); B – Maevius luridus Brailovsky, 2002, male (8.7 mm).

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Fig. 7 in Scanning the Hyocephalidae: details of their external morphology with respect to phylogenetic relationships within Eutrichophora (Hemiptera: Heteroptera)*

Fig. 7. Schematic drawing of abdomen of Maevius luridus Brailovsky, 2002, male, in lateral view. Scale bar: 1 mm.Abbreviations: AT3–7a–c – particular positions of abdominal trichobothria on sternites III–VII; sml – submarginal depressed line; sp – spiracle; tss – tergosternal suture.

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Fig. 3 in Scanning the Hyocephalidae: details of their external morphology with respect to phylogenetic relationships within Eutrichophora (Hemiptera: Heteroptera)*

Fig. 3. External scent efferent system of metathoracic glands in Hyocephalidae. A–E – Hyocephalus aprugnus Bergroth, 1906 (A–D – male, E – female): A – meso- and metathorax, lateral view (magnification 37×); B – external scent efferent system, lateral view (60×); C – ostiole and peritreme, lateral view (180×); D – peritreme, lateral view (300×); E – ostiole and peritreme, ventral view (180×). F–H – Maevius luridus Brailovsky, 2002: F – external scent efferent system, lateral view (85×); G – ostiole and peritreme, lateral view (250×); H – peritreme, lateral view (550×).Abbreviations: mss – mesothoracic spiracle, mts – metathoracic spiracle, o – ostiole, vs – vestibular scar. Scale bars: 0.1 mm (D, H), 0.2 mm (G), 0.3 mm (C, E), 0.5 mm (B, F), 1 mm (A).

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Fig. 6 in Scanning the Hyocephalidae: details of their external morphology with respect to phylogenetic relationships within Eutrichophora (Hemiptera: Heteroptera)*

Fig. 6. Strainer organ in Hyocephalidae. A–D – Hyocephalus aprugnus Bergroth, 1906: A – female, abdomen, lateral view (magnification 18×); B–D – strainer (B – male, 150×; C – female, 150×; D – female, 600×). E – Maevius luridus Brailovsky, 2002, male, strainer (370×). F – Maevius indecorus (Stål, 1874), female, strainer (250×).Abbreviations:AT3–7 – abdominal trichobothria on sternites III–VII; cp – closed pore; op – open pore; st – strainer. Scale bars: 50 μm (D), 0.1 mm (E), 0.2 mm (F), 0.3 mm (B–C), 3 mm (A).

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Fig. 9 in Scanning the Hyocephalidae: details of their external morphology with respect to phylogenetic relationships within Eutrichophora (Hemiptera: Heteroptera)*

Fig. 9. Details of abdomen and thorax in Hyocephalidae and Stenocephalidae. A–B – Hyocephalus aprugnus Bergroth, 1906, female: A – abdominal trichobothria on sternite VI (AT6) (magnification 800×); B – AT7 (400×). C–D – Maevius luridus Brailovsky, 2002, male: C – AT5 (400×), D – AT6 (400×). E–H – Dicranocephalus agilis (Scopoli, 1763): E – external scent efferent system (261×); F – abdomen in lateral view (27×); G–H – abdominal trichobothria on sternite VI (G – 120×, H – 400×). Abbreviations: AT5–7 – abdominal trichobothria 5–7; bo – bothrium; o – ostiole; pe – peritreme; sp – spiracle. Scale bars: 50 μm (A), 0.1 mm (B–D).

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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.

allen-brain-atlas
neuroscienceopenDocumentation, web resources, and API references are available online.
Last verified 2026-04-30Open record

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.

abode-home-cage
behavioral-neuroscienceopenThe DataShare record exposes download links for annotations, documentation, license text, and the zipped per-snippet data directory.
Last verified 2026-04-30Open record

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.

dandi-nwb
electrophysiologyopenPublished Dandiset metadata and archive endpoints are available through the production DANDI API.
Last verified 2026-04-30Open record

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.

ibl
behavioral-neuroscienceopenPublic sessions can be searched and loaded from the IBL public data server through ONE.
Last verified 2026-04-29Open record

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.

openneuro
neuroscienceopenPublished datasets are available on demand over the internet.
Last verified 2026-04-29Open record