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FIGURE 15. Cheliceral promargin, anterior view. A. Periegops suteri. B. Drymusa capensis. C. Scytodes globula. D. Stedocys leopoldi. E. Loxosceles rufescens. F. Sicarius rupestris, mirrored. A–B, E–F in The placement of the spider genus Periegops and the phylogeny of Scytodoidea (Araneae: Araneomorphae)
FIGURE 15. Cheliceral promargin, anterior view. A. Periegops suteri. B. Drymusa capensis. C. Scytodes globula. D. Stedocys leopoldi. E. Loxosceles rufescens. F. Sicarius rupestris, mirrored. A–B, E–F. Inset showing row of modified setae against promarginal lobe base (character 30). Scales: A–B, F 500 µm, C 50 µm, D–E 100 µm. Abbreviations: pL, promarginal lobe (character 28); pT, cheliceral promarginal tooth (character 24); Vo, venom outlet (character 35).
FIGURE 10. Female leg tarsal organ. A. Periegops suteri, tarsus I. B. Drymusa capensis, tarsus IV. C. Scytodes globula, tarsus I. D. Stedocys leopoldi, tarsus IV. E. Loxosceles rufescens, tarsus I. F. Sicarius rupestris, tarsus IV in The placement of the spider genus Periegops and the phylogeny of Scytodoidea (Araneae: Araneomorphae)
FIGURE 10. Female leg tarsal organ. A. Periegops suteri, tarsus I. B. Drymusa capensis, tarsus IV. C. Scytodes globula, tarsus I. D. Stedocys leopoldi, tarsus IV. E. Loxosceles rufescens, tarsus I. F. Sicarius rupestris, tarsus IV. Scales: A, C–D 20 µm, B, E–F 10 µm.
FIGURE 5. Female left tarsal claws I. A–B. Loxosceles rufescens. C–D. Sicarius rupestris. A. Retrolateral-apical view. B, D. Apical view. C in The placement of the spider genus Periegops and the phylogeny of Scytodoidea (Araneae: Araneomorphae)
FIGURE 5. Female left tarsal claws I. A–B. Loxosceles rufescens. C–D. Sicarius rupestris. A. Retrolateral-apical view. B, D. Apical view. C. Retrolateral view. Scales: A 50 µm, B–D 100 µm. Abbreviations: Ony, onychium (character 10).
FIGURE 8. Female left tarsal claws IV. A–B. Loxosceles rufescens. C–D. Sicarius rupestris. A. Retrolateral-apical view. B, D. Apical view. C in The placement of the spider genus Periegops and the phylogeny of Scytodoidea (Araneae: Araneomorphae)
FIGURE 8. Female left tarsal claws IV. A–B. Loxosceles rufescens. C–D. Sicarius rupestris. A. Retrolateral-apical view. B, D. Apical view. C. Retrolateral view. Scales: A 50 µm, B 100 µm, C–D 200 µm. Abbreviations: Ony, onychium (character 10).
FIGURE 9. Female leg trichobothria. A. Periegops suteri, tibia I. B. Drymusa capensis, metatarsus I. C. Scytodes globula, metatarsus IV. D. Stedocys leopoldi, metatarsus I. E. Loxosceles rufescens, metatarsus I. F. Sicarius rupestris, metatarsus IV in The placement of the spider genus Periegops and the phylogeny of Scytodoidea (Araneae: Araneomorphae)
FIGURE 9. Female leg trichobothria. A. Periegops suteri, tibia I. B. Drymusa capensis, metatarsus I. C. Scytodes globula, metatarsus IV. D. Stedocys leopoldi, metatarsus I. E. Loxosceles rufescens, metatarsus I. F. Sicarius rupestris, metatarsus IV. Scales: A 10 µm, B 50 µm, C–F 20 µm.
FIGURE 9. Globba rupestris Sangvir. & M.F in Eight new species of Globba (Zingiberaceae) from Thailand and Lao PDR
FIGURE 9. Globba rupestris Sangvir. & M.F.Newman (Leong-Škorničková et al. 1734) A. Habitat B. Habit C. Inflorescence D. Flower, side view E. Flower, front view F. Filament and anther G. Lateral staminodes H. Dorsal corolla lobe I. Lateral corolla lobes J. Labellum K. Anther and anther appendages Scale bars: B = 10 cm; D–G = 1 cm; K = 5 mm. Photographs by Jana Leong-Škorničková.
FIGURES 7–11. Ceratina rupestris gynandromorph III. 7 in Gynandromorphism in Xylocopinae Bees (Hymenoptera: Apidae): description of four new cases
FIGURES 7–11. Ceratina rupestris gynandromorph III. 7, body lateral view; 8, head frontal view; 9, T6 dorsal view; 10, T7 dorsal view and 11, genitalia in dorsal view.
Figure 1 in Parasites Of The Brazilian Rock Cavy, Kerodon Rupestris: Revealing Their History In The Brazilian Semiarid Region
Figure 1. Accumulation curve of the parasite species found in Kerodon rupestris at Parque Nacional da Serra da Capivara, Piauı´, Brazil.
FIGURE 2. A in Some superfluous names recently proposed involving the Sino-Himalayan Anemone rupestris (Ranunculaceae)
FIGURE 2. A. Cover of Vascular Plants of the World. B. One page in Vascular Plants of the World, showing that the name Anemone rupestris Jacquemont ex Cambessedes did not appear there. C. Cover of Index Kewensis vol. 1. D. One page in Index Kewensis vol. 1, showing the citation "Anemone rupestris, Jacquem. Bot. Voy. 5 = rupicola".
FIGURE 4 in Some superfluous names recently proposed involving the Sino-Himalayan Anemone rupestris (Ranunculaceae)
FIGURE 4. Lectotype (A) and isolectotype (B) sheets of Anemone gelida (= A. rupestris subsp. gelida).
Figure 2 in Phylogenetic relationships among populations of Pristurus rupestris Blanford, 1874 (Sauria: Sphaerodactylidae) in southern Iran
Figure 2. Phylogenetic relationships among the Pristurus rupestris populations included in the analysis using BI. Individuals of Tenuidactylus caspius were used as the outgroup taxon. Numbers close to the branches are posterior probabilities of BI followed by MP and ML bootstrap supports (2000 replicates). Numbers in front of the tree refer to the sample localities as follows: 1- Busheher; 2- Dayyer; 3- Siraf; 4- Nayband; 5- Charak; 6- Gheshm; 7- Bandar Abas; 8- Minab; 9- Jask; 10- Konarak; 11- Guater. Four clades are shown by numbers.
Figures 22- 23 from: Burckhardt D, Queiroz DL (2021) Mitrapsylla rupestris sp. nov., a psyllid (Hemiptera, Psylloidea) associated with Poiretia bahiana (Fabaceae) endemic to the Espinhaço mountain range (Brazil, Bahía). Alpine Entomology 5: 69-75. https://doi.org/10.3897/alpento.5.70640
Figures 22- 23 Poiretia bahiana. 22. Plant with folded leaflet (arrow) housing immatures; 23. immatures of Mitrapsylla rupestris sp. nov. (arrows).
Figures 14-21 from: Burckhardt D, Queiroz DL (2021) Mitrapsylla rupestris sp. nov., a psyllid (Hemiptera, Psylloidea) associated with Poiretia bahiana (Fabaceae) endemic to the Espinhaço mountain range (Brazil, Bahía). Alpine Entomology 5: 69-75. https://doi.org/10.3897/alpento.5.70640
Figures 14-21 Mitrapsylla rupestris sp. nov., terminalia. 14. Male terminalia, in profile; 15. inner face of paramere; 16. dorsal view of parameres, setae on right paramere omitted (anterior = up); 17. distal portion of aedeagus; 18. ventral lobe of distal portion of aedeagus with lateral tubercles, in ventral view; 19. female terminalia, in profile; 20. peg setae on female proctiger; 21. female subgenital plate, in ventral view. Scale bars: 0.1 mm (14, 19, 21); 0.05 mm (15–18); 0.03 mm (20).
Figures 1-7 from: Burckhardt D, Queiroz DL (2021) Mitrapsylla rupestris sp. nov., a psyllid (Hemiptera, Psylloidea) associated with Poiretia bahiana (Fabaceae) endemic to the Espinhaço mountain range (Brazil, Bahía). Alpine Entomology 5: 69-75. https://doi.org/10.3897/alpento.5.70640
Figures 1-7 Habitat, host and habitus of Mitrapsylla rupestris sp. nov. 1. Morro do Pai Inácio (Bahía, Palmeiras), type locality of M. rupestris sp. nov.; 2, 3.Poiretia bahiana, the host of M. rupestris sp. nov., growing in rock habitats (2) with detail of glandular leaflets (3); 4–7. habitus, adults 4, 6. in profile; 5, 7. in dorsal view; 4, 5. male; 6, 7. female. Scale bar: 0.5 mm.
Figures 8-13 from: Burckhardt D, Queiroz DL (2021) Mitrapsylla rupestris sp. nov., a psyllid (Hemiptera, Psylloidea) associated with Poiretia bahiana (Fabaceae) endemic to the Espinhaço mountain range (Brazil, Bahía). Alpine Entomology 5: 69-75. https://doi.org/10.3897/alpento.5.70640
Figures 8-13 Mitrapsylla rupestris sp. nov. 8, 9. Head, in dorsal view, showing colour pattern (8) and microsculpture (9); 10–13. forewing; 10, 12. bright field, showing venation and colour; 11, 13. dark field, showing surface spinules; 10, 11. male; 12, 13. female. Scale bars: 0.2 mm (8, 9); 0.3 mm (10–13).
FIGURE 3 in Some superfluous names recently proposed involving the Sino-Himalayan Anemone rupestris (Ranunculaceae)
FIGURE 3. Holotype (A) and isotype (B) sheets of Anemone rupestris subsp. rupestris var. latifolia.
Pseudosclerochloa rupestris (With.) Tzvelev (BR0000011608264)
Belgium Herbarium image of <a href="https://www.plantentuinmeise.be">Meise Botanic Garden</a>.
Data from: Stretched to the limit; can a short pelagic larval duration connect adult populations of an Indo-Pacific diadromous fish (Kuhlia rupestris)?
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Data from: Aster rupestris (Asteraceae, Astereae), a new species from Guizhou, China: Evidence from morphological, molecular and cytological date
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Data from: Aster rupestris (Asteraceae, Astereae), a new species from Guizhou, China: Evidence from morphological, molecular and cytological date
Open the record for dataset details and reuse information.
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