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398 results for “claw”
Figures 1-6. 1, 4 Halodromus patellaris from Monastir 2 Ebo pepinensis from Utah Lake 3 Titanebo albocaudatus from Abilene 5-6 Titanebo andreaannae from Tucson 1-3 Left male palp, ventral view 4 Tarsal claws and scopulae 5 in The Ebo-like running crab spiders in the Old World (Araneae, Philodromidae)
Figures 1-6. 1, 4 Halodromus patellaris from Monastir 2 Ebo pepinensis from Utah Lake 3 Titanebo albocaudatus from Abilene 5-6 Titanebo andreaannae from Tucson 1-3 Left male palp, ventral view 4 Tarsal claws and scopulae 5 Epigyne, dorsal view, showing schematic course of the internal ducts (broken black line) and the demarcation between bursa copulatrix and copulatory ducts (white line) 6 Details of receptacula, showing numerous pores in the torus region.
Fig. 15. Hind tarsal claws. A in Review of the Swedish Enicospilus (Hymenoptera; Ichneumonidae; Ophioninae) with description of three new species and an illustrated key to species
Fig. 15. Hind tarsal claws. A. Enicospilus ramidulus (Linnaeus, 1758), ♀. B. E. adustus (Haller, 1885), ♀.
Figs 24–29 in Macrobiotus polypiformis sp. nov., a new tardigrade (Macrobiotidae; hufelandi group) from the Ecuadorian Pacific coast, with remarks on the claw abnormalities in eutardigrades
Figs 24–29. Macrobiotus polypiformis sp. nov. 24. Chorion. 25. Long, hair-like flexible filaments on terminal discs. 26. Egg processes with faint annular undulations. 27. Surface between egg processes with reticular design. 28. Terminal discs with small, randomly arranged granules. 29. Small granules on filaments. All in SEM. Scale bars in μm.
Figs 20–23 in Macrobiotus polypiformis sp. nov., a new tardigrade (Macrobiotidae; hufelandi group) from the Ecuadorian Pacific coast, with remarks on the claw abnormalities in eutardigrades
Figs 20–23. Macrobiotus polypiformis sp. nov. 20. Chorion. 21. Long, hair-like flexible filaments on terminal discs. 22. Egg processes and the surface between egg processes with reticular design. 23. Egg processes with filaments. All in PCM. Scale bars in μm.
Figs 16–19 in Macrobiotus polypiformis sp. nov., a new tardigrade (Macrobiotidae; hufelandi group) from the Ecuadorian Pacific coast, with remarks on the claw abnormalities in eutardigrades
Figs 16–19. Macrobiotus polypiformis sp. nov., paratypes. 16. Granulation on the II pair of legs, arrow (PCM). 17. Granulation on IV pair of legs, arrow (PCM). 18. Granulation on II pair of legs (SEM). 19. Modified claw IV (arrowheads) and granulation on IV pair of legs, arrow (SEM). Scale bars in μm.
Figs 3–6 in Macrobiotus polypiformis sp. nov., a new tardigrade (Macrobiotidae; hufelandi group) from the Ecuadorian Pacific coast, with remarks on the claw abnormalities in eutardigrades
Figs 3–6. Macrobiotus polypiformis sp. nov. 3. Cuticular pores visible in PCM (paratype). 4. Cuticular pores visible in SEM (paratype). 5–6. Bucco-pharyngeal apparatus (dorso–ventral projection), the filled arrowhead indicates the first macroplacoid with central constriction (Fig. 5 = paratype in PCM; Fig. 6 = holotype in DIC). Scale bars in μm.
Figs 7–9 in Macrobiotus polypiformis sp. nov., a new tardigrade (Macrobiotidae; hufelandi group) from the Ecuadorian Pacific coast, with remarks on the claw abnormalities in eutardigrades
Figs 7–9. Macrobiotus polypiformis sp. nov., paratypes. 7. Third band of teeth visible under PCM (empty arrowhead). 8–9. Oral cavity armature (SEM), the filled arrowheads indicate teeth of the first band, arrows indicate teeth of the second band, the empty arrowheads indicate teeth of the third band, M = median teeth, L = lateral teeth, a = accessory teeth, rhombi = ring folds, asterisks = ventral side.
Figs 10–15. Claws. 10. Claw II in Macrobiotus polypiformis sp. nov., a new tardigrade (Macrobiotidae; hufelandi group) from the Ecuadorian Pacific coast, with remarks on the claw abnormalities in eutardigrades
Figs 10–15. Claws. 10. Claw II with smooth lunules (PCM, paratype). 11. Claw IV (PCM, holotype). 12. Indented lunules on claw IV (PCM, paratype). 13. Claw I with smooth lunules (SEM, paratype). 14. Claw IV with indented lunules (SEM, paratype). 15. Aberrant claw IV (SEM, paratype). Numbers 1–2 indicate normally developed claw branches/spurs, whereas 3–4 indicate aberrant claw branches/ spurs. Scale bars in μm.
Figs 1–2 in Macrobiotus polypiformis sp. nov., a new tardigrade (Macrobiotidae; hufelandi group) from the Ecuadorian Pacific coast, with remarks on the claw abnormalities in eutardigrades
Figs 1–2. Macrobiotus polypiformis sp. nov., holotype, habitus, dorso-ventral projection. 1. Seen in PCM. 2. Seen in DIC. Scale bars in μm.
Fig. 31. Hind tarsal claw. A in The genus Enicospilus Stephens, 1835 (Hymenoptera, Ichneumonidae, Ophioninae) in Saudi Arabia, with twelve new species records and the description of five new species
Fig. 31. Hind tarsal claw. A. Enicospilus pacificus (Holmgren, 1868). B. E. pallidus (Taschenberg, 1875). C. E. pseudoculator Gadallah & Soliman sp. nov. D. E. rundiensis Bischoff, 1915. E. E. senescens (Tosquinet, 1896). F. E. shadaensis Gadallah & Soliman sp. nov.
Fig. 30. Hind tarsal claw. A in The genus Enicospilus Stephens, 1835 (Hymenoptera, Ichneumonidae, Ophioninae) in Saudi Arabia, with twelve new species records and the description of five new species
Fig. 30. Hind tarsal claw. A. Enicospilus grandiflavus Townes & Townes, 1973. B. E. mirabilis Soliman & Gadallah sp. nov. C. E. nervellator Aubert, 1966. D. E. oculator Seyrig, 1935. E. E. odax Gauld & Mitchell, 1978. F. E. oweni Gauld & Mitchell, 1978.
Fig. 32. Hind tarsal claw. A in The genus Enicospilus Stephens, 1835 (Hymenoptera, Ichneumonidae, Ophioninae) in Saudi Arabia, with twelve new species records and the description of five new species
Fig. 32. Hind tarsal claw. A. Enicospilus splendidus Rousse, Soliman & Gadallah sp. nov. B. Enicospilus sp. 2 cf. bicoloratus Cameron, 1915. C. Enicospilus sp. 1
Fig. 29. Hind tarsal claws. A in The genus Enicospilus Stephens, 1835 (Hymenoptera, Ichneumonidae, Ophioninae) in Saudi Arabia, with twelve new species records and the description of five new species
Fig. 29. Hind tarsal claws. A. Enicospilus arabicus Gadallah & Soliman sp. nov. B. E. bicoloratus Cameron, 1912. C. E. brevicornis (Masi, 1939). D. E. capensis (Thunberg, 1822). E. E. divisus (Seyrig, 1935). F. E. dubius (Tosquinet, 1896).
Fig. 9. Cornucistela serrata, distribution. 1 in New data on diagnostics and distribution of the little-known comb-clawed beetle Cornucistela serrata (Coleoptera: Tenebrionidae: Alleculinae)
Fig. 9. Cornucistela serrata, distribution. 1, Wadi Khumra (holotype); 2, Heith (paratypes); 3, Kushm al-Buway- biyat (paratypes); 4, Quai'iya (specimen collected by Philby).
Fig. 5. Ventral lamella between tarsal claws. A in The Supraspecific Structure Of The Subtribe Blaptina Leach, 1815 (Coleoptera, Tenebrionidae: Blaptinae)
Fig. 5. Ventral lamella between tarsal claws. A = Lithoblaps gigas (Linnaeus, 1767), comb. n.; B = Blaps (Blaps) mortisaga (Linnaeus, 1758); C = Blaps (Ablapsis) allardiana allardiana Reitter, 1889; D = Blaps (Dineria) halophila Fischer von Waldheim, 1820; E = Blaps (Arenoblaps) hiemalis Semenov et Bogatchev, 1940; F = Dilablaps paradoxa Bogatchev, 1976; G = Medvedevoblaps kashkarovi (G. S. Medvedev, 1998); H = Coelocnemodes tibialis Ren in Ren, Ba, Liu, Niu, Zhu, Li et Shi, 2016; I = Thaumatoblaps marikovskiji Kaszab et G. S. Medvedev, 1984
figure 17 in Deceptive conservatism of claws: distinct phyletic lineages concealed within Isohypsibioidea (Eutardigrada) revealed by molecular and morphological evidence
figure 17 Doryphoribius monstruosus (Maucci, 1991) comb. nov. (PCM, holotype): A – the buccal apparatus (arrowhead indicates ventral lamina); B – claws I; C – claws IV. Scale bars in micrometres
figure 16 in Deceptive conservatism of claws: distinct phyletic lineages concealed within Isohypsibioidea (Eutardigrada) revealed by molecular and morphological evidence
figure 16 Buccal apparatus morphology of Doryphoribiidae fam. nov. and Hexapodibiidae members equipped with ventral lamina (arrowheads): A – Apodibius nuntius Binda, 1984; B – Doryphoribius korganovae Biserov, 1994; C – Doryphoribius bindae Lisi, 2011; D – Hexapodibius micronyx; E – Parhexapodibius castrii (Ramazzotti, 1964); F – Parhexapodibius ramazzottii Manicardi & Bertolani, 1987. Scale bars = 10 µm
figure 15 in Deceptive conservatism of claws: distinct phyletic lineages concealed within Isohypsibioidea (Eutardigrada) revealed by molecular and morphological evidence
figure 15 Hexapodibius micronyx, the buccal apparatus: A – habitus (ventral view, the arrowhead points the ventral lamina); B – habitus (dorsal view); C – buccal crown and ventral lamina (ventral view); D – furca; E – pharynx. Scale bars in micrometres
figure 14 in Deceptive conservatism of claws: distinct phyletic lineages concealed within Isohypsibioidea (Eutardigrada) revealed by molecular and morphological evidence
figure 14 Thulinius ruffoi, the buccal apparatus: A – habitus; B – mouth opening (the incised arrowhead indicates the first band of teeth, whereas the empty incised arrowhead – the second band of teeth); C – buccal crown (dorsal view); D – furca. Scale bars in micrometres
figure 13 in Deceptive conservatism of claws: distinct phyletic lineages concealed within Isohypsibioidea (Eutardigrada) revealed by molecular and morphological evidence
figure 13 Grevenius pushkini comb. nov., the buccal apparatus: A – habitus; B – mouth opening (the incised arrowhead indicates the first band of teeth, whereas the empty incised arrowhead – the second band of teeth); C – oral cavity armature; D – buccal crown (dorsal view); E – buccal crown (lateral view); F – pharynx (dorsal view); G – pharynx (lateral view). Scale bars in micrometres
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