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596 results for “cast”
FIGURES 11–15 in Caetetermes taquarussu Fontes (Isoptera, Termitidae, Nasutitermitinae): description of the imago caste and new distributional records
FIGURES 11–15. Workers of Caetetermes taquarussu, MZUSP 12738: 11, mandibles type 1. 12, mandibles type 2. 13, gizzard armature type 1. 14, detail of gizzard pulvilli and columns of first and second order. 15, enteric valve cushions. Scale bar for mandibles: 0.2 mm; for gizzard and enteric valve: 40 µ.
FIGURES 1–5. Caetetermes taquarussu, MZUSP 12738 in Caetetermes taquarussu Fontes (Isoptera, Termitidae, Nasutitermitinae): description of the imago caste and new distributional records
FIGURES 1–5. Caetetermes taquarussu, MZUSP 12738: 1, female thorax in dorsal view. 2, head in dorsal view. 3, head in profile. 4, soldier head in dorsal view. 5, soldier head in profile. Scale bars: 0.5 mm.
FIGURES 11–12. Anomalomyrma taylori Bolton, 1990, holotype gyne. FIGURE 11 in Discovery of the worker caste and descriptions of two new species of Anomalomyrma (Hymenoptera: Formicidae: Leptanillinae) with unique abdominal morphology
FIGURES 11–12. Anomalomyrma taylori Bolton, 1990, holotype gyne. FIGURE 11. Body in dorsal view; FIGURE 12. Boby in lateral view.
FIGURES 7–8. Anomalomyrma helenae n in Discovery of the worker caste and descriptions of two new species of Anomalomyrma (Hymenoptera: Formicidae: Leptanillinae) with unique abdominal morphology
FIGURES 7–8. Anomalomyrma helenae n. sp., holotype worker. FIGURE 7. Waist in dorsal view; FIGURE 8. Head in dorsal view.
FIGURES 5–6. Anomalomyrma helenae n in Discovery of the worker caste and descriptions of two new species of Anomalomyrma (Hymenoptera: Formicidae: Leptanillinae) with unique abdominal morphology
FIGURES 5–6. Anomalomyrma helenae n. sp., holotype worker. FIGURE 5. Body in dorsal view; FIGURE 6. Body in lateral view.
FIGURES 3–4. Anomalomyrma boltoni n in Discovery of the worker caste and descriptions of two new species of Anomalomyrma (Hymenoptera: Formicidae: Leptanillinae) with unique abdominal morphology
FIGURES 3–4. Anomalomyrma boltoni n. sp., paratype worker. FIGURE 3. Waist in dorso-posterior view; FIGURE 4. Head in dorsal view.
FIGURES 1–2. Anomalomyrma boltoni n in Discovery of the worker caste and descriptions of two new species of Anomalomyrma (Hymenoptera: Formicidae: Leptanillinae) with unique abdominal morphology
FIGURES 1–2. Anomalomyrma boltoni n. sp., paratype worker. FIGURE 1. Body in dorsal view; FIGURE 2. Body in lateral view.
Figs 13-15 in Taxonomy of Temnothorax simlensis stat. nov. (Hymenoptera: Formicidae) with first description of sexual castes along with a mention of its plesiobiotic association with Himalayan species of genus Myrmica
Figs 13-15. Queen Temnothorax rothneyi (Forel, 1902): 13-Head, full face view; 14- Body, lateral view; 15- Body, dorsal view.
Figs 10-12 in Taxonomy of Temnothorax simlensis stat. nov. (Hymenoptera: Formicidae) with first description of sexual castes along with a mention of its plesiobiotic association with Himalayan species of genus Myrmica
Figs 10-12. Worker Temnothorax rothneyi (Forel, 1902): 10-Head, full face view; 11- Body, lateral view; 12- Body, dorsal view.
Figs 7-9 in Taxonomy of Temnothorax simlensis stat. nov. (Hymenoptera: Formicidae) with first description of sexual castes along with a mention of its plesiobiotic association with Himalayan species of genus Myrmica
Figs 7-9. Male Temnothorax simlensis stat. nov.: 7- Head, full face view; 8- Body, lateral view; 9- Body, dorsal view.
Figs 4-6 in Taxonomy of Temnothorax simlensis stat. nov. (Hymenoptera: Formicidae) with first description of sexual castes along with a mention of its plesiobiotic association with Himalayan species of genus Myrmica
Figs 4-6. Queen Temnothorax simlensis stat. nov.: 4- Head, full face view; 5- Body, lateral view; 6- Body, dorsal view.
Figs 1-3 in Taxonomy of Temnothorax simlensis stat. nov. (Hymenoptera: Formicidae) with first description of sexual castes along with a mention of its plesiobiotic association with Himalayan species of genus Myrmica
Figs 1-3. Worker Temnothorax simlensis stat. nov.: 1- Head, full face view; 2- Body, lateral view; 3- Body, dorsal view
FIGURE 2. Cleonini weevils. A in The first molecular phylogeny of the weevil subfamily Lixinae (Coleoptera Curculionidae) casts doubts on the monophyly of its tribes
FIGURE 2. Cleonini weevils. A: Asproparthenis sp.; B–D: Bothynoderes declivis adult (B), larva (C) and pupa (D) in Salsola sp.; E: Cleonis pigra on Carduus sp.; F: Conorhynchus sp.; G: Cyphocleonus sp.; H: Cyphocleonus achates in pupal cell in Centaurea diffusa; I: Eumecops fasciculifer; J: Leucomigus candidatus root gall on Artemisia sp.; K–L: Microcleonus panderi (K) and its habitat (L); M: Pleurocleonus sp.; N: Scaphomorphus vibex; O: Stephanocleonus sp. Localities: A, F, G, I, K–N: Mongolia; B–E, H: Ukraine; O: Kazakhstan. Images and copyright: Badamnyambuu Iderzorig (A, F, G, I, K–N) and Semyon Volovnik (B–E, H).
FIGURE 3 in The first molecular phylogeny of the weevil subfamily Lixinae (Coleoptera Curculionidae) casts doubts on the monophyly of its tribes
FIGURE 3. Representatives of all three Lixinae tribes and two possible Lixinae sister groups sequenced for the molecular analysis. Numbers at each image are specimen's unique sample IDs. Beetle habitus images are to scale.
FIGURE 1 in The first molecular phylogeny of the weevil subfamily Lixinae (Coleoptera Curculionidae) casts doubts on the monophyly of its tribes
FIGURE 1. Rhinocyllini (A) and Lixini (B–O) weevils. A: Rhinocyllus conicus and its exit hole on Centaurea sp.; B: Larinus centaurii larva in Centaurea sp.; C–E: La. vulpes on Echinops sp.; F: Lixus albomarginatus in a pupa cell in Cakile euxina; G: Li. bardanae on Rumex sp.; H: Li. canescens pupae in Crambe sp.; I: Li. cardui on Onopordum acanthium; J: Li. filiformis in a pupal cell in Carduus sp.; K: Li. incanescens larva in Chenopodium urbicum; L: Li. myagri female before ovipositing; M: Li. pulverulentus on Lactuca sp.; N: Exit hole of Li. subtilis on Amaranthus retroflexus; O: giant Lixus sp. Localities: A–H, J–N: Ukraine; I: Russia; O: Madagascar. Images and copyright: Semyon Volovnik (A–H, J–N).
FIGURE 7 in The first molecular phylogeny of the weevil subfamily Lixinae (Coleoptera Curculionidae) casts doubts on the monophyly of its tribes
FIGURE 7. Representatives of the Scaphomorphus clade sequenced for the molecular analysis, in dorsal and lateral views, together with a representative of the genus Lixoglyptus (imaged by Antoine Mantilleri, copyright: Muséum National d'Histoire Naturelle, Paris, France). Numbers at each image are specimen's unique sample IDs. Percent values in each rectangle indicate statistic support for nested relationships. Lateral image of Lixoglyptus is digitally mirrored.
FIGURE 6 in The first molecular phylogeny of the weevil subfamily Lixinae (Coleoptera Curculionidae) casts doubts on the monophyly of its tribes
FIGURE 6. Maximum likelihood tree of monophyletic Lixinae reconstructed by RAxML from the three-fragment concatenated DNA dataset. Numbers at each image are specimen's unique sample IDs. Illustrated terminals are indicated with black arrows. Beetle habitus images are to scale.
FIGURE 4 in The first molecular phylogeny of the weevil subfamily Lixinae (Coleoptera Curculionidae) casts doubts on the monophyly of its tribes
FIGURE 4. Mouthparts of Lixinae and their relatives within the CCCMS clade; ventral view. Labial palpi are enlarged, red arrows point at the proximal seta-bearing (except Sternuchopsis) labial palpomere. Note that the labial palpi of Lepyrus and Liparus are distinctly three-segmented and at least twice longer than the maximal width of the proximal palpomere. Labial palpi of Lixinae and of Sternuchopsis, in contrast, are not longer than the maximal width of the proximal palpomere, while both distal palpomeres are either much shortened, or indistinct.
FIGURE 5 in The first molecular phylogeny of the weevil subfamily Lixinae (Coleoptera Curculionidae) casts doubts on the monophyly of its tribes
FIGURE 5. Maximum likelihood tree of Curculionidae reconstructed by RAxML from the three-fragment concatenated DNA dataset. Monophyletic Lixinae are collapsed; see Fig. 6. Numbers at each image are specimen's unique sample IDs. Illustrated terminals are indicated with black arrows. Beetle habitus images are not to scale.
Casting shape antiqua
Museum of arhcaeology of Lomonosov Moscow State University Source: Objaverse 1.0 / Sketchfab
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