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292 results for “Polistes”
Fig. 3 in Preliminary study of pear ester toxicity when consumed by Polistes dominula (Hymenoptera: Vespidae)
Fig. 3. Percentage of Polistes dominula that were alive, paralyzed, or dead afer ingesting <5 µL, 5–10 µL, or>10 µL of pear ester solution.
Fig. 2 in Preliminary study of pear ester toxicity when consumed by Polistes dominula (Hymenoptera: Vespidae)
Fig. 2. Mortality of different Polistes dominula castes afer ingestion of pear ester regardless of concentration (A), and mortality of wasps following ingestion of different concentrations of pear ester (B). Different letters denote significant differences among treatments at the α=0.05 confidence level.
Fig. 1 in Preliminary study of pear ester toxicity when consumed by Polistes dominula (Hymenoptera: Vespidae)
Fig. 1. Wasp feeding arenas constructed from plastic snap caps (length 5 cm, diameter 3 cm). Each snap cap held a single wasp (Polistes dominula), which had exclusive access to a pear ester feeding solution. The solution was administered via a 77.86 microliter glass capillary tube (length 75 mm, inner distance 1.1-1.2 mm) heated over a flame and bent into a j-shape. The glass capillary tube was held in place by a firm cotton plug stopper with a slit cut into one side.
Figs. 1 and 2 in Polistes major major and Polistes apachus (Hymenoptera: Vespidae) in Georgia, USA
Figs. 1 and 2. Polistes major major in Georgia and Florida. 1. An incipient colony in McIntosh County, Georgia. 2. Distribution of P. major major in Georgia and Florida. Counties with reports of this species are grey, and years represent the earliest observation in that county. Data were collected from museum collections and BugGuide.net (see main text).
Fig. 9 in Polistes stigma
Fig. 9. Acantharctus ornatus (Holthuis, 1960), phyllosoma stage IX (Final). A, stalked eye, antennule and antenna (Manta_L73); B, C, left (Manta_ L62) and right (Manta_L65) mandibles (ventral view); D, maxillule (Manta_L43); E, maxilla and first maxilliped (Manta_ L62); F, second maxilliped (Manta_L73); G, pleon, fifth pereiopod and pleopods 2–5 and uropods (ventral view) (Manta_L73). Scale bars: A and G = 500 µm; B–D = 100 µm; E– F = 200 µm.
Fig. 8 in Polistes stigma
Fig. 8. Acantharctus ornatus (Holthuis, 1960), phyllosoma stage IX (Final). A, ventral (right) and dorsal (left) view (Manta_L73); B, dactylus of first pereiopod (Manta_L70); C, dactylus of second pereiopod (Manta_L73); D, dactylus of third pereiopod (Manta_ L62); E, dactylus of fourth pereiopod (Manta_ L62); F, thorax (Manta_L73); G, detail of subexopodal seta (Manta_L73). Scale bars: A and F–G = 2 mm; B–E = 200 µm.
Fig. 5 in Polistes stigma
Fig. 5. Biarctus pumilus (Nobili, 1906), phyllosoma stage IX (Final) (Manta_L39). A, stalked eye, antennule and antenna; B, C, left and right mandibles (ventral view); D, maxillule; E, maxilla and first maxilliped; F, second maxilliped; G, pleon, fifth pereiopod, pleopods 2–5 and uropods, ventral (right) and dorsal (left) view. Scale bars: A = 500 µm, B–D = 100 µm; E–G = 200 µm.
Fig. 3 in Polistes stigma
Fig. 3. Morphology comparison of the adult slipper lobster labelled as A. ornatus in GenBank and true Acantharctus. Carapace dorsal view (A– D) and sternum (E–H) for A. ornatus from Australia identified by Holthuis (A: WAM C8845, E: WAM C8846); GenBank specimen labelled as A. ornatus but being in fact Biarctus dubius (B, F: WAM C27134); A. ornatus syntype (C, G: 1967.10.1.1-3) and A. posteli (D, H: MNHN- IU-2013-14853). The diagnostic characters used to differentiate Acantharctus and Biarctus (strong dorsal carina and strong spine on the last somite of the thoracic sternum) are indicated with a circle. Scale bars = 5 mm.
Fig. 4 in Polistes stigma
Fig. 4. Biarctus pumilus (Nobili, 1906), phyllosoma stage IX (Final) (Manta_L39). A, ventral (right) and dorsal (left) view; B, dactylus of first pereiopod; C, dactylus of second pereiopod; D, dactylus of third pereiopod; E, dactylus of fourth pereiopod; F, thorax. Scale bars: A and F = 2 mm; B– E = 200 µm.
Fig. 7 in Polistes stigma
Fig. 7. Acantharctus ornatus (Holthuis, 1960), phyllosoma stage VIII (Subfinal). A, stalked eye, antennule and antenna (Ring_L08); B, C, left (Ring_ L08) and right (Manta_L30) mandibles (ventral view); D, maxillule; E, maxilla and first maxilliped (Ring_L08); F, second maxilliped (Ring_L08); G, fifth pereiopod, pleopods 2–5 and uropods (ventral view) (Ring_L08). Scale bars: A and G = 500 µm; B–D = 100 µm; E and F = 200 µm.
Fig. 6 in Polistes stigma
Fig. 6. Acantharctus ornatus (Holthuis, 1960), phyllosoma stage VIII (subfinal). A, ventral (right) and dorsal (left) view (Ring_L08); B, dactylus of first pereiopod (Manta_L31); C, dactylus of second pereiopod (Manta_L301); D, dactylus of third pereiopod (Manta_L31); E, dactylus of fourth pereiopod (Ring_L08). Scale bars: A = 2 mm; B–E = 200 µm.
Fig. 2 in Polistes stigma
Fig. 2. Maximum likelihood phylogenetic trees obtained from COI (A, left) and 16S (B, right) gene alignments. Only significant bootstrap values (> 70) are shown.
Fig. 1 in Polistes stigma
Fig. 1. Location of 22 stations sampled by the RV Dr Fridtjof Nansen along the KwaZulu-Natal coast in eastern South Africa. Stations where phyllosomas were caught are indicated with a star.
Figure 1. A in Contribution on the eating habits and new records of Mirothrips arbiter Cavalleri, Souza, Prezoto & Mound, 2013 (Thysanoptera: Phlaeothripidae) in Polistes Latreille, 1802 (Hymenoptera: Vespidae) wasp nests
Figure 1. A. Specimen of Polistes melanosoma. B. Specimen of Polistes ferreri. C. Colony of Polistes melanosoma. D. Colony of Polistes ferreri. E. Female of Mirothrips arbiter in nest of P. melanosoma. F. Pupae of M. arbiter at the bottom of a cell near the meconium of P. melanosoma. / A. Ejemplar de Polistes melanosoma. B. Ejemplar de Polistes ferreri. C. Colonia de P. melanosoma. D. Colonia de P. ferreri. E. Hembra de Mirothrips arbiter en nido de P. melanosoma. F. Pupas de M. arbiter en el fondo de una celda cerca del meconio de P. melanosoma.
Fig. 3. Energy dispersive x in Extraction and elemental composition of meconium in Polistes dominulus (Hymenoptera: Vespidae)
Fig. 3. Energy dispersive x-ray spectra of Polistes dominulus meconia samples according to locality number: (1) Hatay, Payas; (2) Hatay, Erzin, YeŞiltepe; (3) İÇel, Mezitli; (4) İÇel, Tarsus, Kaleburcu; (5) İÇel, Tarsus, Çamtepe; (6) Osmaniye, Kadirli; (7) Osmaniye, Toprakkale; (8) Adana, Yüreğir; (9) Adana, SarıÇam; (10) Adana, Kozan, Anavarza; (11) Adana, Ceyhan; (12) Adana, İmamoglu.
Fig. 1 in Flight distance and return capacity of Polistes lanio lanio (Hymenoptera: Vespidae) workers
Fig. 1. Polistes lanio lanio (Hymenoptera: Vespidae) in a nest afer being marked and released at predetermined points at the Universidade Federal Rural do Rio de Janeiro campus in Seropédica, Rio de Janeiro, Brazil.
Figure 2 in First record of Hirsutella saussurei in the Galápagos Islands and first evidence parasitizing the invasive paper wasp, Polistes versicolor
Figure 2. Phialidae (conidia attached at the apical part of the sterigmata) ofH. saussurei (Cooke) Speare (Ascomycota:Hypocreales) from our sample,photographed using a digital camera attached to a microscope (1000 X) and previously dyed with blue of lactophenol.
Figure 1 in First record of Hirsutella saussurei in the Galápagos Islands and first evidence parasitizing the invasive paper wasp, Polistes versicolor
Figure 1. Synnemata of H. saussurei (Cooke) Speare (Ascomycota:Hypocreales) arising from host (P. versicolor (Olivier) (Hymenoptera: Vespidae)), picture was taken during a sampling at Cerro Luna, in Santa Cruz (Galápagos, Ecuador). It is possible to observe the hyphae of the fungi arising from some parts of the wasp body.
Figures 32-40. Polistes. 32 in Vespidae (Insecta: Hymenoptera) of Puerto Rico, West Indies
Figures 32-40. Polistes. 32) P. minor Palisot de Beauvois, propodeum in oblique posterior view. 33) P. crinitus (Felton), pronotum in oblique lateral view. 34-35) Mesosoma in dorsal view. 34) P. crinitus (Felton). 35) P. minor Palisot de Beauvois. 36-37) P. crinitus. 36) First metasomal tergum in lateral view. 37) First metasomal tergum in dorsal view. 38) P. minor, first metasomal tergum in dorsal view. 39-40) P. major Palisot de Beauvois. 39) First metasomal tergum in lateral view. 40) First metasomal tergum in dorsal view. Scale bars = 1 mm.
Figure 1-3. Habitus images. 1-2 in Polistes dominula (Christ, 1791) (Hymenoptera: Vespidae: Polistinae) found in South Dakota, U.S.A.
Figure 1-3. Habitus images. 1-2) Polistes dominula (Christ) from France, lateral and dorsal. 2) Polistes fuscatus (Fabricius) from Arkansas, U.S.A., dorsal.
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International Brain Laboratory public data
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OpenNeuro
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