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6,059 results for “Journale”
Figure 3 from: Galgani-Barraza P, Moreno JE, Lobo S, Tribaldos W, Roubik DW, Wcislo WT (2019) Flower use by late nineteenth-century orchid bees (Eufriesea surinamensis, Hymenoptera, Apidae) nesting in the Catedral Basílica Santa María la Antigua de Panamá. Journal of Hymenoptera Research 74: 65-81. https://doi.org/10.3897/jhr.74.39191
Figure 3 Locations of nest cell aggregations of Eufriesea surinamensis within the Cathedral in Casco Viejo, Panamá A restored reredos showing the capitals above the columns where the historical bee cells were found (black arrows) B a scroll removed during the contemporary restoration, showing bee cells within its crevices and golden material applied during the nineteenth-century restoration C close-up of scrolls on a capital showing painted bee cells from the prior restoration.
Plate 5 from: Galgani-Barraza P, Moreno JE, Lobo S, Tribaldos W, Roubik DW, Wcislo WT (2019) Flower use by late nineteenth-century orchid bees (Eufriesea surinamensis, Hymenoptera, Apidae) nesting in the Catedral Basílica Santa María la Antigua de Panamá. Journal of Hymenoptera Research 74: 65-81. https://doi.org/10.3897/jhr.74.39191
Plate 5 Tetrameristaceae: Pelliciera rhizophorae (39) Monocots. Arecaceae: Undetermined sp.1 (40) Undetermined sp.2 (41) Bromeliaceae: Vriesea sp. (42) Costaceae: Costus sp.1 (43) Costus sp.2 (44) Costus sp.3 (45) Costus sp.4 (46) Poaceae: aff. Zea mays (47) Undetermined sp. (48) FERN SPORES. Cyatheaceae: Cyathea sp. (49) Selaginellaceae: Selaginella sp. (50) UNDETERMINED. Fungal sp.1 (51) Fungal sp.2 (52) Fungal sp.3 (53) (×100) (Blue circle = 60X) (Red circle = DIC photo)
Figure 1 from: Galgani-Barraza P, Moreno JE, Lobo S, Tribaldos W, Roubik DW, Wcislo WT (2019) Flower use by late nineteenth-century orchid bees (Eufriesea surinamensis, Hymenoptera, Apidae) nesting in the Catedral Basílica Santa María la Antigua de Panamá. Journal of Hymenoptera Research 74: 65-81. https://doi.org/10.3897/jhr.74.39191
Figure 1 Environs of the Eufriesea surinamensis nesting site in Casco Viejo, Panamá in 1875, as seen from the summit of Cerro Ancón. A white tower of the Cathedral where bees were nesting is visible in the distant background in the center of the peninsula. Photo by Eadweard Muybridge, courtesy of the Smithsonian American Art Museum; gift of Mitchell and Nancy Steir.
Plate 4 from: Galgani-Barraza P, Moreno JE, Lobo S, Tribaldos W, Roubik DW, Wcislo WT (2019) Flower use by late nineteenth-century orchid bees (Eufriesea surinamensis, Hymenoptera, Apidae) nesting in the Catedral Basílica Santa María la Antigua de Panamá. Journal of Hymenoptera Research 74: 65-81. https://doi.org/10.3897/jhr.74.39191
Plate 4 Rubiaceae: aff. Faramea sp. (30) Genipa americana (31) Macrocnemum glabrescens (32) Psychotria sp. (33) Sapindaceae: Cupania sp. (34) Serjania sp.1 (35) Serjania sp.2 (36) Sapotaceae: Pouteria sp. (37) Solanaceae: Solanum sp. (38) (×100) (Red circle = DIC photo).
Plate 2 from: Galgani-Barraza P, Moreno JE, Lobo S, Tribaldos W, Roubik DW, Wcislo WT (2019) Flower use by late nineteenth-century orchid bees (Eufriesea surinamensis, Hymenoptera, Apidae) nesting in the Catedral Basílica Santa María la Antigua de Panamá. Journal of Hymenoptera Research 74: 65-81. https://doi.org/10.3897/jhr.74.39191
Plate 2 Bignoniaceae: aff. Ceratophytum tetragonolobum (11) Tabebuia sp. (12) Boraginaceae: Cordia sp. aff. C. spinescens (13) Heliotropium procumbens (14) Cannabaceae: Celtis sp. (15) Combretaceae: Conocarpus erectus (16) Laguncularia racemosa (17) Euphorbiaceae: Alchornea sp. aff. A. latifolia (18) Croton sp. (19) (×100) (Red circle = DIC photo).
Figure 5 from: Galgani-Barraza P, Moreno JE, Lobo S, Tribaldos W, Roubik DW, Wcislo WT (2019) Flower use by late nineteenth-century orchid bees (Eufriesea surinamensis, Hymenoptera, Apidae) nesting in the Catedral Basílica Santa María la Antigua de Panamá. Journal of Hymenoptera Research 74: 65-81. https://doi.org/10.3897/jhr.74.39191
Figure 5 Eufriesea surinamensis reared from cells A head, lateral, dorsal and ventral views of recovered bees B habitus drawing and head of exemplar (STRI-Portal; https://www.stricollections.org/portal/taxa/index.php?taxon=48960).
Plate 3 from: Galgani-Barraza P, Moreno JE, Lobo S, Tribaldos W, Roubik DW, Wcislo WT (2019) Flower use by late nineteenth-century orchid bees (Eufriesea surinamensis, Hymenoptera, Apidae) nesting in the Catedral Basílica Santa María la Antigua de Panamá. Journal of Hymenoptera Research 74: 65-81. https://doi.org/10.3897/jhr.74.39191
Plate 3 Fabaceae-Caesalpinioideae: Mimosa sp. (20) Fabaceae-Cercidoideae: Bauhinia guianensis (21) Bauhinia reflexa (22) Fabaceae-Papilionoideae: Dioclea reflexa (23) Machaerium sp. (24) Malvaceae-Bombacoideae: Bombacopsis quinata (25) Pseudobombax septenatum (26) Malvaceae-Grewioideae: aff. Heliocarpus sp. (27) Melastomataceae: Miconia sp. (28) Myrtaceae: Eugenia sp. (29) (×100) (Red circle = DIC photo).
Plate 1 from: Galgani-Barraza P, Moreno JE, Lobo S, Tribaldos W, Roubik DW, Wcislo WT (2019) Flower use by late nineteenth-century orchid bees (Eufriesea surinamensis, Hymenoptera, Apidae) nesting in the Catedral Basílica Santa María la Antigua de Panamá. Journal of Hymenoptera Research 74: 65-81. https://doi.org/10.3897/jhr.74.39191
Plate 1 Eudicots. Acanthaceae: Avicennia germinans (1) Amaranthaceae: aff. Chenopodium sp. (2) Anacardiaceae: Spondias sp. aff. S. mombin (3) Apocynaceae: Malouetia guatemalensis (4) Mandevilla sp. aff. M. villosa (5) Prestonia sp. (6) Stemmadenia grandiflora (7) Thevetia ahouai (8) Asteraceae: undetermined (9) Bignoniaceae: Arrabidaea sp. (10) (×100) (Red circle = DIC photo).
Figure 4 from: Miller LA, Benefield TD, Lounsbury SA, Lohrmann V, Blaschke JD (2019) DNA barcoding of rhopalosomatid larvae reveals a new host record and genetic evidence of a second species of Rhopalosoma Cresson (Hymenoptera, Rhopalosomatidae) in America north of Mexico. Journal of Hymenoptera Research 74: 35-46. https://doi.org/10.3897/jhr.74.38276
Figure 4 Neighbor Joining phylogeny of Rhopalosoma with Olixon sp. as the outgroup. Consensus support shown for important nodes. Cricket photos by Carl Strang (Hapithus agitator), and Wil Hershberger/Lang Elliott (H. saltator and Anaxipha exigua s.g.).
Supplementary material 2 from: Wong D-M, Bain A, Shiao S-F, Chou L-S (2019) Fighting injuries, fig exit, and dimorphism in two species of sycoryctine fig wasp (Chalcidoidea, Pteromalidae). Journal of Hymenoptera Research 74: 105-121. https://doi.org/10.3897/jhr.74.36461
: Data type: multimedia
Figure 3 from: Miller LA, Benefield TD, Lounsbury SA, Lohrmann V, Blaschke JD (2019) DNA barcoding of rhopalosomatid larvae reveals a new host record and genetic evidence of a second species of Rhopalosoma Cresson (Hymenoptera, Rhopalosomatidae) in America north of Mexico. Journal of Hymenoptera Research 74: 35-46. https://doi.org/10.3897/jhr.74.38276
Figure 3 Maximum Likelihood phylogeny of Rhopalosoma with Olixon sp. as the outgroup. Bootstrap support shown for important nodes. Cricket photos by Carl Strang (Hapithus agitator), and Wil Hershberger/Lang Elliott (H. saltator and Anaxipha exigua s.g.).
Figure 2 from: Wong D-M, Bain A, Shiao S-F, Chou L-S (2019) Fighting injuries, fig exit, and dimorphism in two species of sycoryctine fig wasp (Chalcidoidea, Pteromalidae). Journal of Hymenoptera Research 74: 105-121. https://doi.org/10.3897/jhr.74.36461
Figure 2 Relationship between head width and mandible length in aPhilotrypesis and bSycorycteridea. Typical Philotrypesis and small Sycorycteridea are represented by the unfilled circles whereas atypical Philotrypesis and large Sycorycteridea are represented by filled circles.
Figure 1 from: Wong D-M, Bain A, Shiao S-F, Chou L-S (2019) Fighting injuries, fig exit, and dimorphism in two species of sycoryctine fig wasp (Chalcidoidea, Pteromalidae). Journal of Hymenoptera Research 74: 105-121. https://doi.org/10.3897/jhr.74.36461
Figure 1 Frontal view of the males of the two studied species and mandible outline (a) a "typical" Philotrypesis male: rounded back of the head and broad mandibles (b) "atypical" Philotrypesis male: head more square and falcate mandibles (c) Sycorycteridea small male, rectangular head (d) Sycorycteridea large male, lantern-shaped head.
Figure 1 from: Miller LA, Benefield TD, Lounsbury SA, Lohrmann V, Blaschke JD (2019) DNA barcoding of rhopalosomatid larvae reveals a new host record and genetic evidence of a second species of Rhopalosoma Cresson (Hymenoptera, Rhopalosomatidae) in America north of Mexico. Journal of Hymenoptera Research 74: 35-46. https://doi.org/10.3897/jhr.74.38276
Figure 1 Adult female Rhopalosoma cf. nearcticum attracted to a mercury-vapor lamp in Fairfax County, VA, USA on July 29, 2018. Photo by Ashley Bradford, initially posted on bugguide.net.
Supplementary material 1 from: Wong D-M, Bain A, Shiao S-F, Chou L-S (2019) Fighting injuries, fig exit, and dimorphism in two species of sycoryctine fig wasp (Chalcidoidea, Pteromalidae). Journal of Hymenoptera Research 74: 105-121. https://doi.org/10.3897/jhr.74.36461
: Data type: species data
Figure 2 from: Miller LA, Benefield TD, Lounsbury SA, Lohrmann V, Blaschke JD (2019) DNA barcoding of rhopalosomatid larvae reveals a new host record and genetic evidence of a second species of Rhopalosoma Cresson (Hymenoptera, Rhopalosomatidae) in America north of Mexico. Journal of Hymenoptera Research 74: 35-46. https://doi.org/10.3897/jhr.74.38276
Figure 2 Life stages and representative specimens of RhopalosomaA 5th instar larva prior to burrowing (MK991305) B pupal case extracted from soil (MK991302) C adult after failing to emerge properly from cocoon (MK991303) D disarticulated mandible from pupal case (MK991302) E pupal case extracted from dirt showing still living pre-pupa (MK991301) F pupal case awaiting adult emergence (MK991300) G–I early instar larvae attached to: GHapithus agitator adult (larva: MK991304) and HH. saltator nymph (larva: MK991307) IAnaxipha exigua species group (inset: detached larva: MK991302).
Fig 6 from: Bhaskar D, Easa PS, Rowell CHF (2020) Mopla guttata (Acrididae: Catantopinae) rediscovered in the Western Ghats, Kerala, India. Journal of Orthoptera Research 29(1): 17-23. https://doi.org/10.3897/jor.29.35664
Fig 6 Mopla guttata, phallic structures. A. Oblique posterior view of phallic complex before preparation and dissection; B. Epiphallus, anterior view; C. Dorsal and D. Lateral views of phallic complex with epiphallus, epiphallic, and ectophallic membranes removed; and E. Endophallus, arch sclerite, and ectophallic aedeagal valves, after removal of remaining ectophallic structures. In C–E the endophallus is in a darker shading, the ectophallus in lighter shading. The broken line in D indicates the presumed position of the ejaculatory sac, missing from this preparation. Spermatophore sac stippled.
Fig 5 from: Bhaskar D, Easa PS, Rowell CHF (2020) Mopla guttata (Acrididae: Catantopinae) rediscovered in the Western Ghats, Kerala, India. Journal of Orthoptera Research 29(1): 17-23. https://doi.org/10.3897/jor.29.35664
Fig 5 Male terminalia of Mopla guttata. A. Dorsal aspect of pinned specimen; B. Interpretive drawing of A; C. Lateral view; and D. Cleared preparation of abdominal tergites 10 and 11. Note that the terminal lobe of the supraanal plate is missing; compare with A and B. Furcula and the obliquely truncate cerci are clearly shown.
Fig 1 from: Bhaskar D, Easa PS, Rowell CHF (2020) Mopla guttata (Acrididae: Catantopinae) rediscovered in the Western Ghats, Kerala, India. Journal of Orthoptera Research 29(1): 17-23. https://doi.org/10.3897/jor.29.35664
Fig 1 A.Mopla guttata, holotype female (NHMUK); B.Mopla rubra, holotype female (NHMUK). Photo credit: D. Bhaskar.
Fig 3 from: Bam A, Addison P, Conlong D (2020) Acridid ecology in the sugarcane agro-ecosystem in the Zululand region of KwaZulu-Natal, South Africa. Journal of Orthoptera Research 29(1): 9-16. https://doi.org/10.3897/jor.29.34626
Fig 3 Population survey showing the relative abundance of the five most prominent acridid species in sugarcane in relation to the damage rating index on the secondary y axis.
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Allen Brain Atlas
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International Brain Laboratory public data
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OpenNeuro
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