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159 results for “Rhinotermitidae”
FIGURES 50 57. Rhinotermitidae and Serritermitidae. 50 in An illustrated key to Neotropical termite genera (Insecta: Isoptera) based primarily on soldiers
FIGURES 50 57. Rhinotermitidae and Serritermitidae. 50. Rhinotermes marginalis, major soldier; 51. idem, minor soldier; 52. Dolichorhinotermes longilabius; minor soldier; 53. idem, major soldier. 54 55. Acorhinotermes subfusciceps; 56 57. Serritermes serrifer. (scale bars = 0.5 mm)
FIGURES 41 49. Rhinotermitidae, soldiers. 41 42 in An illustrated key to Neotropical termite genera (Insecta: Isoptera) based primarily on soldiers
FIGURES 41 49. Rhinotermitidae, soldiers. 41 42. Coptotermes testaceus; 43 44. Heterotermes tenuis; 45. Glossotermes oculatus; 46 47. Prorhinotermes simplex; 48 49. Reticulitermes flavipes. (scale bars = 0.5 mm)
Figs 1, 2. Aspergillus flavus. 1 in Symptomatology of termite Coptotermes curvignathus Holmgren (Rhinotermitidae) after fungi infection of Aspergillus flavus
Figs 1, 2. Aspergillus flavus. 1 – colony on Potato Dextrose Agar (PDA); 2 – morphology of conidia: (1) vesicles; (2) metula; (3) fialid; (4) conidiospores; (5) conidiophore.
Figs 3–6 in Symptomatology of termite Coptotermes curvignathus Holmgren (Rhinotermitidae) after fungi infection of Aspergillus flavus
Figs 3–6. Body surface morphology of Coptotermes curvignathus infected with Aspergillus flavus. 3 – negative control; 4 – 1st day after application; 5 – 3rd day; 6 – 7th day.
FIGURE 2 in A new Rovno amber termite genus (Isoptera, Rhinotermitidae) from Styr river basin
FIGURE 2. Lukotermes milescaput gen. et sp. nov., holotype L-122, female. Head frontal view (A), fore leg (B). Scale bars equal to 0.2 mm in A, 0.1 mm in B.
FIGURE 3 in A new Rovno amber termite genus (Isoptera, Rhinotermitidae) from Styr river basin
FIGURE 3. Lukotermes milescaput gen. et sp. nov., holotype L-122, female. Abdomen apex, arrow: cercus. Scale bar equals 0.2 mm.
FIGURE 1 in A new Rovno amber termite genus (Isoptera, Rhinotermitidae) from Styr river basin
FIGURE 1. Lukotermes milescaput gen. et sp. nov., holotype L-122, female. General habitus (A), head from above, arrows: bumps (B), thorax from above (C), head from below (D). Scale bars equal 1 mm in A, 0.2 mm in B–C, 0.5 mm in D.
Fig. 1 in Rare production of nymphs in an Asian subterranean termite (Isoptera: Rhinotermitidae) incipient colony
Fig. 1. Group of Coptotermes gestroi individuals from the only incipient colony (10 mo old) that produced nymphs in this study. W = worker, S = soldier, M = male (primary reproductive), N = nymph (with wing buds).
Fig. 5 in Territorial status-quo between the big-headed ant (Hymenoptera: Formicidae) and the Formosan subterranean termite (Isoptera: Rhinotermitidae)
Fig. 5. Accumulation of cadavers in the area with agonistic interaction between ants and termites. At the end of the fight, ants and termites sealed the area to prevent further contact.
Fig. 4 in Territorial status-quo between the big-headed ant (Hymenoptera: Formicidae) and the Formosan subterranean termite (Isoptera: Rhinotermitidae)
Fig. 4. Termites inside the ant arena. Afer the termite group accessed parts of the ant tunnel system, ants rapidly sealed all connections to prevent direct interaction.
Fig. 3. Sealing and walling off the access point between the 2 in Territorial status-quo between the big-headed ant (Hymenoptera: Formicidae) and the Formosan subterranean termite (Isoptera: Rhinotermitidae)
Fig. 3. Sealing and walling off the access point between the 2 species where both termites and ants are depositing sand particles to create a physical sepa- ration with little to no casualties. A) in the tube between the arenas, B) at the entrance of the arena.
Fig. 2 in Territorial status-quo between the big-headed ant (Hymenoptera: Formicidae) and the Formosan subterranean termite (Isoptera: Rhinotermitidae)
Fig. 2. Arena setup for the competition experiment. On the lef, the arena contains the group of P. megacephala, while on the right, the arena contains the group of C. formosanus. Both arenas are connected by a tube (30 cm).
Fig. 1. A in Territorial status-quo between the big-headed ant (Hymenoptera: Formicidae) and the Formosan subterranean termite (Isoptera: Rhinotermitidae)
Fig. 1. A) Abandoned lot in a residential area in Ft Lauderdale, Florida. Scale bar = 1 m. B) Under the woodblock on the ground, P. megacephala had a nest structure with a large brood (circled on the right), while within 5 cm, separated by an insect-made soil barrier, C. formosanus had a tunneling structure (circled on the lef), here a fecal deposit, at the interface between the soil and the woodblock. The observed agonism between the 2 species was the result of the disturbance when the woodblock was lifed, however, both species were previously observed one year before at this exact location, showing that the proximity between the 2 species can be stable over time. Scale bar = 2cm.
Fig. 1 in Molecular diagnostic technique for the differentiation of the Formosan subterranean termite, Coptotermes formosanus (Isoptera: Rhinotermitidae) from other subterranean termites by multiplex-PCR
Fig. 1. Ethidium bromide-stained agarose gel (2%) illustrating a common amplicon of 262 bp from the mtDNA 16S gene for various termite species and unique amplicon of 221 bp specific for the Formosan subterranean termite.
Fig. 3 in Establishment and spread of two invasive subterranean termite species (Coptotermes formosanus and C. gestroi; Isoptera: Rhinotermitidae) in metropolitan southeastern Florida (1990-2015)
Fig. 3. Cumulative area within metropolitan southeastern Florida that is at risk of infestation by Coptotermes species over time. An area at risk was determined by the zone within a 500 m radius from a termite record (at scale on the figure).
Fig. 1 in Establishment and spread of two invasive subterranean termite species (Coptotermes formosanus and C. gestroi; Isoptera: Rhinotermitidae) in metropolitan southeastern Florida (1990-2015)
Fig. 1. Putative distribution of Coptotermes formosanus and Coptotermes gestroi in the southeastern United States. Both species have a distribution overlap in metropolitan southeastern Florida.
Fig. 7 in Proliferation of the invasive termite Coptotermes gestroi (Isoptera: Rhinotermitidae) on Grand Cayman and overall termite diversity on the Cayman Islands
Fig. 7. Plot for the Single Linkage clustering method for distances to the nearest marine dockage of Coptotermes gestroi over Grand Cayman Island.
Fig. 6 in Proliferation of the invasive termite Coptotermes gestroi (Isoptera: Rhinotermitidae) on Grand Cayman and overall termite diversity on the Cayman Islands
Fig. 6. Plot for the Single Linkage clustering method for Coptotermes gestroi over Grand Cayman Island.
Fig. 8 in Proliferation of the invasive termite Coptotermes gestroi (Isoptera: Rhinotermitidae) on Grand Cayman and overall termite diversity on the Cayman Islands
Fig. 8. Distribution of mean nearest neighbor distance obtained from Monte- Carlo simulation with 102 randomized points placed in built areas within suitable habitats.
Fig. 2 in Establishment and spread of two invasive subterranean termite species (Coptotermes formosanus and C. gestroi; Isoptera: Rhinotermitidae) in metropolitan southeastern Florida (1990-2015)
Fig. 2. Distribution of Coptotermes formosanus and Coptotermes gestroi in metropolitan southeastern Florida 2000–2015.
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