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661 results for “Sciaridae”

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zenodo40/100

Figures 16–20 in The sciarid fauna of the British Isles (Diptera: Sciaridae), including descriptions of six new species

Figures 16–20. Epidapus subgracilis Menzel & Mohrig sp. nov., male. Fig. 16. Hypopygium in ventral view. Fig. 17. Apical part of gonostyle in ventral view. Fig. 18. 4th flagellomere. Fig. 19. Palpus in lateral view. Fig. 20. Haltere.

opencc-by-4.0Jan 2006View details →
zenodo40/100

Figs 1–3 in New Records Of Sciarid Species (Diptera, Sciaridae) From Ukraine. Iv

Figs 1–3. Bradysia forficulata Ơ: 1 — hypopygium, ventral view; 2 — gonostylus, ventral view; 3 — anterior apex of fore tibia (p1) with tibial organ, prolateral view. Scale 0.1 mm.

opencc-by-4.0Dec 2022View details →
zenodo40/100

Figs 4–9 in New Records Of Sciarid Species (Diptera, Sciaridae) From Ukraine. Iv

Figs 4–9. Bradysia lobata Ơ: 4 — hypopygium, ventral view; 5 — gonostylus, ventral view; 6 — fourth flagellomere, lateral view; 7 — basal lobe, ventral view; 8 — anterior apex of fore tibia (p1) with tibial organ, prolateral view; 9 — eye bridge, dorsal view. Scale 0.1 mm.

opencc-by-4.0Dec 2022View details →
zenodo40/100

Figs 15–19 in New Records Of Sciarid Species (Diptera, Sciaridae) From Ukraine. Iv

Figs 15–19. Bradysia urticae Ơ: 15 — hypopygium, ventral view; 16 — gonostylus, ventral view; 17 — anterior apex of fore tibia (p1) with tibial organ, prolateral view; 18 — maxillary palpus, frontal view; 19 — fourth flagellomere, lateral view. Scale 0.1 mm.

opencc-by-4.0Dec 2022View details →
zenodo40/100

Figs 10–14 in New Records Of Sciarid Species (Diptera, Sciaridae) From Ukraine. Iv

Figs 10–14. Bradysia normalis Ơ: 10 — hypopygium, ventral view; 11 — gonostylus, ventral view; 12 — anterior apex of fore tibia (p1) with tibial organ, prolateral view; 13 — fourth flagellomere, lateral view; 14 — basal lobe, ventral view. Scale 0.1 mm.

opencc-by-4.0Dec 2022View details →
zenodo36/100

FIGURE 7 in Revision of the types of male Sciaridae (Diptera) described from Australia by F. A. A. Skuse

FIGURE 7. Austrosciara spectabilis (Skuse, 1888). A. Hypopygium; B. Apex of gonostylus; C. Wing.

opencc-zeroDec 2016View details →
zenodo36/100

Fig. 6 in Sciarid flies from Dominican Amber (Diptera, Sciaridae)

Fig. 6: Archicratyna

opencc-by-4.0Dec 2005View details →
zenodo36/100

Fitness of two mushroom flies Bradysia minpleuroti (Diptera: Sciaridae) and Coboldia fuscipes (Diptera: Scatopsidae) fed on two edible mushrooms

<p><a name="OLE_LINK220"></a><a name="OLE_LINK189"></a><em>Dictyophora</em> <em>rubrovolvata</em> and <a name="OLE_LINK87"></a><em>Pleurotus</em> <em>ostreatus</em> are economically important mushrooms in China. <a name="_Hlk146231531"></a><em>Bradysia</em> <em>minpleuroti</em> Yang et Zhang and <a name="OLE_LINK71"></a><em>Cobolidia</em> <em>fuscipes</em> (Meigen, 1830) are important mushroom flies that damage the two mushrooms. In this study we used the age-stage, two-sex life table method assessed <a name="_Hlk146230932"></a>the fitness of <a name="_Hlk143696432"></a><em>B</em>. <em>minpleuroti</em> and <em>C</em>. <em>fuscipes</em> when they were respectively fed on <a name="OLE_LINK20"></a><em>D</em>. <em>rubrovolvata</em> and <em>P</em>. <em>ostreatus</em>. Our results showed that the 1st (2.39 days) and 2nd (1.41 days) instar larvae, pupa (2.87 days) and total longevity (18.19 days) of <em>B</em>. <em>minpleuroti</em> were shorter when fed on <em>P</em>. <em>ostreatus</em> than fed on <em>D</em>. <em>rubrovolvata </em>(3.46, 1.86, 3.10, 20.19 days). <a name="OLE_LINK233"></a><em>B</em>. <em>minpleuroti</em> had similar fecundity when fed on the two edible mushrooms. <em>B</em>. <em>minpleuroti</em> had higher values of net reproductive rate (<em>R</em><sub>0</sub>, 87.73), intrinsic rate of increase (<em>r</em>, 0.2604), and finite rate of increase (<em>&lambda;</em>, 1.2974) and shorter mean generation time (<em>T</em>, 17.19) when fed on <em>P</em>. <em>ostreatus</em> than fed on <em>D</em>. <em>rubrovalvata</em>. The developmental period of larvae stage and pupa stage of <em>C</em>. <em>fuscipes</em> were significantly affected by the two edible mushrooms. Female fecundity, total longevity, <em>R</em><sub>0</sub>, <em>r</em>, <em>&lambda;</em> and <em>T</em> of <em>C</em>. <em>fuscipes</em> were not significantly different between the two edible mushrooms. We found that<a name="OLE_LINK174"></a> fitness of <em>B</em>. <em>minpleuroti</em> larvae had higher fitness when fed on <em>P</em>. <em>ostreatus</em> than fed on <em>D</em>. <em>rubrovolvata</em>. However, <a name="OLE_LINK183"></a>the fitness of <em>C</em>. <em>fuscipes</em> larvae had no significant difference fed on the two edible mushrooms. This study has provided valuable data and insights by delving into the adaptability of two significant pests on two edible mushrooms. It facilitates the development of more effective pest management strategies, contributing to the development of the mushroom industry.</p>

opencc-by-4.0Mar 2024View details →
zenodo32/100

FIGURE 61 in The genus Pseudolycoriella Menzel & Mohrig, 1998 (Diptera, Sciaridae) in New Zealand

FIGURE 61. Phylogenetic tree of the New Zealand Pseudolycoriella species inferred from Maximum Likelihood analysis based on three concatenated genes (COI, 16S, and 28S; total length 3,053 bp) applying the model GTR+F+R4. Ultrafast bootstrap values (UFBoot; 1,000 replicates) are given if these values are greater than or equal to 95%. Intraspecific UFBoot values are not specified. Pseudolycoriella species without available genetic data are also inserted and assigned to a species complex according to the morphological results.

opennotspecifiedDec 2019View details →
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FIGURES 37–42. Pseudolycoriella jejuna complex, hypopygia. 37 in The genus Pseudolycoriella Menzel & Mohrig, 1998 (Diptera, Sciaridae) in New Zealand

FIGURES 37–42. Pseudolycoriella jejuna complex, hypopygia. 37. Pseudolycoriella sudhausi sp. n. 38. Pseudolycoriella whena sp. n. 39. Pseudolycoriella porotaka sp. n. 40. Pseudolycoriella nahenahe sp. n. 41. Pseudolycoriella raki sp. n. 42. Pseudolycoriella dagae sp. n. Abbreviation: ba = basal angle.

opennotspecifiedDec 2019View details →
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FIGURES 43–47. Pseudolycoriella jejuna complex, hypopygia. 43 in The genus Pseudolycoriella Menzel & Mohrig, 1998 (Diptera, Sciaridae) in New Zealand

FIGURES 43–47. Pseudolycoriella jejuna complex, hypopygia. 43. Pseudolycoriella tewaipounamu sp. n. 44. Pseudolycoriella hauta sp. n. 45. Pseudolycoriella whakahara sp. n. 46. Pseudolycoriella jejunella sp. n. 47. Pseudolycoriella maddisoni sp. n.

opennotspecifiedDec 2019View details →
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FIGURES 14–19. Pseudolycoriella bispina complex, hypopygia. 14. Pseudolycoriella bispina Mohrig. 15 in The genus Pseudolycoriella Menzel & Mohrig, 1998 (Diptera, Sciaridae) in New Zealand

FIGURES 14–19. Pseudolycoriella bispina complex, hypopygia. 14. Pseudolycoriella bispina Mohrig. 15. Pseudolycoriella teo sp. n. 16. Pseudolycoriella puhihi sp. n. 17. Pseudolycoriella orite sp. n. 18. Pseudolycoriella mahanga sp. n. 19. Pseudolycoriella porehu sp. n. Abbreviation: ti = insertion of the tendon of the gonostylus adductor.

opennotspecifiedDec 2019View details →
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FIGURE 9 in Black fungus gnats (Diptera: Sciaridae) of Queensland, Australia. Part II. Genus Pseudolycoriella Menzel & Mohrig, 1998

FIGURE 9. Pseudolycoriella paucispinata sp. n. A. Hypopygium; B. Flagellomeres 3–4; C. Palpus; D. Apex of fore tibia.

opennotspecifiedMar 2020View details →
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FIGURE 11 in Black fungus gnats (Diptera: Sciaridae) of Queensland, Australia. Part II. Genus Pseudolycoriella Menzel & Mohrig, 1998

FIGURE 11. Pseudolycoriella skusei Mohrig, Kauschke &amp; Broadley. A. Hypopygium; B. Flagellomeres 1–4; C. Apex of fore tibia; D. Tarsal claws.

opennotspecifiedMar 2020View details →
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FIGURE 8 in Black fungus gnats (Diptera: Sciaridae) of Queensland, Australia. Part II. Genus Pseudolycoriella Menzel & Mohrig, 1998

FIGURE 8. Pseudolycoriella notanda sp. n. A. Hypopygium; B. Flagellomeres 3–5; C. Apex of fore tibia.

opennotspecifiedMar 2020View details →
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FIGURE 18 A–D. Scythropochroa trispinosa Steffan, 1969. Holotype. A in Revision of the black fungus gnat species (Diptera: Sciaridae) described by W.A. Steffan from Micronesia

FIGURE 18 A–D. Scythropochroa trispinosa Steffan, 1969. Holotype. A. Hypopygium; B. Head; C. Wing; D. Apex of fore tibia.

opennotspecifiedOct 2019View details →
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FIGURE 16 A–D. Scythropochroa gressitti Steffan, 1969. Holotype female. A in Revision of the black fungus gnat species (Diptera: Sciaridae) described by W.A. Steffan from Micronesia

FIGURE 16 A–D. Scythropochroa gressitti Steffan, 1969. Holotype female. A. Head; B. Flagellomeres 2–4; C. Wing; D. Apex of fore tibia.

opennotspecifiedOct 2019View details →
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FIGURE 17 A–B. Scythropochroa quadrispinosa Steffan, 1969. Holotype. A in Revision of the black fungus gnat species (Diptera: Sciaridae) described by W.A. Steffan from Micronesia

FIGURE 17 A–B. Scythropochroa quadrispinosa Steffan, 1969. Holotype. A. Hypopygium, left side; B. Flagellomeres 4–5 (specimen deformed and strongly bleached).

opennotspecifiedOct 2019View details →
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FIGURE 15 A–D in Revision of the black fungus gnat species (Diptera: Sciaridae) described by W.A. Steffan from Micronesia

FIGURE 15 A–D. Pseudolycoriella sylviae (Steffan, 1969). Holotype. A. Gonostylus; B. Head with palpus and basal flagellomeres; C. Flagellomeres 3–5; D. Apex of fore tibia.

opennotspecifiedOct 2019View details →
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FIGURE 14 A–C in Revision of the black fungus gnat species (Diptera: Sciaridae) described by W.A. Steffan from Micronesia

FIGURE 14 A–C. Pseudolycoriella ponapensis (Steffan, 1969). Holotype. A. Hypopygium; B. Flagellomeres 3–5; C. Apex of fore tibia (specimen strong deformed by turbidity of the medium and included air).

opennotspecifiedOct 2019View details →

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