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62 results for “Chrysoperla”
Figure 5 in Courtship song of the South African lacewing Chrysoperla zastrowi (Esben-Petersen) (Neuroptera: Chrysopidae): evidence for a trans-equatorial geographic range?
Figure 5. Scatterplot of the first two factors of a principal components analysis of 19 song features (see text) of Cc5, C. zastrowi, C. lucasina, C. mediterranea and C. agilis. Each data point represents a single individual, coded by taxon.
Figs 1-4 in Description of a new species of Chrysoperla STEINMANN, 1964 of the Ch. mediterranea HÖLZEL, 1972 group from Europe (Neuropterida, Neuroptera, Chrysopidae)
Figs 1-4: (1) Fore wing of Chrysoperla sp., central part showing the contact point (arrow) of the first transverse veinlet between the Radial sector (Rs) and the Pseudomedian vein (Psm). Cim = intramedian cell; Cu = cubital vein; M = median vein; Psc = post cubital vein; Psm = post median vein; R = radial vein; Rs = radial sector; Sc = sub costal vein; (2) Chrysoperla sp. claw outline of showing the basal dilation (d), the breadth (b) and the tilting angle (T); (3) Costal setae on the median part of the forewing of Chrysoperla europaea (left) and Ch. mediterranea (right); (4) Claws of Chrysoperla europaea (left), Ch. mediterranea (right).
Fig. 7 in Description of a new species of Chrysoperla STEINMANN, 1964 of the Ch. mediterranea HÖLZEL, 1972 group from Europe (Neuropterida, Neuroptera, Chrysopidae)
Fig. 7: Distribution of Chrysoperla europaea (after d-maps.com). Black spots: data which must be ascertained.
Figure 4 in Is a diet of Planococcus citri nymphs and adults suitable for Chrysoperla externa for use in biological control?
Figure 4. Survival (x100%) of Chrysoperla externa adults from larvae fed on (A) Ephestia kuehniella eggs and/or Planococcus citri nymphs and adults, as a function of gender (B), female and male. Curves with an asterisk (*) differ by the log-rank test (Kaplan-Meier, p<0.05). EK= E. kuehniella eggs; EK + PC= E. kuehniella eggs in the first instar and P. citri in subsequent instars; PC= P. citri in all instars. F= females; M= males.
Figure 3 in Is a diet of Planococcus citri nymphs and adults suitable for Chrysoperla externa for use in biological control?
Figure 3. Weight (mg) of Chrysoperla externa males and females from larvae fed on Ephestia kuehniella eggs and/or Planococcus citri nymphs and adults. Means ± SE followed by different letters, uppercase for prey types and lowercase for females and males, differ from each other by the Tukey test (p<0.05). EK= E. kuehniella eggs; EK + PC= E. kuehniella eggs in the first instar and P. citri in subsequent instars; PC= P. citri in all instars.
Figure 2 in Is a diet of Planococcus citri nymphs and adults suitable for Chrysoperla externa for use in biological control?
Figure 2. (A) Duration (days) and (B) survival (x100%) of the preimaginal period of Chrysoperla externa for larvae fed on Ephestia kuehniella eggs and/or Planococcus citri nymphs and adults. Means ± SE under the horizontal bar differ from each other by the Dunn test (Kruskal-Wallis, p<0.05). Means containing an asterisk* differ from each other by the log-rank test (Kaplan-Meier). EK= E. kuehniella eggs; EK + PC= E. kuehniella eggs in the first instar and P. citri in subsequent instars; PC= P. citri in all instars.
FIGURE 3 in Physiological selectivity of insecticides to eggs and larvae of predator Chrysoperla externa (HAGEN) (Neuroptera: Chrysopidae)
FIGURE 3 - Survival (%) (± SE) of immature stages of Chrysoperla externa from second instar larvae treated with the pesticides. Treatments: 1: chlorpyrifos; 2: cartap hydrochloride; 3: pyriproxyfen, 4: profenofos/lufenuron; 5: fenpropathrin; 6: triazophos/deltamethrin; 7: zetacypermethrin and 8: control.
FIGURE 4 in Physiological selectivity of insecticides to eggs and larvae of predator Chrysoperla externa (HAGEN) (Neuroptera: Chrysopidae)
FIGURE 4 - Duration (days) of immature stages of Chrysoperla externa from second instar larvae treated with the insecticides. Treatments: 1: chlorpyrifos; 2: cartap hydrochloride; 3: pyriproxyfen, 4: profenofos/lufenuron; 5: fenpropathrin; 6: triazophos/deltamethrin; 7: zetacypermethrin and 8: control.
FIGURE 1 in Physiological selectivity of insecticides to eggs and larvae of predator Chrysoperla externa (HAGEN) (Neuroptera: Chrysopidae)
FIGURE 1 - Survival of three larval instars and viability pupal (%) (± SE) stage of Chrysoperla externa, from first instar larvae treated with the insecticides. Treatments: 1: chlorpyrifos; 2: cartap hydrochloride; 3: pyriproxyfen, 4: profenofos/lufenuron; 5: fenpropathrin; 6: deltamethrin/triazophos; 7: zetacypermethrin and 8: control.
Figs 1–4 in First record of the green lacewing Chrysoperla nigrocapitata (Neuroptera: Chrysopidae) from Russia
Figs 1–4. Chrysoperla nigrocapitata from Kaimanovka, Primorskii Krai: 1 – netting
Exploring the activity of Chrysoperla carnea (Neuroptera: Chrysopidae) and Beauveria bassiana (Ascomycota: Hypocreales) on Neophilaenus campestris (Hemiptera: Aphrophoridae), vector of Xylella fastidiosa
<p>Raw data and R codes from the study "Exploring the activity of Chrysoperla carnea (Neuroptera: Chrysopidae) and Beauveria bassiana (Ascomycota: Hypocreales) on Neophilaenus campestris (Hemiptera: Aphrophoridae), vector of Xylella fastidiosa"</p>
FIGURE 3 in A new East-Asian species in the Chrysoperla carnea - group of cryptic lacewing species (Neuroptera: Chrysopidae) based on distinct larval morphology and a unique courtship song
FIGURE 3. Dorsal view of third-instar larval head capsules (left 65%) of Chrysoperla nigrocapitata sp.n. (a–d) and C. nipponensis (e–h). Chrysoperla nigrocapitata illustrations: (b) and (c) drawn from Japanese larvae in alcohol reared at 25ºC; (a) and (d) extreme phenotypes drawn from photomicrographs of Japanese larvae reared at 27.5ºC; (b) placed directly in alcohol, (c) placed in alcohol after boiling (see text). Chrysoperla nipponensis illustrations: (e) and (f) drawn from Japanese larvae in alcohol reared at 25ºC; (g) drawn from Korean larva in alcohol reared at 25ºC; (h) dark phenotype drawn from a photomicrograph of a Japanese larva reared at 27.5ºC.
FIGURE 1 in A new East-Asian species in the Chrysoperla carnea - group of cryptic lacewing species (Neuroptera: Chrysopidae) based on distinct larval morphology and a unique courtship song
FIGURE 1. Dorsal view of third-instar larva of Chrysoperla nigrocapitata sp.n. (a) and C. nipponensis (b), from Japan and reared at 25ºC. Photographs by N. Haruyama.
Figure 6 in Distinctive but functionally convergent song phenotypes characterize two new allopatric species of the Chrysoperla carnea-group in Asia, Chrysoperla shahrudensis sp. nov. and Chrysoperla bolti sp. nov. (Neuroptera: Chrysopidae)
Figure 6. Dorsal view of third-instar larval head capsule (left half) of Chrysoperla bolti sp. nov. The drawing represents the typical condition seen in 18 individuals from two populations in northern Kyrgyzstan. The colour insert is a typical mature third-instar larva of the species.
Figure 3 in Distinctive but functionally convergent song phenotypes characterize two new allopatric species of the Chrysoperla carnea-group in Asia, Chrysoperla shahrudensis sp. nov. and Chrysoperla bolti sp. nov. (Neuroptera: Chrysopidae)
Figure 3. Frequency distributions of volley period measured in solo vibrational songs recorded at 25 ± 1° C from individuals of Chrysoperla shahrudensis sp. nov. (red/grey bars), Chrysoperla bolti sp. nov. (blue/ dark grey bars), and Chrysoperla adamsi (green/light grey bars). Measurements were calculated as individual averages; N = number of individuals from which individual averages were calculated.
Figure 5 in Distinctive but functionally convergent song phenotypes characterize two new allopatric species of the Chrysoperla carnea-group in Asia, Chrysoperla shahrudensis sp. nov. and Chrysoperla bolti sp. nov. (Neuroptera: Chrysopidae)
Figure 5. Dorsal view of third-instar larval head capsule (left half) of Chrysoperla shahrudensis sp. nov. The drawing represents the typical condition seen in 24 individuals from two populations in Iran. The colour insert is a typical mature third-instar larva of the species.
Figure 7 in Distinctive but functionally convergent song phenotypes characterize two new allopatric species of the Chrysoperla carnea-group in Asia, Chrysoperla shahrudensis sp. nov. and Chrysoperla bolti sp. nov. (Neuroptera: Chrysopidae)
Figure 7. Maximum likelihood phylogram of the cryptic species of the Chrysoperla carnea- group, based on 4630 bp of mitochondrial DNA sequence from the protein-coding genes ND2, COI, COII and ND5. The tree was inferred under the General Time Reversible model, using a discrete gamma distribution to model evolutionary rate variation while allowing some sites to remain invariant (GTR+G + I as implemented in MEGA v.7.0, Kumar et al. 2016). Numbers at the branch points are support values from 150 bootstrap replicates; branch lengths are proportional to the number of substitutions per site. Specimen numbers and geographical locations are shown for each operational taxonomic unit (twig) on the tree. The three songconvergent species discussed in the text are highlighted in colour: Chrysoperla shahrudensis in red, Chrysoperla bolti in blue and Chrysoperla adamsi in green. Thumbnail oscillographs of 12 s of song phenotype for 13 common species are placed on the figure at their approximate vertical positions on the phylogram.
Figure 4 in Distinctive but functionally convergent song phenotypes characterize two new allopatric species of the Chrysoperla carnea-group in Asia, Chrysoperla shahrudensis sp. nov. and Chrysoperla bolti sp. nov. (Neuroptera: Chrysopidae)
Figure 4. Adult of (a) Chrysoperla. shahrudensis sp. nov., non-diapausing green form; (b) C. shahrudensis, diapausing sandy-brown form, and (c) Chrysoperla bolti sp. nov., all-season green form.
Figure 2 in Distinctive but functionally convergent song phenotypes characterize two new allopatric species of the Chrysoperla carnea-group in Asia, Chrysoperla shahrudensis sp. nov. and Chrysoperla bolti sp. nov. (Neuroptera: Chrysopidae)
Figure 2. Oscillographs of duetting interactions. (a) 12 s of a typical duet between a male and a female of Chrysoperla shahrudensis sp. nov., showing the partners politely exchanging single volleyplus-rumble units or shortest repeated units (SRUs). (b) 12 s of a typical duet between a male and a female of Chrysoperla bolti sp. nov., showing the partners politely exchanging single SRUs. (c) 71 s oscillograph showing a female of C. shahrudensis duetting with a conspecific for the first 24 s, with C. bolti for the next 25 s, and with Chrysoperla adamsi (North America) for the last 22 s. In each of those three duets, the female being tested is capable of synchronizing precisely with the prerecorded playback signal. As discussed in the text, C. shahrudensis shows no such duetting response to playbacks of songs of any carnea-group species other than C. bolti and C. adamsi. All duets were recorded at 25 ± 1°C.
Figure 1 in Distinctive but functionally convergent song phenotypes characterize two new allopatric species of the Chrysoperla carnea-group in Asia, Chrysoperla shahrudensis sp. nov. and Chrysoperla bolti sp. nov. (Neuroptera: Chrysopidae)
Figure 1. Oscillographs (lower of each pair of traces) and sonographs (upper traces) of (a) a solo vibrational song of Chrysoperla shahrudensis sp. nov. from northern Iran and (b) a solo vibrational song of Chrysoperla bolti sp. nov. from Kyrgyzstan, Asia, illustrating convergent song phenotypes in these two Asian species. Each song was recorded at 25 ± 1°C and is drawn to the same time scale of 12 s. Start, middle, end, and rumble sections of an individual volley are marked by the arrows, while duration and period of the primary volley are bracketed.
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