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14 results for “Monochamus galloprovincialis”
Monochamus galloprovincialis presence/absence data
<p>To delineate the distribution range of <em>Monochamus galloprovincialis </em>in Europe, a species distribution model was developed, based on pheromone-trap catches (negative and positive) from 4914 locations in 29 European countries between 2008 and 2019. The compiled dataset consists of 4914 observations (negative or positive) defined by the traps and lures used, the geographical coordinates of the traps, the number of beetles caught, the contributor and the year.</p>
Fig. 4 in Effect of Monochamus galloprovincialis feeding on Pinus pinaster and Pinus pinea, oleoresin and insect volatiles
Fig. 4. Relation of the number of wounded Pinus pinaster trees, after Monochamus galloprovincialis feeding, the average number of wounds per tree, and wound length and width. Bars: standard error.
Fig. 3 in Effect of Monochamus galloprovincialis feeding on Pinus pinaster and Pinus pinea, oleoresin and insect volatiles
Fig. 3. Changes in the profile of volatiles released by Pinus pinea trees being fed on by Monochamus galloprovincialis adults. Bars: standard error. Letters in the table in the right side of the graph represent ANOVA post-hoc Fisher's Least Significant Difference test Homogenous Groups, (1): All volatiles: F(8,90) = 7.88; p <0.0001***; (2) Without limonene: F(7,80) = 2.31; p = 0.034*.
Fig. 6. A. Pinus pinaster individuals. B in Effect of Monochamus galloprovincialis feeding on Pinus pinaster and Pinus pinea, oleoresin and insect volatiles
Fig. 6. A. Pinus pinaster individuals. B. SPME collection of P. pinaster volatiles in control experiments. C. SPME collection of P. pinaster volatiles during Monochamus galloprovincialis feeding. D. Detail of M. galloprovincialis inside the net. E. M. galloprovincialis feeding on P. pinaster. F. Injured tree trunk. G. Oleoresin being exuded from the tree trunk.
Fig. 5 in Effect of Monochamus galloprovincialis feeding on Pinus pinaster and Pinus pinea, oleoresin and insect volatiles
Fig. 5. Relation of the number of wounded Pinus pinea trees, after Monochamus galloprovincialis feeding, the average number of wounds per tree, and wound length and width. Bars: standard error.
Fig. 2 in Effect of Monochamus galloprovincialis feeding on Pinus pinaster and Pinus pinea, oleoresin and insect volatiles
Fig. 2. Changes in the profile of volatiles released by Pinus pinaster trees being fed on by Monochamus galloprovincialis adults, with trees grouped according to their essential oil chemotypes: β-pinene, α-pinene, and δ-3-carene EO dominance (chemotype 1, C1 in dark grey) and δ-3-carene only in trace amounts (chemotype 2, C2 in white). Bars: standard error. Letters in the table on the right side of the graph represent ANOVA post-hoc Fisher's Least Significant Difference test Homogenous Groups; Chemotype 1 (C1): F(16,170) = 1.58; p = 0.078*; Chemotype 2 (C2): F(16,442) = 4.04; p <0.0001***.
Figure 3 from: Petersen-Silva R, Pujade-Villar J, Naves P, Sousa E (2012) Parasitoids of Monochamus galloprovincialis (Coleoptera, Cerambycidae), vector of the pine wood nematode, with identification key for the Palaearctic region. ZooKeys 251: 29-48. https://doi.org/10.3897/zookeys.251.3986
Figure 3 - Lateral view of hind femur of Odontocolon quercinum (a) and Xorides depressus (b); first and second metasomal tergites in dorsal view of Meteorus corax (c);head in lateral view of Odontocolon quercinum (d) and Xorides depressus (e).
Figure 7 from: Petersen-Silva R, Pujade-Villar J, Naves P, Sousa E (2012) Parasitoids of Monochamus galloprovincialis (Coleoptera, Cerambycidae), vector of the pine wood nematode, with identification key for the Palaearctic region. ZooKeys 251: 29-48. https://doi.org/10.3897/zookeys.251.3986
Figure 7 - Metasoma in dorsal view of Atanycolus denigrator (a), Cyanopterus flavator (b) and Cyanopterus tricolor (c); scape and pedicel in lateral view of C. flavator (d) and Atanycolus denigrator (e); space of head between antennal socket and eye in laterofrontal view of Atanycolus genalis (f) and Cyanopterus flavator (g).
Figure 6 from: Petersen-Silva R, Pujade-Villar J, Naves P, Sousa E (2012) Parasitoids of Monochamus galloprovincialis (Coleoptera, Cerambycidae), vector of the pine wood nematode, with identification key for the Palaearctic region. ZooKeys 251: 29-48. https://doi.org/10.3897/zookeys.251.3986
Figure 6 - Basal segments of antenna in lateral view of Coeloides sordidator (a) and Cyanopterus tricolor (b); metasoma in dorsal view of Iphiaulax impostor (c); face of Atanycolus ivanowi (d).
Figure 1 from: Petersen-Silva R, Pujade-Villar J, Naves P, Sousa E (2012) Parasitoids of Monochamus galloprovincialis (Coleoptera, Cerambycidae), vector of the pine wood nematode, with identification key for the Palaearctic region. ZooKeys 251: 29-48. https://doi.org/10.3897/zookeys.251.3986
Figure 1 - Forewing of Dolichomitus tuberculatus(a) and Doryctes striatellus (b); metasoma in dorsal view of Xorides depressus (c) and Cyanopterus flavator (d).
Figure 2 from: Petersen-Silva R, Pujade-Villar J, Naves P, Sousa E (2012) Parasitoids of Monochamus galloprovincialis (Coleoptera, Cerambycidae), vector of the pine wood nematode, with identification key for the Palaearctic region. ZooKeys 251: 29-48. https://doi.org/10.3897/zookeys.251.3986
Figure 2 - Propodeum in dorsal view of Dolichomitus tuberculatus (a) and Odontocolon quercinum (b); tarsal claws of Dolichomitus tuberculatus (c) and Odontocolon quercinum (d); first metasomal tergite in lateral view of Dolichomitus tuberculatus (e) and Odontocolon quercinum (f); dorsal view of metasoma of Dolichomitus tuberculatus (e); sp – spiracle.
Figure 5 from: Petersen-Silva R, Pujade-Villar J, Naves P, Sousa E (2012) Parasitoids of Monochamus galloprovincialis (Coleoptera, Cerambycidae), vector of the pine wood nematode, with identification key for the Palaearctic region. ZooKeys 251: 29-48. https://doi.org/10.3897/zookeys.251.3986
Figure 5 - Metasoma in dorsal view of Doryctes striatellus (a), Atanycolus ivanowi (b) and Coeloides sordidator (c); forewing of Coeloides sordidator (d); ma – mediobasal area.
Figure 4 from: Petersen-Silva R, Pujade-Villar J, Naves P, Sousa E (2012) Parasitoids of Monochamus galloprovincialis (Coleoptera, Cerambycidae), vector of the pine wood nematode, with identification key for the Palaearctic region. ZooKeys 251: 29-48. https://doi.org/10.3897/zookeys.251.3986
Figure 4 - Face in frontal view of Meteorus corax (a)and Doryctes striatellus (b); head in dorsal view of Atanycolus ivanowi (c) and Doryctes striatellus (d); detail of forewing of Monochamus corax (e).
Fig. 1 in Effect of Monochamus galloprovincialis feeding on Pinus pinaster and Pinus pinea, oleoresin and insect volatiles
Fig. 1. Changes in the profile of volatiles released by all Pinus pinaster trees being fed on by Monochamus galloprovincialis adults. Bars: standard error. Letters in the table on the right side of the graph represent ANOVA post-hoc Fisher's Least Significant Difference test Homogenous Groups; (1) ANOVA with all volatiles: F(16,629) = 4.07; p <0.0001***; (2) ANOVA without α-pinene and β-pinene: F(14,555) = 4.63; p
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