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17 results for “Planococcus citri”
Figure 3 in Compatibility between the predators Cryptolaemus montrouzieri (Coleoptera: Coccinellidae) and Chrysoperla externa (Neuroptera: Chrysopidae) in the control of Planococcus citri (Hemiptera: Pseudococcidae) associated with rose crop
Figure 3 Behavior of Chrysoperla externa and Cryptolaemus montrouzieri acting in combination, against adult females of Planococcus citri. *Time averages (%) followed by the same letters do not differ by Tukey's Test, P <0.05. Lowercase letters compare predators within each category; uppercase letters compare each predator individually across categories.
Figure 2 in Compatibility between the predators Cryptolaemus montrouzieri (Coleoptera: Coccinellidae) and Chrysoperla externa (Neuroptera: Chrysopidae) in the control of Planococcus citri (Hemiptera: Pseudococcidae) associated with rose crop
Figure 2Behavior of Chrysoperla externa against nymphs and adult females of Planococcus citri. Time averages (%) followed by the same letter do not differ by Tukey's test, P <0.05.
Figure 4 in Compatibility between the predators Cryptolaemus montrouzieri (Coleoptera: Coccinellidae) and Chrysoperla externa (Neuroptera: Chrysopidae) in the control of Planococcus citri (Hemiptera: Pseudococcidae) associated with rose crop
Figure 4 Behavior of Chrysoperla externa and Cryptolaemus montrouzieri acting in combination, against first instar nymphs of Planococcus citri. *Time averages (%) followed by the same letters do not differ by Tukey's Test, P <0.05. Lowercase letters compare predators within each category; uppercase letters compare each predator individually across categories.
Figure 3 in Trophic relationship between Chrysoperla externa (Neuroptera: Chrysopidae) and Planococcus citri (Hemiptera: Pseudococcidae) associated with rose bushes
Figure 3 Proportion of second-instar larvae of Chrysoperla externa survivors as a function of the density of second-instar nymphs of Planococcus citri supplied as prey and as a function of the predator:prey ratio after 24 (A) and 48 hours (B) of interaction between species. Different letters indicate significant differences by Tukey's multicomparison test (p <0.05).
Figure 2 in Trophic relationship between Chrysoperla externa (Neuroptera: Chrysopidae) and Planococcus citri (Hemiptera: Pseudococcidae) associated with rose bushes
Figure 2 Proportion of second-instar nymphs of Planococcus citri consumed by second-instar larvae of Chrysoperla externa as a function of the nymph density of the mealybug and predator:prey ratio. Different letters at the end of the curves indicate significant differences by Tukey's multicomparison test (p <0.05).
Figure 1 in Trophic relationship between Chrysoperla externa (Neuroptera: Chrysopidae) and Planococcus citri (Hemiptera: Pseudococcidae) associated with rose bushes
Figure 1 Mean (A) and total (B) number of second-instar nymphs of Planococcus citri consumed by first-, second-, and third-instar larvae of Chrysoperla externa (mean ± SE). Different letters in a column indicate significant differences by Dunn's multicomparison test (p <0.05).
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.
Use of pheromone traps as a monitoring tool for the citrus mealybug (Planococcus citri) on cocoa farms
<p>This study developed and optimised a method for the monitoring of populations of <em>P. citri</em> using pheromone-baited traps on cocoa farms and established seasonal activity of <em>P. citri</em> in Cross River State, Nigeria. The effect of time of day, pheromone trap design (Delta and sticky trap), colour (red, blue, yellow, and white) and height placement (0.3. 0.9 and 1.8m) on the capture of adult male <em>P. citri</em> and non-target insects was studied. <em>Planococcus citri</em> was observed to be present year-round with a peak in April, which coincided with the highest air temperatures. By checking traps for diel activity, it was revealed that male flight activity was highest between 1800-0600. Trap design and colour had no significant effect on the number of male <em>P. citri</em> captured, although a smaller number of non-target insects were recorded in Delta traps. Trap height placement had a significant effect on the number of <em>P. citri,</em> and non-target species caught, with the highest number of captures obtained at the lowest trap height (0.3m) and capture rate decreasing as trap height increased. There was a significant positive correlation between the number of trapped male <em>P. citri</em> and air temperature. The results suggest that <em>P. citri</em> is present all year round in the field, that Delta traps are a more suitable trap type, and that 0.3m is an effective height for the monitoring of <em>P. citri</em> on cocoa farms. These findings could be used to improve mealybug monitoring on cocoa farms and could be utilised for the development of an integrated pest management programme.</p>
FIGURE 2 in Identification of Planococcus ficus and Planococcus citri (Hemiptera: Pseudococcidae) by PCR-RFLP of COI gene
FIGURE 2. RFLP analysis with HinfI restriction enzyme of COI gene. Digested products were separated on 2% agarose gels stained with ethidium bromide. Lanes: 1-8, Pl citri; 9-13, Pl ficus; M, 100 bp ladder.
FIGURE 1 in Identification of Planococcus ficus and Planococcus citri (Hemiptera: Pseudococcidae) by PCR-RFLP of COI gene
FIGURE 1. COI gene restriction patterns of Ps. longispinus (L), Pl. citri (C) and Pl. ficus (F) generated by BspPI, HinfI and SspI.
Data from: Isolation and characterization of fifteen polymorphic microsatellite loci for the citrus mealybug, Planococcus citri (Hemiptera: Pseudococcidae), and cross-amplification in two other mealybug species
[No abstract filled]
Figure 1 in Compatibility between the predators Cryptolaemus montrouzieri (Coleoptera: Coccinellidae) and Chrysoperla externa (Neuroptera: Chrysopidae) in the control of Planococcus citri (Hemiptera: Pseudococcidae) associated with rose crop
Figure 1 Behavior of Cryptolaemus montrouzieri against nymphs and adult females of Planococcus citri. Time averages (%) followed by the same letter do not differ by Tukey's test, P <0.05.
Figure 1 in Is a diet of Planococcus citri nymphs and adults suitable for Chrysoperla externa for use in biological control?
Figure 1. Duration of instars and preimaginal phases (days) of Chrysoperla externa as a function of feeding on Ephestia kuehniella eggs and/or Planococcus citri nymphs and adults. Means ± SE corresponding to the columns paired under the horizontal bar do not differ by the Dunn test (Kruskal-Wallis, p<0.05). L1= 1st instar larvae; L2= 2nd instar larvae; L3= 3rd instar larvae; PP= Prepupae; P= Pupae. 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.
Data from: Isolation and characterization of fifteen polymorphic microsatellite loci for the citrus mealybug, Planococcus citri (Hemiptera: Pseudococcidae), and cross-amplification in two other mealybug species
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Planococcus citri mealybug virgin and mated female transcriptome sequencing
GEO Series GSE179660. Planococcus citri. 8 samples. Type: Expression profiling by high throughput sequencing.
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