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46 results for “Plutella xylostella”
Figure 3 in Parasitism rate of Plutella xylostella (Lepidoptera: Plutellidae) larvae in greenhouse by Tetrastichus howardi (Hymenoptera: Eulophidae) females at different densities
Figure 3. Progeny per Tetrastichus howardi (Hymenoptera: Eulophidae) female with a density of one, three, six, nine, 12, 15 or 18 females of this parasitoid per Plutella xylostella (Lepidoptera: Plutellidae) pupae.
Figure 2 in Parasitism rate of Plutella xylostella (Lepidoptera: Plutellidae) larvae in greenhouse by Tetrastichus howardi (Hymenoptera: Eulophidae) females at different densities
Figure 2. Total progeny of Tetrastichus howardi (Hymenoptera: Eulophidae) per pupa of Plutella xylostella (Lepidoptera: Plutellidae) with different densities of females of this parasitoid in semi-field conditions.
Figure 1 in Bioactivity of aqueous extract of Jacaranda spp. (Bignoniaceae) on Plutella xylostella L. 1758 (Lepidoptera: Plutellidae)
Figure 1. Food preference index effect of aqueous extracts of Jacaranda decurrens and J. mimosifolia at 10% on P. xylostella. Table 1. Larval duration (days), larval survival (%) and egg survival (%) of Plutella xylostella fed with aqueous extract of Jacaranda spp.
Fig. 7 in The effects of exogenous 20-hydroxyecdysone on the feeding, development, and reproduction of Plutella xylostella (Lepidoptera: Plutellidae)
Fig. 7. The correlation between the concentration of 20-hydroxyecdysone used for treatment and the mean number of eggs deposited on the treated seedlings. R represents the correlation coefficient; the symbol ** next to the coefficient indicates that the correlation between X and Y was significant at P <0.01.
Fig. 6 in The effects of exogenous 20-hydroxyecdysone on the feeding, development, and reproduction of Plutella xylostella (Lepidoptera: Plutellidae)
Fig. 6. The morphological changes in diamondback moth larvae and a pupae caused by ingestion of exogenous dietary 20-hydroxyecdysone. a, Exosmosis of ecdysial fluid and an additional molt (15 ×); b, failure to shed the head capsule (30 ×); c, failure to shed the exuvium (20×); d, bulging of the hindgut (10 ×); and e, deformed pupa (10 ×).
Fig. 4 in The effects of exogenous 20-hydroxyecdysone on the feeding, development, and reproduction of Plutella xylostella (Lepidoptera: Plutellidae)
Fig. 4. The correlation between the concentration of 20-hydroxyecdysone in diet and mean weight gain in 4th instars of diamondback moth. W0–24 h, W0–48 h, and W24–48 h represent mean weight gain at 24 h, at 48 h, and from 24 h to 48 h afer treatment, respectively. R represents the coefficient; the symbols * and ** next to the coefficient indicate that the correlation between X and Y was significant at P <0.05 and P <0.01, respectively.
Fig. 5 in The effects of exogenous 20-hydroxyecdysone on the feeding, development, and reproduction of Plutella xylostella (Lepidoptera: Plutellidae)
Fig. 5. The correlation between the concentration of 20-hydroxyecdysone in diet and mean weight of diamondback moth pupae. P1, P2, P3, and P4 represent mean weight of pupae developed from the treated 1st, 2nd, 3rd, and 4th instars, respectively. R represents the coefficient; the symbol ** next to the coefficient indicates that the correlation between X and Y was significant at P <0.01.
Fig. 1 in The effects of exogenous 20-hydroxyecdysone on the feeding, development, and reproduction of Plutella xylostella (Lepidoptera: Plutellidae)
Fig. 1. The arrangement of 20-hydroxyecdysone-treated radish seedlings in a cage. Digit 0 represents the control; digits 1–4 represent the radish seedlings treated with 0.050, 0.100, 0.200, and 0.400 mg/mL of 20E solutions in water, respectively.
Fig. 2 in The effects of exogenous 20-hydroxyecdysone on the feeding, development, and reproduction of Plutella xylostella (Lepidoptera: Plutellidae)
Fig. 2. The correlation between the concentration of 20-hydroxyecdysone in diet and mean food consumption by diamondback moth larvae for each instar. C1, C2, C3, and C4 represent mean food consumption of 1st, 2nd, 3rd, and 4th instars, respectively. R represents the coefficient; the symbols * and ** next to the coefficient indicate that the correlation between X and Y was significant at P <0.05 and P <0.01, respectively.
Fig. 3 in The effects of exogenous 20-hydroxyecdysone on the feeding, development, and reproduction of Plutella xylostella (Lepidoptera: Plutellidae)
Fig. 3. The correlation between the concentration of 20-hydroxyecdysone in diet and mean duration of each instar of diamondback moth larvae. D1, D2, D3, and D4 represent mean duration of 1st, 2nd, 3rd, and 4th instars, respectively. R represents the coefficient; the symbol ** next to the coefficient indicates that the correlation between X and Y was significant at P <0.01.
Fig. 8 in The effects of exogenous 20-hydroxyecdysone on the feeding, development, and reproduction of Plutella xylostella (Lepidoptera: Plutellidae)
Fig. 8. The longevity of adults fed on diet with exogenous dietary 20-hydroxy- ecdysone. The different lowercase letters above bars indicate statistically significant differences between mean longevity of adults fed on diet with different concentrations of 20-hydroxyecdysone (Tukey test, α = 0.05).
Figure 1 in Cloning and characterization of ubiquitin ribosome fusion gene RpS27a, a deltamethrin-resistance-associated gene from diamondback moth (Plutella xylostella L.)
Figure 1. The nucleotide and deduced amino acid sequences of the P. xylostella RpS27a gene coding region. The deduced amino acid sequence is presented below the nucleotide sequence in a single letter. The nuclear localization signal sequence is shaded. The initial and termination codon are underlined. The stop codon is denoted with an asterisk.
Figure 5. Phylogenetic relationship between P. xylostella RpS27a in Cloning and characterization of ubiquitin ribosome fusion gene RpS27a, a deltamethrin-resistance-associated gene from diamondback moth (Plutella xylostella L.)
Figure 5. Phylogenetic relationship between P. xylostella RpS27a and some other species. Corresponding GenBank accession numbers are: M. sexta: ACY95367.1; P. dardanus: CAH04128.1; Bombyx mori: NP_001091826.1; P. polytes: BAM18943.1; P. xuthus: BAM17728.1; S. frugiperda: AAL62473.1; D. plexippus: EHJ77179.1; A. yamamai: BAD05031.1; P. xylostella: JX437934; T. rubida: AER92457.1; D. melanogaster: NP_476778.1; A. aegypti: AAS79344.1; C. quinquefasciatus: XP_001844485.1.
Figure 6 in Cloning and characterization of ubiquitin ribosome fusion gene RpS27a, a deltamethrin-resistance-associated gene from diamondback moth (Plutella xylostella L.)
Figure 6. mRNA level of RpS27a in DS-strain and DR-strain of P. xylostella. All values are expressed as means ± SD. DS-strain: deltamethrin-susceptible strain; DR-strain: deltamethrinresistant strain. *P <0.01.
Fig. 2 in Biotic factors are more important than abiotic factors in regulating the abundance of Plutella xylostella L., in Southern Brazil
Fig. 2. Abundance of Plutella xylostella on broccoli (A) and cauliflower crops (B) in the county of Colombo, Paraná State, Southern Brazil.
Figure 3 in The life history of Euborellia annulipes (Lucas) (Dermaptera: Anisolabididae) fed on larvae and pupae of Plutella xylostella (L.) Lepidoptera: Plutellidae
Figure 3. Weight (mean ± SE) of the nymphs in (a) first, (b) second, (c) third, (d) fourth, and (e) fifth instars and of (f) adults of Euborellia annulipes fed on an artificial diet, fourth instar larvae, and pupae of Plutella xylostella with different ages (days of development). Different letters on bars indicate significant differences among treatments in each treatment (as analyzed by the Student-Newman-Keuls test, p <0.05); ns = no significant differences among treatments.
Figure 2 in The life history of Euborellia annulipes (Lucas) (Dermaptera: Anisolabididae) fed on larvae and pupae of Plutella xylostella (L.) Lepidoptera: Plutellidae
Figure 2. Survival of Euborellia annulipes adult females fed on an artificial diet, fourth instar larvae, and pupae of Plutella xylostella at different ages (days of development). Different letters indicate significant differences among treatments according to the log-rank test (p <0.05).
Figure 1 in The life history of Euborellia annulipes (Lucas) (Dermaptera: Anisolabididae) fed on larvae and pupae of Plutella xylostella (L.) Lepidoptera: Plutellidae
Figure 1. Developmental time (mean ± SE) of the nymph stages of Euborellia annulipes fed on an artificial diet, fourth instar larvae, and pupae with different ages (days of development) of Plutella xylostella. Means followed by the same letter in the bars are not significantly different among treatments by the Student-Newmann-Keuls test (p <0.05).
Fig. 1 in Parasitism of Plutella xylostella (Lepidoptera: Plutellidae) in southern Pakistan
Fig. 1. Frequency distribution of number of Oomyzus sokolowskii adults emerging from a single Plutella xylostella pupa.
Fig. 3 in Parasitism of Plutella xylostella (Lepidoptera: Plutellidae) in southern Pakistan
Fig. 3. Relationship between average Plutella xylostella pupal weight and average number of Oomyzus sokolowskii adults emerged per pupa.
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