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20 results for “Frankliniella occidentalis”
Fig. 3 in Effect of humidity on fecundity and egg incubation of Frankliniella bispinosa and Frankliniella occidentalis (Thysanoptera: Thripidae)
Fig. 3. Mean daily fecundity (± SE) of Frankliniella bispinosa and F. occidentalis for data pooled across time intervals in laboratory experiments at constant 23 °C and 4 relative humidity levels. Means with the same letter are not significantly different according to ANOVA and subsequent Tukey's HSD test (α = 0.05).
Fig. 2 in Effect of humidity on fecundity and egg incubation of Frankliniella bispinosa and Frankliniella occidentalis (Thysanoptera: Thripidae)
Fig. 2. Mean fecundity (± SE) per female of Frankliniella occidentalis at 12 h intervals in laboratory experiments at constant 23 °C and 4 relative humidity levels.
Fig. 1 in Effect of humidity on fecundity and egg incubation of Frankliniella bispinosa and Frankliniella occidentalis (Thysanoptera: Thripidae)
Fig. 1. Mean fecundity (± SE) per female of Frankliniella bispinosa at 12 h intervals in laboratory experiments at constant 23 °C and 4 relative humidity levels.
Fig. 4 in Effect of humidity on fecundity and egg incubation of Frankliniella bispinosa and Frankliniella occidentalis (Thysanoptera: Thripidae)
Fig. 4. Mean time of egg hatch (± SE) for Frankliniella bispinosa and F. occidentalis in laboratory experiments at constant 23 °C and 4 relative humidity levels. Means with the same letter are not significantly different according to ANOVA and subsequent Tukey's HSD test (α = 0.05).
Figure 1 in The effects of two essential oils on thefunctional response of Amblyseius swirskii (Acari: Phytoseiidae) fed on Frankliniella occidentalis (Thysanoptera: Thripidae)
Figure 1. The functional response curves and feeding percentages of Amblyseius swirskii on the first instar Frankliniella occidentalis after exposure to Mentha piperita (a1, b1), and Laurus nobilis (a2, b2) essential oils.
Figure 7 in Sensilla of the Western Flower Thrips, Frankliniella occidentalis (Pergande) (Thysanoptera, Thripidae)
Figure 7 Types of sensilla in Frankliniella occidentalis tail: (A) short sensilla trichodea (SST), (B) long sensilla basiconica (L-SB), (C,E) long sensilla chaetica (LSC), (D,F), short sensilla chaetica (ShSC).
Figure 6 in Sensilla of the Western Flower Thrips, Frankliniella occidentalis (Pergande) (Thysanoptera, Thripidae)
Figure 6 Types of sensilla in Frankliniella occidentalis wings: (A) long sensilla chaetica (LSC), (B) sensilla trichodea (ST), (C) long sensilla basiconica (LSB).
Figure 5 in Sensilla of the Western Flower Thrips, Frankliniella occidentalis (Pergande) (Thysanoptera, Thripidae)
Figure 5 Types of sensilla in Frankliniella occidentalis mouthparts: (A) short sensilla trichodea (SST), (B) long sensilla basiconica (LSB), (C) finger sensilla basiconica (FiSB), (D) long sensilla basiconica (L-SB), (E) sensilla ear washing buob-shaped (SEWB), and (F) sensilla mamillary (SM).
Figure 2 in Sensilla of the Western Flower Thrips, Frankliniella occidentalis (Pergande) (Thysanoptera, Thripidae)
Figure 2 Types of sensilla in Frankliniella occidentalis antennae: (A) finger sensilla basiconica (FSB), (B) angle sensilla basiconica (ASB), (C) long sensilla basiconica (LSB), (D) sensilla mamillary (SM), (E) trichodea sensilla (TSB) and (F) fork sensilla basiconica (FOSB).
Fig. 2 in A sustainable mass rearing method for western flower thrips, Frankliniella occidentalis (Thysanoptera: Thripidae)
Fig. 2. Diagram of life cycle, rearing procedures, and label coding for Frankliniella occidentalis. (A) Frankliniella occidentalis male (lef) and female (right) adults; (B) egg-infested cotyledon; (C) nymph-infested cotyledon; (D) pupae under filter paper in rearing container; cots = cotyledons.
Fig. 1 in A sustainable mass rearing method for western flower thrips, Frankliniella occidentalis (Thysanoptera: Thripidae)
Fig. 1. (A) Shirofumi soybean sprout with cotyledons ready to harvest (circled). (B) Metal tray housing immature stages of Frankliniella occidentalis in insect rearing containers with secondary standard Petri dish lids on top of ventilated mesh lids. Records of dates maintained and life stages present in containers are kept on each colony lid.
Fig. 1 in Identification of thrips species and resistance of Frankliniella occidentalis (Thysanoptera: Thripidae) to malathion, spinosad, and bifenthrin in blackberry crops
Fig. 1. Phylogenetic consensus tree resulting from Bayesian inference based on COI mitochondrial DNA partial sequences showing the relationship of 11 thrips samples collected from commercial blackberry plots in Michoacán and Jalisco, Mexico. The sample numbers correspond to Ziracuaretiro (24, 58, 8, 7, 6, 1, and 63), Tacámbaro (16), Los Reyes de Salgado (12 and 9), and Mazamitla (23). Reference sequences from the different Frankliniella occidentalis haplotypes were downloaded from GenBank.
Fig. 1 in Transmission of cineraria isolate of tomato yellow ring virus by Frankliniella occidentalis and Thrips tabaci (Thysanoptera, Thripidae)
Fig. 1: Rate of transmission of TYRV-CI to petunia plants by T. tabaci and F. occidentalis.
Article database: Color shade and chemical influences on the capture of adults Frankliniella occidentalis (Thysanoptera: Thripidae) in blackberry crops
<p>Samuel Cruz Esteban is a researcher on insect chemical ecology, plant-insect interaction, and biological and ethological pest control.</p>
Nano-injection method for micro-insects without sedation using the western flower thrips, Frankliniella occidentalis
<p>This data was collected over several trial periods. Female adult thrips were injected with water into the thoracic or abdominal areas, non-injected thrips were used as control. Ten thrips per treatment were injected, then transferred into bioassay containers with a ventilation mesh screen. The thrips were observed daily and mortality at 24 h and 48 h was recorded. This data was analyzed using log-rank analysis (Proc Lifetest in SAS 9.4 and multiple comparisons with an adjusted sidak p-value. The figure produced from this data is a Kaplan-Meier survival curve.</p>
Effects of additional nutrients on carbohydrate, juvenile hormone, and vitellogenin contents in Frankliniella occidentalis (Thysanoptera: Thripidae)
Open the record for dataset details and reuse information.
Figure 3 in Sensilla of the Western Flower Thrips, Frankliniella occidentalis (Pergande) (Thysanoptera, Thripidae)
Figure 3 Types of sensilla in Frankliniella occidentalis legs. (A) angle sensilla basiconica (ASB), (B) shot sensilla basiconica I (SSBI), (C) short sensilla basiconica II (SSBII), (D) long sensilla basiconica (LSB), (E,F) sword-like sensilla chaetica (SSC), (G) long sensilla chaetica (LSC), (H) short sensilla trichodea (SST), (I) long sensilla trichodea (LST), (J) sensilla campaniform (SC), (K) sensilla mamillary (SM), (L,M) sensilla ears washing buob-shaped (SEWB), (N) Böhm bristle (Bb) and (O) sword-like sensilla chaetica (SSC).
Figure 4 in Sensilla of the Western Flower Thrips, Frankliniella occidentalis (Pergande) (Thysanoptera, Thripidae)
Figure 4 Types of sensilla cheatica in Frankliniella occidentalis compound eyes. (A,B,C) sensilla chaetica(SC).
Figure 1 in Sensilla of the Western Flower Thrips, Frankliniella occidentalis (Pergande) (Thysanoptera, Thripidae)
Figure 1 Types of sensilla in Frankliniella occidentalis antennae: (A) female antenna, (B) long sensilla chaetica, (C) short sensilla chaetica (SSC), (D,E) sword-like sensilla chaetica, (F) sensilla trichodea on the first and second flagellum of nymphaea, (G) female sensilla trichodea (FST), (H) long sensilla basiconica, (I) fork sensilla basiconica (FOSB), (J) stick sensilla basiconica (SSB), (K) bud sensilla basiconica (BSB), (L) finger sensilla basiconica (FSB).
Comparison and functional analysis of odorant-binding proteins and chemosensory proteins in two closely related thrips species, Frankliniella occidentalis and Frankliniella intonsa (Thysanoptera: Thri
GEO Series GSE213075. Frankliniella intonsa; Frankliniella occidentalis. 9 samples. Type: Expression profiling by high throughput sequencing.
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