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933 results for “Phytoseiidae”
Figure 1 in Seasonal abundance of Tetranychus urticae and Amblyseius swirskii (Acari: Tetranychidae and Phytoseiidae) on four strawberry cultivars
Figure 1. Mean numbers of Tetranychus urticae and Amblyseius swirskii populations on four strawberry cultivars during 2017/2018 season.
Figure 2 in Seasonal abundance of Tetranychus urticae and Amblyseius swirskii (Acari: Tetranychidae and Phytoseiidae) on four strawberry cultivars
Figure 2. Mean numbers of Tetranychus urticae and Amblyseius swirskii populations on four strawberry cultivars during 2018/2019 season.
Figure 1 in Effects of temperature on a Chinese population ofAmblyseius andersoni (Acari: Phytoseiidae) fed with Tetranychus urticae
Figure 1 Age-specific survival rate (lx) and age-specific fecundity ratem(x) curves of female Ambl- yseius andersoni at five different temperatures. —▲— Age-specific survival rate (lx). —■— Age- specific fecundity rate (mx).
Figures 1–6 in Re-description of Amblyseius pseudaequipilus Wainstein & Abbasova (Acari: Mesostigmata: Phytoseiidae) based on material collected from Iran
Figures 1–6. Amblyseius pseudaequipilus Wainstein & Abbasova (Female) – 1. Idiosoma, dorsal view; 2. Idiosoma, ventral view; 3. Spermatheca; 4. Peritreme, peritremal plate and exopodal plate; 5. Leg IV; 6. Chelicera.
Figure 3 in Suitability of different pollen grains and Tetranychus urticae as food for the predatory mite, Amblyseius swirskii (Acari: Phytoseiidae)
Figure 3. Pollen shape of eight different plant pollens prepared using a Scanning Electron Microscopy (SEM).
Figure 2 in Suitability of different pollen grains and Tetranychus urticae as food for the predatory mite, Amblyseius swirskii (Acari: Phytoseiidae)
Figure 2. Age-specific survivorship (lx), and age-stage-specific fecundity (fxj) of Ambluseius swirskii fed on Tetranychus urticae and seven different plant pollen grains.
Figure 2 in Application of demographic analysis for assessing effects of pesticides on the predatory mite, Phytoseiulus persimilis (Acari: Phytoseiidae)
Figure 2. Age specific survival rate (lx), fecundity (mx), maternity (lxmx) and age-stage specific fecundity (fxj) of offspring from Phytoseiulus persimilis females treated with LC25 of three pesticides compared with untreated females.
Figure 1 in Application of demographic analysis for assessing effects of pesticides on the predatory mite, Phytoseiulus persimilis (Acari: Phytoseiidae)
Figure 1. Age-stage specific survival rate (sxj) of offspring from Phytoseiulus persimilis females treated with LC25 of three pesticides compared with untreated females.
Figure 1 in Immature development and survival of Neoseiulus cucumeris (Oudemans) (Acari: Phytoseiidae) on eggs of Tyrophagus curvipenis (Fain & Fauvel) (Acari: Acaridae)
Figure 1 Correlations between the initial prey density and the number of prey consumed by Neoseiulus cucumeris with/without conspecific: (A) males, (B) female. The dashed line, the dotted line, and the solid line represent linear fit to the mites reared in the absence of conspecific, reared with conspecific, male/female pooled together regardless of the presence of conspecific, respectively.
Figure 10 in Morphological ontogeny and molecular analyses of geographic strains of two closely related Neoseiulus species (Acari: Phytoseiidae)
Figure 10 World distribution of Neoseiulus womersleyi (open circles; from Akimov and Kolodochka 1991; Ho et al. 1995, 2003; Ehara and Amano 2004; Moraes et al.2004) andN. longispinosus (closed circles; from Hoet al.1995; Lin et al.2000; Ehara 2002; Moraes et al.2004; Ohno et al.2012).
Figure 1 in Morphological ontogeny and molecular analyses of geographic strains of two closely related Neoseiulus species (Acari: Phytoseiidae)
Figure 1 Neoseiulus longispinosus (Evans). Female; A – dorsum; B – venter; C – chelicera; D – spermatheca; E – leg IV; Male; F – ventrianal shield; G – spermatodactyl.
Figure 5 in Morphological ontogeny and molecular analyses of geographic strains of two closely related Neoseiulus species (Acari: Phytoseiidae)
Figure 5 Neoseiulus womersleyi (Schicha). Female; A – dorsum; B – venter; C – chelicera; D – spermatheca; E – leg IV; Male; F – ventrianal shield; G – spermatodactyl.
Figure 9 in Morphological ontogeny and molecular analyses of geographic strains of two closely related Neoseiulus species (Acari: Phytoseiidae)
Figure 9 Maximum likelihood (ML) tree based on the 28S regions (666 bp) of nuclear ribosomal DNA (nrDNA) of phytoseiid mites using Kimura 2-Parameter model with gamma distribution. Bootstrap values based on 1,000 replications are indicated at the nodes. Only bootstrap values>50% are shown. Each operational taxonomic unit is indicated by accession number, abbreviation of species, individual identification number (three individuals for each strain/species) and voucher specimen number.
Figure 11 in Morphological ontogeny and molecular analyses of geographic strains of two closely related Neoseiulus species (Acari: Phytoseiidae)
Figure 11 Body color of females in various strains ofNeoseiulus longispinosus (Nl) andN. womersleyi (Nw).
Figure 25 in Review of Amblyseius Berlese (Acari: Phytoseiidae) in Western Siberia, Russia
Figure 25 Phase contrast (A, B) and DIC (C, D) micrographs ofAmblyseius myrtilli Papadoulis, Emmanouel and Kapaxidi, 2009: A – dorsal idiosoma of adult female, B – ventral idiosoma of female, C – chelicera of female, D – spermatheca.
Figure 21 in Review of Amblyseius Berlese (Acari: Phytoseiidae) in Western Siberia, Russia
Figure 21 Amblyseius myrtilli Papadoulis, Emmanouel and Kapaxidi, 2009, female: A – dorsal idiosoma; B – ventral idiosoma.
Figure 18 Amblyseius omaloensis Gomelauri, 1968a in Review of Amblyseius Berlese (Acari: Phytoseiidae) in Western Siberia, Russia
Figure 18 Amblyseius omaloensis Gomelauri, 1968a, female: left legs I-IV, respectively, excluding tarsus, ventral aspect, macrosetae depicted in solid black.
Figure 12 in Review of Amblyseius Berlese (Acari: Phytoseiidae) in Western Siberia, Russia
Figure 12 Amblyseius ampullosus Wu and Lan, 1991, female: right tarsi I-IV, respectively, macrosetae depicted in solid black. A – dorsal aspect; B – apical sensorial setal cluster area, C–E –ventral aspect.
Figure 10 in Review of Amblyseius Berlese (Acari: Phytoseiidae) in Western Siberia, Russia
Figure 10 Amblyseius ampullosus Wu and Lan, 1991: A – chelicera of female, B – chelicera and spermatodactyle of male, C – anterior margin of epistom, D – dorsal view of left palp tarsus, E – spermatheca, F – subcapitulum, G – left palp, excepting tarsus, dorsal aspect, H – peritrema.
Figure 4 in Review of Amblyseius Berlese (Acari: Phytoseiidae) in Western Siberia, Russia
Figure 4 Amblyseius silvaticus (Chant, 1959), female: right tarsi I-IV, respectively, macrosetae depicted in solid black: A – dorsal aspect; B – apical sensorial setal cluster area, C–E – ventral aspect.
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OpenNeuro
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