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448 results for “Phlaeothripidae”
Figures 8–15. Ophthalmothrips elongatus Li in Review of the genus Ophthalmothrips Hood (Thysanoptera: Phlaeothripidae) from China, with a new species
Figures 8–15. Ophthalmothrips elongatus Li & Dang, sp. nov. 8. Head and prosternum, female; 9. Head and prosternum, male; 10. Antenna; 11. Pelta and tergites II; 12. Pronotum and mesopresternum; 13. Tergites IX–X, female; 14. Tergites IX–X, male; 15. Habitat, from Poaceae grasses of Dupangling National Nature Reserve, Hunan. Scale bars: 8–14 = 100 μm.
Figures 1–7 in Review of the genus Ophthalmothrips Hood (Thysanoptera: Phlaeothripidae) from China, with a new species
Figures 1–7. Dorsal view of Ophthalmothrips elongates Li & Dang, sp. nov. 1. Head, pronotum and forelegs of female; 2. Antenna; 3. Sub-basal setae; 4. Mesopresternum; 5. Pelta; 6. Tergites IX–X of male; 7. Tergites IX–X of female.
FIGURES 1–9 in Redescription and lectotype designation of Gynaikothrips microchaetus Ananthakrishnan & Jagadish (Thysanoptera: Phlaeothripidae)
FIGURES 1–9. Gynaikothrips microchaetus. (1) Head. (2) Pronotum. (3) Antenna & female fore tarsus. (4) Meso & metanota and pelta. (5) Fore wing sub-basal setae. (6) Segments IX–X. (7) Tergites V–VI. (8) Male tergite VIII. (9) Male sternite VIII.
Fig. 1 in Flower thrips (Thysanoptera: Thripidae and Phlaeothripidae) species complex on Florida blackberries and the effect of blackberry cultivar
Fig. 1. Numbers of flower thrips sampled from 6 blackberry cultivars. a) Mean total numbers of thrips larvae and adults per flower. b) Mean numbers of thrips adults and c) mean numbers of thrips larvae per flower on each sampling date. Error bars represent SE. Treatments with the same letter are not significantly different at P <0.05. Significant differences for the last 3 sampling weeks in (c) are described in the text.
Figure 5 in Characterizing the complete mitochondrial genome of Psephenothrips eriobotryae Dang & Qiao (Thysanoptera: Phlaeothripidae) with massive gene arrangement in Phlaeothripidae
Figure 5. Comparison of the nucleotide sequences of the two putative control regions in the mitogenome of P. eriobotryae. The structural elements were recognized: repeat unit, TATA motif, TA(A)n motif, stem and loop, Poly T-stretch sequence, A + T-rich sequence and G(A)nT motif.
Figure 6 in Characterizing the complete mitochondrial genome of Psephenothrips eriobotryae Dang & Qiao (Thysanoptera: Phlaeothripidae) with massive gene arrangement in Phlaeothripidae
Figure 6. Gene rearrangement, transposition, inversion and inverse transposition. A. Comparison with the ancestor gene sequence of arthropods, Drosophila yakuba and P. eriobotryae gene sequence. B. Comparison with P. eriobotryae and other five known mitogenomes of Phlaeothripidae species. Yellow blocks show PCGs, blue ones show tRNA, red ones show rRNA and Colourless ones show CRs. Red dashes boxes represent conserve gene blocks. Red dotted ovals represent that the reverse transposition happened in the gene blocks. '+' indicates H-strand, and '-' indicates L-strand. Black arrows indicate the direction of gene translation.
Figure 1 in Characterizing the complete mitochondrial genome of Psephenothrips eriobotryae Dang & Qiao (Thysanoptera: Phlaeothripidae) with massive gene arrangement in Phlaeothripidae
Figure 1. The circular representation of the complete mitogenome of P. eriobotryae. The direction of gene transcription is indicated by the arrows. PCGs are showed as blue purple arrows, rRNA genes as green arrows, tRNA genes as pink purple arrow and CRs as orange arrows. The inner black circles show GC content and GC-skew plotted as the deviation from the average value of the entire sequence. The image was taken from slide-mounted specimen with an Olympus BX53 and edited manually in Adobe Photoshop 2022 v23.0.2.101.
Figure 4 in Characterizing the complete mitochondrial genome of Psephenothrips eriobotryae Dang & Qiao (Thysanoptera: Phlaeothripidae) with massive gene arrangement in Phlaeothripidae
Figure 4. Putative cloverleaf secondary structures of the 22 tRNAs of P. eriobotryae. The dot "." indicated mismatched base pairs.
Figure 3 in Characterizing the complete mitochondrial genome of Psephenothrips eriobotryae Dang & Qiao (Thysanoptera: Phlaeothripidae) with massive gene arrangement in Phlaeothripidae
Figure 3. The ratios of nonsynonymous substitutions (Ka) and synonymous substitutions (Ks), and the ratio of Ka/Ks for each PCGs in the mitogenome of P. eriobotryae.
Figure 7 in Characterizing the complete mitochondrial genome of Psephenothrips eriobotryae Dang & Qiao (Thysanoptera: Phlaeothripidae) with massive gene arrangement in Phlaeothripidae
Figure 7. Phylogenetic tree of thrips obtained from Maximum-likelihood and MrBayes based on 13 PCGs dataset. The numbers on branches are superimposed with bootstrap support values (BP) and the Bayesian posterior probability (PP).
Figure 2 in Characterizing the complete mitochondrial genome of Psephenothrips eriobotryae Dang & Qiao (Thysanoptera: Phlaeothripidae) with massive gene arrangement in Phlaeothripidae
Figure 2. Codons distribution and usage in the mitogenome of P. eriobotryae. A. Amino acid composition: codon families are provided on the x-axis; numbers of codons of each amino acid are provided on the y-axis. B. The relative synonymous codon usage (RSCU).
Fig. 2 in Brazilian collections and laboratory biology of the thrips Pseudophilothrips ichini (Thysanoptera: Phlaeothripidae): a potential biological control agent of the invasive weed Brazilian peppertree (Sapindales: Anacardiaceae)
Fig. 2. Life history stages of the thrips Pseudophilothrips ichini reared on leaves of Schinus terebinthifolia in quarantine at the United States Department of Agriculture, Agricultural Research Service, Invasive Plant Research Laboratory (horizontal bars = 0.5 mm).
Fig. 1 in Brazilian collections and laboratory biology of the thrips Pseudophilothrips ichini (Thysanoptera: Phlaeothripidae): a potential biological control agent of the invasive weed Brazilian peppertree (Sapindales: Anacardiaceae)
Fig. 1. Map showing the distribution of the host Brazilian peppertree, Schinus terebinthifolia, in its native range (black dots) and the thrips Pseudophilothrips ichini (red dots). Thrips introduced to quarantine for life history studies were collected from a population near Ouro Preto, Minas Gerais, Brazil.
Fig. 2 in Development of Thripastichus gentilei (Hymenoptera: Eulophidae) in the thrips Gynaikothrips uzeli (Thysanoptera: Phlaeothripidae)
Fig. 2. Survivorship function [S(t)] for Thripistichus gentilei adults provisioned with a sugar water solution, distilled water, or no food (starved) along with thrips hosts. Median survival time was greater for wasps provided sugar water compared with survival for those given either water or starved. Bars represent the standard error [SE S(t)].
Fig. 1 in Development of Thripastichus gentilei (Hymenoptera: Eulophidae) in the thrips Gynaikothrips uzeli (Thysanoptera: Phlaeothripidae)
Fig. 1. Two immatures of Gynaikothrips uzeli: the upper individual is a normal larva, and the lower one displays the transparent, swollen appearance of a parasitized larva. The parasitoid, Thripistichus gentilei, develops with a polarity that is reverse relative to the host.
Fig 1 in Host specificity evaluation for Gynaikothrips uzeli (Thysanoptera: Phlaeothripidae) on ornamental Ficus (Rosales: Moraceae)
Fig 1. Cage setup for Ficus benjamina variety choice test with Gynaikothrips uzeli in the greenhouse (year 2).
Fig. 2 in Identification and pest status of Holopothrips fulvus (Thysanoptera: Phlaeothripidae) on dwarf-cashew crops in northeastern Brazil
Fig. 2. Morphology of Holopothrips fulvus (Morgan, 1929): (A) antennal segment III; (B) antennal segment IV; (C) female head; (D) male head; (E) male head and pronotum; (F) prosternum; (G) male tube; (H) fore wing; (I) mesonotum and metanotum; and (J) second instar larva.
Figure 1. A in Contribution on the eating habits and new records of Mirothrips arbiter Cavalleri, Souza, Prezoto & Mound, 2013 (Thysanoptera: Phlaeothripidae) in Polistes Latreille, 1802 (Hymenoptera: Vespidae) wasp nests
Figure 1. A. Specimen of Polistes melanosoma. B. Specimen of Polistes ferreri. C. Colony of Polistes melanosoma. D. Colony of Polistes ferreri. E. Female of Mirothrips arbiter in nest of P. melanosoma. F. Pupae of M. arbiter at the bottom of a cell near the meconium of P. melanosoma. / A. Ejemplar de Polistes melanosoma. B. Ejemplar de Polistes ferreri. C. Colonia de P. melanosoma. D. Colonia de P. ferreri. E. Hembra de Mirothrips arbiter en nido de P. melanosoma. F. Pupas de M. arbiter en el fondo de una celda cerca del meconio de P. melanosoma.
Figures 1–6 in Podothrips: first record from Iran with a new species (Thysanoptera: Phlaeothripidae)
Figures 1–6. Podothrips erami sp. nov. (1) Antenna (female); (2) Abdominal tergites VI–X (female); (3) Head (female); (4) Fore tibia and tarsus (female); (5) Fore tibia and tarsus (male); (6) male.
Figure 4 in Haplothrips aliakbarii sp. nov. (Thysanoptera: Phlaeothripidae): a new thrips on oak trees from Ilam Province (western Iran)
Figure 4. Haplothrips aliakbarii sp. nov. (holotype). A- Abdominal tergites VII–VIII; B- meso- and metanotum; C- pelta; D- tube of male, paratype. CPS = Campaniform sensilla.
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International Brain Laboratory public data
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OpenNeuro
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