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25 results for “webspinners”
Figure 1 in Oldest webspinners from the Middle Jurassic of Inner Mongolia, China (Insecta: Embiodea)
Figure 1. Sinembia rossi gen. et sp. nov., holotype NIGP 148119. A, print (148119a), general habitus; B, print under alcohol, showing details of body (e.g. mid and hind legs); C, counterpart (148119b), general habitus; D, enlargement of (B), showing details of head and pronotum; white arrows indicate eyes; E, enlargement of (C), showing detail of hind leg (under alcohol); white arrows show details of hind tarsi. Scale bars: 2 mm in (A), (B), and (C); 1 mm in (D); 0.5 mm in (E).
Figure 2 in Oldest webspinners from the Middle Jurassic of Inner Mongolia, China (Insecta: Embiodea)
Figure 2. Sinembia rossi gen. et sp. nov., holotype NIGP 148119. Line drawings of wing venations. A, part of left forewing; B, counterpart of right forewing; C, part of right forewing. See Systematic palaeontology for a list of the abbreviations. Scale bar: 1 mm.
Figure 3 in Oldest webspinners from the Middle Jurassic of Inner Mongolia, China (Insecta: Embiodea)
Figure 3. Juraembia ningchengensis gen. et sp. nov., holotype NIGP 148120a. A, part, general habitus; B, enlargement of head and pronotum (under alcohol); C, enlargement of fore tarsi (under alcohol); D, enlargement of ovipositor and cerci (under alcohol). Scale bars: 2 mm in (A); 1 mm in (B) and (D); 0.5 mm in (C). Fe, femur; O, ovipositor; T, tarsi; Ti, tibia.
Fig. 1 in The Earliest Webspinners (Insecta: Embiodea)
Fig. 1. Dorsal photomicrograph of Sorellembia estherae n.gen., n.sp., holotype male (Bu-227).
FIGURE 3 in Two remarkable new species of webspinners in the genus Eosembia Ross, 2007 (Embioptera: Oligotomidae) from Thailand
FIGURE 3. Light micrographs of Eosembia paradorni sp. n. (A) male, (B) female with eggs and (C) silk gallery.
Fig. 6 in Macroecology and Potential Drivers of Diversity in Webspinner Maternal Care (Order Embioptera)
Fig. 6. Scatterplot between predation threat (AET) and coarse parental care behavior. Here, parental care behavior is generalized as being 'high′ or 'low′ (1 or 0, respectively), based on whether species′ MCA-1 scores were higher or less than 0. Darker (red) circles and lines show parental care scores and phylogenetic logistic regression models estimated using all 29 species, while lighter gray circles and lines show parental care scores and phylogenetic logistic regression models estimated using only species sampled in their native range (n = 26). Thick, solid lines show the mean phylogenetic logistic regression model (95% confidence bands were calculated but not visible).Thin lines show each of the 1,000 phylogenetic logistic regression models for both data subsets. Circles are shifted vertically by small stochastic value to improve visibility of individual circles.
Fig. 4 in Macroecology and Potential Drivers of Diversity in Webspinner Maternal Care (Order Embioptera)
Fig. 4. Phylogeny of 29 Embioptera species and dotted lines delineating where specimens were sampled. Circles indicate species sampled in their native ranges, while triangles indicate species sampled outside of their native ranges. Brightness of circles and triangles indicate AET values, which are shown in the scale (lower left on the map).
Fig. 2 in Macroecology and Potential Drivers of Diversity in Webspinner Maternal Care (Order Embioptera)
Fig. 2. Photographs of egg handling configuration for Embioptera analyzed in this study (not to scale). (A) Anisembia texana (Melander 1902) (Anisembiidae) partially coated eggs suspended in silk, (B) Antipaluria urichi (Saussure 1896) (Clothodidae) with egg mass covering pulled aside (left) and eggs with covering removed to show cement coating and neat alignment (right), (C) Aposthonia borneensis (Hagen 1885) (Oligotomidae) close-up showing individual cement coating, alignment and silk covering, (D) Archembia n. sp. (Archembiidae) with the otherwise complex egg mass covering removed to show neat alignment, (E) Clothoda longicauda Ross 1987 (Clothodidae) with thick covering removed to reveal tight alignment and complex coatings of individual eggs; remnants of the egg mass covering at right of image, (F) Conicercembia septontrionalis (Mariño & Marquez 1988) (Scelembiidae) eggs, visible as white ovoids, scattered within lichen bits embedded in silk, (G) Diradius nigrinia (Ross 1944) (Teratembiidae) eggs individually coated but not aligned in neat rows, (H) Embia nuragica Stefani 1953 (Embiidae) with clean eggs stitched into silk, (I) Eosembia apterosa Poolprasert & Edgerly 2011 (Oligotomidae) egg mass neatly organized and coated, guarded by the female in this field photograph, (J) E. auripecta Ross 2007 egg mass underneath female; her eggs are coated individually, neatly organized and cemented to the substrate, (K) Haploembia solieri (Rambur 1842) (Oligotomidae) eggs are not organized but are neatly coated individually with gathered materials and covered with thin silk, (L) Metoligotoma brevispina Davis 1938 (Australembiidae) eggs minimally covered and gathered into a loose clump, guarded by the female in this image, (M) M. bidens Davis 1938 eggs are loosely clustered in silk but not arranged or affixed, (N) M. incompta (Ross 1963) eggs individually coated and organized into rows; an extra covering was pulled back to allow the photograph,(O) M. pentanesiana Davis 1938 eggs are partially covered and stuck into the substrate but not arranged into rows, (P) Neorhagadochir moreliensis (Ross 1984) (Scelembiidae) eggs are scattered with no coating or organization; coloration due to microscope lighting is not natural; eggs are naturally creamy white, (Q) Notoligotoma hardyi Friederichs 1932 (Notoligotomidae) eggs are stitched into the gallery silk but are not organized; gathered materials are loosely placed around the eggs, (R) Oligembia hubbardi (Hagen 1885) (Teratembiidae) eggs (at arrows) are scattered and hidden by protective materials, (S) Oligotoma saundersii (Westwood 1837) (Oligotomidae) eggs, clustered together with gathered materials, are covered with thin silk, (T) O. nigra (Hagen 1866) egg mass closely resembles congener (O. saundersii) with eggs placed together and loosely covered, (U) Pararhagadochir trinitatis (Saussure 1896) (Scelembiidae) egg mass with top covering intact (left) and removed (right) to show eggs thickly coated and arranged in neat rows, (V) Parthenembia reclusa Ross 1960 (Embiidae) with clustered eggs but no coatings or coverings, (W) Ptilocerembia catherinae Poolprasert & Edgerly 2014 (Ptilocerembiidae) with complex egg mass covering of lichen bits embedded in the silk above the eggs (left); eggs are organized, stuck, and covered by loosely gathered materials (right), (X) Rhagadochir virgo (Ross 1960) (Scelembiidae) eggs placed in small groups into the silk domicile and covered with gathered bits of lichen and macerated materials, (Y) Saussurembia calypso Edgerly, Szumik, McCreedy 2007 (Anisembiidae) eggs scattered into the silk gallery, (Z) Saussurembia davisi Ross 1992 eggs with thick egg mass covering (left) and with covering removed to reveal loose, clean eggs with gathered materials tucked here and there around the eggs. All photographs by J.S. Edgerly.Additional photographs not shown and used for analysis are as follows: from Ross (2000) Dinembia sp. (Embiidae) (Fig. 18), Enveja sp. (Embiidae) (Fig. 29B), and Gibocercus sp. (Scelembiidae) (Fig. 42A), and Eosembia paradorni (Fig. 3 of Poolprasert et al. (2011).
Fig. 1 in Macroecology and Potential Drivers of Diversity in Webspinner Maternal Care (Order Embioptera)
Fig. 1. Photographs of characters scored for a selection of species. (A) Individual egg treatment ranging from clean to covered with cement. (B) Egg arranged from scattered to highly organized. (C) Silk added thinly to very thick over the eggs. (D) Eggs loosely placed on or affixed to the substrate. (E) Egg mass bare or covered and hidden by collected materials.
Fig. 5 in Macroecology and Potential Drivers of Diversity in Webspinner Maternal Care (Order Embioptera)
Fig. 5. Scatterplot between predation threat (AET) and parental care behavior measured as the score of MCA-1. Darker (red) circles and lines show parental care scores and pGLS slopes that were estimated using all 29 species, while lighter gray circles and lines show parental care scores and pGLS slopes that were estimated using only species sampled in their native range (n = 26).Thick, solid lines show the mean slope, and intercepts of all models, while dotted lines show upper and lower extents of the 95% confidence band.Thin lines show each of the 1,000 pGLS models for both data subsets.
Fig. 3 in Macroecology and Potential Drivers of Diversity in Webspinner Maternal Care (Order Embioptera)
Fig. 3. Phylogeny and heatmap showing each species′ egg handling score. Species shown with † are species that were added stochastically usingTACT. Species shown with * are species sampled outside of their native range.
FIGURE 9 in Aposthonia guizhouensis sp. nov., a new webspinner of Oligotomidae (Insecta: Embioptera) from China
FIGURE 9. Aposthonia guizhouensis sp. nov., A) Habitat cement road in Guiyang Forest Park, Guizhou Province, China. B) Live male on man-made stone columns. C) Live female on man-made stone columns. Photos by Mr. Jia-Cheng Mo.
FIGURE 1 in Aposthonia guizhouensis sp. nov., a new webspinner of Oligotomidae (Insecta: Embioptera) from China
FIGURE 1. Aposthonia guizhouensis sp. nov., male habitus, dorsal view. Anterior medial vein (MA) indicated by black arrowhead.
FIGURE 4 in Aposthonia guizhouensis sp. nov., a new webspinner of Oligotomidae (Insecta: Embioptera) from China
FIGURE 4. Aposthonia guizhouensis sp. nov., male. A) Abdominal terga 7–10, dorsal view; outline of tenth tergite, tergal processes and epiproct indicated by line drawings. B) Terminalia, dorsal view. C) Abdominal sterna 7–10, ventral view; outline of hypandrium, hypandrium process, left paraproct, left and right tergal processes indicated by line drawings. D) Terminalia, ventral view. Abbreviations: 10L = left hemitergite of the tenth segment; 10R = right hemitergite of the tenth segment; 10LP = left tergal process; 10RP = right tergal process; EP = epiproct (segment 11); H = hypandrium (sternite 9); HP = hypandrium process; LPPT = left paraproct; LC1 and LC2 = first and second segments of left cercus; RC1 and RC2 = first and second segments of right cercus.
FIGURE 8 in Aposthonia guizhouensis sp. nov., a new webspinner of Oligotomidae (Insecta: Embioptera) from China
FIGURE 8. Aposthonia guizhouensis sp. nov. A) Habitat forest in Guiyang Forest Park, Guizhou Province, China. B) Live male. C) Live female. Photos by Dr. Lu Qiu.
FIGURE 2 in Aposthonia guizhouensis sp. nov., a new webspinner of Oligotomidae (Insecta: Embioptera) from China
FIGURE 2. Aposthonia guizhouensis sp. nov., male habitus, ventral view. Papilla on hind tarsus indicated by black arrowhead.
FIGURE 5 in Aposthonia guizhouensis sp. nov., a new webspinner of Oligotomidae (Insecta: Embioptera) from China
FIGURE 5. Aposthonia guizhouensis sp. nov., female. A. Habitus, dorsal view. B) Habitus, ventral view.
FIGURE 7 in Aposthonia guizhouensis sp. nov., a new webspinner of Oligotomidae (Insecta: Embioptera) from China
FIGURE 7. Aposthonia guizhouensis sp. nov. A) Genetic distance among the DNA sequences used in this study. B) Neighborjoining tree based on the COI sequences, numbers at the nodes are bootstrap values. C) Maximum likelihood tree based on the COI sequences, numbers at the nodes are bootstrap values.
FIGURE 1 in Two remarkable new species of webspinners in the genus Eosembia Ross, 2007 (Embioptera: Oligotomidae) from Thailand
FIGURE 1. Light micrographs of Eosembia lamunae sp. n. (A) male, (B) female and (C) silk gallery.
Figure 1 from: Engel M, Grimaldi D, Singh H, Nascimbene P (2011) Webspinners in Early Eocene amber from western India (Insecta, Embiodea). ZooKeys 148: 197-208. https://doi.org/10.3897/zookeys.148.1712
Figure 1 - Photomicrograph of holotype male (Tad-261-A) of Kumarembia hurleyi Engel & Grimaldi, gen. et sp. n., in Early Eocene amber from western India. Total length of individual 5.3 mm.
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OpenNeuro
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