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467 results for “Incertae sedis”
Fig. 12 in Saphonecrus sinicus Belizin 1968, incertae sedis
Fig. 12. Results of principal components analysis of all specimens. PC1 = 48.64%, PC2 = 17.45%, accounting for 66.09% of the total variation.
Fig. 6 in Saphonecrus sinicus Belizin 1968, incertae sedis
Fig. 6. Scanning electron micrographs of the morphometric measurements of the ovipositor for the females of Rhinocypha spp. (lateral view). (a) Rhinocypha biforata, (b) Rhinocypha fenestrella, (c) Rhinocypha perforata. (i, ii & iii) length of each segment; (iv) length of anal appendages; (v) basal width of anal appendages; (vi) length of stylus; (vii) width of the V3.
Fig. 9 in Saphonecrus sinicus Belizin 1968, incertae sedis
Fig. 9. Scanning electron micrographs of the stylus and the base of stylus of Rhinocypha spp. (a) Rhinocypha biforata, (b) Rhinocypha fenestrella – (i) width of the stylus from the third of hair sensilla, (c) Rhinocypha perforata. (d, e & f) scanning electron micrographs of the base of stylus. (d) Rhinocypha biforata, (e) Rhinocypha fenestrella, (f) Rhinocypha perforata.
Fig. 4 in Saphonecrus sinicus Belizin 1968, incertae sedis
Fig. 4. Wing of Rhinocypha spp. (a) Rhinocypha fenestrella, (b) Rhinocypha perforata, and (c) Rhinocypha biforata.
Fig. 3 in Saphonecrus sinicus Belizin 1968, incertae sedis
Fig. 3. Landmark configuration of Rhinocypha spp. Fifteen landmarks were used in geometric morphometric analysis. Landmarks represent: (1) costa – subcostal connection, (2, 3 & 4) distal angles of arculus, (5) the nodus, (6) posterior intersection of the pterostigma and radius 1 (R1), (7) end of vein radius 2 (R2), (8) posterior end of the radius 4 (R4), (9) posterior end of the anterior media (MA), (10) posterior end of the Cubital Vein (CuP), (11) posterior end of the Anal Vein 1 (A1), (12) proximal apex of anal triangle, (13) anterior end of the cubital vein supplementary (Cupspl); (14) anterior end of the anterior media supplementary (Mspl); and (15) anterior end of the radius 4 supplementary (R4spl).
Fig. 2 in Saphonecrus sinicus Belizin 1968, incertae sedis
Fig. 2. Lateral view of the external morphology of the ovipositor of Rhinocypha spp. Ap: anal appendages; St: stylus; Dt: distal tooth; V3: third valves of ovipositor (valvulae 3); Lam: basal plate of ovipositor (lamina valvarum).
Fig. 1 in Saphonecrus sinicus Belizin 1968, incertae sedis
Fig. 1. Lateral view of thorax and anterior abdomen. Characters used in order to create the key identification for females of Rhinocypha spp. using the morphological nomenclature by Djikstra et al. (2014) and modified from Gunther (2009).
Fig. 14 in Saphonecrus sinicus Belizin 1968, incertae sedis
Fig. 14. Canonical Variate analysis (CVA) plot. CV1 (eigenvalue 8.887) vs CV2 (eigenvalue 2.150). 90% confidence ellipses of CVA scores. Colour of ellipses corresponds to the species written alongside.
Fig. 8 in Saphonecrus sinicus Belizin 1968, incertae sedis
Fig. 8. Scanning electron micrographs of sheathing valve (V3) and distal tooth of Rhinocypha spp. (a) Rhinocypha biforata, (b) Rhinocypha fenestrella, (c) Rhinocypha perforata – inset shows the carina, (d) measurement of (i) the peak of the tooth to the median base (ii) the space between the tooth. (e, f & g) shows the scanning electron micrographs of distal tooth of Rhinocypha spp.: (e) Rhinocypha biforata - (iii) indicates the width of the distal tooth, (f) Rhinocypha fenestrella – inset shows the campaniform sensilla, (g) Rhinocypha perforata, (h) campaniform sensilla at the distal tooth surface.
Fig. 11 in Saphonecrus sinicus Belizin 1968, incertae sedis
Fig. 11. Wireframe visualization of shape variation along the principal components one (PC1) from geometric morphometric analysis. (a) Rhinocypha biforata, (b) Rhinocypha fenestrella, (c) Rhinocypha perforata. Light blue landmarks represent the configuration of average specimen; dark blue landmarks represent one approximate extreme of the variation on that axis. Percentages indicate the proportion of total variance explained by each axis.
Fig. 5 in Saphonecrus sinicus Belizin 1968, incertae sedis
Fig. 5. Thorax of the females of Rhinocypha spp. (a) R. fenestrella, (b) R. perforata, and (c) R. biforata.
Fig. 7 in Saphonecrus sinicus Belizin 1968, incertae sedis
Fig. 7. Scanning electron micrographs of anal appendages of Rhinocypha spp. (a) Rhinocypha biforata – inset indicates the group of sensilla; (b) Rhinocypha fenestrella – inset shows the caeloconica-like sensilla; (c) Rhinocypha perforata; (d) group of sensilla on the tip of anal appendages; (e) caeloconica-like sensilla on the surface of the anal appendages. Gs: group of sensilla; Bs: basiconic sensilla; As: articulated setae.
Fig. 13 in Saphonecrus sinicus Belizin 1968, incertae sedis
Fig. 13. Thin-plate spline deformation grids of wing shape variation in Rhinocypha spp. (a) Rhinocypha biforata, (b) Rhinocypha fenestrella, (c) Rhinocypha perforata, demonstrating the directions (arrows).
Fig. 10 in Saphonecrus sinicus Belizin 1968, incertae sedis
Fig. 10. Scatterplot of all 15 landmarks configurations after Procrustes superimposition. The plotted line and blue dots represent the mean shape for the respective species; (a) Rhinocypha biforata, (b) Rhinocypha fenestrella, (c) Rhinocypha perforata.
Fig. 6 in The Acoela: on their kind and kinships, especially with nemertodermatids and xenoturbellids (Bilateria incertae sedis)
Fig. 6 Female copulatory organs in Isodiametra pulchra. a Image of female copulatory organs in a live and squeezed specimen. Note the mass of elongated and convoluted sperm in the seminal bursa (sb) that merge towards the bursal nozzle (arrowhead) and a few "heads" extending into the vestibulum (ve). Asterisk marks bursal stalk connecting the bursa with the digestive parenchyma, arrowhead points to
Fig. 4 in The Acoela: on their kind and kinships, especially with nemertodermatids and xenoturbellids (Bilateria incertae sedis)
Fig. 4 Electron micrographs of structures with phylogenetic significance. a Statocyst of a hatchling of Isodiametra pulchra with two parietal cells (p) and a lithocyte (l). b Sperm of Convoluta niphoni (Convolutidae) with axial microtubules (white arrow) and axonemes without central microtubules (white arrowheads). c Extrusion
Fig. 2 in The Acoela: on their kind and kinships, especially with nemertodermatids and xenoturbellids (Bilateria incertae sedis)
Fig. 2 Images of sensory structures of live Symsagittifera roscoffensis. a Hatchling. Arrowheads point to eyes, arrow to statocyst. Note absence of symbionts and presence of orange rhabdoids. b Anterior end of adult with symbionts and rhabdoids. White arrowheads point to
Fig. 1. Zoelucasa sablensis. a in Zoelucasa sablensis n. gen. et n. sp. (Cercozoa, Incertae Sedis), a New Scale-covered Flagellate from Marine Sandy Shores
Fig. 1. Zoelucasa sablensis. a – diagrammatic representation of cellular components, where: af – anterior flagellum, tf – trailing flagellum, S – scales, N – nucleus, n – nucleolus; b – external arrangement of scales; c, d – SEM images of whole, dried cells showing covering of scales and flagella; e – DIC image of cell showing optical section of the scale layer (arrows); f – nucleus (N); g, h – nucleus (large arrow) and parallel flagellar insertion in anterior pocket (small arrows) of cells that have retracted to a posterior position within their loricae; i – trailing flagellum in a "swimming" cell; j – anterior pocket (larger arrow) and parallel emergence of two flagella (small arrows); k – diagrammatic representation of the zig-zag pattern of cell "swimming" movement; l, m – compressed cells showing the flagella (arrows) and disassociated scales around the cells (note the fractures of some scales in m); n–r – TEM images of scales.
Fig. 7. Theria incertae sedis. A. Left p1 in New Late Cretaceous mammals from the Intertrappean beds of Rangapur, India and paleobiogeographic framework
Fig. 7. Theria incertae sedis. A. Left p1 or p2 (ITV/R/Mm−14) in labial view. B. Right p1 (ITV/R/Mm−17) in labial view. C. Right p3 or p4 (ITV/R/Mm−13) in lingual view. D. Right P3 (ITV/R/Mm−5) in labial (D1) and occlusal (D2, D3) views. Scale bar 0.5 mm.
Fig. 13. Allotheria incertae sedis, BMNH M46234, left I2 in New teeth of allotherian mammals from the English Bathonian, including the earliest multituberculates
Fig. 13. Allotheria incertae sedis, BMNH M46234, left I2 in lingual (A), distal (B), occlusal (C), and buccal (D) views. Mesial end upwards in C, crown upwards in the rest.
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