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Fig. 1. Morphological characters used for the phylogenetic analysis and key. A–C. Terminal maxillary palpomere. D–E. Eyes. F–H. Pronotum. I–J. Leg. K–L in Taxonomic revision of the Lycocerus hanatanii species group (Coleoptera, Cantharidae), with the description of new species from Taiwan

Fig. 1. Morphological characters used for the phylogenetic analysis and key. A–C. Terminal maxillary palpomere. D–E. Eyes. F–H. Pronotum. I–J. Leg. K–L. Inner margin of dorsal plate of aedeagus.

opencc-by-4.0Jan 2016View details →
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Fig.ç8.Ec hinoderes ohtsukai sp. nov., holotype, male (ZIHU 3976), Nomarski photomicrographs. A, Segments 10 and 11, dorsal view; B, segments 10 and 11, ventral view. Abbreviations: ldt, laterodorsal tubule; lts, lateral terminal spine; ps1, penile spine 1; ps2, penile spine 2. in A New Brackish-water Species of Echinoderes (Kinorhyncha: Cyclorhagida) from the Seto Inland Sea, Japan

Fig.ç8.Ec hinoderes ohtsukai sp. nov., holotype, male (ZIHU 3976), Nomarski photomicrographs. A, Segments 10 and 11, dorsal view; B, segments 10 and 11, ventral view. Abbreviations: ldt, laterodorsal tubule; lts, lateral terminal spine; ps1, penile spine 1; ps2, penile spine 2.

opencc-by-4.0May 2012View details →
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Fig. 1 in Updating the morphological phylogenetics of Nopinae (Araneae: Caponiidae): novel terminals and characters, with two new species

Fig. 1. Consensus tree using equal character weights (L = 98, Ci = 0.68, Ri = 0.85). Filled and open circles represent non-homoplasious and homoplasious transformations, respectively. Only synapomorphies common to both cladograms were included. Character numbers are placed over the branches and the states are shown below the branches. Numbers above branches with colored background are Jackknife percentages (left) and Bremer support values in units of fit (right).

opencc-by-4.0Apr 2024View details →
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Diffraction images of a crystal of the F-BAR domain of PSTPIP1 (Proline-serine-threonine phosphatase-interacting protein 1) bound to the C-terminal homology (CTH) segment of the phosphatase LYP (PTPN22) (PDB entry 7AAM)

<p>Diffraction images of a crystal of the F-BAR domain of human PSTPIP1 (residues 1-289, Uniprot reference O43586-1) in complex with the CTH of LYP (residues 787-807, Uniprot Q9Y2R2-1).</p> <p>Data were collected on a single crystal at the beamline i03 of the Diamond Light Source synchrotron (Didcot, UK) using radiation of 0.99987 &Aring; wavelength and a PILATUS3 6M detector. The dataset consists of 3 groups, each containing of 1800 images (0.1 degree oscillation per image), collected at three different positions of the same crystal. Crystal belongs to the space group P2(1)2(1)2(1) with unit cell dimensions a=48.0 &Aring;, b=72.0 &Aring;, c=205.0 &Aring;. The asymmetric unit contains an homodimer of the F-BAR domain bound to a LYP-CTH (~53% solvent content), which is the biological complex.</p> <p>Diffraction data was notably anisotropic. The lowest resolution limit was 4.05 &Aring; in the direction b* and the highest limits were 2.11 &Aring; and 2.10 in the directions a* and c*, respectively.</p> <p>&nbsp;</p> <p>The structure derived form these data is published in:</p> <p>Manso, J.A., Marcos, T., Ruiz-Mart&iacute;n, V. Casas J, Alc&oacute;n P, S&aacute;nchez Crespo M, Bay&oacute;n Y, de Pereda JM, Alonso A <em>PSTPIP1-LYP phosphatase interaction: structural basis and implications for autoinflammatory disorders</em>. <strong>Cell. Mol. Life Sci</strong>. 79, 131 (2022). <a href="https://doi.org/10.1007/s00018-022-04173-w">https://doi.org/10.1007/s00018-022-04173-w</a></p> <p>The structure is available at the PDB under the code <strong>7AAM</strong>:</p> <p><a href="https://www.ebi.ac.uk/pdbe/entry/pdb/7aam">https://www.ebi.ac.uk/pdbe/entry/pdb/7aam</a></p>

opencc-by-4.0Jun 2020View details →
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Fig. 1 in The Terminal And Vomeronasal Nerves Of Montpellier Snake, Malpolon Monspessulana (Colubridae, Ophidia, Squamata)

Fig. 1. Graphic reconstruction in a lateral view showing the contour of the vomeronasal organ (VNO), the vomeronasal duct (VND), the terminal and vomeronasal nerves (N.0) and the nervus olfactorius (N.I).

opencc-by-4.0Mar 2016View details →
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Text-fig. 16. Photomicrographs of thin sections of specimen BP/16/1734, Terminalioxylon mozambicense sp. nov. from Mhengere Hill, Gorongosa, Mozambique. a: TS with round vessels, scanty paratracheal to vasicentric parenchyma, diffuse and narrow terminal or initial bands; b: TS at higher magnification, note the very narrow rays; c: TLS, vessels with small alternate pits, and partly tylosed; d–g: TLS with crystals (small white arrows) in the parenchyma cells, medium to thick-walled fibres and uniseriate, low rays; h: TLS, rays up to 20 cells high; i: RLS rays with procumbent body cells and 1–2 rows of marginal upright cells. in Stratigraphy, Chronology And Palaeontology Of The Tertiary Rocks Of The Cheringoma Plateau, Mozambique

Text-fig. 16. Photomicrographs of thin sections of specimen BP/16/1734, Terminalioxylon mozambicense sp. nov. from Mhengere Hill, Gorongosa, Mozambique. a: TS with round vessels, scanty paratracheal to vasicentric parenchyma, diffuse and narrow terminal or initial bands; b: TS at higher magnification, note the very narrow rays; c: TLS, vessels with small alternate pits, and partly tylosed; d–g: TLS with crystals (small white arrows) in the parenchyma cells, medium to thick-walled fibres and uniseriate, low rays; h: TLS, rays up to 20 cells high; i: RLS rays with procumbent body cells and 1–2 rows of marginal upright cells.

opencc-by-4.0Dec 2021View details →
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Figure 1 in A short note on the terminal nerve in Callorhinchus milii (Callorhinchidae, Holocephali, Chondrichthyes)

Figure 1. - Histological transverse sections through nasal sac and forebrain of a pre-hatchling of Callorhinchus milii (NMNZ No 1670), respectively. A: Anterior ganglion of the nervus terminalis, close to the olfactory epithelium and nasal capsule in the region of the fibres of the nervus olfactorius. B: Larger magnification of squared region in figure 1A. C: Relative position of the terminal nerve close to the nasal septum on its course posterior along the bulbus and tractus olfactorius. D: Larger magnification of squared region in figure 1C. E: Posterior ganglion of the nervus terminalis at the medioventral part of the telencephalon in C. milii. F: Larger magnification of squared region in figure 1E. Abbreviations: (BO) bulbus olfactorius, (BV) blood vessel, (GNTa) anterior ganglion of n. terminalis, (GNTp) posterior ganglion of n. terminalis, (NO) n. olfactorius, (NT) n. terminalis, (OE) olfactory epithelium, (T) telencephalon, (TH) telencephalic hemisphere.

opencc-by-4.0Dec 2015View details →
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Fig. 1 in Terminal Maastrichtian ammonites from Turkmenistan, Central Asia

Fig. 1. Location of the study area in the western Kopet Dagh Mountains (Sumbar River region near the village of Kara−Kala, Turkmenistan). An arrow indicates the approximate position of the ammonite−bearing Cretaceous–Paleogene Sumbar River section.

opencc-by-4.0Feb 2012View details →
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Fig. 1. Maps indicating studied localities. A in New finds of skeletal fossils in the terminal Neoproterozoic of the Siberian Platform and Spain

Fig. 1. Maps indicating studied localities. A. Map of Uchur−Maya region showing reference sections of the Yudoma River: 1, Nuuchchalakh; 2, Kyyry−Ytyga; 3, Ust'−Yudoma (Suvorovella and Majaella locality). Inset map indicates location within Siberian Platform. B. Pre−Hercynian outcrops and tectonostratigraphic zones of Iberian Peninsula. Valdelacasa, Ibor, Navalpino, and Abenójar anticlines are outlined. Zones: CZ, Cantabrian; ELAZ, East Lusitanian–Alcudian; GCZ, Galician–Castilian; OMZ, Ossa−Morena; SPZ South Portuguese; WALZ, West Asturian−Leonese.

opencc-by-4.0Mar 2011View details →
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FIGURE 14. Vertical shafts with terminal chambers. 1 in Neoichnology of the burrowing spiders Gorgyrella inermis (Mygalomorphae: Idiopidae) and Hogna lenta(Araneomorphae: Lycosidae)

FIGURE 14. Vertical shafts with terminal chambers. 1, Burrow produced by juvenile Gorgyrella inermis (G2). 2, Burrow produced by adult G. inermis (G17). 3, Burrow produced by adult G. inermis (G16). 4, Burrow produced by Hogna lenta (H4).

opencc-by-4.0Mar 2015View details →
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FIGURE 5. Vertical shafts with terminal chambers. 1 in Neoichnology of the eastern spadefoot toad, Scaphiopus holbrookii (Anura: Scaphiopodidae): criteria for recognizing anuran burrows in the fossil record

FIGURE 5. Vertical shafts with terminal chambers. 1, Side view (SH25). 2, Frontal view (SH33). 3, Side view (SH33).

opencc-by-4.0Aug 2015View details →
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FIGURE 6. Subvertical shafts with terminal chambers. 1 in Neoichnology of the eastern spadefoot toad, Scaphiopus holbrookii (Anura: Scaphiopodidae): criteria for recognizing anuran burrows in the fossil record

FIGURE 6. Subvertical shafts with terminal chambers. 1, View from the back of burrow (SH11). 2, Side view (SH11). 3, Side view (SH14).

opencc-by-4.0Aug 2015View details →
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Explanation of Plate I. Figure 1.—Left tibia of Ornithomimus velox, Marsh; A, front view; b, distal end; c, transverse section. Figure 2.—Left metatarsals of same specimen; A, front view; b, proximal ends; c, transverse section; d, distal ends. Figure 3.—Phalanges of second digit of same foot; front view, a, first phalange; b, second phalange; c, third, or terminal phalange. Figure 4.—Left metacarpals of same species, perhaps of smaller individual; front view. Figure 5.—Left tibia of young Ostrich (Struthio camelus, Linn.); a, front view; b, distal end. The separate calcaneum was first observed by the writer's assistant, Dr. G-. Baur, who prepared the specimen. Figure 6.—Left metatarsals of young turkey (Meleagris gallipavo, Linn.); a, front view; b, proximal ends. a, astragalus; as, ascending process of astragalus; c, calcaneum; f, fibula; f' face for fibula; II, second metatarsal; III, third metatarsal; iv, fourth metatarsal. Figures 1-4 are one-third natural size, and figures 5 and 6, one-half natural size. in Description of new dinosaurian reptiles

Explanation of Plate I. Figure 1.—Left tibia of Ornithomimus velox, Marsh; A, front view; b, distal end; c, transverse section. Figure 2.—Left metatarsals of same specimen; A, front view; b, proximal ends; c, transverse section; d, distal ends. Figure 3.—Phalanges of second digit of same foot; front view, a, first phalange; b, second phalange; c, third, or terminal phalange. Figure 4.—Left metacarpals of same species, perhaps of smaller individual; front view. Figure 5.—Left tibia of young Ostrich (Struthio camelus, Linn.); a, front view; b, distal end. The separate calcaneum was first observed by the writer's assistant, Dr. G-. Baur, who prepared the specimen. Figure 6.—Left metatarsals of young turkey (Meleagris gallipavo, Linn.); a, front view; b, proximal ends. a, astragalus; as, ascending process of astragalus; c, calcaneum; f, fibula; f' face for fibula; II, second metatarsal; III, third metatarsal; iv, fourth metatarsal. Figures 1-4 are one-third natural size, and figures 5 and 6, one-half natural size.

opencc-by-4.0Jan 1890View details →
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FIG. 1. — Faugichthys loryi n. gen., n in Faugichthys loryi n. gen., n. sp. (Teleostei, Ichthyodectiformes) de l'Albien terminal (Crétacé inférieur marin) du vallon de la Fauge (Isère, France) et considérations sur la phylogénie des Ichthyodectidae

FIG. 1. — Faugichthys loryi n. gen., n. sp. A, B, crâne en vue dorsale (MNHN CTE 1). Abréviations: Bo, basioccipital; Epi, épiotique (= épioccipital); Exo, exoccipital; Fr, frontal; Ic, intercalaire; Pa, pariétal; Pte, ptérotique; Soc, supraoccipital; f.m., foramen magnum; f.n.occ., foramen d'un nerf occipital. Échelle: 1 cm.

opencc-zeroDec 2000View details →
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Figs. 1–6. Titiotus californicus Simon. 1–3. Male spinnerets, terminal views. 4–6. Female spinnerets, terminal views. 1, 4. Anterior lateral spinnerets. 2, 5. Posterior median spinnerets. 3, 6 in A Revision of the Endemic Californian Spider Genus Titiotus Simon (Araneae, Tengellidae)

Figs. 1–6. Titiotus californicus Simon. 1–3. Male spinnerets, terminal views. 4–6. Female spinnerets, terminal views. 1, 4. Anterior lateral spinnerets. 2, 5. Posterior median spinnerets. 3, 6. Posterior lateral spinnerets.

opencc-by-4.0Apr 2008View details →
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Text-fig. 3. Tumidopteris astra sp. nov., holotype GIN 4851/343h, morphology of sori. a: part of fertile pinnule; b: one practically complete sorus located on the terminal part of a lateral vein; c: sorus with four visible sporangia; d: partly damaged sorus with three visible sporangia; e: two neighbouring sori. Locality: the borehole IK-675, depth 961.7 m. Scale 1 mm (a, b, e), 500 Μm (c), 100 Μm (d). in A New Species Of The Genus Tumidopteris Naugolnykh From The Permian Of The Pechora Cis-Urals, Russia

Text-fig. 3. Tumidopteris astra sp. nov., holotype GIN 4851/343h, morphology of sori. a: part of fertile pinnule; b: one practically complete sorus located on the terminal part of a lateral vein; c: sorus with four visible sporangia; d: partly damaged sorus with three visible sporangia; e: two neighbouring sori. Locality: the borehole IK-675, depth 961.7 m. Scale 1 mm (a, b, e), 500 Μm (c), 100 Μm (d).

opencc-by-4.0Dec 2020View details →
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Text-fig. 7. Scanning electron microscope (SEM) images of spores with possible affinities to lycopodiopsids (a–c) and Schizaeaceae (d–g); Torres Vedras locality, Portugal. a) Densoisporites sp. from a clump of spores in proximal (left) and partial distal views (right) showing the narrow equatorial flange, long laesurae, and reticulum that is coarser on the distal surface than on the proximal surface; b, c) Unnamed microspores from clump of microspores in proximal (b) and distal (c) views showing finely reticulate surface; d, e) Cicatricosisporites ventusus fertile pinnules showing numerous attached sporangia (d) each with terminal annulus (arrowheads) and spores in situ (e); f) Cicatricosisporites sp. 1 spores from fertile pinnules bearing sporangia with a terminal in The Early Cretaceous Mesofossil Flora Of Torres Vedras (Ne Of Forte Da Forca), Portugal: A Palaeofloristic Analysis Of An Early Angiosperm Community

Text-fig. 7. Scanning electron microscope (SEM) images of spores with possible affinities to lycopodiopsids (a–c) and Schizaeaceae (d–g); Torres Vedras locality, Portugal. a) Densoisporites sp. from a clump of spores in proximal (left) and partial distal views (right) showing the narrow equatorial flange, long laesurae, and reticulum that is coarser on the distal surface than on the proximal surface; b, c) Unnamed microspores from clump of microspores in proximal (b) and distal (c) views showing finely reticulate surface; d, e) Cicatricosisporites ventusus fertile pinnules showing numerous attached sporangia (d) each with terminal annulus (arrowheads) and spores in situ (e); f) Cicatricosisporites sp. 1 spores from fertile pinnules bearing sporangia with a terminal

opencc-by-4.0Nov 2019View details →
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Figure 1 in Comparative morphology, biology and phylogeny of terminal-instar larvae of the European species of Toryminae (Hym., Chalcidoidea, Torymidae) parasitoids of gall wasps (Hym. Cynipidae)

Figure 1. Terminal-instar larva of Torymus cyaneus Walker (ventral view) illustrating the terminology used in the text. Letters refer to the following structures: ABS1– ABS9, abdominal segments; ANS, anal segment; THS1– THS3, thoracic segments; vlr, ventrolateral region; vmr, ventromedial region.

opencc-by-4.0Dec 2008View details →
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Text-fig. 4. Taphonomic features of the studied localities of ammonoids. a: Sandstone slab with fragmentary remains of productid and spiriferid brachiopods, orthocerids, coiled nautiloids and ammonoids (stratigraphic level No. 3). b: Shell debris cluster and fragment of crushed ammonoid conch (stratigraphic level No. 1). c: Epibionts on the surface of an ammonoid conch (stratigraphic level No. 5). d: Cluster of bivalves, gastropods and cephalopods remains in a siderite nodule (stratigraphic level No. 5). e: Fragment of an ammonoid conch (stratigraphic level No. 3). f: Fragment of an ammonoid conch (?) with terminal aperture and brachiopod valve (stratigraphic level No. 3). g: Specimen of?Anthracoceratites sp. with conch injuries (shown by arrows) (stratigraphic level No. 8). h, i: Bioerosion trace fossils Cyclopuncta girtyi ELIAS, 1958 on the fragments of cephalopod conchs (stratigraphic level No. 5). j: Limonitized conchs of the ammonoid (stratigraphic level No. 7). k: Fragment of an ammonoid conch (stratigraphic level No. 5). Scale bars 10 mm. in Late Bashkirian Ammonoids From The Mospyne Formation Of The Donets Basin, Ukraine

Text-fig. 4. Taphonomic features of the studied localities of ammonoids. a: Sandstone slab with fragmentary remains of productid and spiriferid brachiopods, orthocerids, coiled nautiloids and ammonoids (stratigraphic level No. 3). b: Shell debris cluster and fragment of crushed ammonoid conch (stratigraphic level No. 1). c: Epibionts on the surface of an ammonoid conch (stratigraphic level No. 5). d: Cluster of bivalves, gastropods and cephalopods remains in a siderite nodule (stratigraphic level No. 5). e: Fragment of an ammonoid conch (stratigraphic level No. 3). f: Fragment of an ammonoid conch (?) with terminal aperture and brachiopod valve (stratigraphic level No. 3). g: Specimen of?Anthracoceratites sp. with conch injuries (shown by arrows) (stratigraphic level No. 8). h, i: Bioerosion trace fossils Cyclopuncta girtyi ELIAS, 1958 on the fragments of cephalopod conchs (stratigraphic level No. 5). j: Limonitized conchs of the ammonoid (stratigraphic level No. 7). k: Fragment of an ammonoid conch (stratigraphic level No. 5). Scale bars 10 mm.

opencc-by-4.0Dec 2022View details →
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Рис. 1–8. КопуΛятивные органы Zelotes abdurakhmanovi sp. n. (1–6) и Zelotes mikhailovi (7–8). 1–2, 7 – эпигина, вентраΛьно; 3–6, 8 – паΛьпа и буΛьбус самцов: 3 – паΛьпа, вентраΛьно (MA – меΔиаΛьный отросток, E – эмбоΛюс, TA – терминаΛьный отросток), 4 – паΛьпа, ретроΛатераΛьно, 5 – апикаΛьная часть буΛьбуса, ΔорсаΛьно, 6 – буΛьбус, проΛатераΛьно, 8 – буΛьбус, ΔорсаΛьно. Figs 1–8. Copulatory organs of Zelotes abdurakhmanovi sp. n. (1–6) and Zelotes mikhailovi (7–8). 1–2, 7 – epigyne, ventral view; 3–6, 8 – male palp and bulbus: 3 – palp, ventral view (MA – median apohysis, E – embolus, TA – terminal apophysis), 4 – palp, retrolateral view, 5 – apical part of bulbus, dorsal view, 6 – bulbus, prolateral view, 8 – bulbus, dorsal view. in A new species of spiders of the genus Zelotes Gistel, 1848 (Aranei: Gnaphosidae) from the North-East Pre-Caspian region

Рис. 1–8. КопуΛятивные органы Zelotes abdurakhmanovi sp. n. (1–6) и Zelotes mikhailovi (7–8). 1–2, 7 – эпигина, вентраΛьно; 3–6, 8 – паΛьпа и буΛьбус самцов: 3 – паΛьпа, вентраΛьно (MA – меΔиаΛьный отросток, E – эмбоΛюс, TA – терминаΛьный отросток), 4 – паΛьпа, ретроΛатераΛьно, 5 – апикаΛьная часть буΛьбуса, ΔорсаΛьно, 6 – буΛьбус, проΛатераΛьно, 8 – буΛьбус, ΔорсаΛьно. Figs 1–8. Copulatory organs of Zelotes abdurakhmanovi sp. n. (1–6) and Zelotes mikhailovi (7–8). 1–2, 7 – epigyne, ventral view; 3–6, 8 – male palp and bulbus: 3 – palp, ventral view (MA – median apohysis, E – embolus, TA – terminal apophysis), 4 – palp, retrolateral view, 5 – apical part of bulbus, dorsal view, 6 – bulbus, prolateral view, 8 – bulbus, dorsal view.

opencc-by-4.0Dec 2018View details →

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