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670 results for “Molluscs”
Figure 6 in Marine molluscs of the Turkish coasts: an updated checklist
Figure 6. The number of reported mollusc species according to years and the authors with major contribution.
Figure 3 in Marine molluscs of the Turkish coasts: an updated checklist
Figure 3. Timoclea roemeriana (Issel, 1869): outside views of a specimen (A, B) and inside view of the right valve (C) (A = B = 5.9 × 3.6 mm). Photo: Bilal Öztürk.
Plate 4. T in Species inventory of land and freshwater Molluscs from Andhra Pradesh and Telangana states of India
Plate 4. T. Lymnaea (Pseudusuccinea) acuminata (Lamarck, 1822); U. Indoplanorbis exustus (Deshayes, 1834); V. Lamellidens marginalis (Lamarck, 1819); W. Parreysia favidens (Benson, 1862); X. Parreysia (Parreysia) corrugata (Müller, 1774); Y. Corbicula striatella Deshayes, 1854
Plate 3. N.Bellamya bengalensis f in Species inventory of land and freshwater Molluscs from Andhra Pradesh and Telangana states of India
Plate 3. N.Bellamya bengalensis f. annandalei (Kobelt, 1909); O. Idiopoma dissimilis (Müller, 1774); P. Pila virens (Lamarck, 1822); Q. Melanoides tuberculata (Müller, 1774); R. Thiara (Thiara) scabra (Müller, 1774); S. Tarebia lineata (Gray, 1828)
Plate 2. G in Species inventory of land and freshwater Molluscs from Andhra Pradesh and Telangana states of India
Plate 2. G.Cryptozona belangeri (Deshays, 1834); H. Cryptozona ligulata (Férussac, 1921); I. Cryptozona semirugata (Beck, 1837); J. Ariophanta interrupta (Benson, 1834); K. Macochlamys indica (Blanford & Godwin-Austen, 1908); L. Macrochlamys perplana Godwin-Austen, 1883; M. Trachia asperella (Pfeiffer, 1846)
Figure 2 in Species inventory of land and freshwater Molluscs from Andhra Pradesh and Telangana states of India
Figure 2. Number of Mollusca recorded in different locations in the study sites [NSTR: Nagarjunasagar-Srisailam Tiger Reserve EF: Ethipothala Falls, NH: Nallamala Hills ATR: Amrabad Tiger Reserve, MH: Maradumilli Hills, BH: Bavikonda Hills, GS: Gosthan Sarovar].
Plate 1 in Species inventory of land and freshwater Molluscs from Andhra Pradesh and Telangana states of India
Plate 1. ACyclophorus polynema (Pfeiffer, 1854); B. Pterocyclus rupestris Benson, 1832; C. Rachis punctatus (Anton, 1839); D. Glessula subtornensis Gude, 1914; E. Zootecus insularis (Ehrenberg, 1831); F. Kaliella barrakporensis (Pfeiffer, 1852)
Figure 1 in Species inventory of land and freshwater Molluscs from Andhra Pradesh and Telangana states of India
Figure 1. The map of survey sites in Andhra Pradesh and Telangana states of India along with Eastern Ghats mountainous range.
Fig. 3 in First report of the nematode Cruzia tentaculata using molluscs as natural intermediate hosts, based on morphology and genetic markers
Fig. 3. Scanning Electron Microscope images of a Cruzia tentaculata larvae recovered from Achatina fulica: A) Anterior extremity and detail of the apical view showing the oral opening; B) Cephalic extremity with labial papillae and phasmids (arrows), apical view; C) Lateral view showing the lateral line (arrow); D) posterior region, lateral view showing the lateral line (arrow); E) posterior region, ventral view, and (e) detail of the anus.
Fig. 2 in First report of the nematode Cruzia tentaculata using molluscs as natural intermediate hosts, based on morphology and genetic markers
Fig. 2. Photomicrographs of the Cruzia tentaculata larvae recovered from A. fulica; A) Anterior extremity, showing the excretory pore (ep), bulb, and pre-bulbar dilatation; (a) details of the excretory pore in lateral view; B) Cephalic extremity showing the labial papillae and the teeth (t), apical view; b) Trilabial mouth, apical view; C) Pre-bulbar dilatation (pb) and well developed bulb; D) Lateral lines (arrows), transversal section; E) Posterior extremity, lateral view; (e) detail of the extremity of the tail; F) anus (a), with prominent opening lateral view and a pair of anal glands (arrow).
Fig. 1 in First report of the nematode Cruzia tentaculata using molluscs as natural intermediate hosts, based on morphology and genetic markers
Fig. 1. Line drawings of Cruzia tentaculata recovered from the molluscs in the present study, based on light microscopy. A) side view of the anterior region of a nematode recovered from Achatina fulica; B) side view of the posterior region of a nematode from A. fulica; C) Lateral view of a whole specimen recovered from Latipes erinaceus. Scale bar = 100 μm.
Fig. 6. Helcionellid mollusc Oelandiella korobkovi Vostokova, 1962 in Terreneuvian stratigraphy and faunas from the Anabar Uplift, Siberia
Fig. 6. Helcionellid mollusc Oelandiella korobkovi Vostokova, 1962, internal moulds, from early Cambrian Medvezhya Formation, Kotuj River, section 3, western Anabar Uplift, Siberia, Russia; samples K2/25 (A–C), 3/12.2 (D), K2/26 (E), and K2/24 (F). A–F. SMNH Mo181931–181936, respectively. A1, B1, C, D2, E2, F1, lateral views; A2, B3, D1, E3, apertural views; A3, B2, E1, subapical views; F2, upper view. Scale bar 1 mm.
Fig. 19. Mollusc Aldanella golubevi Parkhaev, 2007 in Terreneuvian stratigraphy and faunas from the Anabar Uplift, Siberia
Fig. 19. Mollusc Aldanella golubevi Parkhaev, 2007, internal moulds, from early Cambrian Medvezhya Formation, Kotuj River, western Anabar Uplift, Siberia, Russia; sample 3/10, section 3. A–F. SMNH Mo182253–182258, respectively. A2, B1–D1, E, F, adapical side; D3, oblique umbilical side; B2, C2, D2, apertural views; A1, apical area enlarged. Scale bar 200 μm (A1), 500 μm (A2, B, C, D3, E, F), 1 mm (D1, D2).
Fig. 14. Helcionellid mollusc Mellopegma uslonicum Parkhaev, 2004 in An early Cambrian fauna of skeletal fossils from the Emyaksin Formation, northern Siberia
Fig. 14. Helcionellid mollusc Mellopegma uslonicum Parkhaev, 2004 internal moulds from lower Cambrian Emyaksin Formation, Bol'shaya Kuonamka River, Anabar Uplift, Siberia; sample B-247 (A), sample 7/70 (B–D). A. SMNH Mo 167672; lateral (A1), sub-apical (A2), and upper (A3) views. B. SMNH Mo 167671; sub-apical (B1), lateral (B2), and upper (B3) views. C. SMNH Mo 160410; lateral (C1), upper (C2), and sub-apical (C3) views. D. SMNH Mo 167612; lateral view. Scale bar 600 μm, except D, 300 μm.
Fig. 12. Helcionellid mollusc Leptostega hyperborea Parkhaev, 2005 in An early Cambrian fauna of skeletal fossils from the Emyaksin Formation, northern Siberia
Fig. 12. Helcionellid mollusc Leptostega hyperborea Parkhaev, 2005 internal moulds from lower Cambrian Emyaksin Formation, Bol'shaya Kuonamka River, Anabar Uplift, Siberia; sample 7/70. A. SMNH Mo 167667; lateral (A1), oblique supra-apical (A2), and apertural (A3) views. B. SMNH Mo 167668; lateral (B1) and upper (B2) views. C. SMNH Mo 167669; lateral view. Scale bar 600 μm, except C, 1200 μm.
Fig. 11. Helcionellid mollusc Mackinnonia anabarica Parkhaev, 2005 in An early Cambrian fauna of skeletal fossils from the Emyaksin Formation, northern Siberia
Fig. 11. Helcionellid mollusc Mackinnonia anabarica Parkhaev, 2005 internal moulds from lower Cambrian Emyaksin Formation, Bol'shaya Kuonamka River, Anabar Uplift, Siberia; sample 7/70. A. SMNH Mo 160420; A1, lateral view; A2, close-up of A1, microtexture on the surface of internal mould, detailed. B. SMNH Mo 167665 (see also Fig. 10); lateral view. C. SMNH Mo 160419 (see also Fig. 9C); C1, lateral view; C2, close-up of C1, polygons on the surface of internal mould. Scale bar: 300 μm, except A2, 120 μm; C2, 60 μm.
Fig. 9. Helcionellid mollusc Mackinnonia anabarica Parkhaev, 2005 in An early Cambrian fauna of skeletal fossils from the Emyaksin Formation, northern Siberia
Fig. 9. Helcionellid mollusc Mackinnonia anabarica Parkhaev, 2005 internal moulds from lower Cambrian Emyaksin Formation, Bol'shaya Kuonamka River, Anabar Uplift, Siberia; sample 7/70. A. SMNH Mo 167662; lateral (A 1), sub-apical (A 2), and upper (A 3) views. B. SMNH Mo 167663; lateral (B 1), sub-apical (B 2), upper (B 3), and supra-apical (B 4) views. C. SMNH Mo 160419; supra-apical (C 1), lateral (C 2), sub-apical (C 3), and upper (C 4) views. D. SMNH Mo 167664; supra-apical (D ), upper (D ), lateral (D ), and sub-apical (D ) views. Scale bar 600 μm.
Fig. 5. Mollusc grazing traces Radulichnus inopinatus from Nefiach, Pliocene. A in Bioerosion in shell beds from the Pliocene Roussillon Basin, France: Implications for the (macro)bioerosion ichnofacies model
Fig. 5. Mollusc grazing traces Radulichnus inopinatus from Nefiach, Pliocene. A. Inner surface of a pectinid valve with areas covered by Radulichnus (A1) and detail of the specimen (A2), displaying the arrangement of scratches in groups, JMC−UB/I−0103. B. Oyster shell with dense patches of Radulichnus (B1) and sculpture resulting from pervasive, deep Radulichnus bioerosion (B2), JMC−UB/I−0098. Scale bars 1 mm.
Fig. 5 in Molluscs from the Early Frasnian Goniatite Level at Kostomłoty in the Holy Cross Mountains, Poland
Fig. 5. Gastropods from the Early Frasnian Goniatite Level (uppermost Szydłówek Beds) at Kostomłoty, Holy Cross Mountains, Poland. A–C. Lahnospira taeniata (Sandberger, 1842). A. GIUS 4−2282 Kos−12 in apertural view. B, C. GIUS 4−2276 Kos−6 (B) and GIUS 4−2277 Kos−7 (C) in lateral views. D. Subulitidae indet., GIUS 4−2289 Kos−19, in apertural (D1) and lateral (D2) views, with protoconch visible. E, K. Naticopsis aff. N. kayseri Holzapfel, 1895. E. GIUS 4−1164 Kos−2 in pertural (E1), lateral (E2), and apical (E3) views and cycloneritid−type protoconch (E4). K. GIUS 4−2288 Kos−18 in apertural (K1) and lateral (K2) views. F–J. Palaeozygopleura (Bohemozyga) pyritica sp. nov. H. GIUS 4−2284 Kos−14 in apertural (H1) and lateral (H2) views of holotype. F, G, I. GIUS 4−2287 Kos−17 (F). GIUS 4−2285 Kos−15/1 (G), and GIUS 4−2286 Kos−16 (I), lateral views with opisthoclinal ornamentation visible. J. GIUS 4−2285 Kos−15/1, apertural view of shell fragment.
Fig. 1. A in Molluscs from the Early Frasnian Goniatite Level at Kostomłoty in the Holy Cross Mountains, Poland
Fig. 1. A. Location of Holy Cross Mountains against the palaeogeographic framework of the Devonian in Poland (modified after Racki 1993: fig. 1). B. Givetian–Frasnian palaeogeography of the Holy Cross Mountains (based on Racki 1993: fig. 2), with location of the Kostomłoty and Ściegnia sites.
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Allen Brain Atlas
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Annotated Behaviour and Observability Dataset (ABODe)
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