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55 results for “Terebridae”
FIGURE 10 in The auger snails (Gastropoda, Conoidea, Terebridae) of the Miocene Paratethys Sea
FIGURE 10. Hastulopsis fuchsii (Hoernes, 1875). A1–A2. Syntype, GBA 1875/0001/0007/01, Ottnang (Austria). B1–B2. Syntype, GBA 1875/001/007/03, Ottnang (Austria). C1–C2. Syntype, GBA 1875/001/007/04, Ottnang (Austria).
FIGURE 9 in The auger snails (Gastropoda, Conoidea, Terebridae) of the Miocene Paratethys Sea
FIGURE 9. Hastulopsis excostellata (Sacco, 1891). A1–A2. NHMW 1851/0006/0005a, Baden (Austria). B1–B2. NHMW 1851/0006/0005b, Baden (Austria). C1–C2. NHMW 1851/0006/0005c, Baden (Austria). D1–D2. Holotype, NHMW 1851/0006/0005, Baden (Austria). E1–E2. NHMW 2023/0295/0003, Bad Vöslau (Austria). F1–F2. NHMW 2023/0295/0004, Bad Vöslau (Austria).
FIGURE 8 in The auger snails (Gastropoda, Conoidea, Terebridae) of the Miocene Paratethys Sea
FIGURE 8. Hastula translata (Sacco, 1891). A1–A2. Holotype, NHMW 2023/0301/0001, Pöls (Austria). B1–B2. NHMW 2023/0301/0002, Pöls (Austria).
FIGURE 6 in The auger snails (Gastropoda, Conoidea, Terebridae) of the Miocene Paratethys Sea
FIGURE 6. Hastula hungarica Csepreghy-Meznerics, 1954. A1–A2. Holotype M.622971, Mátraverebély (Hungary).
FIGURE 2 in The auger snails (Gastropoda, Conoidea, Terebridae) of the Miocene Paratethys Sea
FIGURE 2. Fusoterebra terebrina (Bellardi & Michelotti, 1840). A1–A2. NHMW 1997z/0178/1787, Walbersdorf (Austria). B1–B2. NHMW 1997z/0178/1787, Walbersdorf (Austria). C1–C2. NHMW 1997z/0178/1787, Walbersdorf (Austria). D1–D2. NHMW 1846/0037/0121, Baden (Austria), lectotype of Terebra fusiformis Hörnes 1852. F. NHMW 1866/0001/1055, Forchtenau (Austria), holotype of Terebra bigranulata Hoernes & Auinger, 1880. E1–E2. NHMW 2023/0292/0001, Baden Sooss (Austria).
FIGURE 4 in The auger snails (Gastropoda, Conoidea, Terebridae) of the Miocene Paratethys Sea
FIGURE 4. Hastula duboisiana (d'Orbigny, 1852). A1–A2. Lectotype, NHMW 1864/0001/0136, Bad Vöslau (Austria). B1–B2. Paralectotype, NHMW 1864/0001/0136a, Bad Vöslau (Austria). C1–C2. NHMW 1854/0035/0117, Lăpugiu de Sus (Romania). D1–D2. NHMW 1968/0001/0417, Lăpugiu de Sus (Romania). E1–E2. NHMW 1870/0033/0051, Lăpugiu de Sus (Romania). F. NHMW 2018/0248/0253, CoŞteiu de Sus (Romania). G1–G2. NHMW 2023/0293/0002, Baden (Austria).
FIGURE 5 in The auger snails (Gastropoda, Conoidea, Terebridae) of the Miocene Paratethys Sea
FIGURE 5. Hastula sublaevigata (Grateloup, 1845). A1–A2. syntype of Hastula subcinerea (d'Orbigny, 1852), MNHN. F.B27640, Burdigalian (Early Miocene), region of Bordeaux (France).
FIGURE 3 in The auger snails (Gastropoda, Conoidea, Terebridae) of the Miocene Paratethys Sea
FIGURE 3. Protoconchs of Paratethyan Terebridae. A. Fusoterebra terebrina (Bellardi & Michelotti, 1840), NHMW 2023/0294/0001, Baden (Austria). B. Hastula duboisiana (d'Orbigny, 1852), NHMW 2023/0295/0001, Bad Vöslau (Austria). C. Hastula lapugyensis (Hoernes & Auinger, 1880), NHMW 2023/0296/0001, Lăpugiu de Sus (Romania). D. Hastula translata (Sacco, 1891), holotype, NHMW 2023/0301/0001, Pöls (Austria). E. Strioterebrum borianum (Švagrovský, 1982), NHMW 2023/0298/0003, Gainfarn (Austria). F. Hastulopsis excostellata (Sacco, 1891), NHMW 2023/0295/0005, Bad Vöslau (Austria).
PLATE 1 in Terebra limatula Dall,1889 and T. acrior Dall, 1889 (Gastropoda: Terebridae); two problematic taxa from the western Atlantic
PLATE 1. Terebra limatula "var. acrior" Dall, 1889. Mayagüez. USNM 159689 Harbor, Puerto Rico, 21.3 mm. Specimen figured by Dall & Simpson, 1901, pl. 57, fig. 6. 2a, 2b. Terebra limatula Dall, 1889. Lectotype, U. S. Fish Commission Station 2402, in the Gulf of Mexico, between the delta of the Mississippi and Cedar Key, Florida., in 111 fms. 3. Terebra crassireticulata Simone & Verissimo, 1995. Holotype MZUSP 27930; slope off Ubatuba, São Paulo, Brazil, 320 m, 25mm. 4. Terebra limatula Dall, 1889. Off Alabama, 29º 28' N, 87º 27.30'W; in 173 m, 8.7 mm (EFG 14650). 5. Terebra limatula Dall, 1889. Bahía de Campeche, Mexico, 20º51.16'N, 92º26.28'W, in 93–94 m (EFG 26290). 6a, 6b. Terebra limatula "var. acrior" Dall, 1889. Paralectotype, ANSP 33723, Bimini, Bahamas, 9.3 mm 7. Terebra acrior Dall, 1889. Syntype, USNM 87294; Barbados,`100 fms, 8 mm. Images from Kaicher (card No. 2710). 8a, 8b. Terebra limatula var, acrior Dall, 1889. Syntype, MCZ 7015, Campeche Bank Mexico, 23º13'N, 89º16'W, in 84 fms, 7.4 mm 9a,9b. Terebra acrior Dall,1889. Off Alabama, 29º14'N, 88º 16' W; in 100 m, 7.8 mm (EFG 14597). 10. Terebra acrior Dall, 1889. SW of Key West, Florida, in 135 m (EFG 28313).
FIGURES 11–23 in Conidae and Terebridae (Gastropoda: Neogastropoda) from the Plio-Pleistocene of the Philippines
FIGURES 11–23. Terebridae. Scale bar is either 10 mm or 1 mm.
Data from: Macroevolutionary analyses suggest that environmental factors, not venom apparatus, play key role in Terebridae marine snail diversification
<p><span>How species diversification occurs remains an unanswered question in predatory marine invertebrates, such as sea snails of the family Terebridae. However, the anatomical disparity found throughput the Terebridae provides a unique perspective for investigating diversification patterns in venomous predators. In this study, a new dated molecular phylogeny of the Terebridae is used as a framework for investigating diversification of the family through time, and for testing the putative role of intrinsic and extrinsic traits, such as shell size, larval ecology, bathymetric distribution, and anatomical features of the venom apparatus, as drivers of terebrid species diversification. Macroevolutionary analysis revealed that when diversification rates do not vary across Terebridae clades, the whole family has been increasing its global diversification rate since 25 Ma. We recovered evidence for a concurrent increase in diversification of depth ranges, while shell size appeared to have undergone a fast divergence early in terebrid evolutionary history. Our data also confirm that planktotrophy is the ancestral larval ecology in terebrids, and evolutionary modeling highlighted that shell size is linked to larval ecology of the Terebridae, with species with long-living pelagic larvae tending to be larger and have a broader size range than lecithotrophic species. Although we recovered patterns of size and depth trait diversification through time and across clades, the presence or absence of a venom gland (VG) did not appear to have impacted Terebridae diversification. Terebrids have lost their venom apparatus several times and we confirm that the loss of a VG happened in phylogenetically clustered terminal taxa and that reversal is extremely unlikely. Our findings suggest that environmental factors, and not venom, have had more influence on terebrid evolution.</span></p>
FIG. 6 in Taxonomic study on the molluscs collected in Marion-Dufresne expedition (MD55) to SE Brazil: Xenophoridae, Cypraeoidea, mitriforms and Terebridae (Caenogastropoda)
FIG. 6. — Costellariids: A, Turricostellaria ovir n. sp., holotype MNHN 25237, apertural view (L 9.9 mm); B, same, dorsal view; C, paratype MZSP 102860, apertural view (L 5.2 mm); D, same, detail of apex in profile; E, Nodicostellaria crassa (Simone, 1995), MNHN (stn CB104), apertural view with sponge coating (L 25.4 mm); F, same, dorsal view; G, same, cleaned shell, apertural view; H, same, right view; I, same, dorsal view; J, same, detail of protoconch; K, same, detail of inner lip, apertural-slightly right view; L, MZSP 102887, apertural view (L 14.1 mm).
Data from: Macroevolutionary analyses suggest that environmental factors, not venom apparatus, play key role in Terebridae marine snail diversification
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FIGURE 7. A–E in The auger snails (Gastropoda, Conoidea, Terebridae) of the Miocene Paratethys Sea
FIGURE 7. A–E. Hastula lapugyensis (Hoernes & Auinger, 1880). A1–A2. Lectotype, NHMW 1949/0005/0006, Lăpugiu de Sus (Romania). B1–B2. Paralectotype, NHMW 1856/0007/0010a, Lăpugiu de Sus (Romania). C1–C2. Paralectotype, NHMW 1856/0007/0010b, Lăpugiu de Sus (Romania). D1–D2. NHMW 2016/0177/0952, Lăpugiu de Sus (Romania). E1–E2. NHMW 2016/0177/0952a, Lăpugiu de Sus (Romania). F1–F2. Terebra golebiowskii nov. sp., Paratype, NHMW 2023/0295/0002, Bad Vöslau (Austria).
FIGURE 1 in The auger snails (Gastropoda, Conoidea, Terebridae) of the Miocene Paratethys Sea
FIGURE 1. Measurements for shell morphology, spire profiles and types of siphonal canals; AA: apical angle, MD: maxium diameter.
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