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571 results for “Hydrothermal vents”
Fig. 2. Key HMBC and 1H–1H in Cytotoxic shornephines and asterresins from the hydrothermal vent associated fungus Aspergillus terreus CXX-158-20
Fig. 2. Key HMBC and 1H–1H COSY interactions of compounds 1–8.
Fig. 1 in Cytotoxic shornephines and asterresins from the hydrothermal vent associated fungus Aspergillus terreus CXX-158-20
Fig. 1. Chemical structures of compounds 1–13 from Aspergillus terreus CXX-158-20.
Data from: Characterizing the plasticity of nitrogen metabolism by the host and symbionts of the hydrothermal vent chemoautotrophic symbioses Ridgeia piscesae
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Data from: Microbial-tubeworm associations in a 440 million year old hydrothermal vent community
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Data from: sFDvent: a global trait database for deep-sea hydrothermal-vent fauna
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Facultative chemosynthesis in a deep-sea anemone from hydrothermal vents in the Pescadero Basin, Gulf of California
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Co-expression analysis reveals distinct alliances around two carbon fixation pathways in hydrothermal vent symbionts
GEO Series GSE249345. Candidatus Endoriftia persephonae. 30 samples. Type: Expression profiling by high throughput sequencing.
TABLE 1 in A new species of the thorid shrimp genus Lebbeus White, 1847 (Decapoda: Caridea) from the Amami Rift hydrothermal vent field in the Ryukyu region, Japan
<p><b>TABLE 1.</b> GenBank accession numbers of the mitochondrial COI and 16S rRNA gene sequences from species of <i>Lebbeus</i> used for genetic analyses. *Registered as <i>Lebbeus carinatus</i> de Saint Laurent, 1984 in GenBank.</p><table><tbody><tr><th>Species</th><th>COI</th><th>16S</th></tr></tbody><tbody><tr><th><i>Lebbeus altus</i> Komai, Chang & Chan, 2021</th><td>MZ742156, MZ742157</td><td>-</td></tr><tr><th><i>Lebbeus antarcticus</i> Hale, 1941</th><td>KC494749–KC494752</td><td>-</td></tr><tr><th><i>Lebbeus brevicornis</i> Komai, 2011</th><td>LC831371</td><td>LC831221</td></tr><tr><th><i>Lebbeus compressus</i> (Yokoya, 1933)</th><td>MZ742158, MZ742159</td><td>LC699546</td></tr><tr><th><i>Lebbeus cultrirostris</i> Wang, Sha & Sun, 2023</th><td>OP580068</td><td>OP578210</td></tr><tr><th><i>Lebbeus formosus</i> Komai, Chang & Chan, 2010</th><td>MK409684</td><td>KF023087</td></tr><tr><th><i>Lebbeus fujimotoi</i> Matsuzaki, Hibino & Komai, 2016</th><td>LC699876, LC699877</td><td>LC699547</td></tr><tr><th><i>Lebbeus grandimanus</i> (Bražnikov, 1907)</th><td>MN138399</td><td>-</td></tr><tr><th><i>Lebbeus groenlandicus</i> (Fabricius, 1775)</th><td>DQ882082–DQ882884, FJ581737,</td><td>-</td></tr><tr><th>MG310744, MG312804, MG314359,</th></tr><tr><th>MG314559, MG315672, MG317214,</th></tr><tr><th>MG319295, MG319690, MG319934,</th></tr><tr><th>MG320381, MG320565, MG321028,</th></tr><tr><th></th><td>MG936123, MH242822</td><td></td></tr><tr><th><i>Lebbeus jaolongi</i> (Xu, Liu, Ding & Wang, 2016)</th><td>MH398092</td><td>MH398078</td></tr><tr><th><i>Lebbeus java</i> Komai, Chang & Chan, 2019</th><td>MK409683</td><td>-</td></tr><tr><th><i>Lebbeus kexuei</i> Wang, Sha & Sun, 2023</th><td>OP580069</td><td>OP578211</td></tr><tr><th><i>Lebbeus kiae</i> Schiaparelli, Ahyong & Bowden, 2015</th><td>KT187237–KT187243</td><td>-</td></tr><tr><th><i>Lebbeus laurentae</i> Wicksten, 2010 *</th><td>AF125421</td><td>-</td></tr><tr><th><i>Lebbeus longidactylus</i> (Kobjakova, 1936)</th><td>LC699878</td><td>LC699548</td></tr><tr><th><i>Lebbeus longipes</i> (Kobjakova, 1936)</th><td>LC699879</td><td>LC699549</td></tr><tr><th><i>Lebbeus parvirostris</i> <b>sp. nov.</b></th><td>LC831370</td><td>LC831220</td></tr><tr><th><i>Lebbeus polaris</i> (Sabine, 1824)</th><td>FJ581738, FJ581739, HM425371,</td><td>KP725539, KP772540</td></tr><tr><th>HQ966810, KP759419, KP759420,</th></tr><tr><th>MG310343, MG311624, MG311072,</th></tr><tr><th>MG312952, MG312957, MG313605,</th></tr><tr><th>MG314788, MG315175, MG315873,</th></tr><tr><th>MG316672, MG317268, MG317301,</th></tr><tr><th>MG317705, MG317885, MG318148,</th></tr><tr><th>MG318608, MG318898, MG319773,</th></tr><tr><th>MG319844, MG319853, MG319864,</th></tr><tr><th>MG320139, MG320699, MG321050,</th></tr><tr><th>MG935131, MG935282</th></tr><tr><th><i>Lebbeus rufomaculosus</i> Komai & Matsuzaki, 2022</th><td>LC699872</td><td>LC699542</td></tr><tr><th><i>Lebbeus shinkaiae</i> Komai, Tsuchida & Segonzac,</th><td>MH398097</td><td>MH398083</td></tr><tr><th>2012</th><td></td><td></td></tr><tr><th><i>Lebbeus sokhobio</i> Marin, 2020</th><td>MN590012–MN590015, MN608153–</td><td>-</td></tr><tr><th>MN608155</th></tr><tr><th><i>Lebbeus subtilis</i> Komai & Matsuzaki, 2022</th><td>LC699873</td><td>LC699543</td></tr><tr><th><i>Lebbeus tenuipes</i> Komai & Matsuzaki, 2022</th><td>LC699874, LC699875</td><td>LC699544, LC699545</td></tr><tr><th><i>Lebbeus unalaskensis</i> (Rathbun, 1902)</th><td>-</td><td>LC699550</td></tr><tr><th><i>Lebbeus virentova</i> Nye, Copley, Plouviez & Van</th><td>JQ837265, KJ566966</td><td>KM979548</td></tr><tr><th>Dover, 2012</th></tr></tbody></table>
Data from: Evolutionary history and biogeographical patterns of barnacles endemic to deep-sea hydrothermal vents
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Data from: Using CRISPRs as a metagenomic tool to identify microbial hosts of a diffuse flow hydrothermal vent viral assemblage
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FIGURE 3 in A new squat lobster species of the genus Munida Leach, 1820 (Crustacea: Anomura: Galatheoidea: Munididae) from hydrothermal vents on the Eastern Pacific Rise
FIGURE 3. Munida alba sp. nov., holotype, ♀ (pcl 9.4 mm). Fresh coloration, dorsal and ventral view.
FIGURE 2 in A new squat lobster species of the genus Munida Leach, 1820 (Crustacea: Anomura: Galatheoidea: Munididae) from hydrothermal vents on the Eastern Pacific Rise
FIGURE 2. Munida alba sp. nov., holotype, ♀ (pcl 9.4 mm): A, left P2, lateral view; B, left P3, lateral view (setae omitted); C, left P4, lateral view (setae omitted); D, left P5, lateral view (setae omitted); E, dactylus of right P5, ventral view; F, right third maxilliped, external view; G, anterior part of carapace, lateral view. Scale bar: 4 mm for A, B, C, D; 0.8 mm for E; 2 mm for F; 3 mm for G.
FIGURE 1 in A new squat lobster species of the genus Munida Leach, 1820 (Crustacea: Anomura: Galatheoidea: Munididae) from hydrothermal vents on the Eastern Pacific Rise
FIGURE 1. Munida alba sp. nov., holotype, ♀ (pcl 9.4 mm): A, carapace and abdomen and cephalic appendages, dorsal view; B, sternal plastron, ventral view; C, basal segment of right antennule, ventral view (setae omitted); D, right antenna, ventral view; E, left P1, dorsal view (setae omitted); F, sixth abdominal somite, telson, and uropods (setae on the telson and uropods omitted). Scale bar: 3 mm for A, B, E; 1 mm for C, D, F.
FIGURE 1 in New sponge species from hydrothermal vent and cold seep sites off New Zealand
FIGURE 1. Map showing type localities for new species described from the Calypso hydrothermal vent field in the Bay of Plenty and named seep sites on the Hikurangi Margin.
FIGURE 4 in New sponge species from hydrothermal vent and cold seep sites off New Zealand
FIGURE 4. Haliclona (Soestella) battershilli sp. nov., holotype NIWA 32128, spicules: A. Oxea megascleres, thick, fusiform, slightly curved (lower left to middle), to abruptly, slightly centrally bent (upper right); B. Range of oxeas showing degrees of curvature.
FIGURE 11 in New sponge species from hydrothermal vent and cold seep sites off New Zealand
FIGURE 11. Pseudosuberites thurberi sp. nov., histological sections showing skeleton: A. Paratangential section of holotype NIWA 27044, showing subectosomal fans and marked tangential ectosome; B., C. Longitudinal sections of paratype NIWA 27055, showing the long, thin axial tracts diverging beneath the tangential ectosome.
FIGURE 7 in New sponge species from hydrothermal vent and cold seep sites off New Zealand
FIGURE 7. Protosuberites novaezelandiae sp. nov.: A, B. Erect, peach-coloured knobs and low finger-forming clumps, scattered amongst orange anemones and Haliclona (Soestella) battershilli sp. nov., at Southern vent field of the Calypso hydrothermal vent field (NIWA Stn KAH1004/8: images 1119 & 1118; 37.688° S 177.123° E, 190 m); C. Preserved holotype NIWA 32136; D. Preserved paratype NIWA 32135; E. Longitudinal histological section through a finger of the holotype, NIWA 32136, showing the loose, divided axial skeleton that gives rise to loose extra-axial tracts which terminate in bouquets of smaller tylostyles in the ectosome; F. Extra-axial bundles of tylostyles give rise to bouquets of small tylostyles at the surface (paratype NIWA 32140); G. Another view of extra-axial bundles approaching the surface ectosome. Images in 5A and B captured by NIWA's DTIS (Deep Towed Imaging System) deployed from RV Kaharoa.
FIGURE 3 in New sponge species from hydrothermal vent and cold seep sites off New Zealand
FIGURE 3. Haliclona (Soestella) battershilli sp. nov.: A. Finely branched, tangled masses dominate sediment-covered hard substrate at the Southern vent field of the Calypso hydrothermal vent field (NIWA Stn KAH1004/8: image 1112; 37.688° S, 177.123° E, 190 m); B. Preserved holotype NIWA 32128, showing fragments of branches and large, flush oscules; C. Composite image of a histological section of paratype NIWA 52895, showing a cavernous choanosome through which occasional primary lines emerge towards the surface (red arrows), connected in places by unispicular secondary lines (white arrows), and the dense interstitial oxeas. Image in 3A captured by NIWA's DTIS (Deep Towed Imaging System) deployed from RV Kaharoa.
FIGURE 6 in New sponge species from hydrothermal vent and cold seep sites off New Zealand
FIGURE 6. Haliclona (Halichoclona) sonnae sp. nov., holotype NIWA 52859, spicules: A, B. Oxea megascleres with fine, fusiform tips, slightly curved.
FIGURE 2 in New sponge species from hydrothermal vent and cold seep sites off New Zealand
FIGURE 2. Photograph of seabed at Southern vent field of the Calypso hydrothermal vent field (NIWA Stn KAH1004/8: image 1119; 37.688° S, 177.123° E, 190 m), showing the three sponge species that dominate the epifauna assemblage at this site: Blue arrow—finely branched Haliclona (Soestella) battershilli sp. nov.; Red arrows—translucent white, cushion-shaped Haliclona (Halichoclona) sonnae sp. nov.; Green arrows—stubby fingered, peach-coloured Protosuberites novaezelandiae sp. nov. The orange anemone is undescribed. Image captured by NIWA's DTIS (Deep Towed Imaging System) deployed from RV Kaharoa.
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