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36 results for “zoantharian”
Genome assemblies and gene models of of the zoantharians Palythoa mizigama and Palythoa umbrosa
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Figure 9 in Evolution and phylogeny of glass-sponge-associated zoantharians, with a description of two new genera and three new species
Figure 9. Images of Kauluzoanthus sp.: A, in situ image of Kauluzoanthus sp. on stalks of Hyalonema sp.; B, preserved colony. Scale: 10 mm (A). Images credits: Okeanos/NOAA.
Figure 8 in Evolution and phylogeny of glass-sponge-associated zoantharians, with a description of two new genera and three new species
Figure 8. Images of external and internal morphology of Vitrumanthus oligomyarius (CMNH ZG-4785). A, preserved polyps on Tretochone duplicata; B, C, cross-section of polyp; D, longitudinal section of polyp; E, F, close-up images of cyclically transitional marginal musculature; G, close-up image of tentacle musculature. Abbreviations: A, actinopharynx; Dd, dorsal directives; Ctmm, cyclically transitional marginal musculature; Ec, ectoderm; M, mesoglea; Mm, marginal musculature; S, siphonoglyph; O, oral disk; 5th, fifth mesentery from dorsal directives. Scale bars: 5 mm (A), 1.5 mm (B, C), 0.5 mm (D, E), 0.1 mm (F), 0.25 mm (G).
Figure 7 in Evolution and phylogeny of glass-sponge-associated zoantharians, with a description of two new genera and three new species
Figure 7. Images of external and internal morphology of Vitrumanthus vanderlandi (holotype: RMNH.COEL.42623).A, preserved polyps on Aphrocallistes beatrix; B, C, close-up image of polyp; D, close-up image of tentacle musculature; E, longitudinal section of polyp; F, drawing of cyclically transitional marginal musculature. Abbreviations: A, actinopharynx; Te, tentacle; Tem, tentacle musculature; Ctmm, cyclically transitional marginal musculature. Scale bars: 3 mm (A), 1.5 mm (B, C, E), mm (C), 0.3 mm (D).
Figure 6 in Evolution and phylogeny of glass-sponge-associated zoantharians, with a description of two new genera and three new species
Figure 6. Images of external and internal morphology of Vitrumanthus schrieri (A, photographic record: image was taken at the entrance of Piscadera Bay, 12°07'06"N, 68°58'34"W; B–F, holotype: RMNH.COEL.42429). A, living polyps on Verrucocoeloidea liberatorii in situ; B, preserved polyps; C, close-up image of preserved polyp; D, close-up image of tentacle musculature; E, close-up image of cyclically transitional marginal musculature; F, drawing of cyclically transitional marginal musculature. Abbreviations: A, actinopharynx; Tem, tentacle musculature; Ctmm, cyclically transitional marginal musculature. Scale bars: 10 mm (A), 25 mm (B), 5 mm (C), 0.5 mm (D, E).
Figure 5 in Evolution and phylogeny of glass-sponge-associated zoantharians, with a description of two new genera and three new species
Figure 5. Cnidae in the tentacles, column, actinopharynx and mesenterial filaments of holotypes of new species in this study. A, cnidae of Churabana kuroshioae; B, cnidae of Vitrumanthus schrieri; C, cnidae of Vitrumanthus vanderlandi; D, cnidae of Vitrumanthus oligomyarius. Abbreviations: Hl, holotrichs large; Hm, holotrichs medium; Hs, holotrich small; O, basitrichs and microbasic b-mastigophores; Pm, microbasic p-mastigophores; S, spirocysts.
Figure 4 in Evolution and phylogeny of glass-sponge-associated zoantharians, with a description of two new genera and three new species
Figure 4. Images of external and internal morphology of Churabana kuroshioae (A, paratype: NSMT Co-1754; B–I, holotype: RUMF-ZG-04447). A, living polyps on Pararete sp.1 in situ at Nanpo Trough, Kikaijima Island; B, living polyps on Pararete sp.2 in an aquarium at Okinawa Churaumi Aquarium, Motobu, Japan; C, close-up image of preserved polyp; D–F, longitudinal section of polyp; G, cross-section of polyp; H, close-up image of cyclically transitional marginal musculature; I, drawing of cteniform endodermal marginal musculature. Abbreviations: A, actinopharynx; Dd, dorsal directives; Cemm, cteniform endodermal marginal musculature; Ec, ectoderm; En, endoderm; M, mesoglea; S, siphonoglyph; O, oral disk; 5th, fifth mesentery from dorsal directives. Scales: 5 mm (A, B), 2 mm (C–H).
Figure 2 in Evolution and phylogeny of glass-sponge-associated zoantharians, with a description of two new genera and three new species
Figure 2. Maximum likelihood tree based on combined dataset of COI, 12S-rDNA, 16S-rDNA, 18S-rDNA, 28S-rDNA and ITS-rDNA. Green-coloured box indicates Hexasterophora sponge-associated zoantharians and blue coloured boxes indicate Amphidiscophora sponge-associated zoantharians. Number at nodes represent ML bootstrap values (> 50% are shown). Black circles on nodes indicate high support of Bayesian posterior probabilities (> 0.95).
Figure 1 in Evolution and phylogeny of glass-sponge-associated zoantharians, with a description of two new genera and three new species
Figure 1. Distribution of hexactinellid sponge-associated zoantharians examined in this study. Enclosed symbols indicate Hexasterophora sponge-associated zoantharians: Churabana kuroshioae (dark blue), Vitrumanthus schrieri (red), Vitrumanthus vanderlandi (green), Vitrumanthus oligomyarius (yellow). Boxes indicate Amphidiscophora spongeassociated zoantharians: Epizoanthus aff. armatus (grey), Epizoanthus fatuus (violet), Epizoanthus stellaris (light blue), Epizoanthus aff. fatuus (pink), Kauluzoanthus sp. (black).
Figure 3 in Evolution and phylogeny of glass-sponge-associated zoantharians, with a description of two new genera and three new species
Figure 3. Images of preserved Amphidiscophora spongesassociated zoantharians. A, B, Epizoanthus fatuus collected from Japan; C, Epizoanthus aff. fatuus collected from Australia; D, Epizoanthus stellaris collected from Australia; E, Epizoanthus aff. armatus collected from Japan. Scales: 10 mm.
Fig. 6 in Symbiodiniaceae diversity and characterization of palytoxin in various zoantharians (Anthozoa, Hexacorallia)
Fig. 6 Palytoxin (PLTX) contents in the genera Palythoa, Terrazoanthus, and Zoanthus determined in the present and previous studies. Red: high PLTX concentration (> 300 µg/g wet). Orange: weak PLTX concentration. Green: no PLTX detected. Black: not determined. CAP: common ancestor of all Palythoa species. Palythoa tuberculosa (Esper, 1805) has not been used in the present study but Hirata et al. (1979) measured low concentration of PLTX (10 µg/g wet Paly-
Supplementary material 3 from: Kise H, Nishijima M, Iguchi A, Minatoya J, Yokooka H, Ise Y, Suzuki A (2023) A new hexactinellid-sponge-associated zoantharian (Porifera, Hexasterophora) from the northwestern Pacific Ocean. ZooKeys 1156: 71-85. https://doi.org/10.3897/zookeys.1156.96698
Bayesian-inference tree based on combined dataset of COI, 12S-rDNA, 16S-rDNA, 18S-rDNA, 28S-rDNA, and ITS-rDNA sequences. Number at nodes represent Bayesian posterior probabilities (>0.95)
Supplementary material 4 from: Kise H, Nishijima M, Iguchi A, Minatoya J, Yokooka H, Ise Y, Suzuki A (2023) A new hexactinellid-sponge-associated zoantharian (Porifera, Hexasterophora) from the northwestern Pacific Ocean. ZooKeys 1156: 71-85. https://doi.org/10.3897/zookeys.1156.96698
Maximum-likelihood tree based on ITS-rDNA sequences. Number at nodes represent ML bootstrap values (>50% are shown)
Figure 7 from: Reimer J, Poliseno A, Hoeksema B (2014) Shallow-water zoantharians (Cnidaria, Hexacorallia) from the Central Indo-Pacific. ZooKeys 444: 1-57. https://doi.org/10.3897/zookeys.444.7537
Figure 7 - Distribution of Palythoa species from specimens and photographic records from this study. Palythoa cf. mutuki specimens in red, Palythoa sp. in green, Palythoa cf. heliodiscus in blue, Palythoa aff. tuberculosa in yellow, and Palythoa tuberculosa in pink. Region numbers correspond to locations given in species' information. Boxes indicate presence of specimens (with or without photographic records), while circles indicate only photographic records. Overlapping symbols indicate the same region.
Figure 9 from: Reimer J, Poliseno A, Hoeksema B (2014) Shallow-water zoantharians (Cnidaria, Hexacorallia) from the Central Indo-Pacific. ZooKeys 444: 1-57. https://doi.org/10.3897/zookeys.444.7537
Figure 9 - Images of Palythoa tuberculosa and Palythoa aff. tuberculosa from specimens and photographic records in this study. A Palythoa aff. tuberculosa specimen RMNH Coel 40521, Snellius Expedition, Sulu Islands, Philippines, collected on September 11–17, 1930; and B Palythoa tuberculosa at Madang, Papua New Guinea, June 1992. Scale in A 1 cm.
Figure 8 from: Reimer J, Poliseno A, Hoeksema B (2014) Shallow-water zoantharians (Cnidaria, Hexacorallia) from the Central Indo-Pacific. ZooKeys 444: 1-57. https://doi.org/10.3897/zookeys.444.7537
Figure 8 - Images of Palythoa cf. heliodiscus from photographic records in this study. A Palythoa cf. heliodiscus at the northwest side of Pulau Samalona, Spermonde Archipelago, South Sulawesi, November 23, 1997 B Palythoa cf. heliodiscus at the south side of Pulau Derawan, East Kalimantan, October 16, 2003 C Palythoa cf. heliodiscus at REA Wakatobi National Park station WAK.22, north channel pass of Karang Koromaha, Southeast Sulawesi, Wakatobi, Tukang Besi Is., May 12, 2003; and D Palythoa cf. heliodiscus at REA Wakatobi National Park station WAK.18, Southwest Pulau Binongko, Southeast Sulawesi, Wakatobi, Tukang Besi Islands, May 10, 2003.
Figure 4 from: Reimer J, Poliseno A, Hoeksema B (2014) Shallow-water zoantharians (Cnidaria, Hexacorallia) from the Central Indo-Pacific. ZooKeys 444: 1-57. https://doi.org/10.3897/zookeys.444.7537
Figure 4 - Images of Isaurus and Neozoanthus species from specimens and photographic records in this study. A Isaurus tuberculatus specimen RMNH Coel 40567 from Fauna Malesiana Marine Sulawesi Expedition station SUL.04, bay south of Pulau Putus, Lembeh Strait, North Sulawesi, depth approx. 1 to 2 m, on October 27, 1994 by J.C. den Hartog B Isaurus tuberculatus specimen RMNH Coel 40472 from Rumphius Biohistorical Expedition station 27, Leitimur, south coast, Hutumuri, Ambon Bay, Moluccas, intertidal under stones, collected on November 27, 1990 by J.C. den Hartog C Neozoanthus sp. at station WAK.13, southwest tip of Tolandono Island, REA Wakatobi National Park, Wakatobi, Southeast Sulawesi, on May 9, 2003; and D Neozoanthus sp. at Lembongan Bay, Nusa Lembongan, Lombok Strait, on May 19, 1998. Scales in A and B 1 cm.
Figure 6 from: Reimer J, Poliseno A, Hoeksema B (2014) Shallow-water zoantharians (Cnidaria, Hexacorallia) from the Central Indo-Pacific. ZooKeys 444: 1-57. https://doi.org/10.3897/zookeys.444.7537
Figure 6 - Images of Palythoa cf. mutuki from specimens and photographic records in this study. A Palythoa cf. mutuki at west Pulau Bone Batang, South Sulawesi, Spermonde Archipelago, October 22, 1997 B Palythoa cf. mutuki at main coast, West Bali, May 22, 1998 C Palythoa sp. specimen RMNH Coel 40508, Fauna Malesiana Maluku Expedition station MAL.13, west coast near Larike, Ambon, Moluccas, depth = 3 m, collected on November 15, 1996; and D Palythoa sp. specimen RMNH Coel 40512, Pelabuhan Ratu, Southwest Java, collected on October 13, 1977, by P.H. van Doesburg. Scales in C and D 1 cm.
Figure 5 from: Reimer J, Poliseno A, Hoeksema B (2014) Shallow-water zoantharians (Cnidaria, Hexacorallia) from the Central Indo-Pacific. ZooKeys 444: 1-57. https://doi.org/10.3897/zookeys.444.7537
Figure 5 - Distribution of Isaurus and Neozoanthus species from specimens and photographic records from this study. Isaurus tuberculatus specimens in red, and Neozoanthus sp. in green. Region numbers correspond to locations given in species' information. Boxes indicate presence of specimens (with or without photographic records), while circles indicate only photographic records. Overlapping symbols indicate the same region.
Figure 3 from: Reimer J, Poliseno A, Hoeksema B (2014) Shallow-water zoantharians (Cnidaria, Hexacorallia) from the Central Indo-Pacific. ZooKeys 444: 1-57. https://doi.org/10.3897/zookeys.444.7537
Figure 3 - Distribution of Acrozoanthus and Zoanthus species from specimens and photographic records from this study. Acrozoanthus australiae specimens in red, Zoanthus sansibaricus in green, and Zoanthus sp. in blue. Region numbers correspond to locations given in species' information. Boxes indicate presence of specimens (with or without photographic records), while circles indicate only photographic records. Overlapping symbols indicate the same region.
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