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44 results for “Unionoida”
Figure 16 in Palaeoheterodont diversity (Mollusca: Trigonioida + Unionoida): what we know and what we wish we knew about freshwater mussel evolution
Figure 16. Representatives of the Mycetopodidae. A, Anodontites trigonus FMNH 21479. B, Monocondylaea minuana UMMZ 248904. C, Leila blainvilliana (Lea, 1834) ANSP 41827. D, Mycetopoda pittieri Marshall, 1927 INHS 14870.
Figure 6. Palaeoheterodont hinges. A in Palaeoheterodont diversity (Mollusca: Trigonioida + Unionoida): what we know and what we wish we knew about freshwater mussel evolution
Figure 6. Palaeoheterodont hinges. A, Neotrigonia pectinata (Lamarck, 1819) ANSP 71515. B, Lamellidens marginalis (Lamarck, 1819) ANSP 41775. C, Fusconaia ebena (Lea, 1831) ANSP 188259. D, Aspatharia chaiziana (Rang, 1835) ANSP 41813. E, Pleiodon ovata (Swainson, 1823) UMMZ 112006.
Figure 14 in Palaeoheterodont diversity (Mollusca: Trigonioida + Unionoida): what we know and what we wish we knew about freshwater mussel evolution
Figure 14. Representatives of the Etheriidae. A, Etheria elliptica MCZ 293466. B, Acostaea rivolii UMMZ 23485. C, Pseudomulleria dalyi UMMZ 112658.
Figure 13 in Palaeoheterodont diversity (Mollusca: Trigonioida + Unionoida): what we know and what we wish we knew about freshwater mussel evolution
Figure 13. Representatives of the Hyriidae. A, Diplodon rotundus (Spix & Wagner, 1827) (+ D. deceptus fide Parodiz, 1968) UMMZ 111283. B, Diplodon chilensis BMNH uncat. C, Prisodon obliquus Schumacher, 1817 UMMZ 110938. D, Castalia ambigua (Lamarck, 1819) FMNH 67901. E, Hyridella australis MCZ 89361. F, Lortiella froggattii Iredale, 1934 FMNH 115329.
Figure 1 in Palaeoheterodont diversity (Mollusca: Trigonioida + Unionoida): what we know and what we wish we knew about freshwater mussel evolution
Figure 1. Taxonomic and geographical diversity of the Unionoida. Data summarized from Table 1. A, Taxonomic partitions of the Unionoida. Separate wedges represent the two superfamilies discussed in the text: Unionoidea and Etherioidea. B, Geographical distribution of the Unionoida. The smaller wedge represents the southern continents: South America, Africa, and Australasia.
Figure 7. A in Palaeoheterodont diversity (Mollusca: Trigonioida + Unionoida): what we know and what we wish we knew about freshwater mussel evolution
Figure 7. A representative of the Trigoniidae. Neotrigonia margaritacea UMMZ 253004.
Figure 8 in Palaeoheterodont diversity (Mollusca: Trigonioida + Unionoida): what we know and what we wish we knew about freshwater mussel evolution
Figure 8. Evolution of brooding morphology in the Unionoida. See text for discussion.
Figure 1 in Evolution of bilaterally asymmetrical larvae in freshwater mussels (Bivalvia: Unionoida: Unionidae)
Figure 1. Bilaterally asymmetrical glochidium of: A, Contradens sp. (UMMZ 304653); B, Physunio eximius (10×; ANSP 3612).
Figure 2 in Evolution of bilaterally asymmetrical larvae in freshwater mussels (Bivalvia: Unionoida: Unionidae)
Figure 2. Most likely topology recovered from the maximum-likelihood (ML) PRANK 5 partition analysis. Inset (A) indicates branch lengths of the transformed cladogram (B). Values above and below the branches indicate ML bootstrap support and Bayesian inference (BI) posterior probability, respectively. Filled boxes represent the reported larval morphologies of each taxon (C).
Figure 3 in Evolution of bilaterally asymmetrical larvae in freshwater mussels (Bivalvia: Unionoida: Unionidae)
Figure 3. Ancestral state reconstruction of larval morphologies in the Unionoida. Node numbers correspond to a schematic of the hypothesized ancestral larval morphology and pie charts depicting the proportional likelihood of ancestral states.
Data from: Unioverse: a phylogenomic resource for reconstructing the evolution of freshwater mussels (Bivalvia, Unionoida)
Open the record for dataset details and reuse information.
Figure 4 in Early life history of the sheepnose (Plethobasus cyphyus) (Mollusca: Bivalvia: Unionoida)
Figure 4. Systematic relationships among host use, host infection strategies, glochidium size, and glochidium outline in Pleurobemini based on Campbell and Lydeard (2012) and Haag (2012). Note: 1Fritts, Fritts et al. (2012), 2O'Brien and Williams (2002), 3This study, 4Williams et al. (2008), 5Ortmann (1914–1915), 6pers. comm. M. Bradley, 7Howard (1914), 8Wilson (1916), 9Luo (1993), 10Schroeder et al. (2014), 11Hoggarth (1999), 12Haag (2012), 13Ortmann (1912), 14Utterback (1915– 1916), 15O'Brien et al. (2003), 16Ortmann (1911), 17Matteson (1948), 18Lellis et al. (2013), 19Young (1911), 20Watters et al. (2005), 21Wiles (1975), 22Watters et al. (2009), 23Fuller (1972), 24Porter and Horn (1981), 25Johnson et al. (2012), 26Ortmann (1917), 27Haag and Warren (2003), 28Parmalee and Bogan (1998), 29Bruenderman and Neves (1993), 30Ortmann (1919), 31Fuller (1973), 32Surber (1912), 33Kennedy and Haag (2005), 34Ortmann (1921), 35Hove and Neves (1994), 36Layzer et al. (2003), 37Culp et al. (2006), 38Surber (1915), 39Kitchel (1985).
Figure 2 in Early life history of the sheepnose (Plethobasus cyphyus) (Mollusca: Bivalvia: Unionoida)
Figure 2. (1–4) Plethobasus cyphyus releasing glochidia strands in raceway current. (A) mature glochidia released individually or in broken conglutinates in a clear, mucus matrix in the laboratory; (B) mucus matrix released naturally on the Chippewa River floor; (C) immature glochidia in full conglutinates (scale bar: 1 cm numbered increments); (D) glochidia sensory hair cells (at ends of arrows).
Figure 9 in A taxonomic revision of fossil freshwater pearl mussels (Bivalvia: Unionoida: Margaritiferidae) from Pliocene and Pleistocene deposits of Southeastern Europe
Figure 9. Mantle attachment scars on the inner side of subfossil shell of Pseudunio flabellatiformis comb. rev. from the Sucleia outcrop, paleo-Dniester River valley, Middle Pleistocene, Moldova (RMBH, voucher no. Sc5). Scale bar = 10 mm. Photo: Artem A. Lyubas.
Figure 1 in A taxonomic revision of fossil freshwater pearl mussels (Bivalvia: Unionoida: Margaritiferidae) from Pliocene and Pleistocene deposits of Southeastern Europe
Figure 1. Stratigraphic profile of the Sucleia outcrop, paleo-Dniester River valley, Middle Pleistocene, Moldova. The thickness of outcrop in the studied area is 4.6 m. Layers: (1) 0 -40 cm – light-yellow sand with small pebbles; 2) 40-290 cm – light-brown gravel with gray sand and Pseudunio shells; 3) 290-370 cm – coarse pebble with sand and numerous Pseudunio shells; 4) 370-460 cm – pebble with light-brown sand and Pseudunio shells. Photo: Teodor F. Obada.
Figure 1 from: Wu R, Liu X, Kondo T, Ouyang S, Wu X (2021) New species of the genus Inversidens Haas, 1911 (Unionoida, Unionidae, Gonideinae) from Jiangxi Province, China. ZooKeys 1054: 85-93. https://doi.org/10.3897/zookeys.1054.69075
Figure 1 Photographs of Inversidens taxa AI. brandtiiBI. pantoensisCI. rentianensis sp. nov. Photos: [A, B] from the MUSSEL Project, [C] from this study, NCFM180325 (holotype), scale is 2 cm.
Figure 3 from: Wu R, Liu X, Kondo T, Ouyang S, Wu X (2021) New species of the genus Inversidens Haas, 1911 (Unionoida, Unionidae, Gonideinae) from Jiangxi Province, China. ZooKeys 1054: 85-93. https://doi.org/10.3897/zookeys.1054.69075
Figure 3 Phylogenetic tree of freshwater mussels inferred from Bayesian Inference (BI) and Maximum Likelihood (ML) analyses of COI barcode. Support values above the branches are posterior probabilities (PP)/bootstrap support (BS). Red font indicates the new species from this study.
Figure 18 in Palaeoheterodont diversity (Mollusca: Trigonioida + Unionoida): what we know and what we wish we knew about freshwater mussel evolution
Figure 18. Representatives of the Unionidae. A, Unio pictorum UMMZ 9320. B, Pyganodon grandis UMMZ 205535. C, Amblema plicata INHS 12149. D, Obliquaria reflexa INHS 5892. E, Coelatura aegyptiaca FMNH 11597. F, Pilsbryoconcha exilis ANSP 48270. G, Lampsilis cardium UMMZ 130005.
Figure 5 from: Kongim B, Sutcharit C, Panha S (2015) Cytotaxonomy of unionid freshwater mussels (Unionoida, Unionidae) from northeastern Thailand with description of a new species. ZooKeys 514: 93-110. https://doi.org/10.3897/zookeys.514.8977
Figure 5 - Shell valves of A, B Scabies songkramensis sp. n., A holotype ZMMSU 00500 and B paratype ZMMSU 00501. C Scabies crispata, Brandt collection SMF 188682 from Bangkok, Thailand D Scabies nucleus Brandt collection SMF 198394 from Mekong River, Pakse, Laos E Scabies phaselus Brandt collection SMF 188695 from Takrong River, Nakon Ratchsrima, and F hinge plates of Scabies songkramensis sp. n., holotype, with illustrating and measurements terminology. Abbreviations: aa, anterior adductor muscle scar; lt, lateral teeth; pa, posterior adductor muscle scar; pl, pallial line; pt, pseudocardinal tooth; H, height of valves; L, length of valves; and W, width of valves.
Figure 4 from: Kongim B, Sutcharit C, Panha S (2015) Cytotaxonomy of unionid freshwater mussels (Unionoida, Unionidae) from northeastern Thailand with description of a new species. ZooKeys 514: 93-110. https://doi.org/10.3897/zookeys.514.8977
Figure 4 - Karyotypes of unionids studied: A Chamberlainia hainesiana B Hyriopsis bialatus C Scabies crispata D Scabies songkramensis sp. n. E Pseudodon mouhoti F Ensidens ingallsianus G Physunio inornatus H Trapezoideus exolescens. Abbreviations: m, metacentric; sm, submetacentric; st, subtelocentric; t, telocentric; numbers 1, 5, 10, 11, 15 represent the pair numbers.
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