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33 results for “molecular synapomorphy”

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zenodo32/100

FIGURE 3 in Concordance between molecular and morphology-based phylogenies of Korean Enhydrosoma (Copepoda: Harpacticoida: Cletodidae) highlights important synapomorphies and homoplasies in this genus globally

FIGURE 3. Enhydrosoma apimelon sp. nov., SEM photographs, A & B, paratype ♀7; C & D, paratype ♀8; E & F, paratype ♀9; G & H, paratype ♂1: A, habitus, dorsal; B, cephalic shield, dorsal; C, tergites of third and fourth pedigerous somites, dorsal; D, anal operculum and anterior part of caudal rami, dorsal; E, rostrum and antennula, ventral; F, first swimming leg, anterior; G, habitus, dorsal. H, left antennula, dorsal.

opennotspecifiedDec 2015View details →
zenodo32/100

FIGURE 7 in Concordance between molecular and morphology-based phylogenies of Korean Enhydrosoma (Copepoda: Harpacticoida: Cletodidae) highlights important synapomorphies and homoplasies in this genus globally

FIGURE 7. Enhydrosoma apimelon sp. nov., line drawings, A-G & J, paratype ♂5; H & I, paratype ♀10: A, antennula without armature, ventral; B, first segment of antennula, ventral; C, second segment of antennula, ventral; D, third segment of antennula, ventral; E, fourth segment of antennula, ventral; F, fifth segment of antennula, ventral; G, sixth segment of antennula, ventral; H, mandible, posterior; I, maxilla, anterior; J, fifth leg, anterior.

opennotspecifiedDec 2015View details →
zenodo32/100

FIGURE 2 in Concordance between molecular and morphology-based phylogenies of Korean Enhydrosoma (Copepoda: Harpacticoida: Cletodidae) highlights important synapomorphies and homoplasies in this genus globally

FIGURE 2. Enhydrosoma apimelon sp. nov., SEM photographs, A-F, paratype ♀4; G, paratype ♀5; H, paratype ♀6: A, habitus, ventral; B, caudal rami, ventral; C, fifth leg, anterior; D, fifth leg, detail of endopodal peduncle, anterior; E, fifth leg, apical part of exopod, anterior; F, mouth appendages, ventral; G, anal somite and caudal rami, lateral; H, antenna and mouth appendages, ventral.

opennotspecifiedDec 2015View details →
zenodo32/100

FIGURE 1 in Concordance between molecular and morphology-based phylogenies of Korean Enhydrosoma (Copepoda: Harpacticoida: Cletodidae) highlights important synapomorphies and homoplasies in this genus globally

FIGURE 1. Enhydrosoma apimelon sp. nov., SEM photographs, A-F, paratype ♀1; G, paratype ♀2; H, paratype ♀3: A, habitus, lateral; B, cephalic shield, lateral; C, posterior-distal corner of cephalic shield, lateral; D, antennula, lateral; E, mouth appendages, lateral; F, anal somite and caudal rami, lateral; G, anal somite and caudal rami, latero-posterior; H, anal somite and caudal rami, posterior.

opennotspecifiedDec 2015View details →
zenodo32/100

FIGURE 17 in Concordance between molecular and morphology-based phylogenies of Korean Enhydrosoma (Copepoda: Harpacticoida: Cletodidae) highlights important synapomorphies and homoplasies in this genus globally

FIGURE 17. Enhydrosoma kosmetron sp. nov., SEM photographs, A-C, paratype ♂2; D-H, paratype ♂3: A, habitus, ventral; B, maxilla, ventral; C, anal somite and caudal rami, ventral; D, rostrum and left antennula, ventral; E, antenna, ventral; F, mouth appendages, ventral; G, first swimming leg, anterior; H, fifth and sixth legs, anterior.

opennotspecifiedDec 2015View details →
zenodo32/100

FIGURES 5–18. Figures 5, 6 in Notes on the diatom collection of the Natural History Museum, London (BM) IX: Campylodiscus hardmanianus, with a discussion on synapomorphy and the poverty of molecular monophyly

FIGURES 5–18. Figures 5, 6: Specimens from BM 8909 ('L.H.[ardman] (D) | No. 199 | HoNg KoNg', scaLe bar = 20μm. Figures 7, 8: Specimens from BM 9000 ('L.H.[ardman] | No. 200 | HoNg KoNg' [seLected specimeNs], scaLe bar = 20μm. Figures 9, 10: Specimens from BM Adams G304 ('Hong Kong | E.G.[rove] 12/87'), scaLe bar = 50μm. Figures 11, 12: Specimens from BM8910 ('Campylodiscus hardmanianus Grev. | 9/81 | Hong Kong', broken coverslip), scale bar = 20μm. Figure 13: Specimens from BM 12860 (Cleve & Möller slide no. 80), 'Carpentaria Bay' [= Arafura Sea, Gulf of Carpenteria], Australia, scaLe bar = 20μm. Figure 14: Unpublished drawing of Campylodiscus hardmanianus Grev. Figures 15, 16: Specimens from BM Adams GC833 ('Campylodiscus daemelianus | SamaraNg | 29/12/88), scaLe bar = 20μm. Figures 17, 18: Specimens from BM Adams GC831 ('Campylodiscus daemelianus | 9.81 | 26/33 | HoNg KoNg', scaLe bar = 20μm.

opennotspecifiedDec 2023View details →
zenodo32/100

FIGURES 19–29. Figures 19, 20 in Notes on the diatom collection of the Natural History Museum, London (BM) IX: Campylodiscus hardmanianus, with a discussion on synapomorphy and the poverty of molecular monophyly

FIGURES 19–29. Figures 19, 20: Specimens of Campylodiscus hardmanianus var. grovei Deby from BM Adams GC829, 'Derbend', Caspian Sea, Russia, scaLe bar = 20μm. Figures 21, 22: Specimens of Campylodiscus hardmanianus var. grovei Deby from BM 53492, 'Derbent', Caspian Sea, Russia, scale bar = 50μm. Figure 23: Specimen (?) of 'C. sonderianus' from BM 35870, 'TypeN-PLatte | I.D. MöLLer', scaLe bar = 50μm. Figure 24: Reproduction of the published name (designation) for 'Campylodiscus Sonderianus Grun. n. sp.' in Möller (1877, p. 13). Figures 25, 6: Specimens of Campylodiscus daemelianus from BM 26853, 'Yarra, Yarra', Australia (Van Heurck, Types du Synopsis des Diatomées de Belgique, No. 542 ('Yarra-Yarra (AUstraLie)', scaLe bar = 50μm. Figure 27: Specimen of Coronia echeneis from Wismar, Germany, BM 12875, Cleve & Möller, no. 115, 'Lebend im Hafen von Wismar', scaLe bar = 20μm. Figures 28, 9: Specimen of 'C. sonderianus' from BM 64450, 'ChaLLeNger StatioN 233', 'T.E.Doeg', scaLe bar = 50μm.

opennotspecifiedDec 2023View details →
zenodo32/100

Figure 3 in New phenotypic synapomorphies delimit three molecular-based clades of New World direct-developing frogs (Amphibia: Anura: Brachycephaloidea)

Figure 3. Ventral view of hands showing the comparative size of discs on fingers I and II in frogs of genus Pristimantis. A, Pristimantis appendiculatus (Werner, 1894) (KU 165140). B, Pristimantis penelopus (Lynch & Rueda-Almonacid, 1999) (ICN

opennotspecifiedJun 2022View details →
zenodo32/100

Figure 1 in New phenotypic synapomorphies delimit three molecular-based clades of New World direct-developing frogs (Amphibia: Anura: Brachycephaloidea)

Figure 1. Lateral view of pelvic and thigh musculature showing origins of the m. iliacus externus (ile) and m. tensor fasciae latae (tfl) from the iliac shaft (ish) in frogs of the superfamily Brachycephaloidea. A, Pristimantis kelephus (Lynch, 1998) (ICN 39671). B, Pristimantis cristinae (Lynch & Ruiz-Carranza, 1985) (ICN 3950). C, Craugastor longirostris (Boulenger, 1898) (ICN 42787). D, Ceuthomantis sp1 Colombia (JDL 32489). The red and green colours denote the portion anterior of the iliac shaft free of muscle fibres and the tensor fasciae latae (tfl), respectively. Scale bars = 2 mm.

opennotspecifiedJun 2022View details →
zenodo32/100

Figure 4 in New phenotypic synapomorphies delimit three molecular-based clades of New World direct-developing frogs (Amphibia: Anura: Brachycephaloidea)

Figure 4. Distribution of unambiguously optimized phenotypic synapomorphies recovered in the current character analysis. The phylogenetic hypothesis for Brachycephaloidea is that of Padial et al. (2014) and relationships outside Brachycephaloidea follow Jetz & Pyron (2018). Genera and subgenera were collapsed, but the complete distribution of character states is shown in Table 1. Character numbers are given beneath each square, with primitive-derived character states inside each square (see text and Table 1 for character definitions). Colour coding: red = untransformed, homoplastic; blue = transformed, homoplastic.

opennotspecifiedJun 2022View details →
zenodo20/100

FIGURES 1–4. Figures 1, 2 in Notes on the diatom collection of the Natural History Museum, London (BM) IX: Campylodiscus hardmanianus, with a discussion on synapomorphy and the poverty of molecular monophyly

FIGURES 1–4. Figures 1, 2: Reproduction of Campylodiscus hardmanianus Grev. ex Deby, Figure 1 from Deby (1891: 680-9), Figure 2 from Deby (1891: pl. 15, fig. 78). Figures 3, 4: Greville's (unpublished) hand-written description of Campylodiscus hardmanianus.

opennotspecifiedDec 2023View details →
zenodo20/100

Figure 2 in New phenotypic synapomorphies delimit three molecular-based clades of New World direct-developing frogs (Amphibia: Anura: Brachycephaloidea)

Figure 2. Ventral view of hands showing the comparative size of discs on fingers I and II in frogs of the superfamily Brachycephaloidea. A, Yunganastes mercedesae (Lynch & McDiarmid, 1987) (UTA 53291). B, Tachiramantis douglasi (Lynch, 1996) (ICN 15405). C, Craugastor spatulatus (Smith, 1939) (KU 137466). D, Craugastor aurilegulus (Savage et al., 1988) (KU 209010). E, Niceforonia dolops (Lynch & Duellman, 1980) (KU 165868). F, Strabomantis anomalus (Boulenger, 1898) (KU 177631). The shaded areas represent fingers I and II. Scale bars = 2 mm.

opennotspecifiedJun 2022View details →
zenodo20/100

Figure 5 in New phenotypic synapomorphies delimit three molecular-based clades of New World direct-developing frogs (Amphibia: Anura: Brachycephaloidea)

Figure 5. Optimization of the relative size of disc on finger I in Pristimantis and related groups. The phylogenetic hypothesis for Pristimantis is that of Padial et al. (2014). Species groups were collapsed, but complete distribution of character states is shown in Table 1. Character numbers are given beneath the square, with primitive-derived character states inside the square (see text and Table 1 for character definitions). Colour-coding: red = untransformed, homoplastic.

opennotspecifiedJun 2022View details →

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