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2,620 results for “Molecular Phylogeny”
FIGURE 7. Pereopods III and IV in Molecular phylogeny of Niphargus boskovici (Crustacea: Amphipoda) reveals a new species from epikarst
FIGURE 7. Pereopods III and IV of N. zagorae sp. n. (a, b) and N. boskovici (c, d) with more precise drawing of dactylus of the third pereopods. Arrows indicate diagnostic difference.
FIGURE 5 in Molecular phylogeny of Niphargus boskovici (Crustacea: Amphipoda) reveals a new species from epikarst
FIGURE 5. Mouthparts of N. zagorae sp. n. (a,c,e,g) and N. boskovici (b,d,f,h,i,j). Mandibula (a,b), maxilla I (c,d), maxilla II (e,f), maxilliped (g,h), labrum (i), labium (j).
FIGURE 2 in Molecular phylogeny of Niphargus boskovici (Crustacea: Amphipoda) reveals a new species from epikarst
FIGURE 2. Differences in proportions between N. zagorae sp. n. (circles) and N. boskovici (diamonds). Upper: The ratio propodus length:palm length of gnathopod II plotted against the body size. Lower: The ratio pereopod V length:pereopod VII length plotted against body size. We plotted body proportions against body size as some appendages may grow allometrically (Fišer et al. 2008b). Note that values of ratio do not overlap between the two species.
FIGURE 3 in Molecular phylogeny of Niphargus boskovici (Crustacea: Amphipoda) reveals a new species from epikarst
FIGURE 3. Habitus and diagnostic details (arrows) on urosoma in N. zagorae sp. n. (a, b) and N. boskovici (c, d).
FIGURE 1 in Molecular phylogeny of Niphargus boskovici (Crustacea: Amphipoda) reveals a new species from epikarst
FIGURE 1. Phylogenetic position and distribution of the studied species. Left side: Bayesian phylogenetic tree of 94 Niphargus species. Support for the nodes is labeled with color (posterior probability 1—black, posterior probability 0.99— grey, posterior probability>0.95—white). Detailed phylogenetic structure of the shaded clade containing focal species is presented on the right side. Geographic distribution of the N. zagorae, N. boskovici, N. hvarensis and N. miljeticus (blackcolored lineage in clade upper right) is presented on a bottom right map. Distribution of newly described species is presented with asterisk. Abbreviations—CRO—Croatia, BIH—Bosnia and Herzegovina, MNE—Montenegro.
FIGURES 23–33 in Molecular phylogeny of Metanoeina net-winged beetles identifies Ochinoeus, a new genus from China and Laos (Coleoptera: Lycidae)
FIGURES 23–33. Genitalia. Male genitalia (ventral and lateral views). 23–24 Matsudanoeus yuasai (Nakane), 25–26 Ochinoeus habashanensis sp. nov., 27–28 O. huaphanensis sp. nov., 29–30 O. xunyanbaensis sp. nov., 31–32 O. hainanensis sp. nov.. Female genitalia. 33—O. huaphanensis sp. nov. Scale 0.5 mm.
FIGURES 2–4. 2 in Molecular phylogeny of Metanoeina net-winged beetles identifies Ochinoeus, a new genus from China and Laos (Coleoptera: Lycidae)
FIGURES 2–4. 2—The distribution of Ochinoeus gen. nov. General appearance. 3—Ochinoeus huaphanensis sp. nov., 4—O. hainanensis sp. nov. Scale 2 mm.
FIGURES 5–22. Pronotum. 5 in Molecular phylogeny of Metanoeina net-winged beetles identifies Ochinoeus, a new genus from China and Laos (Coleoptera: Lycidae)
FIGURES 5–22. Pronotum. 5—Matsudanoeus yuasai (Nakane), 6—Ochinoeus xunyanbaensis sp. nov., 7—O. hainanensis sp. nov., 8—O. habashanensis sp. nov., 9—O. huaphanensis sp. nov., 10—Cautires sp., 11—Metanoeus sp. Scutellum. 12— Ochinoeus huaphanensis sp. nov. Antenna. 13—Matsudanoeus yuasai, 14—Ochinoeus xunyanbaensis sp. nov., 15—O. hainanensis, sp. nov., 16—O. habashanensis sp. nov., and 17—O. huaphanensis sp. nov. Middle part of elytra. 18—O. huaphanensis sp. nov., 19—Matsudanoeus yuasai, 20—O. xunyanbaensis sp. nov., 21—O. hainanensis sp. nov., 22–O. habashanensis sp. nov. Figs. 18–22a, b. Details located as shown. Scales: 5–12 0.5 mm, 13–22 1 mm, 18–22a, b 0.5 mm.
FIGURE 1 in Molecular phylogeny of Metanoeina net-winged beetles identifies Ochinoeus, a new genus from China and Laos (Coleoptera: Lycidae)
FIGURE 1. Phylogenetic tree of Metriorrhynchini inferred from MAFFT alignment using the maximum likelihood optimality criterion. Numbers above the branches indicate bootstrap values in the maximum likelihood analysis, posterior probability values and bootstrap values in the parsimony analysis, respectively. The colors of branches and the bars at terminals indicate the ancestral ranges and distribution of costae patterns.
FIGURE 19 in Concordance between molecular and morphology-based phylogenies of Korean Enhydrosoma (Copepoda: Harpacticoida: Cletodidae) highlights important synapomorphies and homoplasies in this genus globally
FIGURE 19. Enhydrosoma kosmetron sp. nov., line drawings, A-D, holotype ♀; F, allotype ♂: A, urosome, ventral; B, anal somite and caudal rami, dorsal; C, exopod of antenna, anterior; D, mandibula, posterior; E, maxillula, anterior; F, urosome, ventral.
FIGURE 16 in Concordance between molecular and morphology-based phylogenies of Korean Enhydrosoma (Copepoda: Harpacticoida: Cletodidae) highlights important synapomorphies and homoplasies in this genus globally
FIGURE 16. Enhydrosoma kosmetron sp. nov., SEM photographs, A-D, paratype ♀1; E & F, paratype ♀2; G & H, paratype ♂1: A, habitus, dorsal; B, cephalic shield, dorsal; C, sensillum in central part of cephalic shield; D, anal somite and caudal rami, dorsal; E, rostrum, lateral; F, rostrum and left antennula, lateral; G, habitus, dorsal; H, anal somite and caudal rami, dorsal.
FIGURE 15 in Concordance between molecular and morphology-based phylogenies of Korean Enhydrosoma (Copepoda: Harpacticoida: Cletodidae) highlights important synapomorphies and homoplasies in this genus globally
FIGURE 15. Enhydrosoma robustum sp. nov., line drawings, A-I, paratype ♀11; J-M, allotype ♂: A, endopod of antenna, posterior; B, cutting edge of mandibula, anterior; C, maxilla, anterior; D, third exopodal segment of first leg, anterior; E, endopod of first leg, anterior; F, endopod of third leg, anterior; G, fourth leg, anterior; H, left fifth leg, antero-lateral; I, right fifth leg, anterior; J, endopod of third leg, anterior; K, left fifth leg, posterior; L, right fifth leg, anterior; M, spermatophore.
FIGURE 14 in Concordance between molecular and morphology-based phylogenies of Korean Enhydrosoma (Copepoda: Harpacticoida: Cletodidae) highlights important synapomorphies and homoplasies in this genus globally
FIGURE 14. Enhydrosoma robustum sp. nov., line drawings, A-C, paratype ♀11; D-F, allotype ♂: A, urosome, ventral; B, anal somite and caudal rami, dorsal; C, antennula, ventral; D, urosome, ventral; E, right antennula, dorsal; F, left antennula, ventral.
FIGURE 13 in Concordance between molecular and morphology-based phylogenies of Korean Enhydrosoma (Copepoda: Harpacticoida: Cletodidae) highlights important synapomorphies and homoplasies in this genus globally
FIGURE 13. Enhydrosoma robustum sp. nov., SEM photographs, A, paratype ♀10; B-H, paratype ♂1: A, rostrum and antennula, dorso-lateral; B, habitus, ventral; C, rostrum, ventral; D, right antennula, ventral; E, detail of right antennula, ventral; F, rostrum and proximal part of left antennula, ventral; G, distal part of left antennula, ventral; H, mouth appendages, ventral.
FIGURE 21 in Concordance between molecular and morphology-based phylogenies of Korean Enhydrosoma (Copepoda: Harpacticoida: Cletodidae) highlights important synapomorphies and homoplasies in this genus globally
FIGURE 21. Enhydrosoma kosmetron sp. nov., line drawings, allotype ♂: A, right antennula, ventral; B, distal part of left antennula, antero-ventral; C, mandibular palp, posterior; D, cutting edge of mandibula, posterior; E, maxillular palp, dorsal; F, endopod of third leg, anterior; G, endopod of fourth leg, anterior; H, fifth leg, anterior.
FIGURE 11 in Concordance between molecular and morphology-based phylogenies of Korean Enhydrosoma (Copepoda: Harpacticoida: Cletodidae) highlights important synapomorphies and homoplasies in this genus globally
FIGURE 11. Enhydrosoma robustum sp. nov., SEM photographs, A & B, paratype ♀3; C-G, paratype ♀4; H, paratype ♀5: A, habitus, ventral; B, caudal rami, ventral; C, habitus, ventral; D, rostrum, antennules, and antennae, ventral; E, mouth appendages, ventral; F, fifth leg, anterior; G, caudal rami, ventro-posterior; H, maxilliped, ventral.
FIGURE 10 in Concordance between molecular and morphology-based phylogenies of Korean Enhydrosoma (Copepoda: Harpacticoida: Cletodidae) highlights important synapomorphies and homoplasies in this genus globally
FIGURE 10. Enhydrosoma robustum sp. nov., SEM photographs, A-F, paratype ♀1; G & H, paratype ♀2: A, habitus, lateral; B, cephalic shield, lateral; C, posterior-distal corner of cephalic shield, lateral; D, sensillum on posterior distal corner of cephalic shield; E, free prosomites, lateral; F, sensillum on central free prosomite; G, habitus, dorso-lateral; H, caudal rami, dorso-lateral.
FIGURE 18 in Concordance between molecular and morphology-based phylogenies of Korean Enhydrosoma (Copepoda: Harpacticoida: Cletodidae) highlights important synapomorphies and homoplasies in this genus globally
FIGURE 18. Enhydrosoma kosmetron sp. nov., SEM photographs, paratype ♂4: A, habitus, lateral; B, cephalic shield, lateral; C, postero-lateral corner of cephalic shield, lateral; D, sensillum on postero-lateral corner of cephalic shield; E, right antennula, lateral; F, transformed seta on first antennular segment, lateral; G, transformed seta on fifth antennular segment, lateral; H, anal somite and caudal rami, lateral.
FIGURE 23 in Concordance between molecular and morphology-based phylogenies of Korean Enhydrosoma (Copepoda: Harpacticoida: Cletodidae) highlights important synapomorphies and homoplasies in this genus globally
FIGURE 23. MP cladograms resulting from an analysis of 32 morphological characters (Table 3), scored for five Enhydrosoma Boeck, 1873 species and one outgroup, Geehydrosoma intermedia (Chislenko, 1978), constructed using Winclada/NONA and Rachet Island search method: A & B, two equally parsimonious trees; C, their strict consensus. Full squares represent presumed synapomorphies, empty squares represent presumed plesiomorphies or homoplasies, numbers above squares represent characters, numbers below squares represent character states, and large italic numbers on branches represent bootstrap values from 1000 pseudoreplicates.
FIGURE 9 in Concordance between molecular and morphology-based phylogenies of Korean Enhydrosoma (Copepoda: Harpacticoida: Cletodidae) highlights important synapomorphies and homoplasies in this genus globally
FIGURE 9. Enhydrosoma apimelon sp. nov., line drawings, paratype ♀10: A, third swimming leg, anterior; B, fourth swimming leg, anterior.
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