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727 results for “molecular taxonomy”
Figure 1 in Molecular systematics of peppermint and cleaner shrimps: phylogeny and taxonomy of the genera Lysmata and Exhippolysmata (Crustacea: Caridea: Hippolytidae)
Figure 1. Phylogenetic tree obtained from Bayesian inference (BI) analysis of the partial 16S rRNA gene for shrimps from the genus Lysmata, and other selected taxa from the Caridea. Numbers above or below the branches represent the posterior probabilities from the BI analysis and bootstrap values obtained from maximum likelihood (ML) in PAUP* (BI/ML). The white and black squares represent the presence or absence, respectively, of a developed accessory branch in each species. The images of the shrimps (from top to bottom) represent Lysmata wurdemanni, Lysmata grabhami, Lysmata intermedia, and Lysmata hochi.
Figure 5 in Morphological and molecular taxonomy of a new Daptonema (Nematoda, Xyalidae) with comments on the systematics of some related taxa
Figure 5. Neighbour-joining topology based on 18S sequences from 25 specimens of Xyalidae and three outgroups (Monhystera riemanni, Sphaerolaimus hirsute, and Spirinia parasitifera). Numbers are bootstrap and jack-knife values, respectively, both with branch support over 50%. Scale bar = 0.01 substitutions per site.
Figure 1 in Morphological and molecular taxonomy of a new Daptonema (Nematoda, Xyalidae) with comments on the systematics of some related taxa
Figure 1. Drawing of Daptonema matrona sp. nov. holotype: A, habitus; B, cephalic region; C, buccal cavity; D, ejaculatory glands; E, tail; F, copulatory apparatus (paratype); and G, cardia.
Figure 7 in Morphological and molecular taxonomy of a new Daptonema (Nematoda, Xyalidae) with comments on the systematics of some related taxa
Figure 7. Bayesian inference topology based on 18S sequences from 25 specimens of Xyalidae and three outgroups (Monhystera riemanni, Sphaerolaimus hirsute, and Spirinia parasitifera). The topology results from 10 001 trees (1 000 000 generations/standard deviation of 0.005222).
Figure 13 in Molecular taxonomy reveals an overlooked cryptic species of the tiger moth genus Murzinowatsonia Dubatolov (Lepidoptera, Arctiinae) from Sichuan, China
Figure 13. (a) Chronogram of the multilocus species tree showing estimates of divergence times obtained through the Bayesian dating analyses with BEAST v.2.6.3.0. Horizontal blue bars represent the 95% HPD heights for the major nodes of the chronogram. Numbers at nodes are median ages for the divergence times in Myr. A 5 Myr-timescale is placed at the bottom of the chronogram; (b) DensiTree v. 2.01 visualisation of the multilocus tree sample implemented in BEAST v.2.6.3.0. Gold stars at the corresponding nodes indicate the calibration points used to ultrametrize the topology: a secondary calibration at the stem of Arctiinae and a fossil at the crown of the clade Arctiina +Spilosomina. For the fossil calibration, a picture of the fossilized fore wing of Stauropolia nekrutenkoi Skalski, 1998 retrieved from; Skalski (1988) is presented at the crown of Arctiina+Spilosomina.
Figure 12 in Molecular taxonomy reveals an overlooked cryptic species of the tiger moth genus Murzinowatsonia Dubatolov (Lepidoptera, Arctiinae) from Sichuan, China
Figure 12. Maximum likelihood topology showing the phylogenetic relationships of Murzinowatsonia species and the related genera based on molecular data. Clades not relevant to this study are shown as collapsed. Numbers to the left of each node are SH-aLRT support (%)/aBayes support/ultrafast bootstrap support (%).
Figure 9 in Molecular taxonomy reveals an overlooked cryptic species of the tiger moth genus Murzinowatsonia Dubatolov (Lepidoptera, Arctiinae) from Sichuan, China
Figure 9. China, North West Sichuan, near Luhuo. Type locality of M. amelija sp. n. (photos by S. Butvila).
Figure 1-4. Murzinowatsonia spp., adults. 1, M in Molecular taxonomy reveals an overlooked cryptic species of the tiger moth genus Murzinowatsonia Dubatolov (Lepidoptera, Arctiinae) from Sichuan, China
Figure 1-4. Murzinowatsonia spp., adults. 1, M. amelija sp. n., holotype, male, China, NW Sichuan, DNA voucher specimen id: ZMH-DNA0124 (ZMH); 2, M. amelija sp. n., paratype, male, China, NW Sichuan, DNA voucher specimen id: ZMH-DNA0125 (ZMH); 3, M. x-album, male, China, W Sichuan, DNA voucher specimen id: ZMH-DNA0128 (ZMH); 4, M. x-album, male, China, W Sichuan, DNA voucher specimen id: ZMH-DNA0129 (ZMH).
Figure 5-8. Murzinowatsonia spp., male genitalia. 5, M in Molecular taxonomy reveals an overlooked cryptic species of the tiger moth genus Murzinowatsonia Dubatolov (Lepidoptera, Arctiinae) from Sichuan, China
Figure 5-8. Murzinowatsonia spp., male genitalia. 5, M. amelija sp. n., holotype, China, NW Sichuan, slide AV6095 Volynkin; 6, M. amelija sp. n., paratype, China, NW Sichuan, slide AV6094 Volynkin; 7, M. x-album, China, W Sichuan, slide AV6092 Volynkin; 8, M. x-album, China, W Sichuan, slide AV6093 Volynkin.
FIGURE 7 in Molecular taxonomy of Speleonectes fuchscockburni, a new pseudocryptic species of Remipedia (Crustacea) from an anchialine cave system on the Yucatán Peninsula, Quintana Roo, Mexico
FIGURE 7. Vertical profiles in Cenote Crustacea. The dashed line represents the eastern (Speleonectes tulumensis Yager, 1987) side of Cenote Crustacea and the solid line the western (S. fuchscockburni n. sp.) side. A, salinity. B, temperature. C, pH. D, dissolved oxygen. Individual measurements were taken at two-second intervals between the surface and maximum depth.
FIGURE 6. Speleonectes fuchscockburni n in Molecular taxonomy of Speleonectes fuchscockburni, a new pseudocryptic species of Remipedia (Crustacea) from an anchialine cave system on the Yucatán Peninsula, Quintana Roo, Mexico
FIGURE 6. Speleonectes fuchscockburni n. sp. A–B, paratype 3, SEM micrographs. A, ventrolateral view of head. B, terminal claw complex of maxilla. Adr = antennule, dorsal ramus; Avr = antennule, ventral ramus; d = denticles of terminal claw; ff = frontal filaments; hs = head shield; htc = horseshoe-type terminal claw; mx = maxilla; mxl = maxillule; mxp = maxilliped; sp = sternal plate; tp = thumb-like pad with setae.
FIGURE 3. Speleonectes fuchscockburni n in Molecular taxonomy of Speleonectes fuchscockburni, a new pseudocryptic species of Remipedia (Crustacea) from an anchialine cave system on the Yucatán Peninsula, Quintana Roo, Mexico
FIGURE 3. Speleonectes fuchscockburni n. sp. A, holotype, B–E, paratype 1 (12 mm). A, dorsal view of head shield and trunk segments 1–4. B, natatory limb of trunk segment 1. C, short serrate corner seta of trunk limbs (freehand drawing). D, natatory limb of trunk segment 14. E, anal somite with caudal rami. Scale bars: A = 0.3 mm; B–D, E = 0.1 mm. Continuous lines were used to outline articulated structures such as segments and setae, dotted lines to indicate covered structures, and dashed lines for the reconstruction of structures that were damaged during dissection.
FIGURE 5. Speleonectes fuchscockburni n in Molecular taxonomy of Speleonectes fuchscockburni, a new pseudocryptic species of Remipedia (Crustacea) from an anchialine cave system on the Yucatán Peninsula, Quintana Roo, Mexico
FIGURE 5. Speleonectes fuchscockburni n. sp. A–F, paratype 1 (12 mm). A, maxillule. B, maxilla. C, maxilliped. D, slender serrate seta of endite of maxillular segment 1. E, stout, rasp-like seta of endite of maxillular segment 3. F, terminal claw complex of maxilla. Scale bars: A–C = 0.1 mm. See Fig. 3 for details regarding different line types.
FIGURE 2. Speleonectes fuchscockburni n in Molecular taxonomy of Speleonectes fuchscockburni, a new pseudocryptic species of Remipedia (Crustacea) from an anchialine cave system on the Yucatán Peninsula, Quintana Roo, Mexico
FIGURE 2. Speleonectes fuchscockburni n. sp. Living animal. A, habitus. B, head region. Photographs by Brett C. Gonzalez.
FIGURE 1. A in Molecular taxonomy of Speleonectes fuchscockburni, a new pseudocryptic species of Remipedia (Crustacea) from an anchialine cave system on the Yucatán Peninsula, Quintana Roo, Mexico
FIGURE 1. A, map of the northeastern region of the Yucatán Peninsula (shown on insert), with locations of cenotes from which Mexican speleonectids have been reported: 1 = Cenote Crustacea; 2 = Cenote Chac Mool; 3 = Cenote Ponderosa; 4 = Cenote Tajama Ha; 5 = Cenote Carwash; 6 = Cenote Vaca Ha; 7 = Cenote Temple of Doom; 8 = Cenote Najaron; 9 = Cenote Mayan Blue. B, map of the Sistema Crustacea cave showing the main cenote entrance pool, underwater cave passages, and the approximate regions within the cave inhabited by: 1 = Speleonectes tulumensis Yager, 1987b; 2 = S. fuchscockburni n. sp.
FIGURE 4. Speleonectes fuchscockburni n in Molecular taxonomy of Speleonectes fuchscockburni, a new pseudocryptic species of Remipedia (Crustacea) from an anchialine cave system on the Yucatán Peninsula, Quintana Roo, Mexico
FIGURE 4. Speleonectes fuchscockburni n. sp. A–B, D, paratype 1 (12 mm). C, E–G, paratype 2 (16 mm). A, antennule. B, antenna. C, frontal filament. D, labrum. E, right mandible. F, processus incisivus (left) and lacina mobilis (right) of right mandible. G, processus incisivus (left) and lacina mobilis (right) of left mandible. Scale bars: A–E = 0.1 mm. See Fig. 3 for details regarding different line types.
FIGURE 41 in Taxonomy of spatially disjunct alpine Teleiopsis albifemorella s. lat. (Lepidoptera: Gelechiidae) revealed by molecular data and morphology — how many species are there?
FIGURE 41. Maximum Likelihood tree of the Teleiopsis based on concatenated data of COI, CAD, EF-1a, IDH, MDH and wingless genes. The tree was rooted on Carpatolechia notatella (not depicted because of very long branch leading to it). Bootstrap support values for T. albifemorella and T. paulheberti are shown below the nodes.
FIGURES 29–32 in Taxonomy of spatially disjunct alpine Teleiopsis albifemorella s. lat. (Lepidoptera: Gelechiidae) revealed by molecular data and morphology — how many species are there?
FIGURES 29–32. Female genitalia of Teleiopsis paulheberti sp. nov., segment VIII and antrum. 29, paratype, Italy (Cuneo), slide GEL 1162; 30, paratype, France (Alpes-Maritimes), slide GEL 1161; 31, paratype, France (Hautes-Alpes), slide GEL 1171; 32, as 31, diagnostic details of antrum.
FIGURE 40 in Taxonomy of spatially disjunct alpine Teleiopsis albifemorella s. lat. (Lepidoptera: Gelechiidae) revealed by molecular data and morphology — how many species are there?
FIGURE 40. Neighbor-joining trees of the Teleiopsis (implemented under Kimura 2 Parameter model) of nuclear genes CAD, EF-1a, IDH, MDH and wingless.
FIGURE 39 in Taxonomy of spatially disjunct alpine Teleiopsis albifemorella s. lat. (Lepidoptera: Gelechiidae) revealed by molecular data and morphology — how many species are there?
FIGURE 39. Neighbor-joining tree of the Teleiopsis (implemented under Kimura 2 Parameter model) based on sequences of the mtDNA COI gene 5' fragment (DNA barcode, 658 bp). Bootstrap support values, based on 500 pseudoreplicates, are shown for internal nodes. The tree was rooted on T. terebinthinella, the presumed sister taxon of other species. The scale bar indicates 0.5% change in sequence composition.
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