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FIGURES 23–34 in Phylogenetic relationships of the Balkan Moitessieriidae (Caenogastropoda: Truncatelloidea)
FIGURES 23–34. Shells of Paladilhiopsis, Iglica and Bythiospeum. 23–25. Paladilhiopsis grobbeni Kuščer, 1928, Raja peč, type locality; ZMUJ2121–ZMUJ2122. 26–28. I. gittenbergeri A. Reischutz & P.L. Reischutz, 2008, Albania; ZMUJ2130–ZMUJ2132. 29–31. Paladilhiopsis bosniaca (Clessin, 1910), source Handek, Šumeće, Travnik, Bosnia and Herzegovina; ZMUJ2126–ZMUJ2127, ZMUJ2212. 32. I. cf. absoloni (A.J. Wagner, 1914), source Vrelo, Gradište, Pirot, Serbia; ZMUJ2129. 33. B. blihensis Glöer et Grego, 2015, Donji Kamengrad, Bosnia and Herzegovina; ZMUJ2123. 34. B. maroskoi Glöer et Grego, 2015, Gornja Pecka, Bosnia and Herzegovina; ZMUJ2125. Scale bar = 1 mm.
FIGURE 62 in Phylogenetic relationships of the Balkan Moitessieriidae (Caenogastropoda: Truncatelloidea)
FIGURE 62. The portion of Figure 60, based on COI sequences, showing only Moitessieriidae with Cochliopidae, with morphological character states given. Molecular-based species names are used. Schematic drawings are original or based on Giusti (1975), Glöer (2002), Girardi (2009), Niero & Pezzoli (2016).
FIGURES 2–22 in Phylogenetic relationships of the Balkan Moitessieriidae (Caenogastropoda: Truncatelloidea)
FIGURES 2–22. Shells of Iglica, Costellina, Lanzaia and Moitessieria. 2–6. Iglica cf. forumjuliana (Pollonera, 1887), cave Matešića pećina, Matešići, Slunj, Croatia; ZMUJ2114– ZMUJ2115, ZMUJ2202–ZMUJ2204. 7–10. I. cf. hauffeni (Brusina, 1886), Babja luknja near Goričane, Slovenia; ZMUJ2105–ZMUJ2106, ZMUJ2205–ZMUJ2206. 11–12. I. cf. gracilis (Clessin, 1882), Slovenia. 11. Obrežje, river Sava; ZMUJ2110. 12. Terme Čatež, Čatež ob Savi, river Sava; ZMUJ2108. 13–14. Iglica hellenica Falniowski et Sarbu, 2015, Melissotrypa Cave, Thessalia, Greece: 13. Holotype MZUJ2107. 14. Paratype, MZUJ2209, destroyed for DNA extraction. 15–18. Costellina turrita Kuščer, 1933, spring of river Jadro, Solin, Split, type locality: 15. MZUJ2128. 16. MZUJ2211. 17–18. Teloconch sculpture. 19–20. Lanzaia bosnica Bole, 1970, young specimens, Dabarska Pećina, Dabar, Bosnia and Herzegovina; ZMUJ2124. 21–22. Moitessieria sp., gravel bar, river Arga, Akerreta, Pamplona, Spain; ZMUJ2116–21117. Scale bar 1 mm for the shells, 200 µm for fig. 17 and 100 µm for fig. 18.
FIGURE 1 in Phylogenetic relationships of the Balkan Moitessieriidae (Caenogastropoda: Truncatelloidea)
FIGURE 1. Sampling localities as in Table 1. Molecular-based members of the genera Iglica marked in red, Paladilhiopsis in blue, Moitessieria in black.
FIGURE 61 in Phylogenetic relationships of the Balkan Moitessieriidae (Caenogastropoda: Truncatelloidea)
FIGURE 61. The maximum-likelihood tree of the all four concatenated genes. Bootstrap support (>65 %) and Bayesian posterior probabilities (>0.95) are shown. Molecular-based, as well as used so far (in green) species names and genus assignments are given.
FIGURE 59 in Phylogenetic relationships of the Balkan Moitessieriidae (Caenogastropoda: Truncatelloidea)
FIGURE 59. The maximum-likelihood trees of three nuclear genes (18S, 28S and H3) and their concatenated three. Bootstrap support (>65 %) and Bayesian posterior probabilities (>0.95) are shown. Molecular-based, including (in green) species names used in the text and generic assignments.
FIGURES 55–58. Reproductive organs. 55–56. Female reproductive organs. 55 in Phylogenetic relationships of the Balkan Moitessieriidae (Caenogastropoda: Truncatelloidea)
FIGURES 55–58. Reproductive organs. 55–56. Female reproductive organs. 55. Iglica cf. forumjuljana. 56. Paladilhiopsis grobbeni (bc—bursa copulatrix, cbc—duct of bursa copulatrix, ga—albumen gland, gn—capsule gland, gp—gonopore, ov—oviduct, ovl—loop of oviduct, rs—seminal receptacle). 57–58. Penis. 57. Iglica cf. forumjuliana. 58. Paladilhiopsis grobbeni. Asterisks mark outgrowths. Scale bar = 0.5 mm.
FIGURES 43–54 in Phylogenetic relationships of the Balkan Moitessieriidae (Caenogastropoda: Truncatelloidea)
FIGURES 43–54. Protoconch and teleoconch sculpture in Iglica cf. hauffeni and Moitessieria sp. 43–46. I. cf. hauffeni. 43. Shell. 44. Protoconch. 45–46. Outer surface sculpture of the body whorl (teleoconch). 47–54. Moitessieria sp. 47. Outer surface sculpture of penultimate and body whorl (teleoconch). 48. Shell. 49–50. Protoconch. 51. Spiral sculpture close to the aperture. 52–54. Spiral sculpture of the penultimate and body whorl. Scale bar = 500 µm in figs 43, 48; 250 µm in fig. 47; 125 µm in figs 44, 50; 50 µm in figs 49, 51–53; and 25 µm in figs 45, 46, 54.
FIGURE 5 in A new species of Phrynopus from the northeastern Andes of Peru, its phylogenetic position, and notes on the relationships of Holoadeninae (Anura: Craugastoridae)
FIGURE 5. Map of Peru showing the distribution of species in the genus Phrynopus. 1. P. thompsoni; 2. P. capitalis, P. dumicola, P. personatus; 3. P. anancites, P. valquii; 4. P. daemon; 5. P. lechryorhyncus, P. vestigiatus; 6. P. kotosh; 7. P. lapioides, P. unchog; 8. P. dagmarae, P. kauneorum; 9. P. interstinctus; 10. P. heimorum, P. horstpauli; 11. P. barthlanae, P. tautzorum; 12. P. miroslawae; 13. P. bracki, P. tribulosus, P. auriculatus; 14. P. pesantesi; 15. P. bufoides, P. paucari; 16. P. badius; 17. P. oblivius, P. peruanus; 18. P. inti; 19. P. chaparroi; 20. P. juninensis, P. montium. The star represents the type locality of P. mariellaleo sp. nov.
FIGURE 3 in A new species of Phrynopus from the northeastern Andes of Peru, its phylogenetic position, and notes on the relationships of Holoadeninae (Anura: Craugastoridae)
FIGURE 3. Dorsal (A) and ventral (B) views of the female holotype (CORBIDI 11668) of Phrynopus mariellaleo sp. nov. in life. Photographs by Pablo J. Venegas.
FIGURE 2 in A new species of Phrynopus from the northeastern Andes of Peru, its phylogenetic position, and notes on the relationships of Holoadeninae (Anura: Craugastoridae)
FIGURE 2. Dorsal (A) and ventral (B) views, and lateral view of head (C) of the female holotype (CORBIDI 11668) of Phrynopus mariellaleo sp. nov. in preservative (SVL = 39.7). Photographs by Pablo J. Venegas.
FIGURE 1 in A new species of Phrynopus from the northeastern Andes of Peru, its phylogenetic position, and notes on the relationships of Holoadeninae (Anura: Craugastoridae)
FIGURE 1. One optimal tree of 15646 steps depicting the position of Phrynopus mariellaleo sp. nov. and the relationships of other species of Holoadeninae. The tree was inferred from 13269 aligned positions (tree-alignment in POY) of non-coding mtDNA genes 12S, 16S and the intervening tRNAvaline and tRNAleucine, mtDNA coding genes COI and CYTB, and fragments of the nuclear protein-coding genes 28S, C-MYC, CXCR4, H3, NCX1, POMC, RAG1, RHO, SIA, SLC8A3, and TYR. Jackknife frequencies and Goodman-Bremer values are shown above and below nodes, respectively.
FIGURE 4 in A new species of Phrynopus from the northeastern Andes of Peru, its phylogenetic position, and notes on the relationships of Holoadeninae (Anura: Craugastoridae)
FIGURE 4. Paratypes of Phrynopus mariellaleo sp. nov. showing variation in dorsal and ventral external morphological traits. (A, B) adult female (CORBIDI 11692), (C, D) adult female (CORBIDI 11657), and (E, F) adult male (CORBIDI 11658). Photographs by Pablo J. Venegas.
FIGURE 6 in A new species of Phrynopus from the northeastern Andes of Peru, its phylogenetic position, and notes on the relationships of Holoadeninae (Anura: Craugastoridae)
FIGURE 6. Habitat at the type locality of Phrynopus mariellaleo sp. nov. Photograph taken on 21 August 2012 by P.J. Venegas.
FIGURE 4 in New insights on the taxonomy and phylogenetic relationships of the Neotropical genus Phoebis (Pieridae: Coliadinae) revealed by molecular and morphological data
FIGURE 4. Representatives of Phoebis, Aphrissa and Rhabdodryas (Males). Left side dorsal view, right side ventral view. A. Phoebis agarithe; B. Phoebis argante; C. Phoebis neocypris; D. Phoebis philea; E. Phoebis sennae; F. Aphrissa statira; G. Rhabdodryas trite; H. Phoebis avellaneda.
FIGURE 1 in New insights on the taxonomy and phylogenetic relationships of the Neotropical genus Phoebis (Pieridae: Coliadinae) revealed by molecular and morphological data
FIGURE 1. Some morphological characters used to analyse the phylogenetic relationships of Phoebis. Numbers show character and state. More information is showed in table 1 and 2.
FIGURE 2 in New insights on the taxonomy and phylogenetic relationships of the Neotropical genus Phoebis (Pieridae: Coliadinae) revealed by molecular and morphological data
FIGURE 2. Phylogenetic tree obtained in Bayesian inference analysis for genus Phoebis, based on the combined data set of 20 morphological characters, one mitochondrial and tree nuclear markers. Values below the branches are posterior probabilities (BI analysis) those above the branches are bootstraps values (ML analysis).
FIGURE 3 in New insights on the taxonomy and phylogenetic relationships of the Neotropical genus Phoebis (Pieridae: Coliadinae) revealed by molecular and morphological data
FIGURE 3. Likelihood ancestral states reconstruction of some characters used for classifications of Phoebis and related genera. Character used in this analysis included dorsal spine of harpe, signum shape and line crossing wings.
FIGURE 3. Inferred phylogenetic relationship among 23 in The complete mitochondrial genome of the jumping grasshopper Sinopodisma pieli (Orthoptera: Acrididae) and the phylogenetic analysis of Melanoplinae
FIGURE 3. Inferred phylogenetic relationship among 23 taxa based on nucleotide sequences of mitochondrial 13 PCGs using Bayesian Inference (BI) (a) and maximum likelihood (ML) (b).
FIGURES 5–10 in The mature larva and pupa of Tychius subsulcatus Tournier, 1847 (Coleoptera, Curculionidae), with comments on its biology and phylogenetic relationships
FIGURES 5–10. Tychius subsulcatus mature larva: 5—head, dorsal view; 6—right mandible; 7—antenna; 8—labrum and clypeus; 9—epipharynx. 10—maxillolabial complex, right maxilla, ventral view. (at—antenna, lr—labral rods, st—stemmata. Setae: als—anteriolateral, ams—anteromedial, cls—clypeal, des—dorsal epicranial, dms—dorsal malar, fs—frontal epicranial, les—lateral epicranial, ligs—ligular, lms—labral, mds—mandibular, mbs—basioventral, mes—median, mpxs—maxillary palps, pes—posterio-epicranial, pfs—palpiferal, pms—postmental, prms—premental, stps—stipital, vms—ventral malar). Scales bars: 0.5 mm (5), 0.2 mm (6, 8–10), and 0.05 mm (7).
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