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FIGURE 20 in Concordance between molecular and morphology-based phylogenies of Korean Enhydrosoma (Copepoda: Harpacticoida: Cletodidae) highlights important synapomorphies and homoplasies in this genus globally
FIGURE 20. Enhydrosoma kosmetron sp. nov., line drawings, holotype ♀: A, antennula, ventral; B, maxilla, posterior; C, maxilliped, posterior; D, second endopodal segment of first leg, anterior; E, third exopodal segment of first leg, anterior; F, endopod of second leg, anterior; G, endopod of third leg anterior; H, endopod of fourth leg, anterior; I, fifth leg, anterior.
FIGURE 12 in Concordance between molecular and morphology-based phylogenies of Korean Enhydrosoma (Copepoda: Harpacticoida: Cletodidae) highlights important synapomorphies and homoplasies in this genus globally
FIGURE 12. Enhydrosoma robustum sp. nov., SEM photographs, A & B, paratype ♀6; C & D, paratype ♀7; E-G, paratype ♀8; H, paratype ♀9: A, habitus, lateral; B, caudal rami, lateral; C, habitus, ventro-lateral; D, antennulae and antennae, ventrolateral; E, habitus, ventral; F, antennulae and antennae, ventral; G, last two urosomites and caudal rami, ventral; H, antennula, lateral.
FIGURE 22 in Concordance between molecular and morphology-based phylogenies of Korean Enhydrosoma (Copepoda: Harpacticoida: Cletodidae) highlights important synapomorphies and homoplasies in this genus globally
FIGURE 22. ML tree based on partial mtCOI sequence data from 14 Cletodidae specimens from Korea and Russia, constructed using MEGA v. 6 and TN93+G+I model of evolution, with numbers on branches representing NJ/MP/ML bootstrap values from 1000 pseudoreplicates. Cladogram is drawn to scale and specimen codes or GenBank numbers correspond to those in Table 1. MP values are those from last of nine equally parsimonious trees. All trees were rooted with Stylicletodes sp.
FIGURE 6 in Concordance between molecular and morphology-based phylogenies of Korean Enhydrosoma (Copepoda: Harpacticoida: Cletodidae) highlights important synapomorphies and homoplasies in this genus globally
FIGURE 6. Enhydrosoma apimelon sp. nov., line drawings, paratype ♀10: A, rostrum and left antennula without armature, dorsal; B, first segment of antennula, ventral; C, second segment of antennula, ventral; D, second segment of antennula, dorsal; E, third segment of antennula, dorsal; F, fourth segment of antennula, ventral; G, fifth segment of antennula, ventral; H, fifth segment of antennula, dorsal; I, antenna, posterior; J, fifth leg, anterior.
FIGURE 5 in Concordance between molecular and morphology-based phylogenies of Korean Enhydrosoma (Copepoda: Harpacticoida: Cletodidae) highlights important synapomorphies and homoplasies in this genus globally
FIGURE 5. Enhydrosoma apimelon sp. nov., line drawings, A-C, paratype ♀10; D, paratype ♂5: A, urosome, ventral; B, anal somite and caudal rami, dorsal; C, anal somite and right caudal ramus, lateral; D, urosome, ventral.
FIGURE 4 in Concordance between molecular and morphology-based phylogenies of Korean Enhydrosoma (Copepoda: Harpacticoida: Cletodidae) highlights important synapomorphies and homoplasies in this genus globally
FIGURE 4. Enhydrosoma apimelon sp. nov., SEM photographs, A-E, paratype ♂2; F & G, paratype ♂3; H, paratype ♂4: A, habitus, ventral; B, last two urosomites and caudal rami, ventral; C, fifth and sixth legs, anterior; D, right antennula, ventral. E, left antennula, ventral (distal part broken off); F, left antennula, ventral; G, rostrum, antero-ventral; H, antenna, ventral.
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.
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.
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.
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.
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.
FIGURE 39 in Cleonini (Coleoptera: Curculionidae: Lixinae) are monophyletic and flightless: tribe overview, rampant adult homoplasy and illustrated global diversity
FIGURE 39. Cleonini, adults, claws, dorsal view. A: Adosomus (Adosomus) roridus; B: Afghanocleonus haarloevi; C: Ammocleonus hieroglyphus; D: Bothynoderes declivis; E: Gonocleonus margaritiferus; F: Isomerops fausti; G: Leucochromus imperialis; H: Maximus strabus; I: Pleurocleonus quadrivittatus; J: Terminasiania granosa; K: Trichocleonus leucophyllus.
Figure 12 in Homoplasy and morphological stasis revealed through multilocus phylogeny of new myrmecophilous species in Armadillidiidae (Isopoda: Oniscidea)
Figure 12. Iberiarmadillidium sakura from Jerte, male paratype: A, pereopod 1; B, pereopod 7; C, antenna; D, uropod; E, pleopod 1 exopod; F, pleopod 1 endopod; G, pleopod 2 exopod; H, pleopod 2 endopod; I, pleopod 3 exopod; J, pleopod 4 exopod; and K, pleopod 5 exopod.
Figure 11 in Homoplasy and morphological stasis revealed through multilocus phylogeny of new myrmecophilous species in Armadillidiidae (Isopoda: Oniscidea)
Figure 11. Iberiarmadillidium psammophilum from El Pardo, male paratype: A, pereopod 1; B, pereopod 7; C, antenna; D, uropod; E, pleopod 1 exopod; F, pleopod 1 endopod; G, pleopod 2 exopod; H, pleopod 2 endopod; I, pleopod 3 exopod; J, pleopod 4 exopod; and K, pleopod 5 exopod.
Figure 9 in Homoplasy and morphological stasis revealed through multilocus phylogeny of new myrmecophilous species in Armadillidiidae (Isopoda: Oniscidea)
Figure 9. Cristarmadillidium myrmecophilum from ~8 km north-east of Hoyo de Pinares, male paratype: A, pereopod 1; B, pereopod 7; C, antenna; D, uropod; E, pleopod 1 exopod; F, pleopod 1 endopod; G, pleopod 2 exopod; H, pleopod 2 endopod; I, pleopod 3 exopod; J, pleopod 4 exopod; and K, pleopod 5 exopod.
Figure 10 in Homoplasy and morphological stasis revealed through multilocus phylogeny of new myrmecophilous species in Armadillidiidae (Isopoda: Oniscidea)
Figure 10. Iberiarmadillidium pinicola from ~8 km north-east of Hoyo de Pinares, male paratype: A, pereopod 1; B, pereopod 7; C, antenna; D, uropod; E, pleopod 1 exopod; F, pleopod 1 endopod; G, pleopod 2 exopod; H, pleopod 2 endopod; I, pleopod 3 exopod; J, pleopod 4 exopod; and K, pleopod 5 exopod.
Figure 8 in Homoplasy and morphological stasis revealed through multilocus phylogeny of new myrmecophilous species in Armadillidiidae (Isopoda: Oniscidea)
Figure 8. Scanning electron photomicrographs showing details of the head of Iberiarmadillidium psammophilum (A), Iberiarmadillidium pinicola (B), Iberiarmadillidium sakura (C) and Cristarmadillidium myrmecophilum (D).
Figure 7 in Homoplasy and morphological stasis revealed through multilocus phylogeny of new myrmecophilous species in Armadillidiidae (Isopoda: Oniscidea)
Figure 7. Scanning electron photomicrographs showing details of the telson of Iberiarmadillidium psammophilum (A), Iberiarmadillidium pinicola (B), Iberiarmadillidium sakura (C), Cristarmadillidium myrmecophilum (D) and Cristarmadillidium breuili (E).
Figure 6 in Homoplasy and morphological stasis revealed through multilocus phylogeny of new myrmecophilous species in Armadillidiidae (Isopoda: Oniscidea)
Figure 6. Scanning electron photomicrographs showing details of pereonite 1 and 2 epimera of Iberiarmadillidium psammophilum (A), Iberiarmadillidium pinicola (B), Iberiarmadillidium sakura (C), Cristarmadillidium myrmecophilum (D) and Cristarmadillidium muricatum (E) (only epimera 1 is shown).
Figure 3 in Homoplasy and morphological stasis revealed through multilocus phylogeny of new myrmecophilous species in Armadillidiidae (Isopoda: Oniscidea)
Figure 3. *BEAST chronogram of Armadillidiidae. Bars represent, highest posterior densities (95% HPD), and are shown only in highly supported nodes (posterior probabilities values ≥ 0.95).
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Allen Brain Atlas
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Annotated Behaviour and Observability Dataset (ABODe)
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