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2,185 results for “integrated taxonomy”

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FIGURE 3 in Integrative taxonomy reveals two sympatric species of the genus Eucriotettix Hebard, 1930 (Orthoptera: Tetrigidae)

FIGURE 3. Plot of Principal Component Analysis for microhabitat preference analysis of 40 specimens (32 from Eucriotettix guentheri sp. nov. and eight from Eucriotettix simulans sp. nov.). Blue triangles and red squares and data points represent Eucriotettix guentheri sp. nov. and Eucriotettix simulans sp. nov. respectively. Size of triangles and squares are representing the number of specimens.

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FIGURE 4 in Integrative taxonomy reveals two sympatric species of the genus Eucriotettix Hebard, 1930 (Orthoptera: Tetrigidae)

FIGURE 4. Plots of Principal Component Analysis for morphometry of 24 male specimens (20 from Eucriotettix guentheri sp. nov. and four from Eucriotettix simulans sp. nov.). Blue triangles and red squares and data points represent Eucriotettix guentheri sp. nov. and Eucriotettix simulans sp. nov. respectively.

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FIGURE 8 in Integrative taxonomy reveals two sympatric species of the genus Eucriotettix Hebard, 1930 (Orthoptera: Tetrigidae)

FIGURE 8. Eucriotettix guentheri sp. nov. (A–G) and Eucriotettix simulans sp. nov. (H–N): male head and anterior of pronotum in dorsal view (A, H); male face in frontal view (B, I); head, male pronotal lateral lobe and tegmen in lateral view (C, J); male (D, K) and female (F, M) abdominal apices in lateral view; male (E, L) and female (G, N) abdominal apices in ventral view. Scale bars = 1 mm.

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FIGURE 5 in Integrative taxonomy reveals two sympatric species of the genus Eucriotettix Hebard, 1930 (Orthoptera: Tetrigidae)

FIGURE 5. Habitus of male of Eucriotettix guentheri sp. nov. (TET.TET.84) (A, C) and Eucriotettix simulans sp. nov. (TET.TET.47) (B, D) in dorsal (A, B) and lateral (C, D) views. Scale bars = 1 mm.

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FIGURE 2 in Integrative taxonomy reveals two sympatric species of the genus Eucriotettix Hebard, 1930 (Orthoptera: Tetrigidae)

FIGURE 2. Cladogram for Maximum Parsimony for COI (short fragments) of 40 Eucriotettix specimens, 35 specimens of other pygmy grasshoppers and 1 outgroup. 50 % consensus for 1 tree. Bootstrap support values are indicated on branches. Replicates = 100. Blue and red bars represent Eucriotettix guentheri sp. nov. and Eucriotettix simulans sp. nov. respectively.

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FIGURE 1 in Integrative taxonomy reveals two sympatric species of the genus Eucriotettix Hebard, 1930 (Orthoptera: Tetrigidae)

FIGURE 1. Phylogram for Maximum Likelihood for COI (short fragments) of 40 Eucriotettix specimens, 35 specimens of other pygmy grasshoppers and 1 outgroup. Replicates = 100. Bootstrap support values are indicated on branches. Blue and red bars represent Eucriotettix guentheri sp. nov. and Eucriotettix simulans sp. nov. respectively.

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FIGURE 7 in Integrative taxonomy reveals two sympatric species of the genus Eucriotettix Hebard, 1930 (Orthoptera: Tetrigidae)

FIGURE 7. Holotype of Eucriotettix ridleyi body in dorsal (A) and lateral (B) views; (C) labels. Image by Robin Ngiam.

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FIGURE 6 in Integrative taxonomy reveals two sympatric species of the genus Eucriotettix Hebard, 1930 (Orthoptera: Tetrigidae)

FIGURE 6. Habitus of female of Eucriotettix guentheri sp. nov. (TET.TET.42) (A, C) and Eucriotettix simulans sp. nov. (TET.TET.113) (B, D) in dorsal (A, B) and lateral (C, D) views. Scale bars = 1 mm.

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FIGURE 22 in Integrative taxonomy reveals cryptic diversity in neotropical grasshoppers: taxonomy, phylogenetics, and evolution of the genus Sphenarium Charpentier, 1842 (Orthoptera: Pyrgomorphidae)

FIGURE 22. Male genital structures of S. totonacum sp.n. holotype (A–C), S. adelinae sp.n. holotype (D–F); and S. miztecum sp.n. holotype (G–I). For all taxa left squares show epiphallus (I) and ectophallus (II) in dorsal view, and endophallus in lateral view (III); meddle squares show ectophallus in posterior view; and right squares show a close up of ectophallus in lateral view (Scale bars = 1mm).

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FIGURE 21 in Integrative taxonomy reveals cryptic diversity in neotropical grasshoppers: taxonomy, phylogenetics, and evolution of the genus Sphenarium Charpentier, 1842 (Orthoptera: Pyrgomorphidae)

FIGURE 21. Male genital structures of S. histrio: morphotype 3 (A–C), morphotype 4 (D–F), and morphotype 5 (G–I); and S. occidentalis sp.n. holotype (J–l). For all taxa left squares show epiphallus (I) and ectophallus (II) in dorsal view, and endophallus in lateral view (III); meddle squares show ectophallus in posterior view; and right squares show a close up of ectophallus in lateral view (Scale bars = 1mm).

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FIGURE 20 in Integrative taxonomy reveals cryptic diversity in neotropical grasshoppers: taxonomy, phylogenetics, and evolution of the genus Sphenarium Charpentier, 1842 (Orthoptera: Pyrgomorphidae)

FIGURE 20. External morphology of S. histrio: morphotype 2 m (A and C) and f (B and D), morphotype 3 m (E) and f (F), morphotype 4 m (G) and f (H), and morphotype 5 m (I) and f (J); S. occidentalis sp.n. holotype m (K) and paratypes m #2 (M), f #3 (L) and f #4 (N); S. totonacum sp.n. holotype m (O) and paratype f #1 (P); S. adelinae sp.n. holotype m (Q) and paratype f #1 (R); S. miztecum sp.n. holotype m (S) and paratype f #1 (T) (Scale bars = 1cm).

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FIGURE 19 in Integrative taxonomy reveals cryptic diversity in neotropical grasshoppers: taxonomy, phylogenetics, and evolution of the genus Sphenarium Charpentier, 1842 (Orthoptera: Pyrgomorphidae)

FIGURE 19. Male genital structures of S. mexicanum: morphotype 1 (A–C) and morphotype 2 (D–F); S. histrio: morphotype 1 (G–I) and morphotype 2 (J–l). For all taxa left squares show epiphallus (I) and ectophallus (II) in dorsal view, and endophallus in lateral view (III); meddle squares show ectophallus in posterior view; and right squares show a close up of ectophallus in lateral view (Scale bars = 1mm).

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FIGURE 18 in Integrative taxonomy reveals cryptic diversity in neotropical grasshoppers: taxonomy, phylogenetics, and evolution of the genus Sphenarium Charpentier, 1842 (Orthoptera: Pyrgomorphidae)

FIGURE 18. Type specimens of S. bolivari: lectotype m (A) and paralectotype m (B); S. histrio holotype m (C) and S. carinatum holotype m (D) (Scale bars = 1cm).

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FIGURE 17 in Integrative taxonomy reveals cryptic diversity in neotropical grasshoppers: taxonomy, phylogenetics, and evolution of the genus Sphenarium Charpentier, 1842 (Orthoptera: Pyrgomorphidae)

FIGURE 17. Type specimens of S. variabile: allotype f (A); S. mexicanum lectotype f (B) and paralectotype m (C); O. crassipes holotype m (D); S. ictericum: lectotype m (E) and paralectotype f (F); S. marginatum lectotype m (G) and paralectotype f (H) (Scale bars = 1cm).

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FIGURE 16 in Integrative taxonomy reveals cryptic diversity in neotropical grasshoppers: taxonomy, phylogenetics, and evolution of the genus Sphenarium Charpentier, 1842 (Orthoptera: Pyrgomorphidae)

FIGURE 16. Male genital structures of S. crypticum sp.n. holotype (A–C); S. borrei (D–F); S. variabile: morphotype 1 paratype #234 (G–I) and morphotype 2 (J–l). For all taxa left squares show epiphallus (I) and ectophallus (II) in dorsal view, and endophallus in lateral view (III); meddle squares show ectophallus in posterior view; and right squares show a close up of ectophallus in lateral view (Scale bars = 1mm).

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FIGURE 15 in Integrative taxonomy reveals cryptic diversity in neotropical grasshoppers: taxonomy, phylogenetics, and evolution of the genus Sphenarium Charpentier, 1842 (Orthoptera: Pyrgomorphidae)

FIGURE 15. External morphology of S. rugosum: morphotype 2 m (A) and f (B), morphotype 3 m (C) and f (D); S. crypticum sp.n. holotype m (E) and paratype f #45 (F); S. borrei m (G) and f (H); S. variabile: morphotype 1 paratype m #134 (I) and f (J), and morphotype 2 m (K) and f (L); S. mexicanum: morphotype 1 m (M) and f (N), and morphotype 2 m (O) and f (P); S. histrio: morphotype 1 m (Q and S) and f (R and T) (Scale bars = 1cm).

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FIGURE 13 in Integrative taxonomy reveals cryptic diversity in neotropical grasshoppers: taxonomy, phylogenetics, and evolution of the genus Sphenarium Charpentier, 1842 (Orthoptera: Pyrgomorphidae)

FIGURE 13. Male genital structures of S. infernalis sp.n. holotype (A–C); S. rugosum: morphotype 1 (D–F), morphotype 2 (G–I) and morphotype 3 (J–l). For all taxa left squares show epiphallus (I) and ectophallus (II) in dorsal view, and endophallus in lateral view (III); meddle squares show ectophallus in posterior view; and right squares show a close up of ectophallus in lateral view (Scale bars = 1mm).

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FIGURE 12 in Integrative taxonomy reveals cryptic diversity in neotropical grasshoppers: taxonomy, phylogenetics, and evolution of the genus Sphenarium Charpentier, 1842 (Orthoptera: Pyrgomorphidae)

FIGURE 12. Male genital structures of S. tarascum sp.n. holotype (A–C); S. planum (D–F); S. macrophallicum paratype #234 (G–I); and S. minimum (J–L). For all taxa left squares show epiphallus (I) and ectophallus (II) in dorsal view, and endophallus in lateral view (III); meddle squares show ectophallus in posterior view; and right squares show a close up of ectophallus in lateral view (Scale bars = 1mm).

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FIGURE 14 in Integrative taxonomy reveals cryptic diversity in neotropical grasshoppers: taxonomy, phylogenetics, and evolution of the genus Sphenarium Charpentier, 1842 (Orthoptera: Pyrgomorphidae)

FIGURE 14. Type specimens of S. rugosum: lectotype m (A) and paralectotype f (B); S. barrettii: lectotype m (C); S. borrei: lectotype m (D) and paralectotype f (E); S. bruneri lectotype m (F) and paralectotype f (G); S. variabile: holotype m (H) (Scale bars = 1cm).

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FIGURE 2 in Integrative taxonomy reveals cryptic diversity in neotropical grasshoppers: taxonomy, phylogenetics, and evolution of the genus Sphenarium Charpentier, 1842 (Orthoptera: Pyrgomorphidae)

FIGURE 2. Bayesian phylogeny of Sphenarium based on a concatenated analysis of 2527 nucleotide positions from five loci and 145 terminals (129 ingroup and 16 outgroup terminals). Higher-level phylogenetic relationships are shown on left-top box and ingroup relationships are magnified outside. Voucher and locality identifier numbers of the analysed specimens are indicated in bold characters in terminals names, except for those cases in which genetic information was retrieved from the GenBank. Different branch colours highlight the three mayor clades within the genus (brown, Clade 1; red, Clade 2; and purple, Clade 3). Different colours of the Sphenarium terminals represent the 17 taxa identified during the morphologic analysis. Black circles behind the nodes indicate PP values ± 95%. For some important nodes we also showed the PP values in bold numbers. Black bottom bars in all cases are equal to 0.03 substitutions per site.

opennotspecifiedDec 2017View details →

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