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Figure 12 in Phylogenetic relationships among genera of the tribe Cnephasiini (Lepidoptera: Tortricidae: Tortricinae) based on morphological characters of adults
Figure 12. Drawings of the aedeagus (A–G) and saccular process (H) in some of the examined material. (A) Doloploca punctulana; (B) Eana argentana; (C) Tortrix viridana; (D) Choristoneura lafauriana; (E) Kawabeia razowskii; (F) Tortricodes alternella; (G) Xerocnephasia rigana; (H) Eana argentana. The numbers indicate the character and its state (character: character state) and arrows show the location of characters. The spur-shaped cornuti is an autoapomorphic character for Synochoneura ochriclivis, but owing to the paucity of material for this species, aedeagus of a representative of Archipini, Choristoneura lafauriana, with the same features (11D) is presented.
Figure 9 in Phylogenetic relationships among genera of the tribe Cnephasiini (Lepidoptera: Tortricidae: Tortricinae) based on morphological characters of adults
Figure 9. Sclerotised area of the eighth abdominal tergite (A–D) and sternite (E–H) in male. The numbers indicate the character and its state (character: character state) and arrows show the location of characters. (A) Cnephasia heinemanni; (B, F) Eana argentana; (C) Oxypteron palmoni; (D) Doloploca punctulana; (E) Oporopsamma dunaria; (G) Acleris forsskaleana; (H) Decodes basiplaganus.
Figure 7. A, B in Phylogenetic relationships among genera of the tribe Cnephasiini (Lepidoptera: Tortricidae: Tortricinae) based on morphological characters of adults
Figure 7. A, B. Abdominal terga in male. The numbers indicate the character and its state (character: character state). (A) Tortricodes alternella; (B) Eana osseana.
Figure 6 in Phylogenetic relationships among genera of the tribe Cnephasiini (Lepidoptera: Tortricidae: Tortricinae) based on morphological characters of adults
Figure 6. Fore- and hindwing venation defined for the morphological analysis. The numbers indicate the character and its state (character: character state). (A) Forewing; (B) hindwing in Cnephasia heinemanni.
Figure 5. A–D in Phylogenetic relationships among genera of the tribe Cnephasiini (Lepidoptera: Tortricidae: Tortricinae) based on morphological characters of adults
Figure 5. A–D. Fore- and hindwing pattern. The numbers indicate the character and its state (character: character state). (A) Xerocnephasia rigana; (B) Doloploca punctulana; (C) Cnephasia heinemanni; (D) Acleris forsskaleana.
Figure 8. A, B in Phylogenetic relationships among genera of the tribe Cnephasiini (Lepidoptera: Tortricidae: Tortricinae) based on morphological characters of adults
Figure 8. A, B. First and second abdominal segments in male. The numbers indicate the character and its state (character: character state) and arrows show the location of characters. (A) Tortricodes alternella; (B) Acleris forsskaleana.
Figure 3 in Phylogenetic relationships among genera of the tribe Cnephasiini (Lepidoptera: Tortricidae: Tortricinae) based on morphological characters of adults
Figure 3. Antenna in Oxypteron palmoni. The numbers indicate the character and its state (character: character state).
Figure 2. A–F in Phylogenetic relationships among genera of the tribe Cnephasiini (Lepidoptera: Tortricidae: Tortricinae) based on morphological characters of adults
Figure 2. A–F, head, lateral view. The numbers indicate the character and its state (character: character state). (A) Xerocnephasia rigana; (B) Tortrix viridana; (C) Eana argentana; (D) Cnephasia heinemanni; (E) Decodes basiplaganus; (F) Exapate duratella.
Figure 1 in Phylogenetic relationships among genera of the tribe Cnephasiini (Lepidoptera: Tortricidae: Tortricinae) based on morphological characters of adults
Figure 1. Strict consensus tree of 10 equally MPTs obtained in the parsimony analysis using equally weighed characters. Numbers above and below the branches show bootstrap and jackknife values, respectively (tree length = 225; CI = 0.5289; RI = 0.5691).
Figure 14 in Phylogenetic relationships among genera of the tribe Cnephasiini (Lepidoptera: Tortricidae: Tortricinae) based on morphological characters of adults
Figure 14. (I) signa in Cnephasiinae. (A) Cnephasia heinemanni; (B) Tortricodes alternella; (C) Synochoneura ochriclivis; (II) posterior margin of the sternite VII (D–F). (D) Cnephasia heinemanni; (E) Oxypteron palmoni; (F) Eana osseana. Eighth abdominal tergite (G–I). (G) Cnephasia heinemanni; (H) Exapate duratella; (I) Oxypteron palmoni. The numbers indicate the character and its state (character: character state) and arrows show the location of characters.
Figure 4 in The taxonomic status and phylogenetic relationships of the genus Aenigmomphiscola Kruglov and Starobogatov, 1981 (Gastropoda: Pulmonata: Lymnaeidae)
Figure 4. The radular morphology of Aenigmomphiscola and Omphiscola species. (A) Ae. kazakhstanica; (B) Ae. europaea; (C) Omphiscola glabra. Labels: c, central tooth; l, lateral teeth. Scale bars 2 µm.
Figure 1 in The taxonomic status and phylogenetic relationships of the genus Aenigmomphiscola Kruglov and Starobogatov, 1981 (Gastropoda: Pulmonata: Lymnaeidae)
Figure 1. Shells and copulative apparatuses of molluscs of the genera Aenigmomphiscola (A–C, E) and Omphiscola (D, F). (A–B, E) Ae. europaea (Russia, Moscow region); (C) Ae. kazakhstanica (Russia, Mountain Altay); (D, F) O. glabra (Germany, Saxony). Scale bars 1 mm. Labels: pp, praeputium; ps, penis sheath; ps1, ps2, two parts of the penis sheath in Ae. europaea; sd, spermiduct.
Figure 3. 18S in The taxonomic status and phylogenetic relationships of the genus Aenigmomphiscola Kruglov and Starobogatov, 1981 (Gastropoda: Pulmonata: Lymnaeidae)
Figure 3. 18S rRNA phylogenetic tree obtained using ML algorithm. Numbers below branches are bootstrap scores.
Figure 2 in The taxonomic status and phylogenetic relationships of the genus Aenigmomphiscola Kruglov and Starobogatov, 1981 (Gastropoda: Pulmonata: Lymnaeidae)
Figure 2. Phylogenetic trees of the lymnaeid species studied, obtained using the different molecular markers and different algorithms of tree building. (A) ITS-2 tree based on ML algorithm; (B) ITS-2 tree based on MP algorithm; (C) COI tree based on ML algorithm; (D) COI tree based on MP algorithm. Numbers below branches are bootstrap scores.
Figure 5 in Phylogenetic relationships among genera in the Calanidae (Crustacea: Copepoda) based on morphology
Figure 5. Clades derived from molecular analysis based on 18s ribosomal RNA. (A) Bucklin et al. (2003); (B) Taniguchi et al. (2004).
Figure 4 in Phylogenetic relationships among genera in the Calanidae (Crustacea: Copepoda) based on morphology
Figure 4. (A) Strict consensus of six most parsimonious trees, length 81, consistency index = 0.58, retention index = 0.66, numbers above the branches indicate Jackknife support; (B) 50% majority-rule consensus of six most parsimonious trees; (C) single most-parsimonious tree derived from single round of successive weighting. Numbers above the branches are clade numbers. Megacalanus longicornis is the outgroup.
Figure 3 in Phylogenetic relationships among genera in the Calanidae (Crustacea: Copepoda) based on morphology
Figure 3. Selected characters and their scores as detailed in Tables 1 and 2. Male leg 5 of: (A) Neocalanus gracilis; (B) Calanoides macrocarinatus; (C) Nannocalanus minor; (D) Undinula vulgaris; (E) Canthocalanus pauper (from Giesbrecht 1893; Mori 1937; Bradford 1994).
Figure 2 in Phylogenetic relationships among genera in the Calanidae (Crustacea: Copepoda) based on morphology
Figure 2. Selected characters and their scores as detailed in Tables 1 and 2. Coxae of female leg 5: (A) Calanoides macrocarinatus; (B) Calanus hyperboreus; (C) Calanus australis. Leg 5 basis of: (D) Megacalanus longicornis; (E) Calanus hyperboreus; (F) Cosmocalanus darwinii (original figures).
Figure 1 in Phylogenetic relationships among genera in the Calanidae (Crustacea: Copepoda) based on morphology
Figure 1. Selected characters and their scores as detailed in Tables 1 and 2. Leg 1 of: (A) Megacalanus longicornis; (B) Neocalanus gracilis; (C) Calanus australis; (D) Calanus finmarchicus (from Giesbrecht 1893; Sars 1903; Bradford-Grieve 1994). Leg 2 exopod segment 2 of: (E) Megacalanus longicornis; (F) Undinula vulgaris; (G) Calanus australis; (H) Neocalanus gracilis (original figures; Giesbrecht 1893).
Figure 3 in Phylogenetic relationships of Mesobuthus eupeus (C.L. Koch, 1839) inferred from COI sequences (Scorpiones: Buthidae)
Figure 3. Principal component analysis of Mesobuthus eupeus and Mesobuthus caucasicus based on morphological ratios. (A) and (B) plot positions of the species, respectively, with respect to the first and second components and with respect to the first and third components (see text). Mesobuthus eupeus and M. caucasicus are encircled according to species identification in phylogenetic tree shown in Figure 2:, M. eupeus;, M. caucasicus.
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Allen Brain Atlas
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DANDI Archive for NWB datasets
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International Brain Laboratory public data
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OpenNeuro
OpenNeuro is a free, open platform for sharing neuroimaging datasets, with public search, dataset pages, and download paths for web, S3, DataLad, and the OpenNeuro CLI.