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972 results for “morphological barcode”
Figure 2b from: Cocuzza GEM, Di Silvestro S, Giordano R, Rapisarda C (2015) Congruence between cytochrome oxidase I (COI) and morphological data in Anuraphis spp. (Hemiptera, Aphididae) with a comparison between the utility of the 5' barcode and 3' COI regions. ZooKeys 529: 123-144. https://doi.org/10.3897/zookeys.529.6081
Figure 2b - Likelihood tree estimated using 658 bp at the 5' end of COI for selected Anuraphis species.
Figure 2a from: Cocuzza GEM, Di Silvestro S, Giordano R, Rapisarda C (2015) Congruence between cytochrome oxidase I (COI) and morphological data in Anuraphis spp. (Hemiptera, Aphididae) with a comparison between the utility of the 5' barcode and 3' COI regions. ZooKeys 529: 123-144. https://doi.org/10.3897/zookeys.529.6081
Figure 2a - Likelihood tree estimated using 648 bp at the 3' end of COI for selected Anuraphis species.
Figure 1b from: Cocuzza GEM, Di Silvestro S, Giordano R, Rapisarda C (2015) Congruence between cytochrome oxidase I (COI) and morphological data in Anuraphis spp. (Hemiptera, Aphididae) with a comparison between the utility of the 5' barcode and 3' COI regions. ZooKeys 529: 123-144. https://doi.org/10.3897/zookeys.529.6081
Figure 1b - Neighbor-Joining tree showing relationships among selected Anuraphis species estimated using 658 bp at the 5' end of the COI mitochondrial gene. Distance were estimated using the p-distance model of sequence evolution.
Figure 3 from: Cocuzza GEM, Di Silvestro S, Giordano R, Rapisarda C (2015) Congruence between cytochrome oxidase I (COI) and morphological data in Anuraphis spp. (Hemiptera, Aphididae) with a comparison between the utility of the 5' barcode and 3' COI regions. ZooKeys 529: 123-144. https://doi.org/10.3897/zookeys.529.6081
Figure 3 - Dendrogram of cluster-species results based on Mahalanobis' generalized distances in apterae for Anuraphis spp. (20 individual for each species) based on 16 morphometric characters (from Barbagallo and Cocuzza 2003).
Figure 4 from: Amora G, Hamada N, Fusari LM, Andrade-Souza V (2015) An Asiatic Chironomid in Brazil: morphology, DNA barcode and bionomics. ZooKeys 514: 129-144. https://doi.org/10.3897/zookeys.514.9925
Figure 4 - Frequency of occurrence of the ventral length of the cephalic capsule of a Brazilian Chironomus population (Diptera: Chironomidae) showing the four larval instars.
Figure 2 from: Amora G, Hamada N, Fusari LM, Andrade-Souza V (2015) An Asiatic Chironomid in Brazil: morphology, DNA barcode and bionomics. ZooKeys 514: 129-144. https://doi.org/10.3897/zookeys.514.9925
Figure 2 - NJ tree based on the COI sequences of the mtDNA of Chironomus (Diptera: Chironomidae) species. The sequence of Lipiniella fujiprimus was used as the outgroup. Bootstrap values > 50% are shown on branches. Accession numbers and countries are provided beside the species names. Species flagged with an asterisk (*) are neotropical species. Brazilian Chironomus population: Chironomus sp1BRA; Chironomus sp2BRA; Chironomus sp3BRA
Figure 1 from: Amora G, Hamada N, Fusari LM, Andrade-Souza V (2015) An Asiatic Chironomid in Brazil: morphology, DNA barcode and bionomics. ZooKeys 514: 129-144. https://doi.org/10.3897/zookeys.514.9925
Figure 1 - Adult male and pupae. Chironomus striatipennis, Indian population. A Wing D Hypopygium, dorsal view G Anal spur, dorsal view. Chironomus kiiensis, Japanese population B Wing E Hypopygium, dorsal view H Anal spur, dorsal view. Chironomus striatipennis, Brazilian population C Wing F Hypopygium, dorsal view I Anal spur, dorsal view. Scale bar: 500 µm (A, B, C, G, H, I); 200 µm (D, E, F).
Figure 3 from: Rozo-Lopez P, Mengual X (2015) Mosquito species (Diptera, Culicidae) in three ecosystems from the Colombian Andes: identification through DNA barcoding and adult morphology. ZooKeys 513: 39-64. https://doi.org/10.3897/zookeys.513.9561
Figure 3 - Maximum likelihood tree of the barcoding sequences of mosquito species listed for the Neotropics. Terminal branches have been collapsed in order to save space (see original tree in Suppl. material 7 and 8). Branches in colors indicate non-monophyletic genera. Red clusters represent groups with problems to discriminate species. Names with green asterisk indicate non-monophyletic species. Bootstrap values above 60 (1,000 replicates) are given at the nodes.
Figure 1 from: Rozo-Lopez P, Mengual X (2015) Mosquito species (Diptera, Culicidae) in three ecosystems from the Colombian Andes: identification through DNA barcoding and adult morphology. ZooKeys 513: 39-64. https://doi.org/10.3897/zookeys.513.9561
Figure 1 - Map of Colombia indicating the sampling sites of mosquitoes collected in this study: Belmira, Antioquia, paramo, 3,200 masl (red circle); Rio Sucio, Caldas, cloud forest, 1,960 masl (green circle); La Pintada, Antioquia, tropical dry forest, 660 masl (blue circle); Supia, Caldas, rural area, 1,150 masl (pink circle). Modified from Instituo Geográfico Agustín Codazzi (www.igac.gov.co) and Wikimedia Commons (by Addicted04).
Figure 2 from: Rozo-Lopez P, Mengual X (2015) Mosquito species (Diptera, Culicidae) in three ecosystems from the Colombian Andes: identification through DNA barcoding and adult morphology. ZooKeys 513: 39-64. https://doi.org/10.3897/zookeys.513.9561
Figure 2 - Neighbour-Joining tree of the barcoding sequences of mosquito species listed for Neotropics, based on Tamura-Nei genetic distances. Terminal branches have been collapsed in order to save space (see original tree in Suppl. material 5 and 6). Branches in colors indicate non-monophyletic genera. Red clusters represent groups with problems to discriminate species. Names with green asterisk indicate non- monophyletic species. Bootstrap values above 60 (1,000 replicates) are given at the nodes.
Figure 8 from: Weng Y-M, Yeh W-B, Yang M-M (2016) A new species of alpine Apenetretus Kurnakov from Taiwan: evidences from DNA barcodes and morphological characteristics (Coleoptera, Carabidae, Patrobini). ZooKeys 584: 121-134. https://doi.org/10.3897/zookeys.584.6320
Figure 8 - Molecular clock dating of mitochondrial COI gene with BEAST ver. 1.8.0. The oldest divergence between Apenetretus yushanensis and the other Apenetretus species occurred at 1.81 million years ago (mya); the divergence between Apenetretus hsueshanensis and the group of Apenetretus smetanai and Apenetretus nanhutanus occurred at 0.94 mya; and the divergence between Apenetretus smetanai and Apenetretus nanhutanus occurred at 0.53 mya.
Figure 4 from: Weng Y-M, Yeh W-B, Yang M-M (2016) A new species of alpine Apenetretus Kurnakov from Taiwan: evidences from DNA barcodes and morphological characteristics (Coleoptera, Carabidae, Patrobini). ZooKeys 584: 121-134. https://doi.org/10.3897/zookeys.584.6320
Figure 4 - Apical portion of aedeagus of Apenetretus spp. in lateral view. A Apenetretus hsueshanensis sp. n. holotype B Apenetretus smetanai C Apenetretus yushanensis D Apenetretus nanhutanus. Adapted from Habu 1973; Zamotajlov and Sciaky 1996. Scale bar: 1 mm.
Figure 7 from: Weng Y-M, Yeh W-B, Yang M-M (2016) A new species of alpine Apenetretus Kurnakov from Taiwan: evidences from DNA barcodes and morphological characteristics (Coleoptera, Carabidae, Patrobini). ZooKeys 584: 121-134. https://doi.org/10.3897/zookeys.584.6320
Figure 7 - Mitochondrial COI phylogeny of Taiwanese Apenetretus constructed with Maximum Likelihood method. One thousand bootstrap values are showed on the branches in percentage.
Figure 3 from: Weng Y-M, Yeh W-B, Yang M-M (2016) A new species of alpine Apenetretus Kurnakov from Taiwan: evidences from DNA barcodes and morphological characteristics (Coleoptera, Carabidae, Patrobini). ZooKeys 584: 121-134. https://doi.org/10.3897/zookeys.584.6320
Figure 3 - Apical portion of aedeagus of Apenetretus spp. in dorsal view. A Apenetretus hsueshanensis sp. n. holotype B Apenetretus smetanai C Apenetretus yushanensis D Apenetretus nanhutanus. Adapted from Habu 1973; Zamotajlov and Sciaky 1996. Scale bar: 1 mm.
Figure 6 from: Weng Y-M, Yeh W-B, Yang M-M (2016) A new species of alpine Apenetretus Kurnakov from Taiwan: evidences from DNA barcodes and morphological characteristics (Coleoptera, Carabidae, Patrobini). ZooKeys 584: 121-134. https://doi.org/10.3897/zookeys.584.6320
Figure 6 - Variation in supraobital setae placement of Apenetretus hsueshanensis sp. n. A two close anterior setae and one posterior B one between eyes and clypeus, one anterior, and one posterior; C, one anterior and one posterior D one anterior, one between anterior and posterior, and one posterior. Scale bar: 1 mm.
Figure 1 from: Weng Y-M, Yeh W-B, Yang M-M (2016) A new species of alpine Apenetretus Kurnakov from Taiwan: evidences from DNA barcodes and morphological characteristics (Coleoptera, Carabidae, Patrobini). ZooKeys 584: 121-134. https://doi.org/10.3897/zookeys.584.6320
Figure 1 - Sample locations of Apenetretus spp. Apenetretus hsueshanensis sp. n. was collected in Hsueshan; Apenetretus smetanai was collected in Hehuanshan; Apenetretus nanhutanus was collected in Nanhudashan; Apenetretus yushanensis was collected in Yushan. Area of elevation above 2,000 meters is shaded.
Figure 5 from: Weng Y-M, Yeh W-B, Yang M-M (2016) A new species of alpine Apenetretus Kurnakov from Taiwan: evidences from DNA barcodes and morphological characteristics (Coleoptera, Carabidae, Patrobini). ZooKeys 584: 121-134. https://doi.org/10.3897/zookeys.584.6320
Figure 5 - Right parameres (A–D) and left parameres (E–H) of Apenetretus spp. A, E Apenetretus hsueshanensis sp. n. holotype B, F Apenetretus smetanai C, G Apenetretus yushanensis D, H Apenetretus nanhutanus. Adapted from Habu 1973; Zamotajlov and Sciaky 1996. Scale bar: 1 mm.
Figure 2 from: Weng Y-M, Yeh W-B, Yang M-M (2016) A new species of alpine Apenetretus Kurnakov from Taiwan: evidences from DNA barcodes and morphological characteristics (Coleoptera, Carabidae, Patrobini). ZooKeys 584: 121-134. https://doi.org/10.3897/zookeys.584.6320
Figure 2 - Male of Apenetretus hsueshanensis sp. n. (holotype). A dorsal view of habitus B lateral view of male aedeagus (2×) C dorsal view of aedeagus (2×) D parameres (3×). Scale bar: 1 mm.
Figure 6 from: Chow S, Konishi K, Mekuchi M, Tamaki Y, Nohara K, Takagi M, Niwa K, Teramoto W, Manabe H, Kurogi H, Suzuki S, Ando D, Jinbo T, Kiyomoto M, Hirose M, Shimomura M, Kurashima A, Ishikawa T, Kiyomoto S (2016) DNA barcoding and morphological analyses revealed validity of Diadema clarki Ikeda, 1939 (Echinodermata, Echinoidea, Diadematidae). ZooKeys 585: 1-16. https://doi.org/10.3897/zookeys.585.8161
Figure 6 - Neighbor-joining phylogenetic tree drawn using from COI sequence data. Bootstrap support (>50%) after 1,000 replications is shown at each node. Italic accession numbers with dagger (AY012732, AY012733, AY012742–AY012747) are from Lessios et al. (2001) and red accession numbers with asterisk (AB900024, AB909927, AB909929–AB909931, AB909933–AB909935, AB909942, AB909945, AB909947, AB909949, AB909953, AB909955, AB909957) are from Chow et al. (2014).
Figure 2 from: Chow S, Konishi K, Mekuchi M, Tamaki Y, Nohara K, Takagi M, Niwa K, Teramoto W, Manabe H, Kurogi H, Suzuki S, Ando D, Jinbo T, Kiyomoto M, Hirose M, Shimomura M, Kurashima A, Ishikawa T, Kiyomoto S (2016) DNA barcoding and morphological analyses revealed validity of Diadema clarki Ikeda, 1939 (Echinodermata, Echinoidea, Diadematidae). ZooKeys 585: 1-16. https://doi.org/10.3897/zookeys.585.8161
Figure 2 - Underwater aboral view of phenotype I of Diadema-sp, KPM-NJL000035, original specimen number is AT1.
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