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93 results for “Thraupidae”
Figure 5. A in Home ranges and aspects of the natural history of the Black-masked Finch Coryphaspiza melanotis (Grayı 1840) (Avesı Thraupidae) in central Cerradoı Brazil
Figure 5. A nest of the Black-masked Finch (Coryphaspiza melanotis) found in a campo sujo patch at Parque Nacional da Chapada dos Veadeirosı central Brazilı in November 2008. The egg and the nestling are in detail.
FIGURES 5–9. Myrsidea larvatae. 5 in Chewing lice (Phthiraptera) from buntings, cardinals and tanagers (Passeriformes: Emberizidae, Cardinalidae, Thraupidae) from Costa Rica, with descriptions of two new species of the genus Myrsidea (Phthiraptera: Menoponidae)
FIGURES 5–9. Myrsidea larvatae. 5, Female dorsoventral metathorax and abdomen. 6, Male genital sac sclerite. 7–9. M. mitrospingi. 7, Male. 8, Male genitalia. 9, Male genitalia sac sclerite.
FIGURES 1–4. Myrsidea poliogasteri. 1 in Chewing lice (Phthiraptera) from buntings, cardinals and tanagers (Passeriformes: Emberizidae, Cardinalidae, Thraupidae) from Costa Rica, with descriptions of two new species of the genus Myrsidea (Phthiraptera: Menoponidae)
FIGURES 1–4. Myrsidea poliogasteri. 1, Female dorsoventral metathorax and abdomen. 2, Male. 3, Male genitalia. 4, Male genital sac sclerite.
FIGURE 7 in Five new species of Myrsidea Waterston (Phthiraptera: Menoponidae) from tanagers (Passeriformes: Thraupidae) in Panama
FIGURE 7. Phylogeny based on maximum likelihood analysis of 379 bp of the mitochondrial COI gene. Search involved 10 random addition replicates using a GTR+I+G model. Branches are proportional to substitutions per site (scale indicated). Bold names indicate species described in this study. M. = Myrsidea.
FIGURE 2 in Isospora ramphoceli n. sp. (Apicomplexa: Eimeriidae) from the Brazilian tanager (Aves: Passeriformes: Thraupidae) Ramphocelus bresilius dorsalis Sclater, 1855
FIGURE 2. Photographs (a–c) of sporulated oocysts of Isospora ramphoceli n. sp., a new coccidium species recovered from the Brazilian tanager Ramphocelus bresilius dorsalis. Scale-bar: 10µm.
FIGURE 1 in Isospora ramphoceli n. sp. (Apicomplexa: Eimeriidae) from the Brazilian tanager (Aves: Passeriformes: Thraupidae) Ramphocelus bresilius dorsalis Sclater, 1855
FIGURE 1. Line drawings of Isospora ramphoceli n. sp., a new coccidium species recovered from the Brazilian tanager Ramphocelus bresilius dorsalis. (a) sporulated oocyst with its respective variations of (b, c) detached Stieda and substieda bodies. Scale-bar: 10µm for oocysts; and 5µm for Stieda and substieda bodies.
FIGURE 2 in The Yellow-green Bush-tanager is neither a bush-tanager nor a sparrow: Molecular phylogenetics reveals that Chlorospingus flavovirens is a tanager (Aves: Passeriformes; Thraupidae)
FIGURE 2. Maximum clade credibility trees reconstructed in BEAST for the core tanagers (Thraupinae) based on ND2 (A) and Cyt b (B) genes. While the ND2 topology indicates that Chlorospingus flavovirens is closely related to Bangsia arcaei, the Cyt b topology points to C. flavovirens as sister to all Bangsia species, although this relationship is weakly supported. For each node, the posterior probability from the BEAST analysis is given above the branch leading to that node, and the maximum likelihood value from the RAxML analysis is given below the branch. Nodes that lacked bootstrap support based on 1000 maximum-likelihood replicates are indicated by ''–''. Numbers in front on taxon names correspond to sample ID (see Supplementary file).
FIGURE 3 in The Yellow-green Bush-tanager is neither a bush-tanager nor a sparrow: Molecular phylogenetics reveals that Chlorospingus flavovirens is a tanager (Aves: Passeriformes; Thraupidae)
FIGURE 3. Maximum clade credibility tree reconstructed in BEAST for the Core Tanagers (Thraupinae) based on concatenated ND2 and Cyt b sequences. The phylogeny indicates that Chlorospingus flavovirens is nested within a clade of Bangsia species, and most closely related to Bangsia arcaei. For each node, the posterior probability from the BEAST analysis is given above the branch leading to that node, and the maximum likelihood value from the RAxML analysis is given below the branch. Nodes that lacked bootstrap support based on 1000 maximum-likelihood replicates are indicated by ''–''. Illustrations are from C. flavovirens and Bangsia species (courtesy of Lynx Edicions; Handbook of the birds of the world, Vol. 16, 2011). Numbers in front on taxon names correspond to sample ID (see Supplementary file).
FIGURE 1 in The Yellow-green Bush-tanager is neither a bush-tanager nor a sparrow: Molecular phylogenetics reveals that Chlorospingus flavovirens is a tanager (Aves: Passeriformes; Thraupidae)
FIGURE 1. Maximum clade credibility tree reconstructed in BEAST showing relationships of Chlorospingus flavovirens and representatives of six families of nine-primaried oscines, based on ATPase 6 & 8 genes. The phylogeny indicates that Chlorospingus flavovirens is more closely related to tanagers (Thraupidae) than to other Chlorospingus species (Emberizidae). For each node, the posterior probability from the BEAST analysis is given above the branch leading to that node, and the maximum likelihood value from the RAxML analysis is given below the branch. Nodes that lacked bootstrap support based on 1000 maximum-likelihood replicates are indicated by ''–''. Illustrations are from C. flavovirens and some selected Chlorospingus species (courtesy of Lynx Edicions; Handbook of the Birds of the World, Vol. 16, 2011). Numbers in front on taxon names correspond to sample ID (see Supplementary file).
FIGURE 5 in A genus-level classification of the family Thraupidae (Class Aves: Order Passeriformes)
FIGURE 5. Maximum clade credibility tree from the Bayesian analyses of Burns et al. (2014). Subfamily Thraupinae shown. Labeling and format as in Fig. 1.
FIGURE 4 in A genus-level classification of the family Thraupidae (Class Aves: Order Passeriformes)
FIGURE 4. Maximum clade credibility tree from the Bayesian analyses of Burns et al. (2014). Subfamily Diglossinae shown. Labeling and format as in Fig. 1.
FIGURE 2 in A genus-level classification of the family Thraupidae (Class Aves: Order Passeriformes)
FIGURE 2. Maximum clade credibility tree from the Bayesian analyses of Burns et al. (2014). Subfamilies Coerebinae and Tachyphoninae shown. Labeling and format as in Fig. 1.
FIGURE 1 in A genus-level classification of the family Thraupidae (Class Aves: Order Passeriformes)
FIGURE 1. Maximum clade credibility tree from the Bayesian analyses of Burns et al. (2014). Subfamilies Catamblyrhynchinae, Charitospizinae, Orchesticinae, Nemosiinae, Emberizoidinae, Porphyrospizinae, Hemithraupinae, Dacninae, and Saltatorinae shown. Branch lengths are proportional to the number of nucleotide substitutions, and only strongly supported nodes (>70 maximum likelihood bootstrap or>0.95 posterior probability) are shown. Nodes that fail to meet either support threshold are collapsed to polytomies. The posterior probability from the Bayesian analysis is given above the branch leading to each node, and the maximum likelihood bootstrap value is given below that branch. Circled numbers correspond to recommended changes described in the text. Names along the backbone represent the subfamily classification proposed in Burns et al. (2014). Names at terminals correspond to classification alternative 1 (from Table 1). Names in parentheses are used in Clements et al. (2015). Sister clades and polytomies are arranged from least to most speciose.
FIGURE 3 in A genus-level classification of the family Thraupidae (Class Aves: Order Passeriformes)
FIGURE 3. Maximum clade credibility tree from the Bayesian analyses of Burns et al. (2014). Subfamilies Sporophilinae and Poospizinae shown. Labeling and format as in Fig. 1.
FIGURES 7–12. 7–9 in Chewing lice of the genus Myrsidea (Phthiraptera: Menoponidae) from the Cardinalidae, Emberizidae, Fringillidae and Thraupidae (Aves: Passeriformes) from Costa Rica, with descriptions of four new species
FIGURES 7–12. 7–9. Myrsidea roubalovae sp. nov. 7, Female (dorsal side on the left, ventral side on the right). 8, Male sternite II. 9, Male genital sac sclerite. 10–12. Myrsidea rubica sp. nov. 10, Female (dorsal side on the left, ventral side on the right). 11, Male sternite II. 12, Male genital sac sclerite. Scales 0.50 mm (Figs. 7, 10), 0.10 mm (Figs. 8, 11), 0.05 mm (Figs. 9, 12).
FIGURES 1–6. 1–3 in Chewing lice of the genus Myrsidea (Phthiraptera: Menoponidae) from the Cardinalidae, Emberizidae, Fringillidae and Thraupidae (Aves: Passeriformes) from Costa Rica, with descriptions of four new species
FIGURES 1–6. 1–3. Myrsidea bidentata sp. nov. 1, Female (dorsal side on the left, ventral side on the right). 2, Male sternite II. 3, Male genital sac sclerite. 4–6. Myrsidea dolejskae sp. nov. 4, Female (dorsal side on the left, ventral side on the right). 5, Male sternite II. 6, Male genital sac sclerite. Scales 0.50 mm (Figs. 1, 4), 0.10 mm (Figs. 2, 5), 0.05 mm (Figs. 3, 6).
FIGURE 5 in A new genus for the Blue-and-yellow Tanager (Aves: Passeriformes): a suggested adjustment to the classification of the Thraupidae
FIGURE 5. Ventral, lateral and dorsal view on the plumage similarity between Pipraeidea melanonota (left specimen in each panel: AMNH 316184) and Dubusia castaneoventris (right specimen: AMNH 820617).
FIGURE 2 in A new genus for the Blue-and-yellow Tanager (Aves: Passeriformes): a suggested adjustment to the classification of the Thraupidae
FIGURE 2. Details of the plumage color pattern of Pipraeidea melanonota and "Thraupis" bonariensis in ventral (left panel) and lateral (right panel) view. From left to right: P. m. venezuelensis (AMNH 512610), P. m. melanonota (AMNH 147177), T. b. darwinii (AMNH 820730), and T. b. bonariensis (AMNH 322068).
FIGURE 1 in A new genus for the Blue-and-yellow Tanager (Aves: Passeriformes): a suggested adjustment to the classification of the Thraupidae
FIGURE 1. Ventral (left panel) and dorsal (right panel) view of variation in the male plumage of all taxa in Pipraeidea melanonota and "Thraupis" bonariensis. Upper row: P. m. venezuelensis (three specimens: AMNH 512622, 110138, and 512610) and P. m. melanonota (four specimens: AMNH 774284, 316184, 322066, 147177); lower row: T. b. darwinii (AMNH 820730), T. b. composita (AMNH 138349), T. b. schulzei (AMNH 142071) and T. b. bonariensis (two specimens: AMNH 322068 and 798091).
FIGURE 8 in Evidence of hybrid origin for Tachyphonus nattereri Pelzeln, 1870 (Aves: Thraupidae)
FIGURE 8. Range of Tachyphonus cristatus (circles) and T. luctuosus (triangles) in southwestern Brazil. Type locality of T. nattereri (Cáceres) is indicated by the white star. The place of collection of the purported female of T. nattereri (Salto do Jirau) is indicated by the black star. Limits of the ecoregions follow Olson et al. (2001). Occurrences of the taxa studied are based on the specimens examined, records in the Wikiaves Portal (www.wikiaves.com.br) and key references (Naumburg 1930; Willis 1976; Lopes et al. 2009).
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