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FIGURE 8 in Taxonomic circumscription of Adenomera martinezi (Bokermann, 1956) (Anura: Leptodactylidae: Leptodactylinae) with the recognition of a new cryptic taxon through a bioacoustic approach
FIGURE 8. Adenomera saci sp. nov., holotype (AAG-UFU 1339), adult male. Dorsal (A) and lateral (B) views of head, and ventral views of foot (C) and hand (D).
FIGURE 7 in Taxonomic circumscription of Adenomera martinezi (Bokermann, 1956) (Anura: Leptodactylidae: Leptodactylinae) with the recognition of a new cryptic taxon through a bioacoustic approach
FIGURE 7. Live adult specimens of Adenomera saci sp. nov. from Pontal do Araguaia, Mato Grosso: (A) Voucher male AAG- UFU 0208 (SVL 21.5 mm); (B) Male AAG-UFU 1747 (SVL 22.2 mm); (C) Male AAG-UFU 1745 (SVL 22.6 mm); (D) Female AAG-UFU 1748 (SVL 24.2 mm).
FIGURE 12. A in Taxonomic circumscription of Adenomera martinezi (Bokermann, 1956) (Anura: Leptodactylidae: Leptodactylinae) with the recognition of a new cryptic taxon through a bioacoustic approach
FIGURE 12. A scatterplot on the first two principal components (PCs) of bioacoustic variables of Adenomera saci sp. nov. populations. Open triangles (N = 7 individuals from the type locality, Chapada dos Veadeiros, Goiás); Filled triangles (N = 4 individuals from Cristalina, Goiás); Circles (N = 7 individuals from Pontal do Araguaia, Mato Grosso); Square (N = 1 individual from Alto Araguaia, Mato Grosso).
FIGURES 1–3 in On the Dermestidae (Insecta: Coleoptera) from Rey´s collection. Part 2. Designation of neotype of Anthrenus pimpinellae var. incertus Mulsant et Rey, 1868 and recognition of a new synonymy within Palaearctic Anthrenus Geoffroy, 1762
FIGURES 1–3. Neotype of Anthrenus pimpinellae v. incertus Mulsant & Rey, 1868 (=Anthrenus (Anthrenus) delicatus Kiesenwetter, 1851), male: 1. antenna (left); 2. male genitalia; 3. abdominal segment IX.
FIGURE 8 in Molecular and morphological data support recognition of a new genus of New World direct-developing frog (Anura: Terrarana) from an under-sampled region of South America
FIGURE 8. Distribution of Tachiramantis in the Cordillera de Mérida of Venezuela and the Cordillera Oriental of Colombia. The range gap corresponds to the relatively low-elevation Táchira Depression. Known point localities of each species are indicated, based on specimens listed in the Appendix, as well as those listed in Rivero (1984), and those with data on GBIF (www.gbif.org).
FIGURE 7. High resolution X in Molecular and morphological data support recognition of a new genus of New World direct-developing frog (Anura: Terrarana) from an under-sampled region of South America
FIGURE 7. High resolution X-ray computed tomography of digits of Tachiramantis prolixodiscus (KU 132729, adult male); (A) manus, (B) pes.
FIGURE 6. High resolution X in Molecular and morphological data support recognition of a new genus of New World direct-developing frog (Anura: Terrarana) from an under-sampled region of South America
FIGURE 6. High resolution X-ray computed tomography of skull of Tachiramantis prolixodiscus (KU 132729, adult male); (A) dorsal view, (B) ventral view, (C) side view.
FIGURE 5. High resolution X in Molecular and morphological data support recognition of a new genus of New World direct-developing frog (Anura: Terrarana) from an under-sampled region of South America
FIGURE 5. High resolution X-ray computed tomography of Tachiramantis prolixodiscus (KU 132729, adult male); dorsal view.
FIGURE 4 in Molecular and morphological data support recognition of a new genus of New World direct-developing frog (Anura: Terrarana) from an under-sampled region of South America
FIGURE 4. Tachiramantis prolixodiscus specimen KU 132729, adult male paratype of the type species of Tachiramantis.
FIGURE 3 in Molecular and morphological data support recognition of a new genus of New World direct-developing frog (Anura: Terrarana) from an under-sampled region of South America
FIGURE 3. Tachiramantis species in life. (A) Tachiramantis prolixodiscus specimen CBA 7510, adult female from Calderas, Barinas, Venezuela. (B) Tachiramantis lentiginosus specimen CVULA 9100, adult male from Guaraque, Mérida, Venezuela.
FIGURE 2 in Molecular and morphological data support recognition of a new genus of New World direct-developing frog (Anura: Terrarana) from an under-sampled region of South America
FIGURE 2. Maximum likelihood phylogeny of Terrarana, based on analysis of the genes 12S, tRNA-Val, 16S, RAG1, and TYR. Support values (Bayesian posterior probabilities/ML bootstrap support/MP bootstrap support) are indicated for nodes bearing on intergeneric relationships (i.e., at or above the genus level) with ML bootstrap support ≥ 50%.
FIGURE 1 in Molecular and morphological data support recognition of a new genus of New World direct-developing frog (Anura: Terrarana) from an under-sampled region of South America
FIGURE 1. (A) 2.5 degree grid cell map of terraranan distribution, depicting degree of sampling in each grid cell as standardized residuals of a linear regression of the number of species with available DNA sequences vs. total number of species. (B) Scatterplot of number of species with available DNA sequences vs. total number of species for all 287 grid cells.
FIGURE 11 in Morphological data support the recognition of four species in the genus Sirystes Cabanis & Heine, 1859 (Aves: Tyrannidae)
FIGURE 11. Range of Sirystes albogriseus (squares). Symbols indicating localities from examined specimens (see Appendix I) are marked with a dot. Data from other sources were obtained from an online database (ORNISNET 2015) or the literature (Sclater 1888; Hellmayr 1927; Wetmore 1972; Leck 1979; Hilty & Brown 1983, 1986; Strewe 2000; Ridgely & Greenfield 2001; Jahn & Mena 2002; Parra-Hernández et al. 2007; Losada-Prado & Molina-Martínez 2011; Donegan 2013). See Fig. 10 regarding identification of records. Records from the Magdalena valley (Parra-Hernández et al. 2007; Losada-Prado & Molina- Martínez 2011) represent large range extensions and require confirmation.
FIGURE 10 in Morphological data support the recognition of four species in the genus Sirystes Cabanis & Heine, 1859 (Aves: Tyrannidae)
FIGURE 10. Range of Sirystes sibilator (circles). Symbols indicating localities from examined specimens (see Appendix I) are marked with a white dot. Data from other sources were obtained from an online database (ORNISNET 2015) or the literature (Hellmayr 1927; Zimmer 1937; Pinto 1944; Willis 1976; Darrieu 1987; Willis & Oniki 1990; Davis 1993; Parker et al. 1993; Zimmer et al. 1997; Parrini et al. 1999; Flores et al. 2001; Hennessey et al. 2003; Pacheco & Olmos 2005; Silveira et al. 2005; Pacheco & Olmos 2006; Pivatto et al. 2006; Lopes & Braz 2007; Olmos & Britto 2007; Pacheco et al. 2007; Vasconcelos & D'Angelo Neto 2007; Vidoz et al. 2010; Santos et al. 2011; Donegan 2013). Only key references are presented, and many do not mention which taxon of the genus was recorded, so the identification presented here is based on geography.
FIGURE 9 in Morphological data support the recognition of four species in the genus Sirystes Cabanis & Heine, 1859 (Aves: Tyrannidae)
FIGURE 9. Contact zone between Sirystes albocinereus (triangles) and S. sibilator (circles), including records from examined specimens (symbols marked with a dot), online database and literature records (see the legends of Figures 10 and 12 for sources). Localities of possible hybrids between these two taxa are indicated by the asterisks (see text for details). Note that these species are parapatric, not allopatric as mapped by Donegan (2013).
FIGURE 8. Possible hybrid between Sirystes albocinereus and S in Morphological data support the recognition of four species in the genus Sirystes Cabanis & Heine, 1859 (Aves: Tyrannidae)
FIGURE 8. Possible hybrid between Sirystes albocinereus and S. sibilator from Santa Cruz, Bolivia, compared with other taxa of Sirystes. From above to below: holotype of S. subcanescens from Amapá, Brazil (CM 68697), S. albocinereus from Santa Cruz, Bolivia (CM 79597), possible hybrid S. albocinereus x S. sibilator from Río Quizer, Santa Cruz, Bolivia (CM 80416) and S. sibilator from Misiones, Argentina (CM 143682).
FIGURE 7 in Morphological data support the recognition of four species in the genus Sirystes Cabanis & Heine, 1859 (Aves: Tyrannidae)
FIGURE 7. Scatterplots of the first versus the second principal component scores of a Principal Component Analysis (Varimax rotated) of morphometric variables measured from specimens of the two Amazonian taxa in the genus Sirystes, S. albocinereus (n = 34) and S. subcanescens (n = 15) Data for males and females pooled.
FIGURE 5 in Morphological data support the recognition of four species in the genus Sirystes Cabanis & Heine, 1859 (Aves: Tyrannidae)
FIGURE 5. Correlation between latitude of the collection site and wing length of specimens of Sirystes s. sibilator and S. s. atimastus examined in this study.
FIGURE 4 in Morphological data support the recognition of four species in the genus Sirystes Cabanis & Heine, 1859 (Aves: Tyrannidae)
FIGURE 4. Clinal pattern of color variation (especially on yellowish/grayish tones) observed in Brazilian specimens of Sirystes sibilator/atimastus. From left to right, specimens are ordered from north to south: Pará (AMNH 431130), Piauí (AMNH 243974), Mato Grosso (AMNH 32995), Mato Grosso do Sul (AMNH 319490), Minas Gerais (AMNH 316943) and Paraná (AMNH 318891).
FIGURE 6 in Morphological data support the recognition of four species in the genus Sirystes Cabanis & Heine, 1859 (Aves: Tyrannidae)
FIGURE 6. Two young birds (left) in juvenal plumage compared with two definitive-plumaged birds from the northern portion of the range of the Sirystes sibilator/atimastus group. From left to right: specimens from São Paulo (MZUSP 4410), Goiás (MZUSP 15483), Mato Grosso (MZUSP 69362) and Pará (MZUSP 40726).
ScienceDex guides
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These curated guides explain access requirements, typical timelines, costs, and reuse considerations for widely used research datasets.
Allen Brain Atlas
Allen Brain Atlas is an Allen Institute collection of brain map atlases, datasets, APIs, and analysis tools covering mouse, human, and non-human primate brain resources.
Annotated Behaviour and Observability Dataset (ABODe)
ABODe is a University of Edinburgh DataShare dataset for behavior classification in group-housed mice using home-cage video, identities, bounding boxes, ground-plate positions, and annotator labels.
DANDI Archive for NWB datasets
DANDI is a BRAIN Initiative archive for publishing and sharing neurophysiology data, including electrophysiology, optophysiology, and behavioral data packaged as NWB and related standards.
International Brain Laboratory public data
The International Brain Laboratory public data releases expose standardized mouse decision-making experiments, including Neuropixels recordings, widefield calcium imaging, behavior, and session metadata accessed through the ONE API.
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.