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464 results for “montane forest”
Figure 3 from: Lehr E, von May R, Moravec J, Cusi JC (2017) A new species of Phrynopus (Amphibia, Anura, Craugastoridae) from upper montane forests and high Andean grasslands of the Pui Pui Protected Forest in central Peru. ZooKeys 713: 131-157. https://doi.org/10.3897/zookeys.713.20776
Figure 3 - Bayesian maximum clade-credibility tree for species included in this study based on a 2684-bp concatenated partitioned dataset (16S, 12S, COI, RAG1, Tyr) analyzed in MrBayes (posterior probabilities are indicated at each node).
Figure 8 from: Lehr E, von May R, Moravec J, Cusi JC (2017) A new species of Phrynopus (Amphibia, Anura, Craugastoridae) from upper montane forests and high Andean grasslands of the Pui Pui Protected Forest in central Peru. ZooKeys 713: 131-157. https://doi.org/10.3897/zookeys.713.20776
Figure 8 - Female paratype of Phrynopus inti sp. n. (MUSM 31968, SVL 40.4 mm) in dorsolateral (A), dorsal (B), and ventral views (C). Photos by E. Lehr and J. Moravec (A).
Figure 2 from: Lehr E, von May R, Moravec J, Cusi JC (2017) A new species of Phrynopus (Amphibia, Anura, Craugastoridae) from upper montane forests and high Andean grasslands of the Pui Pui Protected Forest in central Peru. ZooKeys 713: 131-157. https://doi.org/10.3897/zookeys.713.20776
Figure 2 - Pui Pui Protected Forest indicated in red outline with collecting sites (1–6) of Phrynopus inti sp. n., star indicating type locality, and the estimated distributional area of 101.3 km2 in blue. 1 = Toldopampa valley, 3670 m a.s.l., 2 = Satipo-Toldopampa Road at km 134, 3350 m a.s.l., 3 = Quebrada Tasta, 3609 m a.s.l., 4 = Polylepis forest patch near trail from Tasta to Tarhuish, 3886 m a.s.l., 5 = Antuyo, 3700 m a.s.l., 6 = close to Laguna Sinchon, 3890 m a.s.l. Map by J.C. Cusi.
Figure 10 from: Lehr E, von May R, Moravec J, Cusi JC (2017) A new species of Phrynopus (Amphibia, Anura, Craugastoridae) from upper montane forests and high Andean grasslands of the Pui Pui Protected Forest in central Peru. ZooKeys 713: 131-157. https://doi.org/10.3897/zookeys.713.20776
Figure 10 - Type locality and habitats of Phrynopus inti sp. n. Satipo-Toldopampa Road at km 134 on left side of street coming from Satipo, 3350 m a.s.l., 23 June 2013 (A); Quebrada Toldopampa, 3670 m a.s.l., 22 June 2013 (B); Type locality, Quebrada Tasta, 3609 m a.s.l., 20 May 2012 (C); Antuyo, PPPF, 3700 m a.s.l., 27 June 2013 (D); Laguna Sinchon, PPPF, 3890 m a.s.l., 29 June 2013 (E). Photos by E. Lehr.
Figs 1–5 in Oribatid Mites (Acari: Oribatida) From Venezuela, Ii. New Or Rare Species From Montane Forests
Figs 1–5. Beckiella costulata sp. n.: 1 = body in dorsal view, 2 = leg IV, 3 = body in ventral view, 4 = rostral part of the podosoma in lateral view, 5 = rostral part of the podosoma in dorsal view
Supplementary material 1 from: Moravec J, Šmíd J, Štundl J, Lehr E (2018) Systematics of Neotropical microteiid lizards (Gymnophthalmidae, Cercosaurinae), with the description of a new genus and species from the Andean montane forests. ZooKeys 774: 105-139. https://doi.org/10.3897/zookeys.774.25332
Supplementary phylogenetic trees and table of analysed samples :
Figure 3 from: Moravec J, Šmíd J, Štundl J, Lehr E (2018) Systematics of Neotropical microteiid lizards (Gymnophthalmidae, Cercosaurinae), with the description of a new genus and species from the Andean montane forests. ZooKeys 774: 105-139. https://doi.org/10.3897/zookeys.774.25332
Figure 3 . Maximum clade credibility tree for 107 species (both described and candidate) of the subfamily Cercosaurinae from the BEAST analysis. The dataset for the analysis contained 357 samples with most species being represented by multiple samples, but for visual purposes only one sample was retained for each species in this tree. Nodal support is shown in the ML/MrBayes/BEAST order; supported nodes are marked with asterisks, unsupported with dashes. Monophyletic groups at the genus level are highlighted by grey rectangles. Vertical grey bars connect species that supposedly belong to one genus, but whose monophyly was not supported in any of the phylogenetic analyses: the genera Proctoporus, Echinosaura, and Oreosaurus. Outgroups are not depicted. For a full BEAST tree see Fig. S3.
Figure 2 from: Moravec J, Šmíd J, Štundl J, Lehr E (2018) Systematics of Neotropical microteiid lizards (Gymnophthalmidae, Cercosaurinae), with the description of a new genus and species from the Andean montane forests. ZooKeys 774: 105-139. https://doi.org/10.3897/zookeys.774.25332
Figure 2 Phylogenetic tree showing relationships between cercosaurine genera or, in cases when genera were not recovered as monophyletic, their major lineages. The tree is a strict consensus tree based on the results of three analytical approaches undertaken: ML, MrBayes, BEAST. The 24 lineages shown were supported in all three phylogenetic analyses. Relationships between genera are shown as dichotomies only for nodes that were strongly supported in all three analyses; otherwise, nodes were collapsed into polytomies to emphasise how little we can tell about the phylogeny of the subfamily Cercosaurinae with the data currently available. Outgroups are not depicted. For a tree that shows variability within genera see Fig. 3, for full trees see Fig. S1–S3. The pie charts on the right show i) species richness of the genera indicated by circle size with the proportion of species included in the analyses highlighted in red (left column), and ii) number of samples (log scale) available for each genus indicated by circle size with the proportion of material newly sequenced in this study in red (right column).
Figure 1 from: Moravec J, Šmíd J, Štundl J, Lehr E (2018) Systematics of Neotropical microteiid lizards (Gymnophthalmidae, Cercosaurinae), with the description of a new genus and species from the Andean montane forests. ZooKeys 774: 105-139. https://doi.org/10.3897/zookeys.774.25332
Figure 1 Map showing localities of samples newly sequenced for this study. Locality numbers correspond to those in Table 1. Localities of the new genus described here, Selvasaura gen. n., are marked with triangles; red triangle indicates the type locality of its type species, S. brava sp. n.; green triangle locality of paratypes MUSM 32718 and NMP6V 75655; yellow triangles localities published by Torres-Carvajal et al. (2016): A Provincia de Napo, Wildsumaco Wildlife Sanctuary, Ecuador B Provincia de Zamora Chinchipe, El Pangui, Ecuador C region San Martin, Provincia Mariscal Cáceres, Laurel, Peru. White circles denote major cities.
Figure 4 from: Moravec J, Šmíd J, Štundl J, Lehr E (2018) Systematics of Neotropical microteiid lizards (Gymnophthalmidae, Cercosaurinae), with the description of a new genus and species from the Andean montane forests. ZooKeys 774: 105-139. https://doi.org/10.3897/zookeys.774.25332
Figure 4 A Maximum clade credibility tree of Cercosaurinae based on the BEAST analysis with the position of Selvasaura gen. n. and Potamites highlighted in red B A close-up of the red part of the tree in the left showing the phylogenetic relationships between and within Selvasaura gen. n. and Potamites. Nodal support is shown in the ML/MrBayes/BEAST order; supported nodes are marked with asterisks, unsupported with dashes. Note that the basal node in the inset is not supported and that the sister relationship of the two genera may not be real.
Figure 7 from: Moravec J, Šmíd J, Štundl J, Lehr E (2018) Systematics of Neotropical microteiid lizards (Gymnophthalmidae, Cercosaurinae), with the description of a new genus and species from the Andean montane forests. ZooKeys 774: 105-139. https://doi.org/10.3897/zookeys.774.25332
Figure 7 Paratypes of Selvasaura brava sp. n. Dorsal (A) and ventral (B) view of adult male (NMP6V 75653) with a detail of an everted hemipenis (C) D adult female (MUSM 32718) E – juvenile (NMP6V 75655). Note the generally uniform colouration of the female compared to the male and juvenile specimens. Photographs by J. Moravec.
Figure 8 from: Moravec J, Šmíd J, Štundl J, Lehr E (2018) Systematics of Neotropical microteiid lizards (Gymnophthalmidae, Cercosaurinae), with the description of a new genus and species from the Andean montane forests. ZooKeys 774: 105-139. https://doi.org/10.3897/zookeys.774.25332
Figure 8 Type locality of Selvasaura brava sp. n. The lizards were active during the day basking and foraging in the leaves of the roof and on the shack pillars. They used the leaves on the roof as a refuge to hide in. Photograph by J. Moravec.
Figure 5 from: Moravec J, Šmíd J, Štundl J, Lehr E (2018) Systematics of Neotropical microteiid lizards (Gymnophthalmidae, Cercosaurinae), with the description of a new genus and species from the Andean montane forests. ZooKeys 774: 105-139. https://doi.org/10.3897/zookeys.774.25332
Figure 5 Drawing of the head of the holotype of Selvasaura brava sp. n. (MUSM 32738). A lateral, B dorsal C ventral view. Scale bar: 5 mm. Drawing by J. Moravec.
Figure 3 from: Rocha-Méndez A, Sánchez-González LA, Arbeláez-Cortés E, Navarro-Sigüenza AG (2018) Phylogeography indicates incomplete genetic divergence among phenotypically differentiated montane forest populations of Atlapetes albinucha (Aves, Passerellidae). ZooKeys 809: 125-148. https://doi.org/10.3897/zookeys.809.28743
Figure 3 Bayesian skyline plot derived from the concatenated gene dataset of Atlapetesalbinucha species. Time in millions of years. Population size change (Ne*generation time) in the Y axis. Mean estimate is shown as a thick solid line, and the 95% HDP limits are shown in solid purple color area surrounding the mean estimate.
Figure 4 from: Rocha-Méndez A, Sánchez-González LA, Arbeláez-Cortés E, Navarro-Sigüenza AG (2018) Phylogeography indicates incomplete genetic divergence among phenotypically differentiated montane forest populations of Atlapetes albinucha (Aves, Passerellidae). ZooKeys 809: 125-148. https://doi.org/10.3897/zookeys.809.28743
Figure 4 Maxent ENMs for A.albinucha species projected into present and past scenarios. Darker blue areas depict higher logistic prediction values. ENM projected in the a present b the Mid-Holocene Climatic Optimum (MH) c the Last Glacial Maximum (LGM) and d the Last Interglacial (LIG).
Figure 1 from: Rocha-Méndez A, Sánchez-González LA, Arbeláez-Cortés E, Navarro-Sigüenza AG (2018) Phylogeography indicates incomplete genetic divergence among phenotypically differentiated montane forest populations of Atlapetes albinucha (Aves, Passerellidae). ZooKeys 809: 125-148. https://doi.org/10.3897/zookeys.809.28743
Figure 1 Atlapetesalbinucha distribution shown in green stapled lines, based on Sánchez-González et al. (2015) and Natureserve (http://natureserve.org). Blue dots depict tissue samples used in the present study. Red dots depict records of the species used to construct the distribution model. Bird pictures depict the geographic regions where color morphs are found. Blue line depicts the location of the putative distribution barrier of the morphs in Chiapas.
Figure 2 from: Rocha-Méndez A, Sánchez-González LA, Arbeláez-Cortés E, Navarro-Sigüenza AG (2018) Phylogeography indicates incomplete genetic divergence among phenotypically differentiated montane forest populations of Atlapetes albinucha (Aves, Passerellidae). ZooKeys 809: 125-148. https://doi.org/10.3897/zookeys.809.28743
Figure 2 A Dated Bayesian maximum clade credibility tree showing phylogenetic relationships among members of Atlapetesalbinucha species. Node bars depict 95% HDP interval, scale bar represents millions of years. Nodal values above branches indicate posterior probabilities/ bootstrap supports of BI/ML. Capital letters depict haplotypes. An asterisk (*) indicate birds representing yellow morphs B Median-joining haplotype network for the concatenated dataset. Each color depicts the geographic provenance of samples: green-northern Chiapas (subspecies albinucha), red-southern Chiapas (subspeciesgriseipectus), blue-El Salvador (subspecies griseipectus), yellow-Honduras (subspecies fuscipygius) and light blue-Colombia (subspecies gutturalis). Each branch represents a single nucleotide change, transversal black lines along branches depict the occurrence of three mutations. Gray dots indicate median vectors inferred for the data.
Figures 1-4 in Apu, a new genus of Euchromiina (Lepidoptera: Erebidae: Arctiinae: Arctiini), and a new species from the montane forests of southeastern Peru
Figures 1-4. Apu mooreorum sp. nov. 1-2. Holotype male. 1. Dorsal view. 2. Ventral view. 3-4. Female. 3. Dorsal view. 4. Ventral view. Scale: 5 mm. / Apu mooreorum sp. nov. 1-2. Holotipo macho. 1. Vista dorsal. 2. Vista ventral. 3-4. Hembra. 3. Vista dorsal. 4. Vista ventral. Escala: 5 mm.
Figures 13-14 in Apu, a new genus of Euchromiina (Lepidoptera: Erebidae: Arctiinae: Arctiini), and a new species from the montane forests of southeastern Peru
Figures 13-14. Apu flavicornis (Druce, 1893) comb. nov. (Genitalia # JGA-710, MUSM). 13. Dorsal view. 14. Ventral view. 15. Lateral view. 16. Aedeagus. Scale: 1 mm. / Apu flavicornis (Druce, 1893) comb. nov. (Genitalia # JGA-710, MUSM). 13-15. 13. Vista dorsal. 14. Vista ventral. 15. Vista lateral. 16. Edeago. Escala: 1 mm.
FIGURE 1 in Nasa ojedae (Loasaceae): A new species from the montane forests of Reserva El Corazón, western Andes of Ecuador
FIGURE 1. Distribution map of Nasa ojedae (*).
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.