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Fig. 2 in de Influencia edáfica en la creación de cuevas Chaetophractus vellerosus (Cingulata: Chlamyphoridae) en Matagusanos, San Juan, Argentina
Fig. 2. Mapa de ubicación geográfica del área de estudio y divisiones del abanico aluvial estudiado.
Fig. 1 in de Influencia edáfica en la creación de cuevas Chaetophractus vellerosus (Cingulata: Chlamyphoridae) en Matagusanos, San Juan, Argentina
Fig. 1. Mapa de ubicación de la provincia en la República Argentina y ubicación geográfica del departamento de Ullum
Figura 2 in Primera Argentina cita de Tarentola mauritanica (Squamata: Phyllodactylidae) en la provincia de Neuquén,
Figura 2. Distribución de Tarentola mauritanica en la Argentina. Los puntos azules corresponden a los registros previos a este trabajo. El punto amarillo representa el primer registro de la especie para la provincia de Neuquén.
Figura 3 in Reproducción del gaviotín sudamericano Sterna hirundinacea (Charadriiformes: Laridae) en el Lago Epecuén, Buenos Aires, Argentina
Figura 3: Esquema que expone la secuencia de movimientos que realizaron los adultos observados en el punto 4 (ver tabla 1) al momento de cazar langostas sobre un pastizal: 1) vuelo corto y rectilíneo en contra del viento; 2) aleteo rápido del tipo "halconeo"; 3) picada y vuelo rápido y plano, cerca de la superficie.
Figura 2 in Reproducción del gaviotín sudamericano Sterna hirundinacea (Charadriiformes: Laridae) en el Lago Epecuén, Buenos Aires, Argentina
Figura 2: Volantón (siempre posado) y adulto (siempre en vuelo) en el momento en que lo alimentaba (punto 5 de la tabla 1). Fotos: Pablo Grilli.
Figura 5 in Reproducción del gaviotín sudamericano Sterna hirundinacea (Charadriiformes: Laridae) en el Lago Epecuén, Buenos Aires, Argentina
Figura 5: Nidos con dos y un huevo (arriba, izquierda y derecha, respectivamente) de Gaviotín Sudamericano, pichón en nido y huevo depredado (abajo, izquierda y derecha, respectivamente). Fotos: Juan José Abut.
Figura 1 in Reproducción del gaviotín sudamericano Sterna hirundinacea (Charadriiformes: Laridae) en el Lago Epecuén, Buenos Aires, Argentina
Figura 1: Volantón (siempre a la izquierda) y adulto (siempre a la derecha) acarreando una presa para alimentarlo en el aire, sobre un islote del Lago Epecuén (punto 2 de la tabla 1). Fotos: Pablo Grilli.
Figure 4 in Reproducción del gaviotín sudamericano Sterna hirundinacea (Charadriiformes: Laridae) en el Lago Epecuén, Buenos Aires, Argentina
Figure 4: Map showing the location of the points, in the surroundings of Lake Epecuén, described in table 1 (adapted from Google Earth, 2020).
Fig. 3 in Trichodinids (Ciliophora) of Corydoras paleatus (Siluriformes) and Jenynsia multidentata (Cyprinodontiformes) from Argentina, with Description of Trichodina corydori n. sp. and Trichodina jenynsii n. sp.
Fig. 3. Photomicrographs of Trichodina jenynsii n. sp. from Jenynsia multidentata. A–C – Adhesive disc after dry silver impregnation. D – Macronucleus with methylene-blue staining. Scale bars: 10 μm.
Fig. 2 in Trichodinids (Ciliophora) of Corydoras paleatus (Siluriformes) and Jenynsia multidentata (Cyprinodontiformes) from Argentina, with Description of Trichodina corydori n. sp. and Trichodina jenynsii n. sp.
Fig. 2. Photomicrographs of silver nitrate-impregnated adhesive discs of trichodinids from Jenynsia multidentata. A–B – Photomicrographs of Trichodina cribbi. Scale bars: 10 μm.
Fig. 1 in Trichodinids (Ciliophora) of Corydoras paleatus (Siluriformes) and Jenynsia multidentata (Cyprinodontiformes) from Argentina, with Description of Trichodina corydori n. sp. and Trichodina jenynsii n. sp.
Fig. 1. Photomicrographs of Trichodina corydori n. sp. from Corydoras paleatus. A–B – Silver nitrate-impregnated adhesive discs. C – Methylene-blue staining of adoral ciliary spiral. D – and orcein stain of macronucleus. Scale bars: 10 μm.
Fig. 6 in Assessment of sábalo (Prochilodus lineatus) fisheries in the lower Paraná River basin (Argentina) based on hydrological, biological, and fishery indicators
Fig. 6. Sábalo fishery status according to spawning potential ratio (SPR) and fishing mortality (F) variability across time. TRP: Target reference point; LRP: Limit reference point. PS76: Puerto Sánchez 1976; PS02: Puerto Sánchez 2002; V89: Victoria 1989; V94: Victoria 94; V05: Victoria 2005; H05: Helvecia 2005.
Fig. 5. a in Assessment of sábalo (Prochilodus lineatus) fisheries in the lower Paraná River basin (Argentina) based on hydrological, biological, and fishery indicators
Fig. 5. a) Analysis of yield per recruitment for different size at first capture. b)Spawning potential ratio (SPR) over time based on the estimated exploitation rate (μ) and the capture length. PS76: Puerto Sánchez 1976; PS02: Puerto Sánchez 2002; V89: Victoria 1989; V94: Victoria 94; V05: Victoria 2005; H05: Helvecia 2005.
Fig. 4 in Assessment of sábalo (Prochilodus lineatus) fisheries in the lower Paraná River basin (Argentina) based on hydrological, biological, and fishery indicators
Fig. 4. Variation in the mean length (wide bars), the maximum length (thin bars), and the mesh size (points) between 1976 and 2005.
Fig. 2 in Assessment of sábalo (Prochilodus lineatus) fisheries in the lower Paraná River basin (Argentina) based on hydrological, biological, and fishery indicators
Fig. 2. Capture records of sábalo in the Paraná basin. The data taken from 1920 to 1988 were compiled by the National Agency of Freshwater Fisheries. The data from 1994 to 2009 correspond to the exportation records of the Sanitary National Service (SENASA). No data from 1988 to 1993 were available.
Fig. 1 in Assessment of sábalo (Prochilodus lineatus) fisheries in the lower Paraná River basin (Argentina) based on hydrological, biological, and fishery indicators
Fig. 1. Study area and the location of the main landing sites of the sábalo fisheries in the lower Paraná basin.
Fig. 3. a in Assessment of sábalo (Prochilodus lineatus) fisheries in the lower Paraná River basin (Argentina) based on hydrological, biological, and fishery indicators
Fig. 3. a) Variation of average flow from 1920 to 2009. b) Variation in the channel-connectivity index (CCI) from 1920 to 2009, expressed as a percent of the time that the water level surpasses the bankfull level (3 m). c) Variation of the floodplain connectivity index (FCI) from 1920 to 2009, expressed as the percentage of the time that the water level surpassed a height of 4.3 m flooding the alluvial valley. Vertical grey lines indicate different hydrological periods considered in this study.
Fig. 7 in Phylogeographic pattern of Jenynsia multidentata (Cyprinodontiformes: Anablepidae) in the southern boundary of the Brazilian Subregion, Argentina
Fig. 7. Population relationships described by Φ ST computed between pairs of populations inferred from mitochondrial DNA control region of Jenynsia multidentata.
Fig. 5 in Phylogeographic pattern of Jenynsia multidentata (Cyprinodontiformes: Anablepidae) in the southern boundary of the Brazilian Subregion, Argentina
Fig. 5. Median-Joining haplotype network of Jenynsia multidentata. Circle sizes are proportional to haplotype frequencies. The crossed marks are nucleotide substitutions inferred in that branch. Shading patterns indicates localities. Black: Chapadmalal. Black doted: Chocorí. Cross: El Moro. Dark grey: Quequén Grande. Horizontal lines: Cortaderas. Light grey: Claromecó. Grey: Quequén Salado. Diagonal lines: Sauce Grande. Vertical lines: Saladillo. Grey doted: Sauce Chico. White circles represent hypothetical haplotypes.
Fig. 4 in Phylogeographic pattern of Jenynsia multidentata (Cyprinodontiformes: Anablepidae) in the southern boundary of the Brazilian Subregion, Argentina
Fig. 4. Distance tree obtained by Neighbor-Joining method based on mitochondrial DNA control region of Jenynsia multidentata. Numbers under the nodes represents the Bootstrap values. The length branches are proportional to mutations per site. H1-H9: Haplotypes. Black vertical lines next to sample localities are proportional to the individual numbers in each locality. Shading patterns indicates localities. Black: Chapadmalal. Black doted: Chocorí. Cross: El Moro. Dark grey: Quequén Grande. Horizontal lines: Cortaderas. Light grey: Claromecó. Grey: Quequén Salado. Diagonal lines: Sauce Grande. Vertical lines: Saladillo. Grey doted: Sauce Chico.
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.