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109 results for “coastal lagoons”
Figure 2 in Assessment of the zooplankton community structure of the coastal Uzungöl Lagoon (Kızılırmak Delta, Turkey) based on community indices and physicochemical parameters
Figure 2. PCA results for environmental variables (number 1-5 represented sampling sites).
Fig. 1 in Reproduction of Brevoortia aurea (Spix & Agassiz, 1829) (Actinopterygii: Clupeidae) in the Mar Chiquita Coastal Lagoon, Buenos Aires, Argentina
Fig. 1. Study area showing the sample station.
Fig. 3 in Spatial and temporal distribution of fish eggs and larvae in a subtropical coastal lagoon, Santa Catarina State, Brazil
Fig. 3. Mean abundances · 100 m-3 (± sd) of fish eggs and larvae in Ibiraquera Lagoon, by month.
Barra do Rio coastal lagoon timelapse (2001-2020)
<p><strong>Abstract</strong></p> <p>Timelapse of the geographic clipping of Barra do Rio coastal lagoon, located on the east coast of the Rio Grande do Norte state (Lat: 5°40′33.5"S / Long: 35°3′5"W). The timelapse aims to demonstrate the intense environmental dynamics of coastal lagoon (connections with the sea).</p> <p><strong>Methods</strong></p> <p>This timelapse was built based on 32 high resolution satellite images (2s frame duration), present in the Google Earth Pro Software database, between 2001 and 2020. Builder software: Movie Maker - Video Editor FREE.</p>
Influence of past and current factors on the beta diversity of coastal lagoon fish communities in South America
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Figure 6 in Mollusk distribution in four habitats along a salinity gradient in a coastal lagoon from the Gulf of Mexico
Figure 6. PCA plot showing relationships between environmental variables and molluscan assemblages from Mecoacan lagoon. Numbers represent sites, black dots = cold fronts season, open triangles = drought season, and black squares = rainy season. Sal: salinity; OD: dissolved oxygen; TDS: turbidity; Temp: temperature.
Figure 4 in Mollusk distribution in four habitats along a salinity gradient in a coastal lagoon from the Gulf of Mexico
Figure 4. MDS plot of bootstrap averages showing variations of molluscan assemblages by habitat. Ellipses denote approximate 95% confidence intervals and black symbols represent averages (av).
Figure 5 in Mollusk distribution in four habitats along a salinity gradient in a coastal lagoon from the Gulf of Mexico
Figure 5. MDS plot of bootstrap averages showing variations of molluscan assemblages by sites nested within a) ARE, b) MAN, c) VAS, and d) RAI. Ellipses denote approximate 95% confidence intervals and black symbols represent averages (av).
Figure 3 in Mollusk distribution in four habitats along a salinity gradient in a coastal lagoon from the Gulf of Mexico
Figure 3. MDS plot of bootstrap averages showing variation in molluscan assemblages by climatic season: cold fronts (triangles), drought (circles) and rainy (diamonds). Ellipses denote approximate 95% confidence intervals and black symbols represent averages (av).
Figure 2 in Mollusk distribution in four habitats along a salinity gradient in a coastal lagoon from the Gulf of Mexico
Figure 2. PCO showing the ordination of water environmental variables from Mecoacan lagoon. Numbers represent sites, black dots = cold fronts season, black squares = drought season, and black triangles = rainy season.
FIGURES 6–9 in Ultrastructural observations on the development of Ceratomyxa aegyptiaca (Myxozoa: Bivalvulida) infecting Solea aegyptiaca (Pleuronectiformes: Soleidae) from Tunisian coastal lagoon
FIGURES 6–9. Capsulogenesis of Ceratomyxa aegyptiaca. Fig. 6. Detail of two capsulogenic cells (Cc) in different stages of maturation. One capsulogenic cell (Cc) has a mature polar capsule (Pc). The second capsulogenic cell shows the sections of external tube (Et), a capsular primordium (Cp) and nucleus (CNu) in their cytoplasm. Sutural line (S) can be observed. Fig. 7. Detail of a capsulogenic cell showing a polar capsule with twisted appearance of polar filament (Pf). The apical side of the mature spore was surrounded by fibrous material (arrows) between the capsulogenic cell and the valve (V). Note the presence vacuoles (V) in the cytoplasm of the capsulogenic cell (Cc). Fig. 8. Longitudinal section of mature polar capsule (Pc) with its polar filament (arrows) showing an electron dense matrix (*) an outer electron-dense layer (OL) and an inner electron-lucent layer (IL). Note the channel for filament discharge (D) and externally, a surrounding valve (V) can be seen. Fig. 9. A section of spore showing the mature polar capsule (Pc), the opening for the extrusion of the polar filament (Op), two sporoplasm nucleus (SpNu) and one flattened valvogenic nuclei (VNu).
FIGURES 3–5 in Ultrastructural observations on the development of Ceratomyxa aegyptiaca (Myxozoa: Bivalvulida) infecting Solea aegyptiaca (Pleuronectiformes: Soleidae) from Tunisian coastal lagoon
FIGURES 3–5. Earlier sporogonic stages of Ceratomyxa aegyptiaca Fig. 3. Sporoblast showing two capsulogenic cells (Cc) with its nuclei (CNu) and with a prominent external tube (Et) and a capsular primordium (Cp), a sporoplasmogenic cell (SpC) with two nuclei (SpNu) and laterally two valvogenic cells (Vc) with its nuclei (VNu). Fig. 4. Young capsulogenic cell (Cc) with capsular primordium (Cp) composed of an electron-dense outer layer (1), an electron-lucent median layer (2) and an inner electron-dense core (3). Fig. 5. Immature spore attached to the epithelial cell (Ec) showing capsulogenic cell (Cc) with a prominent external tube (Et) in the cytoplasm and a clup-shaped capsular primordium (Cp) which is surrounded by valvogenic cell (Vc).
FIGURES 10–11 in Ultrastructural observations on the development of Ceratomyxa aegyptiaca (Myxozoa: Bivalvulida) infecting Solea aegyptiaca (Pleuronectiformes: Soleidae) from Tunisian coastal lagoon
FIGURES 10–11. Transmission electron micrographs of myxospores of Ceratomyxa aegyptiaca. Fig. 10. Premature myxosspore showing the sporoplasm cell (Spc) with its two nuclei (SpNu). Note the presence of one of the capsulogenic nuclei (CNu). Fig. 11. Young myxospore in frontal view showing two long valves (V) and the flattened valvogenic nuclei (VNu) of one valve.
FIGURES 1–2 in Ultrastructural observations on the development of Ceratomyxa aegyptiaca (Myxozoa: Bivalvulida) infecting Solea aegyptiaca (Pleuronectiformes: Soleidae) from Tunisian coastal lagoon
FIGURES 1–2. Transmission electron micrographs of Ceratomyxa aegyptiaca from the gallbladder of Solea aegyptiaca. Fig. 1. Initial primary cell (P) with large and condensed nucleus (N) containing several vacuoles (V). Fig. 2. Primary cell (P) attached to the gallbladder epithelium showing pinocytotic invaginations (arrows) extending into the host tissue (H).
FIGURE 3 in Eudendrium tayronensis sp. nov. (Cnidaria, Hydrozoa) from coastal lagoons on the Caribbean Coast of Colombia
FIGURE 3. Male gonophores of Eudendrium tayronensis sp. nov. a: Scanning electronic microscopy photography. b: Light microscopy photography. c: Different types of spadices.
FIGURE 2 in Eudendrium tayronensis sp. nov. (Cnidaria, Hydrozoa) from coastal lagoons on the Caribbean Coast of Colombia
FIGURE 2. Hydranth and nematocysts of Eudendrium tayronensis sp. nov. a: Hydranth. b: Isorhiza nematocyst. c: Eurytele nematocyst.
FIGURE 6 in Eudendrium tayronensis sp. nov. (Cnidaria, Hydrozoa) from coastal lagoons on the Caribbean Coast of Colombia
FIGURE 6. Maturation of female gonophores in Eudendrium tayronensis sp. nov. documented by light microscopy.
FIGURE 5 in Eudendrium tayronensis sp. nov. (Cnidaria, Hydrozoa) from coastal lagoons on the Caribbean Coast of Colombia
FIGURE 5. Development series of the apical process of the female spadix of Eudendrium tayronensis sp. nov.
Seasonal and spatial variation of paraben concentrations in urban coastal waters from freshwater lagoons to the open ocean of Brazil
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Data for the article "Nitrate driven eutrophication supports high nitrous oxide production and emission in coastal lagoons"
<p>The data file shows data on:</p> <ul> <li>bottom water temperature</li> <li>bottom water oxygen, NH4+, NO2-, NO3-, DIN, DIP, and chlorophyll a concentrations</li> <li>bottom water N:P ratio</li> <li>benthic N2O flux</li> <li>water-air N2O flux</li> <li>benthic O2, NO2-, NO3-, DIN, and DIP flux</li> </ul> <p>Samples were collected from three European lagoons (Curonian, Vistula and Oder) in 2021 to 2023. </p>
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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.