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60 results for “marine lake”
FIGURE 15. A, Polycarpa insulsa. B in Some ascidians from Indonesian marine lakes (Raja Ampat Islands, West Papua)
FIGURE 15. A, Polycarpa insulsa. B, Pyura curvigona?
FIGURE 14 in Some ascidians from Indonesian marine lakes (Raja Ampat Islands, West Papua)
FIGURE 14. Diazona angulata.
FIGURE 12. A, Ecteinascidia bandaensis. B in Some ascidians from Indonesian marine lakes (Raja Ampat Islands, West Papua)
FIGURE 12. A, Ecteinascidia bandaensis. B, Ecteinascidia diaphanis.
FIGURE 7 in Some ascidians from Indonesian marine lakes (Raja Ampat Islands, West Papua)
FIGURE 7. Didemnum sp. 3: A, spicules; B, thorax; C, abdomen. Scale bars: A = 10µm, B,C = 0.2mm.
FIGURE 2 in Some ascidians from Indonesian marine lakes (Raja Ampat Islands, West Papua)
FIGURE 2. Didemnum ahu larva stained with hemalum. Scale bar: 0.1mm.
FIGURE 6. A in Some ascidians from Indonesian marine lakes (Raja Ampat Islands, West Papua)
FIGURE 6. A, Didemnum sp. 2. B, Didemnum sp. 3.
FIGURE 5 in Some ascidians from Indonesian marine lakes (Raja Ampat Islands, West Papua)
FIGURE 5. Didemnum sp. 2, A, spicules; B, thorax; C, abdomen. Scale bar: A, B = 0.2mm.
FIGURE 1. A in Some ascidians from Indonesian marine lakes (Raja Ampat Islands, West Papua)
FIGURE 1. A: Didemnum ahu. B, Didemnum rubeum.
FIGURE A7 A–B in The diversity of molluscan faunas in marine lakes of Raja Ampat, West Papua, Indonesia
FIGURE A7 A–B. Faunus ater (L = 35.8 mm, W = 8.7 mm), C–D. Terebralia palustris (L = 56.1 mm, W = 22.5 mm), E–F. Terebralia sulcata (L = 37.8 mm, W = 19.7 mm), G. Cypraea tigris, H. Monetaria annulus. Scale bars: 5 mm.
FIGURE A5 A in The diversity of molluscan faunas in marine lakes of Raja Ampat, West Papua, Indonesia
FIGURE A5 A. Spondylus sp., B. Chama Lazarus, C–D. Chama limbula (L = 62.8 mm, H = 49.8 mm), E-F. Geloina papua, juvenile (L = 26.6 mm, H = 41.4 mm), G. Aphrodora sp. (L = 16.4 mm, H = 1.3 mm). Scale bars: 5 mm, unless stated otherwise.
FIGURE 4 in The diversity of molluscan faunas in marine lakes of Raja Ampat, West Papua, Indonesia
FIGURE 4 Non-metric Multidimensional Scaling (NMDS) ordination plot of mollusc assemblages from 11 marine lakes in Raja Ampat, Indonesia, based on Jaccard distances between lakes. Mollusc species that have significant influence on reshaping the species composition among marine lakes are shown Geloina papua (r2 = 0.78, P = 0.02), Brachidontes sp. (r2 = 0.78, P = 0.02), Brachidontes ustulatus (r2 = 0.66, P = 0.018), Cerithium coralium (r2 = 0.59, P = 0.017), Neocollonia pilula (r2 = 0.56, P = 0.044) and Terebralia palustris (r2 = 0.63, P = 0.024). The arrows represent environmental (temperature and salinity) and physical characteristics (connectivity and surface area) of the lakes.
FIGURE 1 in The diversity of molluscan faunas in marine lakes of Raja Ampat, West Papua, Indonesia
FIGURE 1 Map of sampling locations in Raja Ampat, West Papua, Indonesia. (A) Overview of Indonesia. (B) Close-up of Misool, Raja Ampat, including 11 marine lakes. (C) Aerial and (D) ground level views of a marine lake. (E) Categorization of sampling areas according to the degree of connection into three groups: High, Medium and Low. Location codes and connectivity measurements correspond with table 1. Downloaded from Brill.com 06/21/2024 06:27:04PM via Open Access. This is an open access article distributed under the terms of the CC BY 4.0 license. https://creativecommons.org/licenses/by/4.0/
FIGURE 2 in The Sea Slug Phanerophthalmus luteus (Gastropoda: Opisthobranchia) and its Habitat and Ecology at the Marine Jellyfish Lake (Ongeim'l Tketau), Palau, Western Pacific Ocean
FIGURE 2. Aerial photograph of Mecherchar Island. The island is formed of uplifted Miocene limestone, with multiple lakes, including Jellyfish Lake indicated by the white arrow on the mid-right of the image. The lakes are surrounded by vegetation (green) while fringing reefs in the shallow waters surround the island (white to light blue), representing different marine habitats. P. luteus lives abundantly in Jellyfish Lake but was not observed on the reefs outside the island. Aerial photograph courtesy of Dr. Pat Colin.
FIGURE 6 in The Sea Slug Phanerophthalmus luteus (Gastropoda: Opisthobranchia) and its Habitat and Ecology at the Marine Jellyfish Lake (Ongeim'l Tketau), Palau, Western Pacific Ocean
FIGURE 6. Two Phanerophthalmus luteus mating on the bottom of Jellyfish Lake among algae attached to sediment (August 15, 2013). The specimens display the usual whitish to green to greenish blue colors of specimens in Jellyfish Lake. Image by Dr. Michael Dawson.
Primary detection records for aquatic nonindigenous species in global estuarine and marine ecosystems and the Great Lakes
<p><strong>Aim</strong></p> <p>The introduction of aquatic non-indigenous species (ANS) has become a major driver for global changes in species biogeography. We examined spatial patterns and temporal trends of ANS detections since 1965 to inform conservation policy and management. </p> <p><strong>Location</strong></p> <p>Global</p> <p><strong>Methods</strong></p> <p>We assembled an extensive dataset of first records of detection of ANS (1965-2015) across 49 aquatic ecosystems, including the i) year of first collection, ii) population status and iii) potential pathway(s) of introduction. Data were analysed at global and regional levels to assess patterns of detection rate, richness, and transport pathways. </p> <p><strong>Results</strong></p> <p>An annual mean of 43 (± 16 S.D.) primary detections of ANS occurred – one new detection every 8.4 days for 50 years. The global rate of detections was relatively stable during 1965-1995, but increased rapidly after this time, peaking at roughly 66 primary detections per year during 2005-2010, then declining marginally. Detection rates were variable within and across regions through time. Arthropods, molluscs and fishes were the most frequently reported ANS. Most ANS were likely introduced as stowaways in ships' ballast water or biofouling, although direct evidence is typically absent. </p> <p><strong>Main conclusions</strong></p> <p>This synthesis highlights the magnitude of recent ANS detections, yet almost certainly represents an underestimate as many ANS go unreported due to limited search effort and diminishing taxonomic expertise. Temporal rates of detection are also confounded by reporting lags, likely contributing to the lower detection rate observed in recent years. There is a critical need to implement standardized, repeated methods across regions and taxa to improve the quality of global-scale comparisons and sustain core measures over longer timescales. It will be fundamental to fill in knowledge gaps given that invasion data representing broad regions of the world's oceans are not yet readily available and to maintain knowledge pipelines for adaptive management. </p>
Primary detection records for aquatic nonindigenous species in global estuarine and marine ecosystems and the Great Lakes
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Figure 5 in Temporal patterns of the calanoid copepod community in Veliko Jezero, an isolated marine lake (South Adriatic Sea): links to a larger-scale climate changes
Figure 5. Dendogram of sample units identified by cluster analysis.
Figure 1 in Temporal patterns of the calanoid copepod community in Veliko Jezero, an isolated marine lake (South Adriatic Sea): links to a larger-scale climate changes
Figure 1. Study area with the sampling station.
FIGURE 1 in A new genus and two new species of sea stars (Family Asterinidae) from Indonesian marine lakes, with notes on habitat and feeding ecology
FIGURE 1. Limnasterias oinops sp. nov., A-C Holotype, MZB.Astr.00040: A. Abactinal surface of disc (R = 22.6). B. Abactinal interradial region showing interradial non-papulate regions (arrows) and five rows of papulate plates at ray base. C. Actinal surface. D. Paratype, MZB.Astr.00041, cleared lateral ray, with boot-shaped inferomarginal plates (arrow) and circular superomarginal plates. E-F Paratype, MZB.Astr.00043: E. Sacciform abactinal spinelets. F. Marginal interradius and inferomarginal spinelets. Note that residual fibers from packaging are present in Figs. 1B, C, and F.
FIGURE 3 in A new genus and two new species of sea stars (Family Asterinidae) from Indonesian marine lakes, with notes on habitat and feeding ecology
FIGURE 3. Limnasterias estradivariae sp. nov., A–E Holotype, MZB.Astr.00046: A. Abactinal surface (R = 12.05). B. Abactinal interradius, with upper and lower non-papulate regions (arrows). C. Lower lateral ray with boot-shaped inferomarginal plates (arrow) D. Oral plates. E. Actinal surface. F. Conical abactinal spinelets. Note that residual fibers from packaging are present in Figs. 3B and D.
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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.