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Figure 9 in Current views on the diversity and distribution of deep-water meiobenthos at the Turkish shelf (Black Sea)
Figure 9. Share of nematodes in total meiobenthos obtained from samples at the A. Anoxic B. Suboxic C. Oxic sites off Sinop shores (southern Black Sea).
Figure 6 in Current views on the diversity and distribution of deep-water meiobenthos at the Turkish shelf (Black Sea)
Figure 6. Share of main meiobenthic taxa along the depth gradient at the oxic/anoxic interface of the Black Sea exit of Bosphorus (April 2010).
Figure 2 in Current views on the diversity and distribution of deep-water meiobenthos at the Turkish shelf (Black Sea)
Figure 2. Trends in the abundance (103 ind.m-2) and richness (number of taxa) of meiobenthos along the studied depth gradient at the Black Sea exit of Bosphorus in April 2010.
Figure 8 in Current views on the diversity and distribution of deep-water meiobenthos at the Turkish shelf (Black Sea)
Figure 8. Share of main meiobenthic taxa at the oxic, suboxic and anoxic sites off Sinop shores (southern Black Sea).
Figure 1 in Current views on the diversity and distribution of deep-water meiobenthos at the Turkish shelf (Black Sea)
Figure 1. Trends in the abundance (103 ind.m-2) and richness (number of taxa) of meiobenthos along the studied depth gradient at the Black Sea exit of Bosphorus in November 2009 (in addition to Sergeeva et al. 2013, Sergeeva & Mazlumyan 2015).
Figure 3 in Current views on the diversity and distribution of deep-water meiobenthos at the Turkish shelf (Black Sea)
Figure 3. Share of benthic protozoan taxa in total protozoa along the depth gradient at the oxic/anoxic interface of the Black Sea exit of Bosphorus (November 2009).
Figure 4 in Current views on the diversity and distribution of deep-water meiobenthos at the Turkish shelf (Black Sea)
Figure 4. Share of benthic protozoan taxa in total protozoans along the depth gradient at the oxic/anoxic interface of the Black Sea exit of Bosphorus (April 2010).
Figure 7 in Current views on the diversity and distribution of deep-water meiobenthos at the Turkish shelf (Black Sea)
Figure 7. Trends in the abundance (103 ind.m-2) and richness (taxa number) of meiobenthos along the studied depth gradient at the oxic/anoxic interface off Sinop shores (southern Black Sea) in 2011 (in agreement with Ürkmez et al. 2015).
Figure 5 in Current views on the diversity and distribution of deep-water meiobenthos at the Turkish shelf (Black Sea)
Figure 5. Share of main meiobenthic taxa at the depth gradient along the oxic/anoxic interface at the Black Sea exit of Bosphorus (November 2009).
FIGURE 6. Grasshoffia profundica n in The Genus Grasshoffia with the Description of a New Deep-water Species from the Northern Philippines (Octocorallia: Pennatulacea: Virgulariidae)
FIGURE 6. Grasshoffia profundica n. sp. Scanning electron micrographs of sclerites from polyps and polyp leaves. Scale bar = 0.03 mm.
FIGURE 3. Grasshoffia profundica n in The Genus Grasshoffia with the Description of a New Deep-water Species from the Northern Philippines (Octocorallia: Pennatulacea: Virgulariidae)
FIGURE 3. Grasshoffia profundica n. sp. External morphology. A. Holotype (CAS 207514). B. Paratype (CAS 207515); scale bar for A and B = 40 mm. C. Detail of holotype rachis. D. Detail of holotype rachis. E. Detail of paratype rachis; scale bar for C-E = 10 mm. F. Detail of rachis of paratype showing broadly ovate polyp leaves with narrow proximal region attached to the rachis; scale bar = 5.0 mm. G. Diagram of a single autozooid, pinnules not shown; scale bar = 0.5 mm.
FIGURE 2 in The Genus Grasshoffia with the Description of a New Deep-water Species from the Northern Philippines (Octocorallia: Pennatulacea: Virgulariidae)
FIGURE 2. Late afternoon view from the eastern shore of Balayan Bay, southern Luzon, Philippines – the eastern part of the bay shown here is the type locality of Grasshoffia profundica sp. nov.
FIGURE 4. Grasshoffia profundica n in The Genus Grasshoffia with the Description of a New Deep-water Species from the Northern Philippines (Octocorallia: Pennatulacea: Virgulariidae)
FIGURE 4. Grasshoffia profundica n. sp. Scanning electron micrographs of axial morphology. A. Transverse section of axis from the distal region of the rachis showing arrangement of wedge-shaped sections of calcareous material radiating outward from the central core; scale bar = 0.3 mm. B. Enlarged detail of the central region from Fig. 2A showing concentration of organic matter in the central core and several elongated, tadpole-shaped channels surrounding the core; scale bar = 0.2 mm. C. Longitudinal external view of portion of axis from the distal region of the rachis showing uniformly smooth surface; scale bar = 0.5 mm. D. Enlarged detail of axial surface (from Fig. 2C) showing short, slit-shaped orifices; scale bar = 0.1 mm.
FIGURE 7. Grasshoffia profundica n in The Genus Grasshoffia with the Description of a New Deep-water Species from the Northern Philippines (Octocorallia: Pennatulacea: Virgulariidae)
FIGURE 7. Grasshoffia profundica n. sp. Scanning electron micrographs of polyp sclerites from polyps and polyp leaves. Scale bars = 0.02 mm.
Figure 3. – A in Figure 3 in First report of the Ecuadorian deep-sea scorpionfish, Trachyscorpia verai Béarez & Motomura, 2009 (Actinopteri: Scorpaenidae) from Peruvian marine waters
Figure 3. – A: Pisang River, Padang City, West Sumatra Province, Indonesia (1°07'05"S, 100°23'56"E) (photograph by Ari Wright). B: Way Lalaan River, Tenggamus Regency, Lampung Province, Indonesia (5°29'12"S, 104°41'29"E) (photograph by Ari Wright).
Figure 2 in Figure 3 in First report of the Ecuadorian deep-sea scorpionfish, Trachyscorpia verai Béarez & Motomura, 2009 (Actinopteri: Scorpaenidae) from Peruvian marine waters
Figure 2. – Distribution map of Belobranchus segura. First records in Sumatra, Indonesia (black stars, this study) and previous published records (black triangles) based on Keith et al. (2012, 2021), Kottelat (2013), Miesen et al. (2016), Dahruddin et al. (2016) and Larson (2021).
Fig. 4 in Two new species of deep-water Calcigorgia gorgonians (Anthozoa: Octocorallia) from the Kurile Islands, Sea of Okhotsk, with a review of distinctive characters of the known species of the genus
Fig. 4. Calcigorgia matua sp. nov., holotype (MIMB 20722), sclerites from the coenenchyme. A. Clubs with a head consisting of leafy processes. B. Warty clubs. C. Spindles. D. Well calcified capstans. E. Capstans with less developed processes. F. Ovals. Scale bar: 0.1 mm.
Fig. 13 in Two new species of deep-water Calcigorgia gorgonians (Anthozoa: Octocorallia) from the Kurile Islands, Sea of Okhotsk, with a review of distinctive characters of the known species of the genus
Fig. 13. Calcigorgia simushiri sp. nov., paratype (MIMB 20703), sclerites of the coenenchyme. A. Ovals. B. Capstans with unequally developed ends. C. Capstans (8-radiate sclerites) with symmetrically developed end with well calcified processes. D. Capstans (8-radiate sclerites) with less calcified processes. E. Spindles. Scale bar: 0.1 mm.
Fig. 9 in Two new species of deep-water Calcigorgia gorgonians (Anthozoa: Octocorallia) from the Kurile Islands, Sea of Okhotsk, with a review of distinctive characters of the known species of the genus
Fig. 9. Calcigorgia simushiri sp. nov., holotype (MIMB 20721), sclerites from the lower part of the polyp body wall. A. Densely ornamented short clubs. B. Longer clubs with slightly curved handles. C. Clublike spindle. D. Spindles densely ornamented with inclined conical hillocks. E. Ovals. F. Capstans ornamented with girdled warts. G. Thick spindles covered by warts tending to be girdled. Scale bar: 0.1 mm.
Fig. 7 in Two new species of deep-water Calcigorgia gorgonians (Anthozoa: Octocorallia) from the Kurile Islands, Sea of Okhotsk, with a review of distinctive characters of the known species of the genus
Fig. 7. Calcigorgia simushiri sp. nov., holotype (MIMB 20721), sclerites from the tentacles of polyp. A. Clubs. B. Club-like spindles. C. Spindles ornamented with tubercles. D. Spindles ornamented with conical hillocks inclined toward the spindle ends. Scale bar: 0.1 mm.
ScienceDex guides
Understand access before you commit
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.