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Fig. 2 in Soil Ciliates Of Different Trophic Groups In Samur-Yalama National Park, Azerbaijan
Fig. 2. The ratio of ciliates of different trophic groups in the ecological series of "forest soil" — "buffer zone" — "agrocenosis".
Fig. 2 in Species Diversity Of Ciliates In Forest Soils Of The Samur-Yalama National Park
Fig. 2. Similarity of species composition between different sample points according to Bray-Curtis cluster analysis.
R_JAGS code for estimation and analysis of species-area-relationship (SAR) parameters from NEON (National Ecological Observatory Network) data on plant surveys
<p><span>Invasive species science is heavily geared toward the invasive agent. </span>However, management to protect native species also requires a proactive approach focused on understanding the features affecting community vulnerability to invasion impacts<span>. </span><span>Vulnerability </span><span>is likely the result of </span><span>factors acting across spatial scales, from </span><span>local to regional, and it is the combined effects of these factors that will determine the magnitude of vulnerability.</span><span> We introduce an analytical framework that quantifies the scale-dependent impact of biological invasions from the shape of the native species-area-relationship (SAR). We leverage newly available, biogeographically extensive vegetation data from the US National Ecological Observatory Network to assess plant community vulnerability to invasion impact as a function of factors acting across scales. We analyzed more than 1000 SARs widely distributed across the USA along environmental gradients and under different levels of invasion. </span>Results show that a decrease in native richness is consistently associated with invasive species cover<span>, but it is only at relatively high levels of invasion that native richness is compromised. After accounting for variation in baseline ecosystem diversity, net primary productivity, and human modification, ecoregions that are colder and wetter seem to be most vulnerable to losses of native plant species at the local level, while warmer and wetter areas seem most susceptible at the landscape level. We also document how the combined effects of cross-scale factors result in a heterogenous spatial pattern of vulnerability. </span><span>This pattern </span><span>cannot be predicted by analyses at any single scale, underscoring the importance of accounting for factors acting across scales. Simultaneously assessing differences in vulnerability between distinct plant communities at local, landscape and regional scales provided outputs that can be used to inform policy and management aimed at reducing vulnerability to the impact of plant invasions.</span></p>
FIG. 31 in The type specimens of extant asteroids (Echinodermata) in the Muséum national d'Histoire naturelle of Paris
FIG. 31. — Diplasterias turqueti Koehler, 1905: A, abactinal; B, actinal surfaces of a syntype; MNHN-IE-2014-615. Scale bar: 20 mm.
FIG. 30 in The type specimens of extant asteroids (Echinodermata) in the Muséum national d'Histoire naturelle of Paris
FIG. 30. — Anasterias studeri Perrier, 1891: A, abactinal; B, actinal surfaces of holotype; MNHN-IE-2014-83. Scale bar: 50 mm.
FIG. 32 in The type specimens of extant asteroids (Echinodermata) in the Muséum national d'Histoire naturelle of Paris
FIG. 32. — Asterina wesseli Perrier, 1875: A, abactinal; B, actinal surfaces of the holotype; MNHN-IE-2014-104. Scale bar: 5 mm.
FIG. 27 in The type specimens of extant asteroids (Echinodermata) in the Muséum national d'Histoire naturelle of Paris
FIG. 27. — Echinaster (Othilia) serpentarius Müller & Troschel, 1842: A, abactinal; B, actinal surfaces of a syntype. Scale bar: 20 mm.
FIG. 26 in The type specimens of extant asteroids (Echinodermata) in the Muséum national d'Histoire naturelle of Paris
FIG. 26. — Astropecten scoparius Müller and Troschel, 1842: abactinal surfaces of the syntypes; MNHN-IE-2014-579. Scale bar: 10 mm.
FIG. 25 in The type specimens of extant asteroids (Echinodermata) in the Muséum national d'Histoire naturelle of Paris
FIG. 25. — Astropecten richardi Perrier, 1875: A, abactinal; B, actinal surfaces of a Guiana syntype; MNHN-IE-2014-2. Scale bar: 50 mm.
FIG. 28 in The type specimens of extant asteroids (Echinodermata) in the Muséum national d'Histoire naturelle of Paris
FIG. 28. — Asteriscus setaceus Müller & Troschel, 1842: A, abactinal; B, actinal surfaces of holotype; MNHN-IE-2014-638. Scale bar: 50 mm.
FIG. 21 in The type specimens of extant asteroids (Echinodermata) in the Muséum national d'Histoire naturelle of Paris
FIG. 21. — Chaetaster nodosus Perrier, 1875: A, abactinal; B, actinal surfaces of the holotype; MNHN-IE-2014-21. Scale bar: 50 mm
FIG. 22 in The type specimens of extant asteroids (Echinodermata) in the Muséum national d'Histoire naturelle of Paris
FIG. 22. — Asterias obtusata Bory de Saint Vincent, 1824: A, abactinal; B, actinal surfaces of a syntype (MNHN-2013-IE-4352. Scale bar: 50 mm.
FIG. 19 in The type specimens of extant asteroids (Echinodermata) in the Muséum national d'Histoire naturelle of Paris
FIG. 19. — Ophidiaster marmoratus Michelin, 1844: A, abactinal; B, actinal surfaces of a syntype; MNHN-IE-2014-34. Scale bar: 20 mm.
FIG. 24 in The type specimens of extant asteroids (Echinodermata) in the Muséum national d'Histoire naturelle of Paris
FIG. 24. — Oreaster regulus Müller & Troschel, 1842: A, abactinal; B, actinal surface of the holotype; MNHN-IE-2014-25. Scale bar: 10 mm.
FIG. 23 in The type specimens of extant asteroids (Echinodermata) in the Muséum national d'Histoire naturelle of Paris
FIG. 23. — Myxaster perrieri Koehler, 1895: A, abactinal; B, actinal surfaces of the holotype; MNHN-IE-2014-604. Scale bar: 20 mm.
FIG. 20 in The type specimens of extant asteroids (Echinodermata) in the Muséum national d'Histoire naturelle of Paris
FIG. 20. — Scytaster monilis Perrier, 1869: A, abactinal; B, actinal surfaces of the holotype (MNHH-IE-2014-58).
FIG. 18 in The type specimens of extant asteroids (Echinodermata) in the Muséum national d'Histoire naturelle of Paris
FIG. 18. — Calliaster mamillifer Alcock, 1893: A, abactinal; B, actinal surfaces of the syntype; MNHN-IE-2014-162. Scale bar: 10 mm.
FIG. 17 in The type specimens of extant asteroids (Echinodermata) in the Muséum national d'Histoire naturelle of Paris
FIG. 17. — Asterina lorioli Koehler, 1910: A, abactinal; B, actinal surfaces of the syntype; MNHN-IE-2014-97. Scale bar: 20 mm.
FIG. 16 in The type specimens of extant asteroids (Echinodermata) in the Muséum national d'Histoire naturelle of Paris
FIG. 16. — Scytaster indicus: A, abactinal; B, actinal surfaces of the holotype; MNHN-IE-2014-187. Scale bar: 10 mm.
FIG. 15 in The type specimens of extant asteroids (Echinodermata) in the Muséum national d'Histoire naturelle of Paris
FIG. 15. — Ganeria hahni Perrier, 1891: A, abactinal; B, actinal surfaces of the holotype; MNHN-IE-2014-84. Scale bar: 50 mm.
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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.