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203
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ShareScore release 0.9.0
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203 results for “harbour”
Harbour porpoises are flexible predators displaying context dependent foraging behaviours
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Data from: Vegetable phylloplane microbiomes harbour class 1 integrons in novel bacterial hosts and drive the spread of chlorite resistance
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Auditory impairment from acoustic seal deterrents predicted for harbour porpoises in a marine protected area
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Spatiotemporal variation in pup abundance and preweaning survival of harbour seals (Phoca vitulina) in the St. Lawrence Estuary, Canada (2023)
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Bumble bees and honey bees on islands harbour reduced viral species richness, yet honey bee populations are dominated by a deformed wing virus recombinant
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Vessel noise exposures of harbour seals from the Wadden Sea
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Computationally defined and in vitro validated putative genomic safe harbour loci for transgene expression in human cells
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Data from: Acoustically advertising male harbour seals in southeast Alaska do not make biologically relevant acoustic adjustments in the presence of vessel noise
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Data from: Harbour porpoises respond to small boats by speeding up and moving away
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Harbour porpoise hydrophone array data recorded on a gill net
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Data from: Repeatability of adaptation in sunflowers reveals that genomic regions harbouring inversions also drive adaptation in species lacking an inversion
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FIGURE 8 in Description of two new species of Dysidea (Porifera, Demospongiae, Dictyoceratida Dysideidae) from Tauranga Harbour, Bay of Plenty, New Zealand
FIGURE 8. Dysidea teawanui sp. nov., holotype NIWA 113650: A. Two primary fibres joined by slender, fully cored, flanged, secondary fibres; B. Branching secondary fibres between two primary fibres; C. Ectosomal membrane containing fibrillar collagen in the surface. Note only traces of detritus in mesohyl.
FIGURE 6 in Description of two new species of Dysidea (Porifera, Demospongiae, Dictyoceratida Dysideidae) from Tauranga Harbour, Bay of Plenty, New Zealand
FIGURE 6. Dysidea teawanui sp. nov.: A. Massive, hemispherical, to multilobed specimens covering rocks and boulders at Dive Crescent, Tauranga Harbour at a depth of 5 m; B. Spherical specimen with predatory sea slugs Ceratosoma amoenum; C. Holotype NIWA 113650, showing the almost spherical morphology of smaller specimens, the regular conulose surface with raised, membranous oscules visible in profile on the surface; D. Surface of a massive specimen showing large apical oscules with raised membranous collars; E. Apical oscule showing regular distribution of conules and collagen fibrils stretching between conules.
FIGURE 5. A in Description of two new species of Dysidea (Porifera, Demospongiae, Dictyoceratida Dysideidae) from Tauranga Harbour, Bay of Plenty, New Zealand
FIGURE 5. A. Dysidea cf. cristagalli (NIWA 101432, MNP7240, UKNHM 2004.10.5.1) collected from a reef flat at 33 m, in Spirits Bay, North Cape, in 2002.
FIGURE 7 in Description of two new species of Dysidea (Porifera, Demospongiae, Dictyoceratida Dysideidae) from Tauranga Harbour, Bay of Plenty, New Zealand
FIGURE 7. Dysidea teawanui sp. nov., holotype NIWA 113650: A. Dense, ladder-like architecture of the primary and secondary fibres, showing the powder bluey-grey colouration of the freshly collected sponge; B. Macerated fibrous skeleton, showing densely aligned and anastomosing primary fibres, connected by slender, cored secondary fibres.
FIGURE 2 in Description of two new species of Dysidea (Porifera, Demospongiae, Dictyoceratida Dysideidae) from Tauranga Harbour, Bay of Plenty, New Zealand
FIGURE 2. Dysidea tuapokere sp. nov., holotype NIWA 92974: A. Before collection, showing the irregular, bulbous, digitate morphology, and irregularly dispersed conules; B. Close-up, showing the irregularly spaced conules that appear opaque, due to the presence of abundant sand, and between which stretch collagenous fibrils giving the surface a tent-like appearance; C. Ex- situ photograph showing the shrunken, cavernous appearance upon collection, and the lilac colouration.
FIGURE 4 in Description of two new species of Dysidea (Porifera, Demospongiae, Dictyoceratida Dysideidae) from Tauranga Harbour, Bay of Plenty, New Zealand
FIGURE 4. Dysidea tuapokere sp. nov., holotype NIWA 92974: A. Laminated spongin less visible in more heavily cored primary fibres; B. Laminated golden spongin visible in lightly cored secondary fibres; C. Ectosomal membrane containing fibrillar collagen in the surface. Note only traces of detritus in mesohyl.
FIGURE 1 in Description of two new species of Dysidea (Porifera, Demospongiae, Dictyoceratida Dysideidae) from Tauranga Harbour, Bay of Plenty, New Zealand
FIGURE 1. Map showing type localities for new species, Dysidea tuapokere sp. nov. and D. teawanui sp. nov., from Tauranga Harbour, Bay of Plenty, New Zealand.
FIGURE 3 in Description of two new species of Dysidea (Porifera, Demospongiae, Dictyoceratida Dysideidae) from Tauranga Harbour, Bay of Plenty, New Zealand
FIGURE 3. Dysidea tuapokere sp. nov., holotype NIWA 92974: A. Histological section showing a heavily cored primary fibre extending beneath a surface conule, and eurypylous choanocyte chambers in the surrounding mesohyl which is relatively clear of detritus, and unarmoured surface; B. Macerated, heavily cored, highly irregular, divaricating primary fibre, connected by slender, cored secondary fibres with fine auxiliary struts attaching the secondary fibre to the primary fibre.
Tape lures swell bycatch on a Mediterranean island harbouring illegal bird trapping
<p>Mediterranean islands provide shelter and sustenance for millions of migrating birds each year. Humans have historically exploited bird migration through hunting. In Cyprus, trapping birds during their migratory peak is considered a tradition, but has long been against the law. Illegal bird trapping is lucrative, however, with trappers using tape lures that broadcast birdsong to increase capture rates. It results in the slaughter of millions of birds each year. Yet, scientific studies quantifying capture rates of target and nontarget species using methods employed by trappers are lacking. Here, we show using playback experiments that tape lures lead to an order of magnitude greater capture rates of target species, but also significantly increase bycatch, which may include species of conservation concern. Conservation efforts focusing on minimizing illegal bird killing should also consider tape lures and their contribution to the overall impact of trapping on avian populations.</p>
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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)
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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.