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Fig. 3 Parasyllidea humesi Pettibone 1961. Relationships between width and length. a in The symbiotic hesionid Parasyllidea humesi Pettibone, 1961 (Annelida: Polychaeta) hosted by Scrobicularia plana (da Costa, 1778) (Mollusca: Bivalvia: Semelidade) in European waters
Fig. 3 Parasyllidea humesi Pettibone 1961. Relationships between width and length. a Length in mm. b Length as number of setigers
Fig. 4 in Revealing the diversity of the green Eulalia (Annelida, Phyllodocidae) species complex along the European coast, with description of three new species
Fig. 4 Haplotypes networks based on ITS (a) and 28S (b) for all MOTUs and outgroups, except MOTU GB1. Each haplotype is represented by a circle and number of haplotypes are according to the displayed scale. Colors indicate the geographic location of the haplo-
Fig. 4 in Molecular and morphological variation among the European species of the genus Aphidius Nees (Hymenoptera: Braconidae: Aphidiinae)
Fig. 4 Shape changes associated with the first two PCs are shown as extreme wing shapes (black line) representing the shape of species with maximal positive and negative scores of each axis compared to mean shape of the sample (grey line)
Fig. 3 in Molecular and morphological variation among the European species of the genus Aphidius Nees (Hymenoptera: Braconidae: Aphidiinae)
Fig. 3 Distribution of species in morphospace defined by two the PC axes. The phylogeny presented in Fig. 2 is superimposed onto the two- dimensional morphospace defined by PC1 and PC2. Clades 1– 6 colour-coded as in Fig. 2
Fig. 2 in Molecular and morphological variation among the European species of the genus Aphidius Nees (Hymenoptera: Braconidae: Aphidiinae)
Fig. 2 Maximum parsimony analysis of Aphidius mitochondrial COI haplotypes. The evolutionary history was inferred using the maximum parsimony method. The percentage of replicate trees in which> 90% of the associated taxa clustered together in the bootstrap test (500 replicates) is shown next to the branches. The MP tree was obtained using the close-neighbour-interchange algorithm with search level 1, in which the initial trees were obtained with the random addition of sequences. The tree is drawn to scale, with branch lengths calculated using the average pathway method and expressed in units of the number of changes over the whole sequence. The description of haplotypes is given in Table 1.
Form-specific prospective environmental risk assessment of graphene-based materials in European Freshwaters
<p>This dataset is related to the following publication:</p> <p>Title: Form-specific prospective environmental risk assessment fo graphene-based materials in European freshwaters</p> <p>Authors: Hyunjoo Hong, Bernd Nowack </p> <p>The files contain input files and final codes of the fs-MFA and fs-PSSD models.</p>
FIG. 1 in Do Bufonids Employ Different Anti-Predator Behaviors Than Ranids? Comparison among Three European Anurans
FIG. 1. Percentages of observed behavioral responses of (A) the Common Toad (sample size, the total number of recorded reactions, nH ¼ 423 with hedgehogs and nR ¼ 99 with rabbit), (B) the Common Frog (nH ¼ 185 and nR ¼ 98), and (C) the Edible Frog (nH ¼ 244, nR ¼ 90) in experiments with hedgehog and in control tests with rabbit.
FIG. 2 in Do Bufonids Employ Different Anti-Predator Behaviors Than Ranids? Comparison among Three European Anurans
FIG. 2. Head hitting displayed by the Common Toad against the predator, a hedgehog: (A) an immobile toad; (B) the immobile toad sniffed by a hedgehog; (C) and (D) the toad hitting the hedgehog with its head (arrows indicate the attack direction); (E) after retreat, the toad is employing crouching down coupled with filling the lungs with air and gentle tilting the dorsum towards the hedgehog; (F) the toad remaining in this position after the attack cessation by hedgehog.
Population genomics of seal lice provides insights into the postglacial history of northern European seals
<p>Scripts, commands and data files used in <em>Population genomics of seal lice provides insights into the postglacial history of northern European seals</em></p>
Fig. 2 in The Rhagionidae or Snipeflies of the Botanical Garden Jean Massart (Brussels-Capital Region, Belgium) with notes on the identity of the rare European species Archicera avarorum Szilády, 1934 and Ptiolina obscura (Fallén, 1814) (Diptera: Rhagionidae)
Fig. 2. View on the environment around the Malaise traps in the Botanical Garden Jean Massart: A. MT1; B. MT2. © Alain Drumont.
Fig. 8 in The Rhagionidae or Snipeflies of the Botanical Garden Jean Massart (Brussels-Capital Region, Belgium) with notes on the identity of the rare European species Archicera avarorum Szilády, 1934 and Ptiolina obscura (Fallén, 1814) (Diptera: Rhagionidae)
Fig. 8. Ptiolina obscura (Fallén, 1814) Male terminalia. A. Ventral view; B. Dorsal view. Scale 0.1 mm. © Patrick Grootaert.
Fig. 1. A in The Rhagionidae or Snipeflies of the Botanical Garden Jean Massart (Brussels-Capital Region, Belgium) with notes on the identity of the rare European species Archicera avarorum Szilády, 1934 and Ptiolina obscura (Fallén, 1814) (Diptera: Rhagionidae)
Fig. 1. A. Location of the Jardin Jean Massart at the outskirts of Brussels. B. Red dot on the left is Malaise trap MT1 (West), on the right side MT2 (East).
Fig. 6 in The Rhagionidae or Snipeflies of the Botanical Garden Jean Massart (Brussels-Capital Region, Belgium) with notes on the identity of the rare European species Archicera avarorum Szilády, 1934 and Ptiolina obscura (Fallén, 1814) (Diptera: Rhagionidae)
Fig. 6. Phenology of Chrysopilus asiliformis (red line) and C. cristatus (blue line) the dominant snipeflies at the Botanical Garden Jean Massart during 2015.
Fig. 5 in The Rhagionidae or Snipeflies of the Botanical Garden Jean Massart (Brussels-Capital Region, Belgium) with notes on the identity of the rare European species Archicera avarorum Szilády, 1934 and Ptiolina obscura (Fallén, 1814) (Diptera: Rhagionidae)
Fig. 5. Archicera avarorum Szilády, 1934. Female A. Tip of abdomen, dorsal view; B. Tip of abdomen, ventral view; C. Spermatheca; D. Palpus, proboscis and labella, with detail central tube of pseudotrachaea, lateral view; E. Labellae, ventral view. Scales 0.1 mm. © Patrick Grootaert.
Fig. 4 in The Rhagionidae or Snipeflies of the Botanical Garden Jean Massart (Brussels-Capital Region, Belgium) with notes on the identity of the rare European species Archicera avarorum Szilády, 1934 and Ptiolina obscura (Fallén, 1814) (Diptera: Rhagionidae)
Fig. 4. Archicera avarorum Szilády, 1934. Female: A. Antenna of left side; B. Antenna of right side of same specimen. Scale: 0.1 mm. © Patrick Grootaert.
FIGURES 17–29. Sellaphora pseudoventralis comb. nov. 17–27. Light microscopy. 29–29. SEM. 28. External valve view. 29 in Sellaphora smirnovii (Bacillariophyta, Sellaphoraceae), a new small-celled species from Lake Glubokoe, European Russia, together with transfer of Navicula pseudoventralis to the genus Sellaphora
FIGURES 17–29. Sellaphora pseudoventralis comb. nov. 17–27. Light microscopy. 29–29. SEM. 28. External valve view. 29. Internal valve view. Scale bars: 10 μm (Figs 17–27), 2 μm (Figs 28–29).
FIGURES 1–16 in Sellaphora smirnovii (Bacillariophyta, Sellaphoraceae), a new small-celled species from Lake Glubokoe, European Russia, together with transfer of Navicula pseudoventralis to the genus Sellaphora
FIGURES 1–16. Sellaphora smirnovii sp. nov. 1–13. Light microscopy, Fig. 7 illustrates the holotype specimen. 14–16. SEM, external valve view. Scale bars: 10 μm (Figs 1–13), 1 μm (Figs 14–16).
FIGURE 1. A in Further studies in Viola Sect. Melanium (Violaceae). Identity and typification of Viola nana and V. henriquesii, two neglected European Atlantic taxa
FIGURE 1. A) Lectotype specimen of Viola nana (DC.) Le Jol. preserved in G-DC (G00209966!) and B) another Gay's specimen preserved in S (S14-21218!).
FIGURE 2. A in Further studies in Viola Sect. Melanium (Violaceae). Identity and typification of Viola nana and V. henriquesii, two neglected European Atlantic taxa
FIGURE 2. A) Lectotype of Viola henriquesii preserved in M (M0112802!) and B) syntype preserved in S (S14-17833!).
FIGURE 2 in Underestimated diversity in one of the world's best studied mountain ranges: The polyploid complex of Senecio carniolicus (Asteraceae) contains four species in the European Alps
FIGURE 2. Representative shapes of rosette leaves (left) and cauline leaves (right) of Senecio carniolicus (A) and S. noricus (B). Drawings: R. Flatscher.
ScienceDex guides
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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)
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.