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Figure 4 in Variation in elasmoid fish scale patterns is informative with regard to taxon and swimming mode
Figure 4. First two principal components (PCs) of shape labelled by species. Thin plate spline transformation grids for the extreme points of each PC are shown; these are superimposed on the shapes predicted when the average landmark configuration of all specimens is deformed into that of a hypothetical specimen positioned at the extreme of the PC of interest.
Figure 3 in Variation in elasmoid fish scale patterns is informative with regard to taxon and swimming mode
Figure 3. First two principal components of scale shape. A, labelled by longitudinal zones. B, labelled by transverse zones.
Figure 1 in Phylogenetic analyses suggest that Psammomitra (Ciliophora, Urostylida) should represent an urostylid family, based on small subunit rRNA and alpha-tubulin gene sequence information
Figure 1. Morphology and infraciliature of Psammomitra retractilis (F–J, from Song & Warren, 1996). A, B, F, individuals in extended states to show the typical body shapes. Arrowheads in (A) mark the long, dominant membranelles. C, lateral view of a contracted specimen. D, posterior part, to demonstrate the long dorsal cilia. E, anterior part. Arrowheads indicate the long membranelles, whereas arrows mark the dorsal cilia. G, H, dorsal and lateral views of contracted cells. I, J, ventral and dorsal views to show the infraciliature and macronuclear nodules. Scale bars: A, C, D, F = 40 Mm; E = 30 Mm.
Figure 3 in Phylogenetic analyses suggest that Psammomitra (Ciliophora, Urostylida) should represent an urostylid family, based on small subunit rRNA and alpha-tubulin gene sequence information
Figure 3. Maximum parsimony phylogeny of small subunit rRNA genes. Psammomitra is highlighted in black, and holostichids are enclosed in rectangles. Thick branches and arrows denote position of investigated species. Numbers on branches are values generated from 1000 bootstrap replicates.
Figure 2 in Phylogenetic analyses suggest that Psammomitra (Ciliophora, Urostylida) should represent an urostylid family, based on small subunit rRNA and alpha-tubulin gene sequence information
Figure 2. Phylogenetic tree based on small subunit rRNA sequences showing the position of Psammomitra retractilis, by Bayesian inferences applying the GTR + G + I model. '-' reflects disagreement between a method and the reference Bayesian tree at a given node. The fully supported (1.00/100%/100%) branches are marked with solid circles. Psammomitra is shaded black, and holostichids are enclosed in rectangles. Thick branches and arrows denote position of investigated species. The scale bar corresponds to five substitutions per 100 nucleotide positions. Infraciliature of Oxytricha and Uroleptus (from Foissner et al., 2004), Amphisiella (from Li et al., 2007), Trachelostyla (from Gong et al., 2006), and Holosticha (from Hu & Song, 2001) are also shown.
Figure 4 in Phylogenetic analyses suggest that Psammomitra (Ciliophora, Urostylida) should represent an urostylid family, based on small subunit rRNA and alpha-tubulin gene sequence information
Figure 4. Bayesian trees based on different data sets showing phylogenetic relationships amongst Spirotrichea. '-' reflects disagreement between the maximum likelihood/ maximum parsimony method and the reference Bayesian tree at a given node. The fully supported (1.00/100%/100%) branches are marked with solid circles. Species sequenced in the present study are shown in bold type. The scale bar corresponds to 10/2 substitutions per 100 nucleotide positions. A, phylogenetic analyses inferred from alpha-tubulin gene sequences data set. B, phylogenetic analyses inferred from alpha-tubulin amino acids data set.
Figure 8 in Description of a new Eocene osteoglossid fish and additional information on †Singida jacksonoides Greenwood and Patterson, 1967 (Osteoglossomorpha), with an assessment of their phylogenetic relationships
Figure 8. Cladograms of the Osteoglossidae with nonoverlapping taxa removed, from the reanalysis of data in (A) Hilton (2003), (B) Li et al. (1997b). † fossil taxa.
Figure 2 in Description of a new Eocene osteoglossid fish and additional information on †Singida jacksonoides Greenwood and Patterson, 1967 (Osteoglossomorpha), with an assessment of their phylogenetic relationships
Figure 2. Reconstruction of †Chauliopareion mahengeense gen. et sp. nov., based on WM 492/96b. Scale bar = 1 cm.
Figure 3 in Description of a new Eocene osteoglossid fish and additional information on †Singida jacksonoides Greenwood and Patterson, 1967 (Osteoglossomorpha), with an assessment of their phylogenetic relationships
Figure 3. Reconstruction of the head of †Chauliopareion mahengeense gen. et sp. nov., based on several specimens. Scale bar = 1 cm.
Figure 1 in Description of a new Eocene osteoglossid fish and additional information on †Singida jacksonoides Greenwood and Patterson, 1967 (Osteoglossomorpha), with an assessment of their phylogenetic relationships
Figure 1. †Chauliopareion mahengeense gen. et sp. nov. A, holotype WM 490/96. B, paratype WM 311/96. Scale bars = 1 cm.
Figure 5 in Fasciole pathways in spatangoid echinoids: a new source of phylogenetically informative characters
Figure 5. Agassizia scrobiculata (Valenciennes, 1846). Camera lucida plating diagrams of oral, apical, lateral and posterior surfaces. Fascioles are shown as densely stippled bands. Length of test 35 mm.
Figure 4 in Fasciole pathways in spatangoid echinoids: a new source of phylogenetically informative characters
Figure 4. Protenaster australis (Gray, 1851). Camera lucida plating diagrams of oral, apical and posterior surfaces. Fascioles are shown as densely stippled bands. Length of test 63 mm.
Figure 1 in Fasciole pathways in spatangoid echinoids: a new source of phylogenetically informative characters
Figure 1. Aboral surface of the test of Brissus unicolor (Leske, 1778) (NHM 39.3.29.38). The peripetalous fasciole shows up clearly as a narrow dark band (arrowed). Length of test 50 mm.
Figure 2 in Fasciole pathways in spatangoid echinoids: a new source of phylogenetically informative characters
Figure 2. Test of Ova lacunosus (L., 1758) (NHM 81.11.22.39) in A, apical, and B, lateral views. The peripetalous (pp) and lateroanal (la) fascioles stand out as paler bands of fine tuberculation. Note the highly angular pathway and variable thickness of the fascioles, with angles coincident with the growth centres (o) of individual plates. Plates labelled according to Loven's system (see text for details).
Figure 7 in Fasciole pathways in spatangoid echinoids: a new source of phylogenetically informative characters
Figure 7. Meoma ventricosa (Lamarck, 1816). Camera lucida plating diagrams of oral and apical surfaces. Fascioles are shown as densely stippled bands. Length of test 119 mm.
Figure 3 in Fasciole pathways in spatangoid echinoids: a new source of phylogenetically informative characters
Figure 3. Fasciole pathways in Eupatagus valenciennesi (Agassiz & Desor, 1847). Camera lucida plating diagrams of oral, apical and posterior surfaces. Fascioles are shown as densely stippled bands. Interambulacral plates are numbered according to Loven's system and shaded grey. Ambulacral zones are unshaded.
Figure 8 in Fasciole pathways in spatangoid echinoids: a new source of phylogenetically informative characters
Figure 8. Camera lucida plating diagrams indicating fasciole pathways for: A, Lovenia elongata (Gray 1845), length of test 61 mm; B, Gualtieria orbignyana (Agassiz & Desor, 1847), length of test 39 mm.
Questionnaire on gender and age-related peculiarities in informed consent to clinical trials – National legislation
<p>European experts from the six selected countries (Germany, Spain, Austria, France, Italy, and United Kingdom) included in research done within task 1.3 (Ethical and legal review of gender and age-related issues associated with the acquisition of informed consent) participated in a survey on gender and age-related peculiarities in informed consent to clinical trials within national legislations.</p> <p>Experts were selected for their high-level scientific expertise in the fields relevant to the objectives of task 1.3. A short questionnaire on “Gender and age-related peculiarities in informed consent to clinical trials within national legislations" has been prepared and circulated to contact experts. This questionnaire was meant to identify the legal review process and collect up-to-date data. It was structured in 10 queries, exclusively aimed at obtaining hard law and soft law information pertaining to the topics addressed in task 1.3.</p>
Patient Representatives' Perspective on Informed Consent: Nominal Group Data
<p>For Task 1.6 of the i-CONSENT project, a one day workshop was organised with nine attendees from eight European patient groups. During the workshop, Nominal Group Technique (NGT) was used to explore issues that were considered pertinent within each of the four themes (comprehension, patient expectations, gender and assent), and to reach a consensus in terms of their significance. During this exercise, the workshop facilitator presented a short introduction to the theme, before each participant was given sticky notes and instructed to write down as many individual issues as possible using a separate sticky note for each idea. There was no limit to the number of ideas the participants could generate. This stage was conducted in silence and repeated for each of the four themes. The attached documents include the list of all the ideas collected on sticky notes notes during this stage and the ranking of the items done by the participants.</p>
SURVEY ON INFORMED CONSENT (IC) MANAGEMENT DURING THE PANDEMIC
<p>Data obtained through a survey with representatives of different Spanish biobanks about the adaptations done by some of the biobanks of the Spanish Biobank Network to manage the Informed Consent process during the COVID-19 pandemic</p>
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.