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FIGURE 2 in The invertebrate host of salmonid fish parasites Ceratonova shasta and Parvicapsula minibicornis (Cnidaria: Myxozoa), is a novel fabriciid annelid, Manayunkia occidentalis sp. nov. (Sabellida: Fabriciidae)
FIGURE 2. Gross morphological features of Manayunkia occidentalis sp. nov. resolved by light microscopy: A, multiple individuals emerged and feeding from their tubes; B, Individual annelid with prominent vascularized appendages (va) and showing refractile spots on one feeding palp on each side (arrowheads); C, female in reflected light, showing white oocytes (o) in segments 4–6; D, male in reflected light showing bright spermatogonic tissue (sp) in multiple posterior segments; E, Male in transmitted light showing parallel vascularized appendages (va) and fanned-out feeding palps anteriorly with two dark eyespots in peristomium, and granular coelom posteriorly due to presence of developing sperm.
FIGURE 1 in The invertebrate host of salmonid fish parasites Ceratonova shasta and Parvicapsula minibicornis (Cnidaria: Myxozoa), is a novel fabriciid annelid, Manayunkia occidentalis sp. nov. (Sabellida: Fabriciidae)
FIGURE 1. Manayunkia occidentalis sp. nov. from the Klamath River, CA, infected with myxozoan parasites Ceratonova shasta (A–C) and Parvicapsula minibicornis (D–F). A, bright field image of C. shasta actinospores (arrowheads) in tegument; B, Nomarski interference contrast image of C. shasta pansporocyst in tegument; C, Individual tetractinomyxon type actinospores of C. shasta; D, bright field image of P. minibicornis actinospores (arrowhead) in coelom of infected annelid; E, mass of developing P. minibicornis spores in coelom; F, Individual saccimyxon type actinospores of P. minibicornis; morphologies after Atkinson et al. (2019).
FIGURE 5 in The invertebrate host of salmonid fish parasites Ceratonova shasta and Parvicapsula minibicornis (Cnidaria: Myxozoa), is a novel fabriciid annelid, Manayunkia occidentalis sp. nov. (Sabellida: Fabriciidae)
FIGURE 5. Phylogram from Maximum Likelihood (ML) analysis of COI data for representative Manayunkia species, with bootstrap values given at nodes and GenBank accession numbers given in parentheses; novel sequences indicated by boldface. Bayesian analysis gave equivalent tree topology (posterior probabilities shown after ML bootstrap values at nodes).
FIGURE 4 in The invertebrate host of salmonid fish parasites Ceratonova shasta and Parvicapsula minibicornis (Cnidaria: Myxozoa), is a novel fabriciid annelid, Manayunkia occidentalis sp. nov. (Sabellida: Fabriciidae)
FIGURE 4. Morphological features of Manayunkia occidentalis sp. nov. resolved by scanning electron microscopy: A, lateral view; B, dorsal view; C, ventral view; D, anterior showing membranous collar (c) of the peristomal ring (pr), margin with fecal groove (fg); mucus covers the pinnules and adheres diatoms; E, detail of typical thoracic uncini; F, abdominal segments and anus, showing ciliated fecal groove extending anteriorly and wrapping around to the ventral surface at boundary between abdominal and thoracic segments; G, lateral view of thoracic segments showing contracted uncini and prominent neuropodia; H, higher magnification view of retracted abdominal uncini.
FIGURE 1 in Annotated Catalog of the Fossil Invertebrates Described by, and Named for, William More Gabb (1839-1878)
FIGURE 1. William More Gabb in field gear (circa 1869). [Image courtesy of the University of California, Museum of Paleontology]
FIGURE 8 in Two new species of Cryptopontius Giesbrecht, 1899 (Copepoda, Siphonostomatoida Artotrogidae) associated with invertebrates from Northeastern Brazil
FIGURE 8. Cryptopontius pentadikos sp. nov. juvenile female (allotype: UFBA 3333). A, body, dorsal view; B, urosome; Scale bars: A = 100 µm; B = 50 µm
FIGURE 4 in Two new species of Cryptopontius Giesbrecht, 1899 (Copepoda, Siphonostomatoida Artotrogidae) associated with invertebrates from Northeastern Brazil
FIGURE 4. Cryptopontius phyllogorgius sp. nov. female (holotype: UFBA 3331). A, leg 1; B, leg 2; C, leg 3; D, leg 4; E, leg 5. Scale bars: A–E = 50 µm.
FIGURE 3 in Two new species of Cryptopontius Giesbrecht, 1899 (Copepoda, Siphonostomatoida Artotrogidae) associated with invertebrates from Northeastern Brazil
FIGURE 3. Cryptopontius phyllogorgius sp. nov. female (holotype: UFBA 3331). A, oral cone; B, mandible; C, maxillule; D, maxilla; E, maxilliped. Scale bars: A = 200 µm; B = 25 µm; C–E = 50 µm.
FIGURE 6 in Two new species of Cryptopontius Giesbrecht, 1899 (Copepoda, Siphonostomatoida Artotrogidae) associated with invertebrates from Northeastern Brazil
FIGURE 6. Cryptopontius pentadikos sp. nov. male (holotype: UFBA 3332). A, mandible; B, maxillule; C, maxilla; D, maxilliped. Scale bars: A–D = 50 µm.
FIGURE 2 in Two new species of Cryptopontius Giesbrecht, 1899 (Copepoda, Siphonostomatoida Artotrogidae) associated with invertebrates from Northeastern Brazil
FIGURE 2. Cryptopontius phyllogorgius sp. nov. female (holotype: UFBA 3331). A, body, dorsal view; B, urosome; C, antennule; D, antenna. Scale bars: A = 200 µm; B = 100 µm; C–D = 50 µm.
FIGURE 5 in Two new species of Cryptopontius Giesbrecht, 1899 (Copepoda, Siphonostomatoida Artotrogidae) associated with invertebrates from Northeastern Brazil
FIGURE 5. Cryptopontius pentadikos sp. nov. male (holotype: UFBA 3332). A, body, dorsal view; B, urosome; C, antennule; D, antenna. Scale bars: A = 250 µm; B–D = 50 µm.
Figure 4 in Terrestrial invertebrates surviving San Ambrosio island's ecological catastrophe reinforce biogeographic affinities between the Juan Fernández and Desventuradas Islands
Figure 4. Arachnids. (a) Sanogasta sp. (Anyphaenidae), (b) Camillina sp. (Gnaphosidae), (c) Lycosidae and (d) Steatoda grossa (Theridiidae).
Inter-individual variability of early life stages of a model marine invertebrate with a bi-phasic life cycle is shaped by contrasting oceanographic conditions
<p>The datasets represent the data collected from adult females and from megalopae used in the study.</p>
Figure 3 in Does allochthonous leaf litter structure terrestrial cave invertebrate assemblages?
Figure 3. Boxplot of C:N ratios for the different types of leaves. Different letters above a boxplot indicates a significant difference at P = 0.05.
Figure 2 in Does allochthonous leaf litter structure terrestrial cave invertebrate assemblages?
Figure 2. Line graph depicting the cumulative % leaf mass loss over a 100-day period. DW = dogwood, M = maple, P = pine, RO = red oak, SG = sweetgum, WO = white oak.
F I G U R E 2 in The nutritional importance of invertebrates to female Cebus capucinus imitator in a highly seasonal tropical dry forest
F I G U R E 2 The seasonality of energy intake by capuchins from the four most important invertebrate orders: (a) Lepidoptera, (b) Orthoptera, (c) Hemiptera, and (d) Hymenoptera. Axes represent the number of focal follows for that month (from 120 randomly selected focal follows) during which consumption of that order was observed. The arrow represents the mean vector of the analysis, which is the midpoint of the seasonal effect. Consumption of invertebrates in all four orders was significantly seasonal (p <.001). Although data are presented to reflect a calendar year, data were collected in three separate periods between 2009 and 2011
Contrasting invertebrate immune defense behaviors caused by a single gene, the Caenorhabditis elegans neuropeptide receptor gene npr-1
GEO Series GSE60063. Caenorhabditis elegans. 56 samples. Type: Expression profiling by high throughput sequencing.
Commercial nano-enabled fertilizer: unveiling its mechanisms of toxicity in non-target soil invertebrate species using a high-throughput transcriptomics approach
GEO Series GSE284021. Enchytraeus crypticus. 24 samples. Type: Expression profiling by array.
Comparative assessment of invertebrate biodiversity in two rising Mediterranean algae habitats - Raw data for biodiversity analysis, species list and detailed output data from iNEXT procedure
<p>Raw data for biodiversity analysis, species list and detailed output data from iNEXT procedure for the paper entitled "Comparative assessment of invertebrate biodiversity in two rising Mediterranean algae habitats"</p>
Tracking the hologenome dynamics in aquatic invertebrates by the holo-2bRAD approach-1
<p>This is the raw data of "<em><strong>Tracking the hologenome dynamics in aquatic invertebrates by the holo-2bRAD approach</strong></em>", and these are only be provided to editors and reviewers.</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.