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Figure 4 in First record of larva of the water mite Hydrachna skorikowi Piersig (Acari, Hydrachnidia, Hydrachnidae) from Iran
Figure 4. Larva of Hydrachna skorikowi (mounted specimens) – A. Ventral view of body; B. Ventral view of coxal plates. Scale bar: 100 μm for A, 40 μm for B.
Figure 3 in First record of larva of the water mite Hydrachna skorikowi Piersig (Acari, Hydrachnidia, Hydrachnidae) from Iran
Figure 3. Larva of Hydrachna skorikowi (mounted specimens) – A. Dorsal habitus of newly emerged larva; B. Dorsal habitus of parasitizing larvae. Scale bars: 100 μm.
Figure 2 in Redescription of the water mite Eylais extendens (Müller) (Acari, Eylaidae) larva based on material collected from Iran
Figure 2. DIC micrographs of Eylais extendens (larvae) – A. Dorsal view of body; B. Ventral view of body; C.
Figure 4 in Redescription of the water mite Eylais extendens (Müller) (Acari, Eylaidae) larva based on material collected from Iran
Figure 4. Water beetles infected with larvae of Eylais extendens – A. Noteridae; B. Noteridae; C. Dytiscidae; D. Heteroceridae.
Figure 3 in Redescription of the water mite Eylais extendens (Müller) (Acari, Eylaidae) larva based on material collected from Iran
Figure 3. DIC micrographs of Eylais extendens (larva) – A. Legs; B. Trichobothrium on femur; C. Solenidion on tarsus II; D. Tarsus and pretarsus. Scale bar: 67 μm for A; 21 μm for B; 26 μm for C; 14 μm for D.
Figure 1 in Redescription of the water mite Eylais extendens (Müller) (Acari, Eylaidae) larva based on material collected from Iran
Figure 1. Eylais extendens (larva) – A. Dorsal plate; B. Ventral plate; C. Velum; D. Palp; E. Stylophore. Scale bar: 65 μm for A; 75 μm for B; 19 μm for C; 27 μm for D; 21 μm for E.
Fig. 9. Last instar larva. A in Phylogenetic analysis and systematics of the Acrapex unicolora Hampson species complex (Lepidoptera, Noctuidae, Noctuinae, Apameini), with the description of Fve new species from the Afrotropics
Fig. 9. Last instar larva. A. Acrapex simillima le Ru sp. nov. B. A. unicolora (Hampson, 1910). Scale bar = 10 mm.
Fig. 3 in Description of the male and the larva of IxodES CollarIS Hornok, 2016 with drawings of all stages
Fig. 3 Drawings of Ixodes collaris male (a, dorsal view; b, ventral view) and female (c, dorsal view; d, ventral view)
Fig. 5 in Description of the male and the larva of IxodES CollarIS Hornok, 2016 with drawings of all stages
Fig. 5 Drawings of Ixodes collaris nymph (a, dorsal view; b, ventral view) and larva (c, dorsal view; d, ventral view)
Fig. 2 in Description of the male and the larva of IxodES CollarIS Hornok, 2016 with drawings of all stages
Fig. 2 Ventral views of male Ixodes vespertilionis (a, anterior part of the idiosoma; c, posterior part of the idiosoma) and I. collaris (b, anterior part of the idiosoma; d, posterior part of the idiosoma). The white dashed line indicates the second intercoxal space. The purple and red arrows show the genital aperture. The black and yellow arrows point to differences in the anterior part of the ivory coloration
Рис. 8. СвяЗь меЖду количеством личинок гребешка в планктоне раЗмером 250–275 мкм и количеством спата на коллекторах. Fig. 8. The relationship between the number of the Japanese scallop larvae in plankton with a size of 250 to 275 µm and the number of spat on collectors. in Review of methods for the forecast of mollusk's spat productivity in sea-farms of Primorye and probable ways of their enhancement
Рис. 8. СвяЗь меЖду количеством личинок гребешка в планктоне раЗмером 250–275 мкм и количеством спата на коллекторах. Fig. 8. The relationship between the number of the Japanese scallop larvae in plankton with a size of 250 to 275 µm and the number of spat on collectors.
Fig. 6 in Description of the male and the larva of IxodES CollarIS Hornok, 2016 with drawings of all stages
Fig. 6 Ventral views of larvae of Ixodes vespertilionis (a, gnathosoma; c, habitus) and I. collaris (b, gnathosoma; d, habitus). The black and red broken lines illustrate the angle of the caudolateral edge of the gnathosoma. The yellow arrow marks the "collar". The purple and red arrows mark the medial edge of coxa I
Fig. 1 in Description of the male and the larva of IxodES CollarIS Hornok, 2016 with drawings of all stages
Fig. 1 Dorsal views of male Ixodes vespertilionis (a, habitus; c, gnathosoma) and I. collaris (b, habitus; d, gnathosoma)
Data from: Fatty acid composition as a function of latitude in barnacle cyprid larvae
<p>In this study, we investigated the fatty acid composition of the non-feeding stage of barnacle larvae (cyprids) using an integrative (larvae–environment) and comparative (latitudinal) approach. We measured fatty acids in the pelagic particulate matter and cyprids from <em>Chthamalus bisinuatus</em>, <em>C. proteus</em>, and <em>Semibalanus</em> <em>balanoides</em> from tropical to polar (Arctic) latitudes to identify potential food sources during the feeding larval stages (nauplius) that precede the cyprids and to ascertain larval capacity to integrate neutral (energetic) and polar (structural) fatty acids. </p> <p>Here we provide the complete dataset of all fatty acids detected both in i) the total particulate matter (TPM) present in the water column, and ii) the cyprid larvae of the different barnacle species. This could be useful in comparing data with future studies investigating fatty acid trophic markers in nearshore habitats. Raw data of biophysical paramateres includes cyprid i) size, ii) supply and (iii) settlement, as well as temperature collected using waterproof loggers (HOBO Pendant® Temperature/Light 64K).</p> <p>Image provided corresponds to the cyprid of the acorn barnacle <em>Semibalanus balanoides</em>, showcasing multiple lipid droplets, ie., the cyprid's main lipid storage organelles that store fat in the form of neutral lipids.</p> <p> </p>
Fig. 1 in Neem oil increases the efficiency of the entomopathogenic fungus Metarhizium anisopliae for the control of Aedes aegypti (Diptera: Culicidae) larvae
Fig. 1 Dacls survcval curves of Aedes aegypti larvae exposed to dcfferent concentratcons of neem ocl. Note: Results are the means (± SE) of three expercments for each treatment wcth 30 cnsects used per treatment for each expercment
Fig. 2 in Neem oil increases the efficiency of the entomopathogenic fungus Metarhizium anisopliae for the control of Aedes aegypti (Diptera: Culicidae) larvae
Fig. 2 Dacls survcval curves of Aedes aegypti larvae exposed to dcfferent concentratcons of Metarhizium anisopliae concdca. Note: Results are the means (± SE) of three expercments for each treatment wcth 30 cnsects used per treatment for each expercment
Fig. 7 Habitus. a Chrysomya bezziana. b Cochliomyia hominivorax. c Wohlfahrtia magnifica. d in Morphology of the first instar larva of obligatory traumatic myiasis agents (Diptera: Calliphoridae, Sarcophagidae)
Fig. 7 Habitus. a Chrysomya bezziana. b Cochliomyia hominivorax. c Wohlfahrtia magnifica. d Lucilia cuprina. Abbreviations: a1–a7 abdominal segments 1–7, ad anal division, pc pseudocephalon, t1–t3 thoracic segments 1–3. Scale bar=0.1 mm
Fig. 6 in Morphology of the first instar larva of obligatory traumatic myiasis agents (Diptera: Calliphoridae, Sarcophagidae)
Fig. 6 Cephaloskeleton of OTMA. a Chrysomya bezziana, lateral view. b Chrysomya bezziana, ventral view. c Cochliomyia hominivorax, lateral view. d Cochliomyia hominivorax, ventral view. e Wohlfahrtia magnifica, lateral view. f Wohlfahrtia magnifica, ventral view. Scale bar=0.1 mm. Abbreviations: a length of apical part of labrum, b length of basal part of labrum, db dorsal bridge, dc dorsal cornua, is intermediate sclerite, la lateral arm, lb labrum, mh mouthhook, pb parastomal bar, vc ventral cornua, vp vertical plate
Fig. 5 in Morphology of the first instar larva of obligatory traumatic myiasis agents (Diptera: Calliphoridae, Sarcophagidae)
Fig. 5 First instar of Wohlfahrtia magnifica. a Third abdominal segment, dorsal view. b Third abdominal segment, ventral view. c Anal division, papilla p5. d Anal division, posterior end, dorsal view. e Anal division, posterior end, ventral view
Fig. 4 in Morphology of the first instar larva of obligatory traumatic myiasis agents (Diptera: Calliphoridae, Sarcophagidae)
Fig. 4 First instar of Wohlfahrtia magnifica. a Anterior end of body, lateral view. b Anterior end of body, ventral view. c Antennal complex. d Maxillary palpus. e Ventral organ. f Keilin's organ. g Third thoracic segment, spines. h Second abdominal segment, spines. Abbreviations: as anterior spiracle, lb labrum, mh mouthhooks
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.