Find research datasets worth reusing
Search datasets from major research repositories and use ShareScore to quickly assess how well each record supports discovery, access, and reuse.
114
datasets available to search
ShareScore release 0.9.0
Dataset results
114 results for “parasitoid host associations”
FIGURE 12. E. costalis. A in Parasitism of Entedon costalis (Hymenoptera: Eulophidae) in Glocianus punctiger (Coleoptera: Curculionidae): an example of intentional discovery of the parasitoid-host association
FIGURE 12. E. costalis. A. Mature first instar, which is ready to molt (the second instar is outlined within the teguments of the first instar); B. The larval skin of the first instar; C. Newly molted second instar larva; D. Second instar, which started feeding.
FIGURE 2. E in Parasitism of Entedon costalis (Hymenoptera: Eulophidae) in Glocianus punctiger (Coleoptera: Curculionidae): an example of intentional discovery of the parasitoid-host association
FIGURE 2. E. costalis, head of female, scan electronic micrographs: A. General frontal view; B. Enlarged mouth area; C. Labio-maxillary complex; D. Inner part of galea (arrowed in C) bearing papillae.
FIGURE 5 in Parasitism of Entedon costalis (Hymenoptera: Eulophidae) in Glocianus punctiger (Coleoptera: Curculionidae): an example of intentional discovery of the parasitoid-host association
FIGURE 5. Rates of infestation: dandelions flowers infested by Glocianus punctiger (A) and preimaginal stages of G. punctiger infested by E. costalis (B). Diagrammatic pictures based on Tables 2,3.
FIGURE 8. E in Parasitism of Entedon costalis (Hymenoptera: Eulophidae) in Glocianus punctiger (Coleoptera: Curculionidae): an example of intentional discovery of the parasitoid-host association
FIGURE 8. E. costalis, first-instar: A. Newly hatched, habitus; B-F. Actively feeding larva: B. Caudal end with indicated caudal crown; C. Caudal crown (ventral view); D. Habitus; E. Head in lateral view; F. Head in ventral view; cr, caudal crown; fr, caudal formation; mg, median gut. See text for the abbreviations of the head sensoria on Figs E, F.
FIGURE 11 in Parasitism of Entedon costalis (Hymenoptera: Eulophidae) in Glocianus punctiger (Coleoptera: Curculionidae): an example of intentional discovery of the parasitoid-host association
FIGURE 11. First instar larvae of E. costalis, SEM, (see text for abbreviations): A. Habitus in lateral view (with fine teeth of serration indicated in the inset); B. Habitus in ventral view; C, D. Head in lateral view; E, F. Head in ventral view.
FIGURE 1 in Parasitism of Entedon costalis (Hymenoptera: Eulophidae) in Glocianus punctiger (Coleoptera: Curculionidae): an example of intentional discovery of the parasitoid-host association
FIGURE 1. Entedon costalis: A, B. Pinned male lectotype: A. Habitus, B. Fore wing; C, D. Fore wings of reared specimens: C. Female, D. Male.
FIGURE 3. E in Parasitism of Entedon costalis (Hymenoptera: Eulophidae) in Glocianus punctiger (Coleoptera: Curculionidae): an example of intentional discovery of the parasitoid-host association
FIGURE 3. E. costalis, experiments on emergence from soil. A, B, E. The container before experiments: A. Frontal view; B, E. Lateral views (E. Enlarged with respective widths of object plates and cardboard stripe); C. The container, when filled with sieved soil particles and the insect is placed into an empty space above (F. Enlarged); D. The container is turned "upside down", so the insect is buried and is about to dig up through the soil (its putative path is marked by white punctuation). Scale bar is 1.0 mm.
FIGURE 9 in Parasitism of Entedon costalis (Hymenoptera: Eulophidae) in Glocianus punctiger (Coleoptera: Curculionidae): an example of intentional discovery of the parasitoid-host association
FIGURE 9. First instar of G. punctiger superparasitized by E. costalis (eggs and larvae), arrows lead to the images of immature parasitoids imaged after dissection of the larva: solid arrows, the parasitoid eggs, which are visible within the the host's body; dotted arrows, the parasitoid larvae, which are not visible in its image.
FIGURE 4 in Parasitism of Entedon costalis (Hymenoptera: Eulophidae) in Glocianus punctiger (Coleoptera: Curculionidae): an example of intentional discovery of the parasitoid-host association
FIGURE 4. The female of E. costalis on dandelion flowerstalk: A, B. Female probes through the wall of the flowerstalk; C, D. Oviposition of the same female; white arrow, hardened and oxidized dandelion sap in the place of the oviposition hole made by the host weevil female.
FIGURE 10. A, B in Parasitism of Entedon costalis (Hymenoptera: Eulophidae) in Glocianus punctiger (Coleoptera: Curculionidae): an example of intentional discovery of the parasitoid-host association
FIGURE 10. A, B, siblicide in first instars of E. costalis: A. Two larvae imaged when fighting; B. "Winner" and "loser" rivals; C. Enigmatic parasitoid (? braconid wasp) isolated from the egg of G. punctiger: D. Actively feeding first instar larva of E. costalis after adding a drop of ethanol (so the caudal bladder (cb) is condensed); fr, caudal formation.
FIGURE 7. A in Parasitism of Entedon costalis (Hymenoptera: Eulophidae) in Glocianus punctiger (Coleoptera: Curculionidae): an example of intentional discovery of the parasitoid-host association
FIGURE 7. A. Egg of E. costalis within the egg of G. punctiger; B. The egg of G. punctiger with melanized marks caused likely by the parasitoid's ovipositor; D, E. Parasitoid eggs with developing embryo from the host egg with many melanized marks; E. Pre-eclosion first-instar; ch, egg chorion; ec, embryonic cuticle; em, embryo; hm, host haemocytes; ms, median stripe.
FIGURE 5 in Strepsiptera from Colombia: First record of the genus Strichotrema Hofeneder (Myrmecolacidae) and a new host-parasitoid association with Megalomyrmex cyendyra (Hymenoptera: Formicidae)
FIGURE 5. Distribution of Strepsiptera in Colombia. New host localities registered in red.
Figure 4 in Distinct parasitoid communities associated with host races of the leaf-mining moth Acrocercops transecta on distantly related host plants (Juglandaceae and Ericaceae)
Figure 4. Modes of parasitism of parasitoids attacking Acrocercops transecta. (A) An ovipositing female of Aneurobracon philippinensis. Before finding host larvae, females track host mines by drumming with their antennae; (B) a final instar of A. transecta that is making a cocoon; (C) a dissected cocoon of A. transecta. A prepupa of A. transecta (upper side) is fed upon by a larva of An. philippinensis (under side); (D) a pupa of An. philippinensis in the cocoon made by A. transecta; (E) a pupa of Choeras sp. in the cocoon made by A. transecta; (F) a final instar of A. transecta parasitized by Pholetesor sp. A hole is visible on the right side of the second abdominal segment from which a Pholetesor sp. larva exits the host; (G) a cocoon of Pholetesor sp. formed inside its host's mine; (H) a Eulophidae larva feeding inside its host's body; (I) a Eulophidae pupa formed inside its host's mine.
Figure 1 in Distinct parasitoid communities associated with host races of the leaf-mining moth Acrocercops transecta on distantly related host plants (Juglandaceae and Ericaceae)
Figure 1. Leaf mines of Acrocercops transecta. (A) Three mines of the Juglandaceae race on a leaflet of Juglans mandshurica; (B) a mine of the Lyonia race on Lyonia ovalifolia.
Additional information for manuscript entiteld "Host-parasitoid associations in marine planktonic time series: can metabarcoding help reveal them?" (PONE-D-20-17825R1)
<p><strong>Description:</strong></p> <p>This repository contains material to reproduce metabarcoding analyses based on the q-zip pipeline (https://github.com/PyoneerO/qzip). Raw fastq files can be downloaded from https://www.ebi.ac.uk/ena/browser/view/PRJEB37135. The used reference file can be downloaded from https://github.com/pr2database/pr2database/releases/tag/4.11.1. Please select the files created for the classifier implemented in mothur.</p> <p>The dockerfile in this repository can be used to set up the environment which inludes the installation of the needed versions of the needed tools.</p> <p>Twelve different analyses had been conducted. For each analysis one zip file had been created which contains the following files:</p> <p>- q-zip_commands.sh: the shell script to launch the pipeline</p> <p>- q-zip_parameters.txt: pipeline parameter file as input of the shell script</p> <p>- q-zip_workflow.log: log file containing stdout and sdterr</p> <p>- q-zip_seq_of_coms.txt: file containing each command executed during the pipeline run (minimal set of command to reproduce the results)</p> <p>- seq_number_stats.txt: file containing the sequence numbers at each filtering step</p> <p>- OTU tables in tsv and biom format (sequences and taxonomic annotation included)</p> <p>- Meta data map (here only including the raw file names)</p> <p>- swarm sequences in fasta format</p> <p> </p> <p><strong>The following analyses had been conducted:</strong></p> <p>- otu formation at swarm distance 1; default settings for preceding sequence filtering and subsequent taxonomic annotation</p> <p>- otu formation at swarm distance 2; default settings for preceding sequence filtering and subsequent taxonomic annotation</p> <p>- otu formation at swarm distance 3; default settings for preceding sequence filtering and subsequent taxonomic annotation</p> <p>- otu formation at swarm distance 5; default settings for preceding sequence filtering and subsequent taxonomic annotation</p> <p>- otu formation at swarm distance 10; default settings for preceding sequence filtering and subsequent taxonomic annotation</p> <p>- otu formation at swarm distance 1; relaxt settings for preceding sequence filtering and subsequent taxonomic annotation</p> <p>- otu formation at swarm distance 2; relaxt settings for preceding sequence filtering and subsequent taxonomic annotation</p> <p>- otu formation at swarm distance 3; relaxt settings for preceding sequence filtering and subsequent taxonomic annotation</p> <p>- otu formation at swarm distance 1; strict settings for preceding sequence filtering and subsequent taxonomic annotation</p> <p>- otu formation at swarm distance 2; strict settings for preceding sequence filtering and subsequent taxonomic annotation</p> <p>- otu formation at swarm distance 3; strict settings for preceding sequence filtering and subsequent taxonomic annotation</p> <p>- otu formation at swarm distance 1; very strict settings settings for preceding sequence filtering and subsequent taxonomic annotation</p> <p><strong>Settings into more detail:</strong></p> <p>relaxt settings:</p> <ul> <li>trimmomatic filtering: sliding window length of 3 bp - threshold of average quality within of 5</li> <li>vsearch paired-end merging: length of minimum overlap of 25 bp - number of mismatches allowed of 5 bp</li> <li>cutadapt primer removal: percentage primer to sequence overlap of 75% - percentage mismatches allowed of 20%</li> <li>vsearch eeMax filtering: max number of errors expected per sequence of 1 bp</li> <li>minimum sequence length of 300 bp and maximum sequence length of 550 bp</li> <li>mothur classification cutoff (refers to confidence threshold of NBC) of 0.6</li> </ul> <p>default settings (used for the manuscript):</p> <ul> <li>trimmomatic filtering: sliding window length of 3 bp - threshold of average quality within of 8</li> <li>vsearch paired-end merging: length of minimum overlap of 50 bp - number of mismatches allowed of 5</li> <li>cutadapt primer removal: percentage primer to sequence overlap of 90% - percentage mismatches allowed of 10%</li> <li>vsearch eeMax filtering: max number of errors expected per sequence of 0.25 bp</li> <li>minimum sequence length of 300 bp and maximum sequence length of 550 bp</li> <li>mothur classification cutoff (refers to confidence threshold of NBC) of 0.8</li> </ul> <p>strict settings:</p> <ul> <li>trimmomatic filtering: sliding window length of 1 bp - threshold of average quality within of 15</li> <li>vsearch paired-end merging: length of minimum overlap of 50 bp - number of mismatches allowed of 0</li> <li>cutadapt primer removal: percentage primer to sequence overlap of 90% - percentage mismatches allowed of 10%</li> <li>vsearch eeMax filtering: max number of errors expected per sequence of 0.1 bp</li> <li>minimum sequence length of 300 bp and maximum sequence length of 550 bp</li> <li>mothur classification cutoff (refers to confidence threshold of NBC) of 0.9</li> </ul> <ul> </ul> <p>very strict settings:</p> <ul> <li>trimmomatic filtering: sliding window length of 1 bp - threshold of average quality within of 15</li> <li>vsearch paired-end merging: length of minimum overlap of 50 bp - number of mismatches allowed of 0</li> <li>cutadapt primer removal: percentage primer to sequence overlap of 100% - percentage mismatches allowed of 0%</li> <li>vsearch eeMax filtering: max number of errors expected per sequence of 0.1 bp</li> <li>minimum sequence length of 300 bp and maximum sequence length of 550 bp</li> <li>mothur classification cutoff (refers to confidence threshold of NBC) of 0.9</li> </ul>
Figure 2 in Parasitoid complex associated with the flea weevil Orchestes alni L. (Coleoptera: Curculionidae) in Bulgaria and a review of host-parasitoid interactions of genus Orchestes Illiger
Figure 2. Braconidae. Habitus of Brachistes minutus (a: female) and Sigalphus pallipes (b: female).
Figs 599–612 in Review of Aphidiinae parasitoids (Hymenoptera: Braconidae) of the Middle East and North Africa: key to species and host associations
Figs 599–612. Lateral aspect of ♀ genitalia: 599. Praon volucre. 600. Praon yomenae. 601. Toxares deltiger. 602. Trioxys asiaticus. 603. Trioxys cirsii. 604. Trioxys complanatus. 605. Trioxys curvicaudus. 606. Trioxys metacarpalis. 607. Trioxys moshei. 608. Trioxys pallidus. 609. Trioxys pannonicus. 610. Trioxys pappi. 611. Trioxys quercicola. 612. Trioxys tanaceticola.
Figs 563–580 in Review of Aphidiinae parasitoids (Hymenoptera: Braconidae) of the Middle East and North Africa: key to species and host associations
Figs 563–580. Lateral aspect of ♀ genitalia: 563. Lipolexis gracilis. 564. Lysiphlebus cardui. 565. Lysiphlebus confusus. 566. Lysiphlebus desertorum. 567. Lysiphlebus fabarum. 568. Lysiphlebus fritzmuelleri. 569. Lysiphlebus testaceipes. 570. Monoctonia pistaciaecola. 571. Monoctonia vesicarii. 572. Monoctonus crepidis. 573. Monoctonus mali. 574. Pauesia abietis. 575. Pauesia anatolica. 576. Pauesia antennata. 577. Pauesia cedrobii. 578. Pauesia hazratbalensis. 579. Pauesia picta. 580. Pauesia pini.
Figs 400–424 in Review of Aphidiinae parasitoids (Hymenoptera: Braconidae) of the Middle East and North Africa: key to species and host associations
Figs 400–424. Dorsal aspect of petiole (♀): 400. Aphidius salicis. 401. Aphidius setiger. 402. Aphidius smithi. 403. Aphidius sonchi. 404. Aphidius stigmaticus. 405. Aphidius transcaspicus. 406. Aphidius uroleuci. 407. Aphidius urticae. 408. Aphidius uzbekistanicus. 409. Areopraon lepelleyi. 410. Betuloxys hortorum. 411. Binodoxys acalephae. 412. Binodoxys angelicae. 413. Binodoxys brevicornis. 414. Binodoxys centaureae. 415. Binodoxys heraclei. 416. Diaeretiella rapae. 417. Diaeretus leucopterus. 418. Ephedrus cerasicola. 419. Ephedrus chaitophori. 420. Ephedrus helleni. 421. Ephedrus lacertosus. 422. Ephedrus nacheri. 423. Ephedrus niger. 424. Ephedrus persicae.
Figs 317–331 in Review of Aphidiinae parasitoids (Hymenoptera: Braconidae) of the Middle East and North Africa: key to species and host associations
Figs 317–331. Dorsal aspect of propodeum (♀): 317. Ephedrus cerasicola. 318. Ephedrus chaitophori. 319. Ephedrus helleni. 320. Ephedrus lacertosus. 321. Ephedrus nacheri. 322. Ephedrus niger. 323. Ephedrus persicae. 324. Ephedrus plagiator. 325. Lipolexis gracilis. 326. Lysiphlebus cardui. 327. Lysiphlebus confusus. 328. Lysiphlebus desertorum. 329. Lysiphlebus fabarum. 330. Lysiphlebus fritzmuelleri. 331. Lysiphlebus testaceipes.
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.