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.
95
datasets available to search
ShareScore release 0.9.0
Dataset results
95 results for “Rhinusa”
Figs 2-7 in Morphology of the mature larva and pupa of Rhinusa bipustulata (Rossi, 1792) (Coleoptera: Curculionidae) with some remarks on its biology
Figs 2-7. Rhinusa bipustulata (Rossi), mature larva: 2 - habitus, 3 - lateral view of thoracic segments, 4 – lateral view of second abdominal segment, 5 – lateral view of abdominal segments VIII-X (prns – pronotal setae, dpls – dorsopleural s., vpls – ventropleural s., prs – prodorsal s., pds – postdorsal s., dls – dorsolateral s., as – alar s., ss – spiracular s., lsts – laterosternal s., msts – mesosternal s., sts – sternal s., ps – pleural s., ds – dorsal s.), 6 – spiracle of thorax, 7 – spiracle of second abdominal segment
FIGURES 33‒44 in Rhinusa Stephens: a taxonomic revision of the species belonging to the R. linariae R. herbarum, R. melas, and R. mauritii groups (Coleoptera Curculionidae)
FIGURES 33‒44. Spiculum ventrale of (33) Rhinusa linariae; (34) R. herbarum; (35) R. mateui; (36) R. melas; (37) R. korotyaevi; (38) R. mauritii. Spermatheca of (39) R. linariae; (40) R. herbarum; (41) R. mateui; (42) R. melas; (43) R. korotyaevi; (44) R. mauritii.
FIGURES 23‒32 in Rhinusa Stephens: a taxonomic revision of the species belonging to the R. linariae R. herbarum, R. melas, and R. mauritii groups (Coleoptera Curculionidae)
FIGURES 23‒32. Profemur and protibia of (23) Rhinusa bipustulata, male; (24) R. linariae, male; (25) R. tetra, male; (26) R. tetra, female. Penis in dorsal view of (27) R. linariae; (28) R. herbarum; (29) R. mateui; (30) R. melas; (31) R. korotyaevi; (32) R. mauritii.
FIGURES 1–4 in On the identity of Rhinusa hispida (Brullé) and its current synonyms (Coleoptera: Curculionidae)
FIGURES 1–4. Habitus of Rhinusa pilosa (Gyllenhal, 1838) (1, 3) and R. brondelii (Brisout, 1862) (2, 4).
FIGURE 21 in On the identity of Rhinusa hispida (Brullé) and its current synonyms (Coleoptera: Curculionidae)
FIGURE 21. Confirmed localities for Rhinusa pilosa (Gyllenhal, 1838) (dots) and R. brondelii (Brisout, 1862) (stars) in the western Palaearctic.
FIGURES 5–20 in On the identity of Rhinusa hispida (Brullé) and its current synonyms (Coleoptera: Curculionidae)
FIGURES 5–20. Head and rostrum of Rhinusa pilosa (Gyllenhal, 1838) (5–8, male; 9–12, female) and R. brondelii (Brisout, 1862) (13–16, male; 17–20, female) in lateral outline.
FIGURE 16 in Phylogeny of the weevil genus Rhinusa Stephens based on adult morphological characters and host plant information (Coleoptera: Curculionidae)
FIGURE 16. Phylogenetic hypothesis for the species of Rhinusa based on morphological characters only. Characters are weighted using an iterative a posteriori weighting procedure. The diagram is a strict consensus tree derived from 14 shortest trees under the parsimony criterion. Numbers at the internodes show bootstrap support percentages (1000 pseudoreplicates).
FIGURE 19 in Phylogeny of the weevil genus Rhinusa Stephens based on adult morphological characters and host plant information (Coleoptera: Curculionidae)
FIGURE 19. Host plant preferences of extant species of Rhinusa and inferred evolutionary transitions of host associations mapped onto the strictly morphological equal-weights topology (cf. Fig. 14). The reconstruction suggests that Antirrhineae (Plantaginaceae) are the ancestral hosts for Rhinusa and that the switch to Scrophulariaceae evolved in a single step in the lineage of the R. bipustulata + R. tetra groups. A = Antirrhinum; C = Chaenorhinum; K = Kickxia; L = Linaria; Lo = Lotus L.; M = Misopates; P = Plantago L.; Sc = Scrophularia; Sa = Salix L.; V = Verbascum; Vn = Veronica L.
FIGURES 6–13 in Phylogeny of the weevil genus Rhinusa Stephens based on adult morphological characters and host plant information (Coleoptera: Curculionidae)
FIGURES 6–13. (6) Rhinusa collina, aedeagus in dorsal view; (7) R. collina, aedeagus in lateral view; (8) R. uncipes, aedeagus in lateral view; (9) R. vestita, aedeagus in dorsal view; (10) R. littorea, spiculum ventrale; (11) R. brondelii, spermatheca; (12) R. linariae, spermatheca; (13) R. asellus, spermatheca. Numbers indicate characters and states. Not drawn to the same scale.
FIGURE 17 in Phylogeny of the weevil genus Rhinusa Stephens based on adult morphological characters and host plant information (Coleoptera: Curculionidae)
FIGURE 17. One of 46 shortest trees for the species of Rhinusa derived from parsimony analysis of the morphological equal-weights matrix. Character (above) and state (below) distributions are mapped under unambiguous transformation. Black squares indicate unique transformed characters whereas white circles represent homoplasious characters.
FIGURE 15 in Phylogeny of the weevil genus Rhinusa Stephens based on adult morphological characters and host plant information (Coleoptera: Curculionidae)
FIGURE 15. Phylogenetic hypothesis for the species of Rhinusa based on the combined morphological and host plant information. All characters are equally weighted. The diagram is a strict consensus tree derived from 3128 optimal trees under the parsimony criterion. Numbers at the internodes show bootstrap support percentages (1000 pseudoreplicates).
FIGURE 14 in Phylogeny of the weevil genus Rhinusa Stephens based on adult morphological characters and host plant information (Coleoptera: Curculionidae)
FIGURE 14. Phylogenetic hypothesis for the species of Rhinusa based on morphological characters only. All characters are equally weighted. The diagram is a strict consensus tree derived from 46 optimal trees under the parsimony criterion. Numbers at the internodes show bootstrap support percentages (1000 pseudoreplicates).
FIGURES 1–15 in Taxonomic and nomenclatural notes on the Rhinusa tetra (Fabricius) species complex (Coleoptera: Curculionidae)
FIGURES 1–15. Rostrum in dorsal and lateral view of 1, Rhinusa tetra male, Rocca di Cave, Italy; 2, R. tetra female, Rocca di Cave, Italy; 3, R. comosa male, Pisoniano, Italy; 4, R. comosa female, Sandanski, Bulgaria; 5, R. moroderi female, Salamis, Cyprus; 6, R tetra male; 7, R tetra female; 8, R. comosa male; 9, R. comosa female; 10, R. moroderi female; 11 and 12, R. verbasci female, Golluk-Nallihan, Turkey; 13, R. verbasci female, Tessaglia, Greece. Aedeagus in dorsal view of 14, R. tetra; 15, R. comosa.
Data from: Host associated genetic differentiation in a seed parasitic weevil Rhinusa antirrhini (Coleptera: Curculionidae) revealed by mitochondrial and nuclear sequence data
Open the record for dataset details and reuse information.
Figure 8 from: Gosik R, Caldara R, Toševski I, Skuhrovec J (2024) Description of immature stages of Rhinusa species (Coleoptera, Curculionidae, Mecinini) with a focus on diagnostic morphological characters at the species and genus levels. ZooKeys 1195: 1-94. https://doi.org/10.3897/zookeys.1195.112328
Figure 8 Rhinusa tetra (Fabricius, 1792) mature larva, habitus A lateral view of thoracic segments B lateral view of abdominal segment I C lateral view of abdominal segments VII–X (schemes). Abbreviations: Th. 1–3–number of thoracic segments, Abd. 1–10–number of abdominal seg, setae: as–alar, ds–dorsal, eps–epipleural, eus–eusternal, lsts–laterosternal, pda–pedal, pds–postdorsal, prns–pronotal, prs–prodorsal, ss–spiracular, ps–pleural, sts–sternal.
Figure 7 from: Gosik R, Caldara R, Toševski I, Skuhrovec J (2024) Description of immature stages of Rhinusa species (Coleoptera, Curculionidae, Mecinini) with a focus on diagnostic morphological characters at the species and genus levels. ZooKeys 1195: 1-94. https://doi.org/10.3897/zookeys.1195.112328
Figure 7 Rhinusa tetra (Fabricius, 1792) mature larva, head and mouth parts A head B antenna C clypeus and labrum (left side), epipharynx (right side) D left mandible E maxillolabial complex (schemes). Abbreviations: at–antenna, lr–labral rods, sb–sensillum basiconicum, Se–sensorium, st–stemmata, setae: als–anterolateral, ams–anteromedial, cls–clypeal, des–dorsal epicranial, dms–dorsal malar, fs–frontal epicranial, les–lateral epicranial, ligs–ligular, lrs–labral, mbs–malar basiventral, mds–mandibular dorsal, mes–medial, mpxs–maxillary palp, pes–postepicranial, pfs–palpiferal, pms–postmental, prms–premental, stps–stipital, ves–ventral, vms–ventral malar.
Figure 68 from: Gosik R, Caldara R, Toševski I, Skuhrovec J (2024) Description of immature stages of Rhinusa species (Coleoptera, Curculionidae, Mecinini) with a focus on diagnostic morphological characters at the species and genus levels. ZooKeys 1195: 1-94. https://doi.org/10.3897/zookeys.1195.112328
Figure 68 Rhinusa melas (Boheman, 1838) pupa habitus A ventral view B lateral view C dorsal view (schemes). Abbreviations: a–pr–abdominal protuberances, h–pr–head protuberances, p–pr–pronotal protuberances, ur–urogomphi, setae: as–apical, d–dorsal, ds–discal, fes–femoral, l, ls–lateral, os–orbital, pls–posterolateral, v–ventral.
Figure 66 from: Gosik R, Caldara R, Toševski I, Skuhrovec J (2024) Description of immature stages of Rhinusa species (Coleoptera, Curculionidae, Mecinini) with a focus on diagnostic morphological characters at the species and genus levels. ZooKeys 1195: 1-94. https://doi.org/10.3897/zookeys.1195.112328
Figure 66 Rhinusa melas (Boheman, 1838) mature larva, habitus A lateral view of thoracic segments B lateral view of abdominal segment I C lateral view of abdominal segments VII–X (schemes). Abbreviations: Th. 1–3–number of thoracic segments, Abd. 1–10–number of abdominal seg, setae: as–alar, ds–dorsal, eps–epipleural, eus–eusternal, lsts–laterosternal, pda–pedal, pds–postdorsal, prns–pronotal, prs–prodorsal, ss–spiracular, ps–pleural, sts–sternal.
Figure 65 from: Gosik R, Caldara R, Toševski I, Skuhrovec J (2024) Description of immature stages of Rhinusa species (Coleoptera, Curculionidae, Mecinini) with a focus on diagnostic morphological characters at the species and genus levels. ZooKeys 1195: 1-94. https://doi.org/10.3897/zookeys.1195.112328
Figure 65 Rhinusa melas (Boheman, 1838) mature larva, head and mouth parts A head B antenna C clypeus and labrum (left side), epipharynx (right side) D left mandible E maxillolabial complex (schemes). Abbreviations: at–antenna, lr–labral rods, sa–sensillum ampullaceum, Se–sensorium, st–stemmata, setae: als–anterolateral, ams–anteromedial, cls–clypeal, des–dorsal epicranial, dms–dorsal malar, fs–frontal epicranial, les–lateral epicranial, ligs–ligular, lrs–labral, mbs–malar basiventral, mds–mandibular dorsal, mes–medial, mpxs–maxillary palp, pes–postepicranial, pfs–palpiferal, pms–postmental, prms–premental, stps–stipital, ves–ventral, vms–ventral malar.
Figure 61 from: Gosik R, Caldara R, Toševski I, Skuhrovec J (2024) Description of immature stages of Rhinusa species (Coleoptera, Curculionidae, Mecinini) with a focus on diagnostic morphological characters at the species and genus levels. ZooKeys 1195: 1-94. https://doi.org/10.3897/zookeys.1195.112328
Figure 61 Rhinusa vestita (Germar, 1821) mature larva, habitus A lateral view of thoracic segments B lateral view of abdominal segment I C lateral view of abdominal segments VII–X (schemes). Abbreviations: Th. 1–3–number of thoracic segments, Abd. 1–10–number of abdominal seg, setae: as–alar, ds–dorsal, eps–epipleural, eus–eusternal, lsts–laterosternal, pda–pedal, pds–postdorsal, prns–pronotal, prs–prodorsal, ss–spiracular, ps–pleural, sts–sternal.
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.