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.
7,959
datasets available to search
ShareScore release 0.9.0
Dataset results
7,959 results for “sp. n.”
Figure 19. from: Eupolybothrus cavernicolus Komerički & Stoev sp. n. (Chilopoda: Lithobiomorpha: Lithobiidae): the first eukaryotic species description combining transcriptomic, DNA barcoding and micro-CT imaging data - Biodiversity Data Journal 1: e1013 (28 October 2013) https://doi.org/10.3897/BDJ.1.e1013
Figure 19. - Delineation of Eupolybothrus species – Neighbor joining tree K2P distances. Visualised are the clusters obtained from the reversed Statistical Parsimony (SP) method and the Automatic Barcoding Gap Discovery (ABGD) procedure. Bootstrap support for the identified lineages are given above. The intraspecific genetic variability is given for each cluster. Source data is available in Suppl. material 1.
Figure 20b. from: Eupolybothrus cavernicolus Komerički & Stoev sp. n. (Chilopoda: Lithobiomorpha: Lithobiidae): the first eukaryotic species description combining transcriptomic, DNA barcoding and micro-CT imaging data - Biodiversity Data Journal 1: e1013 (28 October 2013) https://doi.org/10.3897/BDJ.1.e1013
Figure 20b. - Gene annotation. Original data available from GigaScience GigaDB (Stoev et al. 2013). Figure 20a. E-value, identity and species distribution statistics of the sequences that can find homologs on Nr database Figure 20b. COG functional classification of the transcripts Figure 20c. GO categories of the transcripts <br> COG functional classification of the transcripts
Figure 17b. from: Eupolybothrus cavernicolus Komerički & Stoev sp. n. (Chilopoda: Lithobiomorpha: Lithobiidae): the first eukaryotic species description combining transcriptomic, DNA barcoding and micro-CT imaging data - Biodiversity Data Journal 1: e1013 (28 October 2013) https://doi.org/10.3897/BDJ.1.e1013
Figure 17b. - Prefemur of male leg 15. From Stoev et al. (2010). Figure 17a. Eupolybothrus tabularum Figure 17b. Eupolybothrus excellens <br> Eupolybothrus excellens
FIG. 2. — Micronella najtae n in Micronella najtae n. sp. (Collembola: Brachystomellidae), a new species from Tierra del Fuego with a key to the species Javier
FIG. 2. — Micronella najtae n. sp.: A, anal valves and ventral view of Abd IV-VI; B, tita of leg I; C, tita of leg III; D, dorsal view of Ant III-IV; E, ventral view of Ant III- IV; F, maxillae; G, labium; H, furcal area and its surrounding chaetae. Abbreviations: see Material and methods. Scale bars: A, 0.1 mm; B-H, 0.03 mm.
FIG. 1. — Micronella najtae n in Micronella najtae n. sp. (Collembola: Brachystomellidae), a new species from Tierra del Fuego with a key to the species Javier
FIG. 1. — Micronella najtae n. sp.: A, dorsal chaetotaxy; B, ventral chaetotaxy; C, PAO and its surrounding chaetae. Abbreviations: see Material and methods. Scale bars: A, B, 0.1 mm; C, 0.03 mm.
Figs 1–7 in Pagastia Tianmumontana Sp. N. - A New Species Of Chironomids (Diptera: Chironomidae: Diamesinae) From South China
Figs 1–7. Details of the hypopygium structure of Pagastia (s. str.) tianmumontana sp. n. 1, 3 – hypopygium, dorsal view; 2 – lateral aedeagal lobes of phallapodemes; 4–7 – gonostylus in varies positions. Scale bar 50 µm
Fig. 2 in Haplocotyle japonica n. gen., n. sp. (Monogenea: Microbothriidae) Parasitic on Rhinobatos hynnicephalus (Elasmobranchii: Rajiformes: Rhinobatidae) in Japanese Waters
Fig. 2. Maximum likelihood (ML) tree for the Microbothriidae obtained using partial 28S rDNA sequences with Calicotyle japonica Kitamura, Ogawa, Shimizu, Kurashima, Mano, Taniuchi, and Hirose, 2010 (Monocotylidae), Benedenia seriolae (Yamaguti, 1934) and Capsala pricei Hidalgo-Escalente, 1959 (Capsalidae) as outgroups. Bootstrap values shown along the branches are based on 1,000 replicates for the ML and NJ analysis.
Fig. 1. Haplocotyle japonica n. gen., n in Haplocotyle japonica n. gen., n. sp. (Monogenea: Microbothriidae) Parasitic on Rhinobatos hynnicephalus (Elasmobranchii: Rajiformes: Rhinobatidae) in Japanese Waters
Fig. 1. Haplocotyle japonica n. gen., n. sp. from Rhinobatos hynnicephalus. A–C, holotype (NSMT-Pl 6167); D, paratype (NSMT-Pl 6168). A, whole mount (ventral view); B, male copulatory organ; C, reproductive system; D, egg in oötype. Scale bars: A, 200 µm; B–D, 100 µm. Abbreviations: ag, anterior gland; bc, buccal cavity; cgp, common genital pore; dmc, distal part of male copulatory organ; eb, excretory blad- der; gp, genital pouch; h, haptor; in, intestinal caeca; m, mouth; mag, male accessory gland; mco, male copulatory organ; mg, Mehlis' gland; mgo, male genital opening; o, oötype; od, oviduct; oo, opening of oötype; ov, ovary; ovd, ovovitelline duct; ph, pharynx; pmc, proximal part of male copulatory organ; sr, seminal receptacle; sv, seminal vesicle; t, testis; tv, transverse vitelline duct; v, vagina; vd, vas deferens; vi, vitellarium; vid, vitelline duct; vp, vaginal pore.
Fig. 5 in METAPOCYRTUS MADAYAW SP. N. (COLEOPTERA: CURCULIONIDAE, ENTIMINAE), A NEW FLIGHTLESS WEEVIL FROM EASTERN MINDANAO, PHILIPPINES
Fig. 5. Habitats of Metapocyrtus (Artapocyrtus) madayaw sp. n. A – Lamiawan, Davao Oriental; B – Maragusan, Davao de Oro.
Рис. 5–10. Otiorhynchus paradigitalis sp. n., общий виΑ и ΑетаΛи строения. 5 –самец, гоΛотип; 6 – самка, паратип; 7 – эΑеагус; 8 – сперматека; 9 – spiculum ventrale; 10 – кокситы. Figs 5–10. Otiorhynchus paradigitalis sp. n., general view and details of structure. 5 – male, holotype; 6 – female, paratype; 7 – aedeagus; 8 – spermatheca; 9 – spiculum ventrale; 10 – coxites. in A new weevil of the subgenus Otismotilus Reitter, 1912, genus Otiorhynchus Germar, 1824 (Coleoptera: Curculionidae: Entiminae) from the Caucasus
Рис. 5–10. Otiorhynchus paradigitalis sp. n., общий виΑ и ΑетаΛи строения. 5 –самец, гоΛотип; 6 – самка, паратип; 7 – эΑеагус; 8 – сперматека; 9 – spiculum ventrale; 10 – кокситы. Figs 5–10. Otiorhynchus paradigitalis sp. n., general view and details of structure. 5 – male, holotype; 6 – female, paratype; 7 – aedeagus; 8 – spermatheca; 9 – spiculum ventrale; 10 – coxites.
Рис. 11. Распространение Otiorhynchus digitalis Yunakov et Davidian, 2002 (круг) и O. paradigitalis sp. n. (кваΑрат). Fig 11. Distribution of Otiorhynchus digitalis Yunakov et Davidian, 2002 (circle) and O. paradigitalis sp. n. (square). in A new weevil of the subgenus Otismotilus Reitter, 1912, genus Otiorhynchus Germar, 1824 (Coleoptera: Curculionidae: Entiminae) from the Caucasus
Рис. 11. Распространение Otiorhynchus digitalis Yunakov et Davidian, 2002 (круг) и O. paradigitalis sp. n. (кваΑрат). Fig 11. Distribution of Otiorhynchus digitalis Yunakov et Davidian, 2002 (circle) and O. paradigitalis sp. n. (square).
Figs 13–16 in Resurrection Of The Genus Micherdzinskiiobovella Hirschmann, 1989, With The Description Of M. Petofii Sp. N. From Singapore (Acari: Mesostigmata: Urodinychidae)
Figs 13–16. Photos of Micherdzinskiiobovella petofii sp. n., holotype, female: 13 = idiosoma in dorsal view, 14 = idiosoma in ventral view, 15 = peritrema and female genital shield, 16 =
Fig. 2 in Ferussina Petofiana Sp. N. (Gastropoda, Caenogastropoda, Cyclophoridae), The Oldest Representative Of Its Subfamily From The Late Cretaceous Of Romania
Fig. 2. Holotype and only specimen of Ferussina petofiana Páll-Gergely, sp. n.: A–D, F = various views of the shell; E = aperture; G: protoconch and first teleoconch whorls; H = Arrows
Fig. 1 in Ferussina Petofiana Sp. N. (Gastropoda, Caenogastropoda, Cyclophoridae), The Oldest Representative Of Its Subfamily From The Late Cretaceous Of Romania
Fig. 1. Geological setting of the type locality of Ferussina petofiana. A = Position of the Hațeg Basin (rectangle; HB) within Romania. B = Simplified geological map of the Hațeg Basin, highlighting the distribution of the uppermost Cretaceous continental deposits (shades of green). Legend: 1 – surrounding metamorphic basement, 2 – units of the sedimentary basin infill (mostly marine), 3-5 – fossiliferous Maastrichtian continental deposits, with 3 – Sînpetru Formation, 4 – Densuș-Ciula Formation (v – volcaniclastic beds), and 5 – Sînpetru Formation-correlative units (see CSIKI-SAVA et al. 2016), 6 – Quaternary cover, 7 – sites with gastropod assemblages (a – SCHAFARZIK 1909, b – RĂDULESCU et al. 1976, c –ANTONESCU et al. 1983, d –GRIGORESCU et al. 1985, e – PANĂ et al. 2002, f – CSIKI et al. 2008, g – VASILE et al. 2011; see text for details), 8 – site K3 of Vălioara, the type locality of Ferussina petofiana (from BOTFALVAI et al. 2021). C = Synthetic lithological column near site K3 (marked by red arrow), modified from BOTFALVAI et al. (2021). Lithofacies abbreviations: BChD – braided channel deposits, mainly conglomerates, ChL – sandstone channel lag, SSp – sandstone sheet-splay, PdFP – poorly drained floodplain deposits, mainly grey-greenish silts and muds, WdFP – well-drained floodplain deposits, mainly red silts and muds. For more details, see BOTFALVAI et al. (2021). D. View of site K3 in the Pârâul Neagului ravine, located in grey-greenish fine-grained floodplain deposits (near handle of hammer). E. The Retezat Mountains overlooking the Hațeg Basin from the south (photo by Gergő Konecsni), mentioned by the Petőfi poem written during his 1849 visit in the
Fig. 3 in Ferussina Petofiana Sp. N. (Gastropoda, Caenogastropoda, Cyclophoridae), The Oldest Representative Of Its Subfamily From The Late Cretaceous Of Romania
Fig. 3. Artistic reconstruction of Ferussina petofiana Páll-Gergely, sp. n. (artwork by Márton Zsoldos)
Figs 1–6 in Nosema pieriae sp. n. (Microsporida, Nosematidae): A New Microsporidian Pathogen of the Cabbage Butterfly Pieris brassicae L. (Lepidoptera: Pieridae)
Figs 1–6. Light micrographs of the microsporidian pathogen infecting P. brassicae. 1 – intestine which is heavily infected with microsporidian spores; 2–3 – microsporidian spores in fresh smears, note that meront and sporoblast stages are easily seen and marked by arrows; 4 – tetranucleate spherical meront (schizont); 5 – binucleate oval meront; 6 – diplokaryotic sporoblast. Scale bars: 30 µm (1), 15–10 µm (2–3), 3 μm (4), 2 μm (5), 4 μm (4).
Fig. 11 in Nosema pieriae sp. n. (Microsporida, Nosematidae): A New Microsporidian Pathogen of the Cabbage Butterfly Pieris brassicae L. (Lepidoptera: Pieridae)
Fig. 11. The phylogenetic analysis was carried out by Maximum Likelihood (ML) using an HKY85 substitution model of PAUP 4.0b10 software. The topology of the consensus tree was constructed and evaluated by 1000 bootstrap replications. The branches with lower than 50% confidence values were ignored.
Figs 7–10 in Nosema pieriae sp. n. (Microsporida, Nosematidae): A New Microsporidian Pathogen of the Cabbage Butterfly Pieris brassicae L. (Lepidoptera: Pieridae)
Figs 7–10. Transmission electron micrographs of microsporidian spores infecting P. brassicae. 7 – longitudinal (a) and transversal (b) sections of diplokaryotic spores, polar filament (pf), posterior vacuole (pv) and nuclei (n) are easily seen; 8 – spherical nuclei (n); 9 – polaroplast (pp) and anchoring disc (ad) structures; pp thin lamellar type polaroplast, pp thick lamellar type polaroplast; 10 – cross section of 1, 2, polar filaments; exospore (ex), endospore (en), plasmalemma (p) and polar filament (pf). Scale bars: 800 nm (7), 250 nm (8), 200 nm (9, 10).
Figs. 7–9. Paraharmotrema karinganiense Dutton & Bullard n in Paraharmotrema karinganiense n. gen., n. sp. (Digenea: Liolopidae) infecting the intestine of serrated hinged terrapin (Pelusios sinuatus), east African black mud turtle (Pelusios subniger), and South African helmeted turtle (Pelomedusa galeata) and a phylogenetic hypothesis for liolopid genera
Figs. 7–9. Paraharmotrema karinganiense Dutton & Bullard n. sp. (Digenea: Liolopidae) from the intestine of the intestine of the serrated hinged terrapin, Pelusios sinuatus (Smith 1838) (Pleurodira: Pelomedusidae). (7) Tegumental scales in antero-dextral ventral body surface, ventral view, light micrograph. (8) Tegumental scales on ventral body surface posterior to oral sucker, ventral view, light micrograph. (9) Tegumental scales in same position as in Fig. 8 (showing exposed tips of scales only), ventral view, scanning electron micrograph.
Figs. 5–6. Paraharmotrema karinganiense Dutton & Bullard n in Paraharmotrema karinganiense n. gen., n. sp. (Digenea: Liolopidae) infecting the intestine of serrated hinged terrapin (Pelusios sinuatus), east African black mud turtle (Pelusios subniger), and South African helmeted turtle (Pelomedusa galeata) and a phylogenetic hypothesis for liolopid genera
Figs. 5–6. Paraharmotrema karinganiense Dutton & Bullard n. sp. (Digenea: Liolopidae) from intestine of serrated hinged terrapin, Pelusios sinuatus (Smith 1838) (Pleurodira: Pelomedusidae). (5) Ventral sucker, ventral view, scanning electron micrograph. (6) Ventral sucker, ventral view, light micrograph.
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.