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.
329
datasets available to search
ShareScore release 0.9.0
Dataset results
329 results for “Polynoidae”
Figure 5.- Parahololepidella greeffi. MNCN 16.01 in New symbiotic associations involving polynoids (Polychaeta, Polynoidae) from Atlantic waters, with redescriptions of Parahololepidella greeffi (Augener, 1918) and Gorgoniapolynoe caeciliae (Fauvel, 1913)
Figure 5.- Parahololepidella greeffi. MNCN 16.01/13708. Right cirrigerous parapodium. A. From chaetiger 44, posterior view, chaetae omitted. B. From chaetiger 12, posterior view, with chaetae. Gorgoniapolynoe caeciliae. MNCN 16.01/14337. C. Left elytron of first pair; left margin folded on dorsal side. D. Detail of margin of same elytron. E. Notochaeta. F. Ventral-most neurochaeta. G. Dorsal-most neurochaeta. H. 35th parapodium. Scale bars are µm.
Figure 2.- Parahololepidella greeffi. MNCN 16.01 in New symbiotic associations involving polynoids (Polychaeta, Polynoidae) from Atlantic waters, with redescriptions of Parahololepidella greeffi (Augener, 1918) and Gorgoniapolynoe caeciliae (Fauvel, 1913)
Figure 2.- Parahololepidella greeffi. MNCN 16.01/13708. Juvenile. A. Entire view. A1 – A4. Detail of the anterior end (A1), mid-anterior region (A2), mid-posterior region (A3), and posterior end (A4). Scale bars are cm.
Figure 4.- Parahololepidella greeffi. MNCN 16.01 in New symbiotic associations involving polynoids (Polychaeta, Polynoidae) from Atlantic waters, with redescriptions of Parahololepidella greeffi (Augener, 1918) and Gorgoniapolynoe caeciliae (Fauvel, 1913)
Figure 4.- Parahololepidella greeffi. MNCN 16.01/13708. Mid-body segment. A. Whole view of a transversal section, showing elytra and dorsal cirri on the same segment. B. Notopodium. C. Neuropodial acicular lobe. D. Neuropodial post-acicular lobe. E. Ventral cirri and nephridial papilla (black arrow). F. Neuropodial chaetae. G. Notopodial chaetae. Scale bars are cm (A) and mm (B-G).
Figure 6 in The identity of juvenile Polynoidae (Annelida) in the Southern Ocean revealed by DNA taxonomy, with notes on the status of Herdmanella gracilis Ehlers sensu Augener
Figure 6. Haplotype network of 20 haplotypes based on Austrolaenilla antarctica and Herdmanella gracilis mtCO1 data: a, representing 91% connection limit; b, representing 95% limit. Small black circles represent unsampled haplotypes, large circles represent the sampled haplotypes with their size proportional to the frequency of the haplotype (n = 1, 2 and 7). Numbers in the shapes correspond to haplotype identification numbers (see table 2). Different geographical locations are coded—white circles are Amundsen Sea BIO4, 500-m depth; light grey circles are BIO4, 1500-m depth; dark grey circles are BIO3; cross-hatched circles are Weddell Sea; horizontal hatched circles are Elephant Island; and black circles are South Georgia.
Figure 3.- Parahololepidella greeffi. MNCN 16.01 in New symbiotic associations involving polynoids (Polychaeta, Polynoidae) from Atlantic waters, with redescriptions of Parahololepidella greeffi (Augener, 1918) and Gorgoniapolynoe caeciliae (Fauvel, 1913)
Figure 3.- Parahololepidella greeffi. MNCN 16.01/13708. Elytrae. Numbers represent the segment from which elytra were removed.
Figure 4 in The identity of juvenile Polynoidae (Annelida) in the Southern Ocean revealed by DNA taxonomy, with notes on the status of Herdmanella gracilis Ehlers sensu Augener
Figure 4. Phylogenetic tree from Bayesian consenus analysis based on CO1 (mtDNA) only. Stars represent significant node values (≥95%) for Bayesian posterior probabilities. Clade numbers and letters refer to table 2 and the main text.
Figure 1.- Parahololepidella greeffi. MNCN 16.01 in New symbiotic associations involving polynoids (Polychaeta, Polynoidae) from Atlantic waters, with redescriptions of Parahololepidella greeffi (Augener, 1918) and Gorgoniapolynoe caeciliae (Fauvel, 1913)
Figure 1.- Parahololepidella greeffi. MNCN 16.01/13708. (A, B) and MNCN 16.01/14341 (C, D). Adults in dorsal (A, C) and ventral (B, D) view.
Figure 2 in The identity of juvenile Polynoidae (Annelida) in the Southern Ocean revealed by DNA taxonomy, with notes on the status of Herdmanella gracilis Ehlers sensu Augener
Figure 2. Juvenile Polynoidae: a, image of live specimens agreeing morphologically with Herdmanella gracilis Ehlers, 1908; b, detail of specimen; c, drawing of H. gracilis from the orginal description published by Ehlers (1908).
Figure 1 in The identity of juvenile Polynoidae (Annelida) in the Southern Ocean revealed by DNA taxonomy, with notes on the status of Herdmanella gracilis Ehlers sensu Augener
Figure 1. Map showing sampling localities. Black circles refer to BIOPEARL I samples, grey circles to BIOPEARL II samples, grey square to ANDEEP III samples and black triangle to ANDEEP-SYSTCO samples.
Figure 3 in The identity of juvenile Polynoidae (Annelida) in the Southern Ocean revealed by DNA taxonomy, with notes on the status of Herdmanella gracilis Ehlers sensu Augener
Figure 3. Presence of cephalic peaks in juvenile polynoids: a, type 1 juvenile of Harmothoe fuligineum—cephalic peaks clearly present (arrowed); b, type 2 juvenile—cephalic peaks absent, consistent with H. gracilis Ehlers, 1908.
Fig. 3 in New record of commensal scale worms, Arctonoe vittata (Grube, 1855) and Hyperhalosydna striata (Kinberg, 1856) (Polychaeta: Polynoidae) from Korean waters
Fig. 3. Various host invertebrates of Arctonoe vittata (Grube, 1855) found in this study. A, Solaster dawsoni Verrill, 1880; B and C, Aphelasterias japonica (Bell, 1851); D, Haliotis discus hannai Ino, 1953; E, Scelidotoma gigas (Martens, 1881); F, Triopha catalinae (Cooper, 1863); G and H, Cadlina japonica Baba, 1937; I, Niveotectura pallida (Gould, 1859); J, Apostichopus japonicus (Selenka, 1867).
Fig. 2 in New record of commensal scale worms, Arctonoe vittata (Grube, 1855) and Hyperhalosydna striata (Kinberg, 1856) (Polychaeta: Polynoidae) from Korean waters
Fig. 2. Hyperhalosydna striata (Kinberg, 1856), NIBRIV0000326200. A, Anterior end with elytra, dorsal view; B, Proboscis, frontal view; C, Right elytron from segment 11; D, Posterior end, dorsal view; E, Anterior end without elytra, dorsal view (arrow indicate dorsal cirrophore); F, Notopodium with notochaeta (arrow) from segment 14; G, Cirrigerous parapodium from segment 14, anterior view; H, Posterior end, ventral view; I, Posterior segments with nephridial papillae, ventral view; J, Neurochaeta from segment 14. Scale bar: A-E, H = 1 mm; F, J = 0.05 mm; G = 0.3 mm; I = 0.2 mm.
Fig. 5 in New record of commensal scale worms, Arctonoe vittata (Grube, 1855) and Hyperhalosydna striata (Kinberg, 1856) (Polychaeta: Polynoidae) from Korean waters
Fig. 5. Distribution of Arctonoe vittata (Grube, 1855) and Hyperhalosydna striata (Kinberg, 1856) in eastern Asia based on the present study (P) and literatures (1-19). 1: Uschakov (1982), 2: Uchida (1992), 3: Imajima (2001), 4: Uchida (1988), 5: Moore (1903), 6: Okuda (1936), 7: Imajima (2001), 8: Imajima and Hartman (1964); Imajima (2001), 9: Imajima (2001), 10: Okuda (1936), 11 and 12: Imajima (2001), 13: Okuda (1936), 14: Imajima (1988), 15-19: Uschakov (1955).
Figure 8 in Redescription of Harmothoe spinosa Kinberg, 1856 (Polychaeta: Polynoidae) and related species from Subantarctic and Antarctic waters, with the erection of a new genus
Figure 8. Harmothoe crosetensis (lectotype, BMNH 1885.12.1.68). (A) Anterior end; palps and styles of antennae and cirri missing, except for right ventral tentacular one; (B) left elytron from unknown segment in mid-body region; (C) various microtubercles of same; (D) detail of posterior margin of same; (E) right cirrigerous parapodium from unknown segment, posterior view, style of dorsal cirrus missing; (F) long notochaeta; (G) tip of same; (H) middle neurochaeta; (I) tip of same. Scale bars: 1 mm (A, B); 250 mm (C, D); 250 mm (E, F, H); 100 mm (G); 50 mm (I).
Figure 7 in Redescription of Harmothoe spinosa Kinberg, 1856 (Polychaeta: Polynoidae) and related species from Subantarctic and Antarctic waters, with the erection of a new genus
Figure 7. Harmothoe magellanica (SMF 15163). (A) Left elytron of segment 7; (B) detail of outer lateral margin of same. Scale bars: 1 mm (A); 100 mm (B).
Figure 13 in Redescription of Harmothoe spinosa Kinberg, 1856 (Polychaeta: Polynoidae) and related species from Subantarctic and Antarctic waters, with the erection of a new genus
Figure 13. (A) Living specimen of Harmothoe fuligineum; (B) living specimen of Antarctinoe ferox. Photographs: Martin Rauschert (AWI, Berlin).
Figure 5 in Redescription of Harmothoe spinosa Kinberg, 1856 (Polychaeta: Polynoidae) and related species from Subantarctic and Antarctic waters, with the erection of a new genus
Figure 5. Harmothoe antarctica (lectotype, BMNH 1885.12.1.59). (A) Anterior end; right palp and style of median antenna missing; (B) left elytron from unknown segment in mid-body region; (C) detail from posterior margin of same; (D) right elytragerous parapodium from unknown segment, anterior view; (E) long notochaeta; (F) tip of same; (G) middle neurochaeta; (H) tip of same; (I) tip of upper neurochaeta; (J) tip of lower neurochaeta. Scale bars: 2 mm (A, B); 250 mm (C, E, G); 1 mm (D); 100 mm (F, H–J).
Figure 4 in Redescription of Harmothoe spinosa Kinberg, 1856 (Polychaeta: Polynoidae) and related species from Subantarctic and Antarctic waters, with the erection of a new genus
Figure 4. Harmothoe fullo (lectotype, ZMB 685). (A) Anterior end; style of right dorsal tentacular cirrus regenerating; (B) left elytron from unknown segment in mid-body region; (C) detail of mound of same; (D) right elytron from unknown segment in mid-body region; (E) right elytragerous parapodium of segment 11, posterior view; (F) long notochaeta; (G) tip of same; (H) middle neurochaeta; (I) tip of same; (J) tip of upper neurochaeta; (K) tip of lower neurochaeta. Scale bars: 2 mm (A, B, D); 250 mm (C); 500 mm (E); 250 mm (F, H); 100 mm (G, I– K).
Figure 10 in Redescription of Harmothoe spinosa Kinberg, 1856 (Polychaeta: Polynoidae) and related species from Subantarctic and Antarctic waters, with the erection of a new genus
Figure 10. Antarctinoe spicoides (holotype, ZMH P-18608). (A) Anterior end; palps and styles of antennae and cirri missing, except for left dorsal tentacular one; right tentaculophore and right second parapodium cut off; (B) right elytron from unknown segment; (C) detail of outer lateral margin of same; (D) right cirrigerous parapodium from mid-body region, posterior view; (E) distal half of short, stout notochaeta; (F) tip of long, stout notochaeta; (G) distal part of middle neurochaeta. Scale bars: 2 mm (A); 1 mm (B, D); 250 mm (C, E–G).
Figure 3 in Redescription of Harmothoe spinosa Kinberg, 1856 (Polychaeta: Polynoidae) and related species from Subantarctic and Antarctic waters, with the erection of a new genus
Figure 3. Harmothoe fuligineum (SMF 15162). (A) Anterior end; styles of left lateral antenna, left and right dorsal and left ventral tentacular cirri, and right dorsal cirrus of segment 3 missing; (B) right elytron of segment 5; (C) detail of area near outer lateral margin of same; (D) left cirrigerous parapodium of segment 12, posterior view, style of dorsal cirrus missing; (E) long notochaeta; (F) tip of same; (G) middle neurochaeta; (H) tip of same; (I) tip of upper neurochaeta; (J) tip of lower neurochaeta. Scale bars: 2 mm (A, B); 250 mm (C); 500 mm (D); 250 mm (E, G); 100 mm (F, H–J).
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.