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.
149
datasets available to search
ShareScore release 0.9.0
Dataset results
149 results for “Myodocopa”
FIGURE 5. Chavturia abyssopelagica, n in Planktonic ostracods (Myodocopa: Halocyprididae) from abyssopelagic depths in the Atlantic, North Pacific and Gulf of Oman: Chavturia abyssopelagica (n. gen., n. sp.), Halocypretta profunda (n. sp.), Halocypretta parvirostrata Chavtur and Stovbun, 2008 and Halocypretta striata (Müller, 1906)
FIGURE 5. Chavturia abyssopelagica, n. sp. Female. Paratype. A. Carapace, lateral aspect; B. Carapace, ventral aspect; C. Frontal organ and first antenna; D. Details of capitulum of frontal organ; E, Fifth limb; F. Sixth limb; G. Second antenna; H. Endopodite of second antenna. Scales in millimetres.
FIGURE 15 in Planktonic ostracods (Myodocopa: Halocyprididae) from abyssopelagic depths in the Atlantic, North Pacific and Gulf of Oman: Chavturia abyssopelagica (n. gen., n. sp.), Halocypretta profunda (n. sp.), Halocypretta parvirostrata Chavtur and Stovbun, 2008 and Halocypretta striata (Müller, 1906)
FIGURE 15. Halocypretta striata (Müller, 1906). Female. A. Carapace, lateral view; B. Carapace, ventral view; C. Frontal organ and first antenna; D. Second antenna, endopodite; E. Mandible; F Mandible, toothed edge of basale. Scales in millimetres.
TABLE 3 in Planktonic ostracods (Myodocopa: Halocyprididae) from abyssopelagic depths in the Atlantic, North Pacific and Gulf of Oman: Chavturia abyssopelagica (n. gen., n. sp.), Halocypretta profunda (n. sp.), Halocypretta parvirostrata Chavtur and Stovbun, 2008 and Halocypretta striata (Müller, 1906)
<p><b>TABLE 3.</b> Positions at which <i>Halocypretta</i> species have been recorded.</p><table><tbody><tr><th>Station</th><th>Date</th><th>Latitude</th><th>Longitude</th><th>Depth (m)</th><th>Authority</th></tr><tr><th><i>Halocypretta parvirostrata</i></th></tr></tbody><tbody><tr><th>Vityaz-39-5631</th><td>03/09/1966</td><td>43° 43’N*</td><td>149° 39’E</td><td>5500–5000</td><td>Chavtur and Stovbun, 2008</td></tr><tr><th>Vityaz-39-5610</th><td>23/06/1966</td><td>48° 48’N</td><td>153° 13’E</td><td>2500–3000</td><td>Chavtur and Stovbun, 2008</td></tr><tr><th>Vityaz-39-5612</th><td>31/07/1966</td><td>45° 43’N</td><td>153° 25’E</td><td>4000–3000</td><td>Chavtur and Stovbun, 2008</td></tr><tr><th>Vityaz-39-5617</th><td>05/08/1966</td><td>45° 49’N</td><td>153° 33’E</td><td>5000–4000</td><td>Chavtur and Stovbun, 2008</td></tr><tr><th>Vityaz-39-5627</th><td>28/08/1966</td><td>44° 11’N</td><td>150° 30’E</td><td>3000–2000</td><td>Chavtur and Stovbun, 2008</td></tr><tr><th>Vityaz-39-5628</th><td>31/08/1966</td><td>43° 54’N</td><td>149° 47’E</td><td>5000–4000</td><td>Chavtur and Stovbun, 2008</td></tr><tr><th>Vityaz-39-5631</th><td>31/08/1966</td><td>43° 43’N</td><td>149° 39’E</td><td>5500–5000</td><td>Chavtur and Stovbun, 2008</td></tr><tr><th>Vityaz-45-6118</th><td>18/05/1969</td><td>56° 27’N</td><td>147° 14’E</td><td>1500–2000</td><td>Chavtur and Stovbun, 2008</td></tr><tr><th>Vityaz-45-6151</th><td>29/06/1969</td><td>37° 40’N</td><td>143° 51’E</td><td>2000–1500</td><td>Chavtur and Stovbun, 2008</td></tr><tr><th>013-1 REF</th><td>28/09/2000</td><td>52° 29’N</td><td>145° 44’W</td><td>500–1000</td><td>Herein</td></tr><tr><th>1059117</th><td>03/07/2001</td><td>51° 57.23’N</td><td>144° 58.9’W</td><td>1200</td><td>Herein</td></tr><tr><th>1012-LG08</th><td>29/05/2110</td><td>48° 55.25’N</td><td>127° 12.2’W</td><td>2000–1000</td><td>Herein</td></tr><tr><th><i>Halocypretta profunda</i> n. sp.</th></tr><tr><th>PS-MOC10#2 net 1</th><td>08/11/2007</td><td>11° 41’N*</td><td>20° 25.128’W</td><td>4795–4000</td><td>Herein</td></tr><tr><th>PS-MOC10#2 net 2</th><td>08/11/2007</td><td>11° 41’N</td><td>20° 25.128’W</td><td>4795–4000</td><td>Herein</td></tr><tr><th>PS-MOC10#4 net 1</th><td>17/11/2007</td><td>13° 09.3’S</td><td>0° 18.97’E</td><td>5110–3993</td><td>Herein</td></tr><tr><th><i>Halocypretta striata</i></th></tr><tr><th>Valdiviae-173</th><td>10/01/1899</td><td>29° 06’S*</td><td>89° 39’E</td><td>0–2500</td><td>Müller, 1906</td></tr><tr><th>Monaco-2244</th><td>06/09/1905</td><td>37° 04’N</td><td>28° 01’W</td><td></td><td>Granata and Caporiacco, 1949 <b>†</b></td></tr><tr><th>Charles Darwin</th><td>25/02/1997</td><td>24°N</td><td>58°E</td><td>1387–2009</td><td>Herein</td></tr></tbody></table>
TABLE 2 in Planktonic ostracods (Myodocopa: Halocyprididae) from abyssopelagic depths in the Atlantic, North Pacific and Gulf of Oman: Chavturia abyssopelagica (n. gen., n. sp.), Halocypretta profunda (n. sp.), Halocypretta parvirostrata Chavtur and Stovbun, 2008 and Halocypretta striata (Müller, 1906)
<p><b>TABLE 2.</b> Comparison of meristic characters of male and female <i>Chavturia abyssopelagica</i> n. sp., <i>Halocypris parvirostrata</i> Chavtur & Stovbun, 2008, <i>H. profunda</i> n. sp. and <i>H. striata</i> (Müller, 1906). Characters that distinguish <i>C. abyssopelagica</i> from the <i>Halocypretta</i> species are italicised, and those that in combination distinguish between the three <i>Halocypretta</i> species are emboldened.</p><table><tbody><tr><th>Character</th><th><i>C. abyssopelagica</i></th><th><i>H. parvirostrata</i></th><th><i>H. profunda</i></th><th><i>H. striata</i></th></tr></tbody><tbody><tr><td>Female</td><td>Male</td><td>Female</td><td>Male</td><td>Female</td><td>Male</td><td>Female</td><td>Male</td></tr><tr><th><b>Carapace:</b></th></tr><tr><th>Length range (mm)</th><td>3.12– 3.72</td><td>3.16– 3.48</td><td>3.48</td><td>2.7–3.3</td><td>3.44</td><td>3.16</td><td>2.60–2.96</td><td>2.56–2.88</td></tr><tr><th>Height:length ratio (%)</th><td>58.4</td><td>57.5</td><td>60.3</td><td>69.8</td><td>66.3</td><td>60.8</td><td>58.9</td><td>58.8</td></tr><tr><th>Breadth:length ratio (%)</th><td>39.3</td><td><i>40.2</i></td><td><i>49.1</i></td><td>no data</td><td><i>67.4</i></td><td>no data</td><td>56.2</td><td>51.5</td></tr><tr><th>Rostrum (% CL)</th><td>11.7</td><td>10.2</td><td>12.1</td><td><b>14.0</b></td><td>no data</td><td><b>18.4</b></td><td><b>10.2</b></td><td><b>9.7</b></td></tr><tr><th>Incisure (% CL)</th><td>8.5</td><td>7.5</td><td>3.5</td><td><b>8.0</b></td><td>18.4</td><td><b>10.0</b></td><td><b>8.3</b></td><td><b>6.2</b></td></tr><tr><th>LAG</th><td>near PDC</td><td>near PDC</td><td>near PDC</td><td>near PDC</td><td>near PDC</td><td>near PDC</td><td>near PDC</td><td>near PDC</td></tr><tr><th>RAG</th><td>> PVC</td><td>> PVC</td><td>at PVC</td><td>at PVC</td><td>> PVC</td><td>no data</td><td>at PVC</td><td>at PVC</td></tr><tr><th><b>Frontal organ:</b></th></tr><tr><th>Stem (% CL)</th><td>15.5</td><td>13.8</td><td>6.0</td><td>4.3</td><td>6.3</td><td>6.5</td><td>6.0</td><td>5.0</td></tr><tr><th>Capitulum (% CL)</th><td>12.9</td><td><i>11.9</i></td><td>21.5</td><td><i>22.8</i></td><td>20.8</td><td><i>21.3</i></td><td><i>22.4</i></td><td><i>23.6</i></td></tr><tr><th><b>First antenna:</b></th></tr><tr><th>Limb (% CL)</th><td>16.2</td><td>14.9</td><td>14.3</td><td>no data</td><td>no data</td><td>no data</td><td>13.9</td><td>14.9</td></tr><tr><th>Dorsal seta (% CL)</th><td>6.3</td><td><i>4.9</i></td><td>4.0</td><td><i>3.4</i></td><td>3.9</td><td><i>3.9</i></td><td><i>4.0</i></td><td><i>3.8</i></td></tr><tr><th>a–d setae (% CL)</th><td>29.0</td><td>22.4</td><td>26.8</td><td>30.5*</td><td>29.6</td><td>32.9</td><td>27.5</td><td>33.0</td></tr><tr><th>e-seta (% CL)</th><td>46.3</td><td><i>47.8</i></td><td>58.2</td><td><i>60.9</i></td><td>64.9</td><td><i>67.4</i></td><td><i>58.3</i></td><td><i>66.0</i></td></tr><tr><th><b>Second antenna:</b></th></tr><tr><th>Protopodite (% CL)</th><td>25.1</td><td>28.6</td><td>25.9</td><td>32.6</td><td>27.5</td><td>30.2</td><td>-</td><td>32.9</td></tr><tr><th>Exopodite 1 (% CL)</th><td>26.9</td><td>26.6</td><td>29.9</td><td>33.2</td><td>33.3</td><td>31.6</td><td>28.5</td><td>32.6</td></tr><tr><th>Exopodite 2–9 (% CL)</th><td>7.9</td><td>6.8</td><td>6.9</td><td><b>7.4</b></td><td>12.2</td><td><b>10.2</b></td><td><b>9.5</b></td><td><b>9.2</b></td></tr><tr><th>Swimming seta (% CL)</th><td>54.2</td><td>49.3</td><td>58.2</td><td>67.3</td><td>58.6</td><td>64.4</td><td>64.0</td><td>42.5</td></tr><tr><th>f-seta (% CL)</th><td>44.2</td><td>39.4</td><td>53.7</td><td>47.1</td><td>52.9</td><td>55.2</td><td>>49.8</td><td>48.8</td></tr><tr><th>g-seta (% CL)</th><td>53.4</td><td><i>58.5</i></td><td>63.8</td><td><i>69.4</i></td><td>64.9</td><td><i>70.4</i></td><td><i>71.2</i></td><td><i>>63.9</i></td></tr><tr><th>h–j setae (% CL)</th><td>26.9</td><td>23.9</td><td>32.2</td><td>19.4</td><td>28.7</td><td>34.5</td><td>30.0</td><td>31.0</td></tr><tr><th><b>Mandible:</b></th></tr><tr><th>Long terminal seta (% CL)</th><td>21.6</td><td>19.4</td><td>22.4</td><td>16.1</td><td>22.6</td><td>no data</td><td>>22.4</td><td>no data</td></tr><tr><th><b>Fifth limb:</b></th></tr><tr><th>Long terminal seta (% CL)</th><td>11.5</td><td>11.3</td><td>10.1</td><td>13.3</td><td>10.3</td><td>10.3</td><td>11.7</td><td>10.5</td></tr><tr><th><b>Sixth limb:</b></th></tr><tr><th>Long terminal seta (% CL)</th><td>18.3</td><td>16.4</td><td>14.6</td><td>14.2</td><td>13.9</td><td>13.8</td><td>14.2</td><td>13.6</td></tr><tr><th><b>Caudal furca:</b></th></tr><tr><th>Long terminal seta (% CL)</th><td>19.4</td><td>19.4</td><td>no data</td><td>16.6</td><td>16.6</td><td>no data</td><td>14.9</td><td>no data</td></tr><tr><th><b>Copulatory organ:</b></th></tr><tr><th>Length (% CL)</th><td></td><td><i>20.9</i></td><td></td><td><i>29.4</i></td><td></td><td><i>25.3</i></td><td></td><td><i>21.4</i></td></tr><tr><th>Breadth:length ratio (%)</th><td></td><td><i>35.7</i></td><td></td><td><i>22.6</i></td><td></td><td><i>18.1</i></td><td></td><td><i>21.3</i></td></tr><tr><th>No. muscles</th><td></td><td>6</td><td></td><td>6</td><td></td><td>3</td><td></td><td>6</td></tr></tbody></table><p>* Value estimated from Chavtur and Stovbun (2008) figure 1C.</p>
FIGURE 11 in Septemoecia a new genus of halocyprid ostracod (Myodocopa, Halocyprididae, Bathyconchoeciinae) for the seven-spined species formerly attributed to Bathyconchoecia
FIGURE 11. ZOOgeOgraphy Of Septemoecia speCies. NOte: nOt all the reCOrds Of S. longispinata COuld be plOtted at this sCale.
FIGURE 10 in Septemoecia a new genus of halocyprid ostracod (Myodocopa, Halocyprididae, Bathyconchoeciinae) for the seven-spined species formerly attributed to Bathyconchoecia
FIGURE 10. CarapaCe Outlines Of all knOwn speCies Of Septemoecia reprOduCed at the same sCale, illustrating the eXternal differenCes between the speCies. A, S. omega, A-1 male (redrawn frOm KOrniCker & RudJakOv 2004); B, S. longispinata, male (COpied frOm Ellis 1987 (fig. 1A, B); C, S. aff. deeveyae (COpied frOm KOrniCker 1981, fig. 1a); D, S. septemspinosa, Juvenile female (reprOduCed frOm Angel 1970, fig. 7A, B); E, S. georgei, female (Original drawing Of adult female desCribed here): F, S. deeveyae, Juvenile (redrawn frOm KOrniCker 1969, pl. 1b). The length sCale is 1 mm.
FIGURE 9 in Septemoecia a new genus of halocyprid ostracod (Myodocopa, Halocyprididae, Bathyconchoeciinae) for the seven-spined species formerly attributed to Bathyconchoecia
FIGURE 9. Septemoecia georgei, female (Discovery statiOn 54001#31). A, mandibular COXale tOOthlists; B, maXilla; C, fifth limb; D, siXth limb; E, Caudal furCa.
FIGURE 8 in Septemoecia a new genus of halocyprid ostracod (Myodocopa, Halocyprididae, Bathyconchoeciinae) for the seven-spined species formerly attributed to Bathyconchoecia
FIGURE 8. Septemoecia georgei, female (Discovery statiOn 54001#31). A, CarapaCe lateral aspeCt; B, CarapaCe ventral aspeCt; C, first antenna; D, seCOnd antenna; E, seCOnd antenna endOpOdite; F, mandible.
FIGURE 6 in Septemoecia a new genus of halocyprid ostracod (Myodocopa, Halocyprididae, Bathyconchoeciinae) for the seven-spined species formerly attributed to Bathyconchoecia
FIGURE 6. Septemoecia septemspinosa, male (Discovery StatiOn 8012). A, mandible tOOthed edges Of basale; B, fifth limb; C, siXth limb; D, Caudal furCa and COpulatOry appendage.
FIGURE 3 in Septemoecia a new genus of halocyprid ostracod (Myodocopa, Halocyprididae, Bathyconchoeciinae) for the seven-spined species formerly attributed to Bathyconchoecia
FIGURE 3. Septemoecia longispinata (Ellis, 1987). SCanning eleCtrOn miCrOgraph Of an adult female Caught at 08°09.23' N, 49°04.37' W. The pOsitiOn Of the Opening Of the CarapaCe gland Just anteriOr tO the pOsteriOr dOrsal COrner is labelled A, and the first Of the hOriZOntal bars that line the anteriOr margin Of the CarapaCe belOw the rOstral inCisures is labelled B.
FIGURE 4 in Septemoecia a new genus of halocyprid ostracod (Myodocopa, Halocyprididae, Bathyconchoeciinae) for the seven-spined species formerly attributed to Bathyconchoecia
FIGURE 4. Septemoecia longispinata (Ellis, 1987), A-1 female (Polarstern StatiOn MOC10#4). A, siXth limb; B, Caudal furCa.
FIGURE 7 in Septemoecia a new genus of halocyprid ostracod (Myodocopa, Halocyprididae, Bathyconchoeciinae) for the seven-spined species formerly attributed to Bathyconchoecia
FIGURE 7. Septemoecia septemspinosa, female (Discovery StatiOn 51403#4). A, CarapaCe lateral aspeCt; B, CarapaCe ventral aspeCt; C, first antenna; D, maXilla; E, fifth limb; F, siXth limb.
FIGURE 5 in Septemoecia a new genus of halocyprid ostracod (Myodocopa, Halocyprididae, Bathyconchoeciinae) for the seven-spined species formerly attributed to Bathyconchoecia
FIGURE 5. Septemoecia septemspinosa, male (Discovery StatiOn 8012). A, CarapaCe lateral view; B, first antenna; C, left seCOnd antenna; D, endOpOdite Of right seCOnd antenna; E, endOpOdite Of left seCOnd antenna; F, mandible.
FIGURE 2 in Septemoecia a new genus of halocyprid ostracod (Myodocopa, Halocyprididae, Bathyconchoeciinae) for the seven-spined species formerly attributed to Bathyconchoecia
FIGURE 2. Septemoecia longispinata (Ellis, 1987). A, drawing Of dOrsal view Of an adult female shOwing the dOrsal sulCus rimmed with spines (drawn by Christine Darter). B, sketCh Of anteriOr view Of an A-1 female (Polarstern StatiOn MOC10#4) shOwing hOw the hOriZOntal bars are arranged alOng the anteriOr ventral margin Of the CarapaCe. C, seCOnd antenna; D, endOpOdite Of the seCOnd antenna; E, mandible; F, mandible basale tOOthed edge; G, tOOthlists Of the mandible COXale.
FIGURE 1 in Septemoecia a new genus of halocyprid ostracod (Myodocopa, Halocyprididae, Bathyconchoeciinae) for the seven-spined species formerly attributed to Bathyconchoecia
FIGURE 1. PhOtOgraph Of the A-1 Juvenile Septemoecia longispinata (Ellis, 1987) COlleCted at a depth Of 5110–3993 m at 13°09' S, 00°18.9' E, phOtOgraphed priOr tO preservatiOn (with permissiOn Of SOlvin Zankl).
FIGURE 9 in Schornikovoecia eugenyi, a novel species and genus of deep benthopelagic halocyprids (Ostracoda, Myodocopa) from the North-west Pacific
FIGURE 9. Bathyconchoecia sp. nov. Atlantic "B" A and B, carapace in lateral and ventral views (detail of Fig. 3 in Angel & Graves 2013: Fig. 3E Bathyconchoecia n. sp. B, redrawn from Angel 2010, Fig. 1); C, scanning electron microscope image of one of the undescribed species of Bathyconchoecia captured during Cruise 0603 of the R.V. Ronald H. Brown. The length of this female specimen is 3.68 mm. Discovery station 9541#18 (from Angel 2010: Fig. 2); D, Bathyconchoecia n. sp. Atlantic 'B' Discovery Station 9541#22 (Fig. 11, G in Angel & Graves 2013).
FIGURE 8 in Schornikovoecia eugenyi, a novel species and genus of deep benthopelagic halocyprids (Ostracoda, Myodocopa) from the North-west Pacific
FIGURE 8. Schornikovoecia eugenyi sp. nov. Carapace of A-1 juvenile (3.03 mm) in ventral view (St. 223/008-12; see Table).
FIGURE 7 in Schornikovoecia eugenyi, a novel species and genus of deep benthopelagic halocyprids (Ostracoda, Myodocopa) from the North-west Pacific
FIGURE 7. Schornikovoecia eugenyi sp. nov. (Adult male: A–D, paratype MIMB 18357/4; E, F, paratype MIMB 18357/5). A, mandible; B, masticatory pad of mandible coxale; C, sixth limb; D, precoxal endite of sixth limb; E, caudal furca (claws are broken) and copulatory appendage (without microglass).
FIGURE 6 in Schornikovoecia eugenyi, a novel species and genus of deep benthopelagic halocyprids (Ostracoda, Myodocopa) from the North-west Pacific
FIGURE 6. Schornikovoecia eugenyi sp. nov. (Adult male: A, B, D–F, H, J, paratype MIMB 18357/4; C, G, I, paratype MIMB 18357/5). A, left valve of carapace in lateral view; B, carapace in ventral view; C, first antenna; D, shaft of first antenna; E, distal part of first antenna; F and G, second and third (clasping organ) segments of endopodites of right and left second antenna; H, another view of right clasping organ (without setae); I, coxal endite of mandible; J, tooth edge and fused tooth lists of coxal endite of mandible.
FIGURE 5 in Schornikovoecia eugenyi, a novel species and genus of deep benthopelagic halocyprids (Ostracoda, Myodocopa) from the North-west Pacific
FIGURE 5. Schornikovoecia eugenyi sp. nov. (Adult female: A–I, holotype). A, basal segment of fifth limb; B, endopodite of fifth limb; C, endopodite of fifth limb (most setae are not shown, except for the longest one (vestige of the exopodite) on the basal segment and the terminal setae); D, sixth limb; E, precoxal endite of sixth limb; F and G, right and left seventh limbs; H and I, right lamella of caudal furca and part of left one.
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.