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FIGURE 7 in Two new species of planktonic Caligus O.F. Müller 1785 (Copepoda: Caligidae) from Türkiye with an updated review and checklist of planktonic caligids
FIGURE 7. Caligus izmiriensis sp. nov. Adult male. Drishti applied confocal laser scanning microscope images (CLSM-D). A. Middle and distal segments of the antenna, overlapping plates on terminal segment arrowed; B. Maxilliped (lateral view) with two triangular myxal processes (arrowheads) on corpus and 2 small sensillae (arrows) on subchela; C. Maxillipeds from a different angle showing two myxal processes (arrowheads) and position of sternal furca.
FIGURE 6 in Two new species of planktonic Caligus O.F. Müller 1785 (Copepoda: Caligidae) from Türkiye with an updated review and checklist of planktonic caligids
FIGURE 6. Caligus izmiriensis sp. nov. Adult male. A. Habitus dorsal; B. Antenna; C. Middle and terminal segments of antenna from different angle; D. Postantennal process; E. Maxillule; F. Maxilliped; G. Details of myxal processes; H. Sternal furca and intercoxal sclerite of leg 1, in situ; I. Legs 5 and 6.
FIGURE 14 in Two new species of planktonic Caligus O.F. Müller 1785 (Copepoda: Caligidae) from Türkiye with an updated review and checklist of planktonic caligids
FIGURE 14. Caligus sarosensis sp. nov. Adult female. Drishti applied confocal laser scanning microscope images (CLSM-D). A. Distal segment of leg 1; B. Exopod of leg 2, proximal outer spine on third exopodal segment arrowed; C. Leg 4 exopodal spines surrounded with serrated hyaline membrane.
FIGURE 5 in Two new species of planktonic Caligus O.F. Müller 1785 (Copepoda: Caligidae) from Türkiye with an updated review and checklist of planktonic caligids
FIGURE 5. Caligus izmiriensis sp. nov. Adult female. Drishti applied confocal laser scanning microscope images (CLSM-D). A. Leg 3; B. Spinular ornamentations on ventral surface of Leg 3 outer apron; C. Leg 4.
FIGURE 4 in Two new species of planktonic Caligus O.F. Müller 1785 (Copepoda: Caligidae) from Türkiye with an updated review and checklist of planktonic caligids
FIGURE 4. Caligus izmiriensis sp. nov. Adult female. A. Leg3; B. Leg 4; C. Exopodal spines of leg 4; D. Leg 5.
FIGURE 3 in Two new species of planktonic Caligus O.F. Müller 1785 (Copepoda: Caligidae) from Türkiye with an updated review and checklist of planktonic caligids
FIGURE 3. Caligus izmiriensis sp. nov. Adult female. Drishti applied confocal laser scanning microscope images (CLSM- D). A. Exopod of leg 1; B. Leg 2; C. Spines on exopodal segments of leg 2, minute outer spine on second exopodal segment arrowed; D. Ornamentations on endopodal segments of Leg 2.
FIGURE 2 in Two new species of planktonic Caligus O.F. Müller 1785 (Copepoda: Caligidae) from Türkiye with an updated review and checklist of planktonic caligids
FIGURE 2. Caligus izmiriensis sp. nov. Adult female. A. Maxilla; B. Maxilliped; C. Sternal furca and intercoxal sclerite of leg1; D. Leg 1; E. Terminal elements on distal exopodal segment of leg 1; F. Leg 2.
FIGURE 1 in Two new species of planktonic Caligus O.F. Müller 1785 (Copepoda: Caligidae) from Türkiye with an updated review and checklist of planktonic caligids
FIGURE 1. Caligus izmiriensis sp. nov. A. Adult female habitus (dorsal), B. Young adult female habitus (dorsal), C. Pair of flap-like processes on posteroventral margin of adult female genital complex, D. The same processes on young adult female genital complex, E. Antennule, F. Antenna; minute papilla-like process with tiny denticle at apex and single sensilla on ventral cephalothoracic surface(arrows), G. Postantennal process, H. Mandible, I. Maxillule.
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>
LOPC (laser optical plankton counter) data captured during PolarFront 2024-01 cruise
<p>See the Cruise Report (Daase 2024) for details.</p> <p>Daase, M. (2024). PolarFront January 2024 Cruise Report. Zenodo. <a href="https://doi.org/10.5281/zenodo.10623810" target="_blank" rel="noopener">https://doi.org/10.5281/zenodo.10623810</a></p>
Trade-offs between defense and competitive traits in a planktonic predator-prey system
<p>Data repository from the paper "Trade-offs between defense and competitive traits in a planktonic predator-prey system" by Réveillon T. and Becks L. published in the journal Ecology.</p>
Supporting data for: Variable habitat depth of the planktonic foraminifera Neogloboquadrina pachyderma in the northern high latitudes explained by sea-ice and chlorophyll concentration
<p>Metadata and environmental data complete with the relative source of the stations included in the study "Variable habitat depth of the planktonic foraminifera <em>Neogloboquadrina pachyderm</em>a in the northern high latitudes explained by sea-ice and chlorophyll concentration".</p> <p>Abbreviations: DH= depth habitat of <em>N. pachyderma</em>, DCM= Depth of Chlorophyll maximum, SST= sea surface temperature, MLD = depth of the mixed layer and SSS= sea surface salinity, DH_Temp= temperature measured at DH, DH_Sal= salinity measured at DH, DH_Density= density measured at DH.</p>
FIGURE 5 in True branching and phenotypic plasticity in the planktonic cyanobacterium Dolichospermum brachiatum sp. nov. (Nostocales, Aphanizomenonaceae), from south-eastern Australia
FIGURE 5. Phylogenetic tree based on partial 16S ribosomal RNA gene sequence (1518 base pairs) of 128 OTUs showing the phylogenetic position of Dolichospermum brachiatum. Numbers indicate bootstrap values (> 50%) from 1000 replicates of ML and NJ analyses respectively. GenBank accession numbers are shown in parentheses. Scale bar = 0.01 nucleotide substitutions per site.
FIGURE 2 in True branching and phenotypic plasticity in the planktonic cyanobacterium Dolichospermum brachiatum sp. nov. (Nostocales, Aphanizomenonaceae), from south-eastern Australia
FIGURE 2. Sequence of development of T-type true branching of Dolichospermum brachiatum from Waranga Basin. Scale bars = 20 μm.
FIGURE 7 in True branching and phenotypic plasticity in the planktonic cyanobacterium Dolichospermum brachiatum sp. nov. (Nostocales, Aphanizomenonaceae), from south-eastern Australia
FIGURE 7. Secondary structure of the ITS sequence in D. brachiatum and allied species. Circles and oblongs highlight the differences in the structures; (A–D) D1-D1′ helix (A) D. brachiatum strains WB20619.B1, WB20619.B3, WB20619.C1 and WB20619.C2, (B) D. planctonicum strains 1-3; 19-1; 23-10; NRERC-101; D. ucrainicum CHAB623, (C) D. affinis CHAB28, (D) D. lemmermanni BC Ana 0032. (E–H) Box B helix (E) D. brachiatum strains WB20619.B1, WB20619.B3, WB20619.C1 and WB20619.C2, (F) D. planctonicum strains 1-3; 19-1; 23-10; NRERC-101; D. ucrainicum CHAB623, (G) D. affinis CHAB28 and CHAB964; D. flos-aquae CHAB1652 and NIES 1669, (H) D. lemmermannii BC Ana 0032. (I–M) V3 helix (I) D. brachiatum strains WB20619.B1, WB20619.B3, WB20619.C1 and WB20619.C2, (J) D. planctonicum strain 1-3; 1-9; 19-1; 23-10; NRERC-101, (K) D. affinis CHAB28; D. flos-aquae CHAB1652 and NIES 1669, (L) D. ucrainicum CHAB623, (M) D. lemmermannii BC Ana 0032.
FIGURE 6 in True branching and phenotypic plasticity in the planktonic cyanobacterium Dolichospermum brachiatum sp. nov. (Nostocales, Aphanizomenonaceae), from south-eastern Australia
FIGURE 6. Phylogenetic tree based on the ITS sequence of the 16S–23S rRNA operon of 25 OTUs showing the phylogenetic position of Dolichospermum brachiatum. Numbers indicate bootstrap values> 50% from 1000 replicates of ML and NJ analyses respectively. GenBank accession numbers shown in parentheses. Scale bar = 0.05 nucleotide substitutions per site. Strains isolated and sequenced in this study shown in bold.
FIGURE 5 in Planktonic Ctenophora of the Madeira Archipelago (Northeastern Atlantic)
FIGURE 5. World distribution of (A) E.vexilligera, (B) O. crystallina, and (C) C. veneris. Red triangle: present records in Madeira Archipelago
FIGURE 3. Ocyropsis crystallina Rang, 1827 in Planktonic Ctenophora of the Madeira Archipelago (Northeastern Atlantic)
FIGURE 3. Ocyropsis crystallina Rang, 1827. Legends: au, auricle; mo, mouth; g, gonads, or.l, oral lobe; ss.cr, substomdaeal ctene row; st.cr, subtentacular ctene row; sto, stomodaeal (pharynx). Photo credit: S.K.M. Gueroun
FIGURE 2. Eurhamphaea vexilligera Gegenbaur, 1856. A in Planktonic Ctenophora of the Madeira Archipelago (Northeastern Atlantic)
FIGURE 2. Eurhamphaea vexilligera Gegenbaur, 1856. A, total view of an adult in the stomodaeal plane; B, view of the aboral portion of the body in the stomodaeal plane; C, view of a body section in the stomodaeal plane. Legends: a.f, aboral process/ filament; ap, apical horn-shape; au, auricle; i.v, ink vesicle; mo, mouth; ss.c, substomdaeal ctene row; ss.mc, substomodaeal meridional canal; sta, statocysts; st.cr, subtentacular ctene row; st, stomodaeum (pharynx). Photo credits: S.K.M Gueroun
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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.