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Fig. 6. Pleurobranchus reticulatus Rang, 1832 in Echinoderes galadrielae Grzelak & Sørensen 2022, sp. nov.

Fig. 6. Pleurobranchus reticulatus Rang, 1832, digestive system. (A) ventral view (MNRJ 18223). (B) dorsal view (MNRJ 18223). (C) dorsal view, detail of posterior portion with esophagus deflected (MNRJ 10884). (D-E) foregut sectioned longitudinally from ventral side (MNRJ 18223). (F) odontophoral cartilages (MNRJ 18223). Abbreviations: a, anus; ag, duct of acid gland; bc, buccal ganglion; ca, oral canal; dg, digestive gland; hg, hermaphrodite gland; j, jaw plates; in, intestine; m1, jugal protractor muscle of odontophore; m4: main dorsal tensor muscle of radula; m5, accessory dorsal tensor muscle of radula; m10, protractor muscle of odontophore; m10a, ventral tensor muscle of radula; mj, jaw muscle; mo, mouth; mr, retractor muscle; oa, opening of the duct of the acid gland; oe, esophagus; ra, radula; rs, radula sac; sd, salivary duct; sg, salivary gland; so, opening of the duct of the salivary gland in the oral membrane; st, stomach.

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Fig. 9 in Echinoderes galadrielae Grzelak & Sørensen 2022, sp. nov.

Fig. 9. Pleurobranchus areolatus Mörch, 1863 (MNRJ 18760), SEM. (A-B) shell; (B) detail near the protoconch. (C) elements of the jaw. (D-F) radula. (D) innermost lateral teeth; (E) lateral teeth. (F) outermost lateral teeth.

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Fig. 4 in Echinoderes landersi Grzelak & Sørensen 2022, sp. nov.

Fig. 4. Scanning electron micrographs of guard hairs of Megaderma lyra (A: Dorsal, B: Ventral, C: Neck hairs).

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Fig. 15 in Echinoderes galadrielae Grzelak & Sørensen 2022, sp. nov.

Fig. 15. Pleurobranchus iouspi Ev. Marcus (1984), digestive system. (A) dorsal view (MNRJ 33069). (B) dorsal view, detail of posterior portion with esophagus deflected (SAE ML 95). (C) vetral view (MNRJ 33069). (D) odontophoral cartilages (SAE ML 95). (E) foregut sectioned longitudinally from ventral side (SAE ML 95). Abbreviations: a, anus; ag, duct of acid gland; bc, buccal ganglion; ca, oral canal; dg, digestive gland; hg, hermaphrodite gland; j, jaw plates; in, intestine; m1, jugal protractor muscle of odontophore; m4: main dorsal tensor muscle of radula; m5, accessory dorsal tensor muscle of radula; m10, protractor muscle of odontophore; m10a, ventral tensor muscle of radula; mj, jaw muscle; mo, mouth; mr, retractor muscle; oa, opening of the duct of the acid gland; oe, esophagus; ra, radula; rs, radula sac; sd, salivary duct; sg, salivary gland; so, opening of the duct of the salivary gland in the oral membrane; st, stomach.

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Fig. 5. Pleurobranchus reticulatus Rang, 1832 in Echinoderes galadrielae Grzelak & Sørensen 2022, sp. nov.

Fig. 5. Pleurobranchus reticulatus Rang, 1832, SEM. (A-B) shell (MNRJ 12055). (B) detail near the protoconch. (C) elements of the jaw (MNRJ 18223). (D-F) radula (MNRJ 18223). (D) innermost lateral teeth. (E) lateral teeth. (F) outermost lateral teeth.

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Fig. 4. Pleurobranchus reticulatus Rang, 1832 in Echinoderes galadrielae Grzelak & Sørensen 2022, sp. nov.

Fig. 4. Pleurobranchus reticulatus Rang, 1832, spicules (MNRJ 12928). (A) linear, rod-like. (B) stellate. (C) irregular spicules (a not well definite shape).

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Fig. 3. Pleurobranchus reticulatus Rang, 1832 in Echinoderes galadrielae Grzelak & Sørensen 2022, sp. nov.

Fig. 3. Pleurobranchus reticulatus Rang, 1832. (A) lateral view, detail near gill (MNRJ 13104). (B-D) reproductive system. (B) (MNRJ 18223). (C) detail of connections of reproductive system (MNRJ 10844). (D) penis dissected longitudinally (MNRJ 18223). (E) nervous system (MNRJ 12055). Abbreviations: a, anus; am, ampulla; bc, buccal ganglion; bu, bursa copulatrix; ccpb, connective between buccal and cerebro-pleural ganglia; cp, nerves that leave from the cerebro-pleural ganglion; cpg, cerebro-pleural ganglion; cpp, commissure between the pedal ganglia; dd, deferent duct; e, eye; f, female opening; fg, female gland; gi, gill; gm, gill membrane; nb, nerves that leave from the buccal ganglion; np, nerves that leave from the pedal ganglion; ov, oviduct; p, penial papilla; pb, prebranchial aperture; pf, penial flap; pg, pedal ganglion; pr, prostate; rg, rhinophoral ganglion; rn, rhinophoral nerve; sr, seminal receptacle; tu, tubercles; va, vagina.

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Fig. 2 in Echinoderes galadrielae Grzelak & Sørensen 2022, sp. nov.

Fig. 2. Map of distribution of Pleurobranchus reticulatus Rang, 1832, Pleurobranchus areolatus Mörch, 1863 and Pleurobranchus iouspi Ev. Marcus, 1984. Type localities indicated by stars.

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Fig. 1 in Echinoderes galadrielae Grzelak & Sørensen 2022, sp. nov.

Fig. 1. Living species of Pleurobranchus from Brazil. (A-B) Pleurobranchus reticulatus Rang, 1832. (A) adult (MNRJ 11710, 28 mm long alive). (B) juvenile (MNRJ 11710, 5 mm long alive). (C-D) Pleurobranchus areolatus Mörch, 1863 (MNRJ 18760, 27 mm long alive), photographs by V. Padula. (C) dorsal view. (D) ventral view. (E-F) Pleurobranchus iouspi Ev. Marcus, 1984. (E) bright yellow morphotype (MNRJ 33070, 99 mm length of preserved specimen), photograph by C. A. Rangel. (F) reddish morphotype (SAE ML 95, 75 mm length of preserved specimen), photograph by F. Moraes.

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Fig. 5 in Echinoderes galadrielae Grzelak & Sørensen 2022, sp. nov.

Fig. 5. Concentrations of nutrients and chlorophyll a and zooplankton abundance at each sampling station. Nutrients (including nitritenitrate combined, phosphate, and silicate) and chlorophyll a were shown using the average concentration in the upper 75 m.

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Fig. 1 in Echinoderes galadrielae Grzelak & Sørensen 2022, sp. nov.

Fig. 1. Map of the study area with sampling stations. Solid circles and triangles represent 2009 and 2012 cruises, respectively.

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Fig. 4 in Echinoderes galadrielae Grzelak & Sørensen 2022, sp. nov.

Fig. 4. Vertical profiles of temperature (white lines) and salinity (gray shading) at the upper 100 m.

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Fig. 9 in Echinoderes galadrielae Grzelak & Sørensen 2022, sp. nov.

Fig. 9. Ordination diagram of canonical correspondence analysis (CCA). The dendrogram is diagramed based on the hydrographic variables and abundances of 20 dominant larval fish of each sampling station in the 2009 and 2012 cruises.

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Fig. 3 in Echinoderes galadrielae Grzelak & Sørensen 2022, sp. nov.

Fig. 3. Precipitation (mm) of each day in Kaohsiung City and Hengchun Township of the Southern Taiwan. Data of precipitation obtained from Central Weather Bureau, Taiwan.

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Fig. 4 in Echinoderes galadrielae Grzelak & Sørensen 2022, sp. nov.

Fig. 4. Effects of direct transfer from FW to SW on protein abundance (A) and activity (B) of Na+/K+-ATPase (NKA) in kidneys of the green spotted pufferfish. The asterisks indicate significant differences (P <0.05) using Dunnett's multiple-comparison test following a one-way ANOVA. Values are means ± SEM (n = 5). NKA protein decreases gradually within 6 h post-transfer and significantly decreases after 12 h post-transfer. NKA activity decreases significantly within 3 h post-transfer returns to the initial level at 6 h, and decreases significantly after 12 h post-transfer.

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Fig. 3 in Echinoderes galadrielae Grzelak & Sørensen 2022, sp. nov.

Fig. 3. Effects of direct transfer from FW to SW on protein abundance (A) and activity (B) of Na+/K+-ATPase (NKA) in gill epithelia of the green spotted pufferfish. The asterisks indicate a significant difference (P <0.05) using Dunnett's multiple-comparison test following a one-way ANOVA. Values are means ± SEM (n = 5). NKA protein and activity increase significantly within 3 h post-transfer.

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Fig. 2 in Echinoderes galadrielae Grzelak & Sørensen 2022, sp. nov.

Fig. 2. Representative immunoblots of the Na+/K+-ATPase (NKA) α-subunit of the green spotted pufferfish gill and kidney sampled during a time-course following transfer from FW to SW. Single immunoreactive bands were observed with α5 monoclonal antibody corresponding to a molecular mass of approximately 100 kDa. Arrows indicate immunoreactive bands at approximately 100 kDa.

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Fig. 8 in Echinoderes galadrielae Grzelak & Sørensen 2022, sp. nov.

Fig. 8. Frequency distribution of the s statistic obtained by simulated gene trees under two different scenarios and values for Ne. Left column, the after glaciation subdivision model (AGSM). Right column, the recent subdivision model (RSM). Segmented line shows where the observed s value (s = 11) falls.

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Fig. 7. Bayesian Skyline Plot analysis showing population size over time. The x in Echinoderes galadrielae Grzelak & Sørensen 2022, sp. nov.

Fig. 7. Bayesian Skyline Plot analysis showing population size over time. The x-axis is the time to the present in years, while the y-axis is the product between the effective population size (Ne) and the generation length (t) in a log scale. The mean estimate (black solid line) and 95% highest probability density limits (grey area) are shown.

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Fig. 6 in Echinoderes galadrielae Grzelak & Sørensen 2022, sp. nov.

Fig. 6. Mismatch distribution analysis based on pairwise comparisons between 62 mitochondrial DNA sequences.

opennotspecifiedDec 2022View details →

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Allen Brain Atlas

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Annotated Behaviour and Observability Dataset (ABODe)

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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.

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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.

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Last verified 2026-04-29Open record

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.

openneuro
neuroscienceopenPublished datasets are available on demand over the internet.
Last verified 2026-04-29Open record