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FIGURE 6 in A new Coelorinchus from the western Indian Ocean with comments on the C. tokiensis group of species (Teleostei: Gadiformes: Macrouridae)
FIGURE 6. Coelorinchus spp., scale cover atop of head: (A) C. zinjianus sp. nov., holotype, IOM M.730-01; (B–D) C. quadricristatus: (B, C) ZMMU P-12129, (C) isolated scale; (D) SAIAB 14867; (E) C. flabellispinis, IOM.172; (F) C. trunovi, IOM M.052-002. Scale bars: (A, B, E, F) 3 mm; (C) 1 mm; (D) 10 mm.
FIGURE 3 in A new Coelorinchus from the western Indian Ocean with comments on the C. tokiensis group of species (Teleostei: Gadiformes: Macrouridae)
FIGURE 3. Coelorinchus spp., preopercular lobe and subopercular flap: (A) C. zinjianus sp. nov., holotype, IOM M.730-01; (B) C. quadricristatus, ZMMU P-12129; (C) C. flabellispinis, IOM M.174; (D) C. trunovi, IOM M.052-002. Scale bars: 10 mm.
FIGURE 7 in A new Coelorinchus from the western Indian Ocean with comments on the C. tokiensis group of species (Teleostei: Gadiformes: Macrouridae)
FIGURE 7. Coelorinchus spp.: (A) C. celaenostomus, MNHN 1998-0237, terminal scute of snout, dorsal view; (B–D) light organ: (B) C. quadricristatus, ZMMU P-12129; (C) C. flabellispinis, IOM.174; (D) C. trunovi, IOM M.052-002. Scale bars: (A) 15 mm; (B–D) 3 mm.
FIGURE 2 in A new Coelorinchus from the western Indian Ocean with comments on the C. tokiensis group of species (Teleostei: Gadiformes: Macrouridae)
FIGURE 2. Coelorinchus zinjianus sp. nov., holotype, IOM M.730-01: (A–C) head: (A) lateral view; (B) dorsal view; (C) ventral view; (D) light organ. Scale bars: (A–C) 30 mm (common bar), (D) 10 mm.
FIGURE 5 in A new Coelorinchus from the western Indian Ocean with comments on the C. tokiensis group of species (Teleostei: Gadiformes: Macrouridae)
FIGURE 5. Coelorinchus spp., nasal fossa (dashed line shows boundary between the scaled and naked parts; anterodorsal border of nasal fossa [supranarial ridge] arrowed): (A) C. zinjianus sp. nov., holotype, IOM M.730-01; (B, C) C. quadricristatus: (B) ZMMU P-12129; (C) SAIAB 14867; (D) C. flabellispinis, IOM.172; (E) C. trunovi, IOM M.052-002. Scale bars: 5 mm.
FIGURE 4 in A new Coelorinchus from the western Indian Ocean with comments on the C. tokiensis group of species (Teleostei: Gadiformes: Macrouridae)
FIGURE 4. Coelorinchus spp., flank scales (top: dorsal view; bottom: dorsolateral view): (A) C. zinjianus sp. nov., holotype, IOM M.730-01; (B) C. quadricristatus, ZMMU P-12129; (C) C. flabellispinis, IOM M.172; (D) C. trunovi, IOM M.052-002. Scale bars: 1 mm.
FIGURE 8 in A new Coelorinchus from the western Indian Ocean with comments on the C. tokiensis group of species (Teleostei: Gadiformes: Macrouridae)
FIGURE 8. Coelorinchus quadricristatus: (A) SAIAB 14087; (B) SAIAB 14867. Scale bars: (A) 10 mm; (B) 50 mm. Photos courtesy of Roger Bills.
Rapid shoaling of Aragonite Saturation Horizon (ASH) in the Indian Ocean: Influence of accumulation of anthropogenic CO2 and atmospheric pollutants
<p>This data set contains the various cruise data of Aragonite saturation depth in the Northern Indian Ocean. </p> <p>The shallowest aragonite saturation horizon (ASH) was observed in the Bay of Bengal (BoB; 219±10 m) within the tropical Indian Ocean. The ASH shoaled at the rate of 6.3±5 and 4.4±3 m y<sup>-1</sup> in the past two and half decades in the BoB and Arabian Sea respectively. As a result, an increase in total alkalinity (TA) was observed at the rate of 0.5±0.3 and 0.25±0.2 mmol kg<sup>-1</sup> y<sup>-1</sup> at the depth of ASH in the BoB, and Arabian Sea respectively. The rapid shoaling of ASH in the BoB than the Arabian Sea may result from the higher accumulation of anthropogenic CO<sub>2</sub> due to the freshening of the upper ocean associated with an increase in river discharge/ precipitation and deposition of atmospheric pollutants leading to corrosion of the aragonite skeletal material. Under a business-as-usual scenario, aragonite-secreting organisms may not survive by the middle of this century in the BoB.</p>
Fig. 2 in Resurrection and Re-description of (Cuvier), Silver Pomfret from the Northern Indian Ocean.
Fig. 2. Neighbor joining tree depicting genetic difference among Pampus candidus from India and Pampus argenteus from China sea.
Fig. 1 in Resurrection and Re-description of (Cuvier), Silver Pomfret from the Northern Indian Ocean.
Fig. 1. ◆Type locality for Pampus candidus. ★Type locality for Stromateus securifer. Shaded area represents region from which specimens were sampled for this study. Cross-hatched area represents distribution of Pampus candidus based on sequences from Genbank.
FIGURE 5 in Phylogeny of dwarf geckos of the genus Lygodactylus (Gekkonidae) in the Western Indian Ocean
FIGURE 5. Bayesian inference tree of the mitochondrial ND2 gene and following tRNAs constructed with MrBayes based on 1479 basepairs. The tree comprises 160 individuals of all species assigned to the Lygodactylus capensis group. Non-relevant clades were collapsed into triangles with the number of taxa written on it. Branches are labelled with bootstrap percentages (BP) followed by Bayesian posterior probabilities (PP; BP | PP). Branch supports are missing where the tree topologies of BI and ML analyses are incongruent. Lygodactylus capensis sensu stricto, Lygodactylus nyaneka, and six Lygodactylus aff. capensis groups form a species complex that is currently under taxonomic revision (Travers et al. unpublished in Marques et al. 2020).
FIGURE 7 in Phylogeny of dwarf geckos of the genus Lygodactylus (Gekkonidae) in the Western Indian Ocean
FIGURE 7. Bayesian inference tree of the mitochondrial 16S rRNA constructed with MrBayes based on 570 basepairs. The tree comprises 100 individuals of all species assigned to the Lygodactylus verticillatus group. Non-relevant clades were collapsed into triangles with the number of taxa written on it. The Lygodactylus tolampyae sensu lato clade is currently under taxonomic revision and comprises the taxa Lygodactylus tolampyae sensu stricto, Lygodactylus sp. 14 aff. tolampyae A, Lygodactylus sp. 15 aff. tolampyae B, Lygodactylus sp. 25 aff. tolampyae C, Lygodactylus sp. 27 aff. tolampyae D and Lygodactylus sp. 28 aff. tolampyae E. Branches are labelled with bootstrap percentages (BP) and Bayesian posterior probabilities (PP; BP | PP). Branch supports are missing where the tree topologies of BI and ML analyses are incongruent.
FIGURE 6 in Phylogeny of dwarf geckos of the genus Lygodactylus (Gekkonidae) in the Western Indian Ocean
FIGURE 6. Adult specimens of Lygodactylus verticillatus. a, b) Specimens from Europa Island. c, d) Specimens from Madagascar (near Toliara). Photos: M. Sanchez (a, b), B. R̂ll (c, d).
FIGURE 4 in Phylogeny of dwarf geckos of the genus Lygodactylus (Gekkonidae) in the Western Indian Ocean
FIGURE 4. Subcaudal scales in species of the Lygodactylus capensis group (live animals and original tails).
FIGURE 3 in Phylogeny of dwarf geckos of the genus Lygodactylus (Gekkonidae) in the Western Indian Ocean
FIGURE 3. Hatchlings of four species in the Lygodactylus capensis group, showing the color of their tails. a) Lygodactylus capensis (sensu stricto): tail reddish, more conspicuous on the underside (inset). b) Lygodactylus insularis: no red color on tail. c) Lygodactylus grotei: tail conspicuously red dorsally and ventrally. d) Lygodactylus pakenhami: no red color on tail. Photos: B. R̂ll (a, c, d), M. Sanchez (b).
Figure S3 in Supplementary Materials for Phylogeny of dwarf geckos of the genus Lygodactylus (Gekkonidae) in the Western Indian Ocean
Figure S3. Map with georeferenced sampling localities for available sequences of Lygodactylus grotei and L. pakenhami.
Figure S1 in Supplementary Materials for Phylogeny of dwarf geckos of the genus Lygodactylus (Gekkonidae) in the Western Indian Ocean
Figure S1. Maximum likelihood multigene reconstruction of the Lygodactylus capensis group based on 13 concatenated nucDNA and mtDNA sequences. Node supports are indicated by percentages of 1000 bootstrap replications.
Animations for Marine dispersal in the western Indian Ocean
<p>Animations associated with <em>Marine dispersal in the western Indian Ocean</em>. Please see the thesis text for animation explanations.</p>
Figure 9 in Two new species of Eurydice Leach, 1815 (Crustacea: Isopoda: Cirolanidae) from the Andaman Islands, northern Indian Ocean
Figure 9. Eurydice mohani sp. nov. Holotype (PUMB 3585): (a) pleopod 1; (b) pleopod 2; (c) pleopod 3; (d) pleopod 4; (e) pleopod 5.
Figure 7 in Two new species of Eurydice Leach, 1815 (Crustacea: Isopoda: Cirolanidae) from the Andaman Islands, northern Indian Ocean
Figure 7. Eurydice mohani sp. nov. Holotype (PUMB 3585): (a) maxilliped; (b) maxilliped endite; (c) mandible; (d) mandible palp; (e) maxilla; (f) maxillule.
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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.