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17 results for “Pusa”

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zenodo36/100

Figure 2 in Identification of causes of death of Baikal seal (Pusa sibirica Gmelin, 1788)

Figure 2. Myocardia in the Baikal seal, hematoxylin–Rego. Magnification 200×.

opencc-by-4.0Sep 2019View details →
dryad36/100

Data on three Baltic species of Corynosoma Lühe, 1905 (Acanthocephala: Polymorphidae) from Baltic grey (Halichoerus grypus) and ringed seals (Pusa hispida)

Open the record for dataset details and reuse information.

publicApr 2020View details →
dryad32/100

Data from: Combined genetic and telemetry data reveal high rates of gene flow, migration, and long-distance dispersal potential in Arctic ringed seals (Pusa hispida)

Ringed seals (Pusa hispida) are broadly distributed in seasonally ice covered seas, and their survival and reproductive success is intricately linked to sea ice and snow. Climatic warming is diminishing Arctic snow and sea ice and threatens to endanger ringed seals in the foreseeable future. We investigated the population structure and connectedness within and among three subspecies: Arctic (P. hispida hispida), Baltic (P. hispida botnica), and Lake Saimaa (P. hispida saimensis) ringed seals to assess their capacity to respond to rapid environmental changes. We consider (a) the geographical scale of migration, (b) use of sea ice, and (c) the amount of gene flow between subspecies. Seasonal movements and use of sea ice were determined for 27 seals tracked via satellite telemetry. Additionally, population genetic analyses were conducted using 354 seals representative of each subspecies and 11 breeding sites. Genetic analyses included sequences from two mitochondrial regions and genotypes of 9 microsatellite loci. We found that ringed seals disperse on a pan-Arctic scale and both males and females may migrate long distances during the summer months when sea ice extent is minimal. Gene flow among Arctic breeding sites and between the Arctic and the Baltic Sea subspecies was high; these two subspecies are interconnected as are breeding sites within the Arctic subspecies.

opencc-zeroDec 2014View details →
zenodo32/100

FIGURE 5. Arachnopusia aff. pusae Marcus, 1955 in Bryozoans from Rio Grande do Sul Continental Shelf, Southern Brazil

FIGURE 5. Arachnopusia aff. pusae Marcus, 1955 (A, C: MNRJ-1174; B, D: MNRJ-1173). A, colony fragment with infertile zooids; B, colony fragment with ovicellate zooids in the distal region; C, close-up of autozooids, showing ligulate foramina in the frontal shield, oral avicularia (eroded), oral-spine bases and well-developed concave apertural plates below distal orificial rims; D, fertile zooids with ooecia. Scalebars: A, B, 500 µm; C, D, 200 µm.

opennotspecifiedDec 2015View details →
zenodo32/100

On following pages: 13. Harp Seal (Pagophilus groenlandicus); 14. Harbor Seal (Phoca vitulina); 15. Spotted Seal (Phoca largha); 16. Caspian Seal (Pusa caspica); 17. Baikal Seal (Pusa sibirica); 18. Ringed Seal (Pusa hispida). in Phocidae

On following pages: 13. Harp Seal (Pagophilus groenlandicus); 14. Harbor Seal (Phoca vitulina); 15. Spotted Seal (Phoca largha); 16. Caspian Seal (Pusa caspica); 17. Baikal Seal (Pusa sibirica); 18. Ringed Seal (Pusa hispida).

opennotspecifiedJul 2014View details →
zenodo32/100

Fig. 6 in Mobilization of storage lipid reserve and expression analysis of lipase and lipoxygenase genes in rice (Oryza sativa var. Pusa Basmati 1) bran during germination

Fig. 6. Expression analysis of rice bran lipase genes using quantitative RT PCR (qRT PCR) during 2 HAI, 1, 2, 4, 6, and 8 DAI. Expression value at 0 HAI was taken as control while elongation factor 1-alpha (EF1A, accession no.: XM_015774317.2) was used as the reference gene to normalize the expression level of lipases used in this study. Bars represent means ± standard deviation (SD) of 3 biological replicates. HAI, hours after imbibition; DAI, days after imbibition.

opennotspecifiedDec 2020View details →
zenodo32/100

Fig. 5 in Mobilization of storage lipid reserve and expression analysis of lipase and lipoxygenase genes in rice (Oryza sativa var. Pusa Basmati 1) bran during germination

Fig. 5. Schematic representation of the conserved motifs in (a) OsLip proteins and (b) OsLOX proteins. Each colored box represents a motif in the respective protein sequence. Motif number and color codes indicate the sequence of the conserved motif. (For interpretation of the references to color in this figure legend, the reader is referred to the Web version of this article.)

opennotspecifiedDec 2020View details →
zenodo32/100

Fig. 1 in Mobilization of storage lipid reserve and expression analysis of lipase and lipoxygenase genes in rice (Oryza sativa var. Pusa Basmati 1) bran during germination

Fig. 1. Lipid and FA content in bran of germinating rice grains. (a) Lipid content in bran tissues (b) FA profiles of TAGs (c) FA profiles of DAGs (d) FA profiles of NEFAs and (e) FA profiles of PLs. TAG, Triacylglycerol; DAG, diacylglycerol; NEFA, non-esterified fatty acid; PL, polar lipid. Results are mean values ± SD of three replicates.

opennotspecifiedDec 2020View details →
zenodo32/100

Fig. 7 in Mobilization of storage lipid reserve and expression analysis of lipase and lipoxygenase genes in rice (Oryza sativa var. Pusa Basmati 1) bran during germination

Fig. 7. Expression analysis of rice bran LOX genes using quantitative RT PCR (qRT PCR) during 2 HAI, 1, 2, 4, 6, and 8 DAI. Expression value at 0 HAI was taken as control while elongation factor 1-alpha (EF1A, accession no.: XM_015774317.2) was used as the reference gene to normalize the expression level of LOXs used in this study. Bars represent means ± standard deviation (SD) of 3 biological replicates. HAI, hours after imbibition; DAI, days after imbibition.

opennotspecifiedDec 2020View details →
zenodo32/100

Fig. 4 in Mobilization of storage lipid reserve and expression analysis of lipase and lipoxygenase genes in rice (Oryza sativa var. Pusa Basmati 1) bran during germination

Fig. 4. Exon/intron organization of (a) OsLip genes [Exons (green boxes), Introns (red lines)] and (b) OsLOX genes [Exons (pink boxes), Introns (grey lines)]. (For interpretation of the references to color in this figure legend, the reader is referred to the Web version of this article.)

opennotspecifiedDec 2020View details →
zenodo32/100

Fig. 3 in Mobilization of storage lipid reserve and expression analysis of lipase and lipoxygenase genes in rice (Oryza sativa var. Pusa Basmati 1) bran during germination

Fig. 3. Phylogenetic analysis of rice LOXs. Neighbor-joining (NJ) estimates (with 1000 bootstrap replicates) the phylogenetic relationship between rice and Arabidopsis LOX proteins. Labels are depicted in green for the 9-LOX clade, in blue for 13-LOX clade. Bootstrap values are mentioned in the branches. Branch length is indicated by the scale bar. The Arabidopsis Information Resource (TAIR) and Rice genome annotation project (RGAP) accession numbers are indicated with species names of the lipase proteins. Os, Oryza sativa; At, Arabidopsis thaliana. (For interpretation of the references to color in this figure legend, the reader is referred to the Web version of this article.)

opennotspecifiedDec 2020View details →
zenodo32/100

Fig. 2 in Mobilization of storage lipid reserve and expression analysis of lipase and lipoxygenase genes in rice (Oryza sativa var. Pusa Basmati 1) bran during germination

Fig. 2. Phylogenetic analysis of rice lipases (Lip). Neighbor-joining (NJ) estimates (with 1000 bootstrap replicates) the phylogenetic relationship between rice and Arabidopsis lipase proteins. AtLip are depicted in green box and six OsLip candidates selected for the study based on the tree are depicted in blue box. Bootstrap values are mentioned in the branches. Branch length is indicated by the scale bar. The Arabidopsis Information Resource (TAIR) and Rice genome annotation project (RGAP) accession numbers are indicated with species names of the lipase proteins. Os, Oryza sativa; At, Arabidopsis thaliana; SDP1, sugar dependent1. (For interpretation of the references to color in this figure legend, the reader is referred to the Web version of this article.)

opennotspecifiedDec 2020View details →
dryad32/100

Data from: Combined genetic and telemetry data reveal high rates of gene flow, migration, and long-distance dispersal potential in Arctic ringed seals (Pusa hispida)

Open the record for dataset details and reuse information.

publicJul 2015View details →
dryad32/100

Data from: Ringed seal (Pusa hispida) seasonal movements, diving, and haul-out behavior in the Beaufort, Chukchi, and Bering seas (2011–2017)

Open the record for dataset details and reuse information.

publicApr 2021View details →
zenodo24/100

Figure 1 in Identification of causes of death of Baikal seal (Pusa sibirica Gmelin, 1788)

Figure 1. Myocardia in the Baikal seal, combination of hematoxylin and eosin. Magnification 200×.

opencc-by-4.0Sep 2019View details →
geo20/100

Whole genome transcriptome profiling of Pusa 1266 and Pusa Basmati 1 in panicle primordia stage

GEO Series GSE15912. Oryza sativa. 4 samples. Type: Expression profiling by array.

openGEO-OpenApr 2010View details →
geo12/100

Gene expression data for rice grain (Oryza sativa L.) aroma performed using bulk pools of aromatic and non-aromatic RILs derived from a cross between Pusa 1121 and Pusa 1342

GEO Series GSE47812. Oryza sativa. 16 samples. Type: Expression profiling by array.

openGEO-OpenJun 2013View details →

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