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34 results for “Paeonia”
Figure 3 in Paeonia caucasica (Schipcz.) Schipcz. in phytocenoses of the Republic of Adygea
Figure 3. Ontogenetic structure of populations Paeonia caucasica: 1 – near Tulskiy village; 2 – near Sevastopolskaya settlement; 3 – Maykop nearabouts; 4 – Maykop nearabouts; 5 – near Krasnooktyabrsky settlement; 6 – vicinity of Kamennomostskiy village; 7 – SPNA "Mishoko Gorge"; 8 – vicinity of Novoprokhladny village; 9 – tract Taiwan.
Paeonia suffruticosa Andrews (BR0000006652364)
Belgium Herbarium image of <a href="https://www.plantentuinmeise.be">Meise Botanic Garden</a>.
Paeonia lactiflora Pall. (BR0000014462290)
Belgium Herbarium image of <a href="https://www.plantentuinmeise.be">Meise Botanic Garden</a>.
Paeonia officinalis L. (BR0000006652333)
Belgium Herbarium image of <a href="https://www.plantentuinmeise.be">Meise Botanic Garden</a>.
Paeonia lactiflora Pall. (BR0000014462283)
Belgium Herbarium image of <a href="https://www.plantentuinmeise.be">Meise Botanic Garden</a>.
Paeonia lactiflora Pall. (BR0000015218018V)
Belgium Herbarium image of <a href="https://www.plantentuinmeise.be">Meise Botanic Garden</a>.
Figure 4 in Paeonia caucasica (Schipcz.) Schipcz. in phytocenoses of the Republic of Adygea
Figure 4. Flowering of Paeonia caucasica
Figure 2 in Paeonia caucasica (Schipcz.) Schipcz. in phytocenoses of the Republic of Adygea
Figure 2. Ontogenetic states of Paeonia caucasica.
FIGURE 2. Paraepitrimerus paeoniae n in A new genus and eight new species of Phyllocoptini (Acari: Eriophyidae: Phyllocoptinae) from China
FIGURE 2. Paraepitrimerus paeoniae n. sp. A, dorsal view of female; B, coxae and female genitalia; C, legs I and II; D, lateral microtubercles; E, tarsal empodium.
Fig. 4 in Characterization of the stearoyl-ACP desaturase gene (PoSAD) from woody oil crop Paeonia ostii var. lishizhenii in oleic acid biosynthesis
Fig. 4. Quantification of fatty acids in the developing endosperm of P. ostii var. lishizhenii. The FA contents (A) and composition (B) in the developing endosperm of P. ostii var. lishizhenii. The graph shows average values of three replicates with the respective error bars indicating standard deviations. Different letters above the columns indicate significant differences at P<0.05.
Fig. 5 in Characterization of the stearoyl-ACP desaturase gene (PoSAD) from woody oil crop Paeonia ostii var. lishizhenii in oleic acid biosynthesis
Fig. 5. The fatty acid contents (A) and the ratios of PA/POA and SA/OA (B) in pYES2-PoSAD and pYES2 transgenic INVSc1. The graph shows average values of three replicates with the respective error bars indicating standard deviations. Different letters above the columns indicate significant differences at P <0.05.
Fig. 3 in Characterization of the stearoyl-ACP desaturase gene (PoSAD) from woody oil crop Paeonia ostii var. lishizhenii in oleic acid biosynthesis
Fig. 3. Relative expression levels of PoSAD by qRT-PCR. The data show the relative gene expression of PoSAD in Paeonia ostii var. lishizhenii roots, leaves, shoots, stems, petals, stamens and seven development stages of endosperm (S1~S7). The graph shows average values of three replicates with the respective error bars indicating standard deviations.
Fig. 2 in Characterization of the stearoyl-ACP desaturase gene (PoSAD) from woody oil crop Paeonia ostii var. lishizhenii in oleic acid biosynthesis
Fig. 2. Phylogenetic analysis of plant stearoyl-ACP desaturase. The position of PoSAD is marked by a bold black dot. Plant species included in the phylogenetic tree are: Arabidopsis thaliana, Camellia sinensis, Camellia oleifera, Citrus clementina, Corchorus capsularis, Citrus sinensis, Citrus unshiu, Coffea arabica, Herrania umbratica, Manihot esculenta, Macadamia tetraphylla, Nelumbo nucifera, Oryza sativa, Paeonia lactiflora, Paeonia ludlowii, Panicum miliaceum, Populus alba, Populus euphratica, Populus trichocarpa, Ricinus communis, Setaria italica, Theobroma cacao, Triticum aestivum, Vernicia montana, Vitis vinifera, Zea mays and Ziziphus jujube.
Fig. 6 in Characterization of the stearoyl-ACP desaturase gene (PoSAD) from woody oil crop Paeonia ostii var. lishizhenii in oleic acid biosynthesis
Fig. 6. Fatty acid analysis of A. thaliana seeds. (A) FA contents in the seeds of wild-type, empty and three different PoSAD overexpressing transgenic A. thaliana lines. (B) FA composition in the seed oils of wild-type, empty and three different PoSAD overexpressing transgenic A. thaliana lines. The graph shows average values of three replicates with the respective error bars indicating standard deviations. Different letters above the columns indicate significant differences at P<0.05.
Fig. 3 in Stilbenes with potent cytotoxicity from the seedcases of Paeonia suffruticosa Andrews
Fig. 3. The key NOESY correlations of compounds 17, 22, 24 and 25.
Fig. 2 in Stilbenes with potent cytotoxicity from the seedcases of Paeonia suffruticosa Andrews
Fig. 2. The key HMBC correlations of 1, 17, 22, 24 and 25.
Fig. 1 in Stilbenes with potent cytotoxicity from the seedcases of Paeonia suffruticosa Andrews
Fig. 1. The structures of compounds 1–26.
Fig. 5 in Stilbenes with potent cytotoxicity from the seedcases of Paeonia suffruticosa Andrews
Fig. 5. The calculated and experiment ECD spectra of compounds 24 and 25.
Paeonia suffruticosa Andrews (BR0000015263193V)
Belgium Herbarium image of <a href="https://www.plantentuinmeise.be">Meise Botanic Garden</a>.
Identification of Aurora B pathway involved in the anti-cancer effects by Paeoniae Radix extracts based on whole transcriptome analysis
GEO Series GSE186218. Homo sapiens. 96 samples. Type: Expression profiling by high throughput sequencing.
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