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25 results for “Glycyrrhiza”
Glycyrrhiza glabra L. (BR0000011948285)
Belgium Herbarium image of <a href="https://www.plantentuinmeise.be">Meise Botanic Garden</a>.
Effect of the Combined Application of Cynara Scolymus, Silybum Marianum, Curcuma Longa, and Glycyrrhiza Glabra in Improving Metabolic Associated Fatty Liver Disease : a Randomized Clinical Trial
ClinicalTrials.gov study NCT06798948. IPD Sharing: NO. Countries: 1. Publications: 4.
Fig. 4 in Bioactive prenylated phenolic compounds from the aerial parts of Glycyrrhiza uralensis
Fig. 4. The docking model and IC50 values of (1''R, 2''S)-1 and (1''S, 2''R)-1 against 3CLpro and PLpro. Each data point is displayed as the mean SD of three ± independent tests.
Fig. 3 in Bioactive prenylated phenolic compounds from the aerial parts of Glycyrrhiza uralensis
Fig. 3. The comparison of experimental and calculated ECD spectra of (1′′R, 2′′S)-1, (1′′S, 2′′R)-1, and 6.
Fig. 5 in Bioactive prenylated phenolic compounds from the aerial parts of Glycyrrhiza uralensis
Fig. 5. Bioactivity screening of compounds 1-26 [1a, (1''R, 2''S)-1; 1b, (1''S, 2''R)-1]. Each data point is displayed as the mean ± SD of three independent tests. ×: not tested.
Fig. 4 in Association analysis and molecular tagging of phytochemicals in the endangered medicinal plant licorice (Glycyrrhiza glabra L.)
Fig. 4. Principal component analysis (PCA) for the variable traits in the 59 Glycyrrhiza glabra localizations used in the study. Dimension1, Dim1; Dimension2, Dim2; Contribution, Contrib.
Fig. 2. Sampling sites for the 59 in Association analysis and molecular tagging of phytochemicals in the endangered medicinal plant licorice (Glycyrrhiza glabra L.)
Fig. 2. Sampling sites for the 59 localizations of Glycyrrhiza glabra, collected in the 21 provinces of Iran and used in the study. Each localization (L1, L2, etc.) included 2–3 different individuals, separated 50–100 m among them. Detailed descriptions for each localization are included in Supplementary Table 4. The black line separates provinces from North-Western and Eastern/Southern Iran.
Fig. 3 in Association analysis and molecular tagging of phytochemicals in the endangered medicinal plant licorice (Glycyrrhiza glabra L.)
Fig. 3. AFLP dendrogram (UPGMA) for the 170 individual Glycyrrhiza glabra plants sampled in 59 localizations and used in the study. Individuals where subpopulations A and B were predominant are depicted in green and red, respectively. Individuals (identified by numbers) are grouped in localizations (identified by L1, L2, etc., and also by the corresponding codes). (For interpretation of the references to color in this figure legend, the reader is referred to the Web version of this article.)
Fig. 1. Structure analysis, determined using 15 in Association analysis and molecular tagging of phytochemicals in the endangered medicinal plant licorice (Glycyrrhiza glabra L.)
Fig. 1. Structure analysis, determined using 15 AFLP primer combinations and the STRUCTURE software, of the 170 individual Glycyrrhiza glabra plants sampled in 59 localizations. Sub-populations A and B are represented in green and red color, respectively. Individuals (identified by numbers) are grouped in localizations (identified by L1, L2, etc., and also by the corresponding codes). See Supplementary Table 4 for information on the different localizations. (For interpretation of the references to color in this figure legend, the reader is referred to the Web version of this article.)
Fig. 4 in Salinity effects on physiological and phytochemical characteristics and gene expression of two Glycyrrhiza glabra L. populations
Fig. 4. Antioxidant enzymes in rhizomes of two licorice populations grown under salt stress in the greenhouse. SOD (A) and APX (B). Vertical bars indicate the standard error of the mean (n = 3). Means followed by the same letter are not significantly different (p <0.05) by LSMeans Student's t (n = 3).
Fig. 5 in Salinity effects on physiological and phytochemical characteristics and gene expression of two Glycyrrhiza glabra L. populations
Fig. 5. Expression profile of genes bAS (A), CYP88D6 (B) and CYP2A154 (C) involved in the synthesis of glycyrrhizin in rhizomes of two licorice populations grown under salt stress in greenhouse, using real-time PCR. Vertical bars indicate the standard error of the mean (n = 3). Means followed by the same letter are not significantly different (p <0.05) by LSMeans Student's t (n = 3).
Fig. 3 in Salinity effects on physiological and phytochemical characteristics and gene expression of two Glycyrrhiza glabra L. populations
Fig. 3. Oxidative damage in the rhizomes of two licorice populations grown under salt stress in greenhouse. MDA (A) and H2O2 (B). Vertical bars indicate the standard error of the mean (n = 3). Means followed by the same letter are not significantly different (p <0.05) by LSMeans Student's t (n = 3).
Fig. 1. K in Salinity effects on physiological and phytochemical characteristics and gene expression of two Glycyrrhiza glabra L. populations
Fig. 1. K+/Na+ ratio in rhizomes of two licorice populations grown under salt stress in greenhouse. Vertical bars indicate the standard error of the mean (n = 3). Means followed by the same letter are not significantly different (p <0.05) by LSMeans Student's t (n = 3).
Fig. 7 in Salinity effects on physiological and phytochemical characteristics and gene expression of two Glycyrrhiza glabra L. populations
Fig. 7. HPLC chromatograms of standard solution (glycyrrhizin, 0.25 mg/ml) at 254 nm (A) and a licorice sample (B).
Fig. 6 in Salinity effects on physiological and phytochemical characteristics and gene expression of two Glycyrrhiza glabra L. populations
Fig. 6. Glycyrrhizin content in rhizomes of two licorice populations grown under salt stress in greenhouse. Data are means ± S.E. (n = 3). Vertical bars indicate the standard error of the mean (n = 3). Means followed by the same letter are not significantly different (p <0.05) by LSMeans Student's t (n = 3).
Peony-Glycyrrhiza Decoction (PGD) for Antipsychotic-induced Hyperprolactinemia in Patients With Schizophrenia
ClinicalTrials.gov study NCT01852331. IPD Sharing: Not stated. Countries: 1. Publications: 1.
Figure 1 in One new Aculus species (Acari: Trombidiformes: Eriophyidae) on Glycyrrhiza glabra from Lorestan province, Iran
Figure 1. Aculus lorestaniensis sp. nov. (female) – AD. Prodorsal shield; AL. Lateral view of anterior body region; CG. Female coxigenital region; em. Empodium; IG. Internal female genitalia; LO. Lateral view of annuli; L1. Leg I; pg. palp genua; PM. Lateral view of posterior opisthosoma. Scale bar: 10 μm for AD, AL, CG, IG, PM; 5 μm for LO, L1; 2.5 μm for em.
Fig. 2. Key HMBC and 1H–1H in Bioactive prenylated phenolic compounds from the aerial parts of Glycyrrhiza uralensis
Fig. 2. Key HMBC and 1H–1H COSY correlations of glycyuralins Q-X (1–8).
Fig. 1 in Bioactive prenylated phenolic compounds from the aerial parts of Glycyrrhiza uralensis
Fig. 1. Structures of compounds 1–26 from the aerial parts of G. uralensis.
Transcriptional Profile of Glycyrrhiza uralensis Fisch Suspension Cell in Response to Methyl Jasmonate
GEO Series GSE128503. Glycyrrhiza uralensis. 6 samples. Type: Expression profiling by high throughput sequencing.
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