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232 results for “Phytochemicals”
Fig. 1. Map showing the collection sites for 5 in Efficiency of RAPD, ISSR, iPBS, SCoT and phytochemical markers in the genetic relationship study of five native and economical important bamboos of North-East India
Fig. 1. Map showing the collection sites for 5 different native bamboos of North-East India. Number indicates the collection sites for the study, 1-Manipur hill; 2- Manipur Valley; 3-Mizoram; 4-Assam and 5-Sikkim. (Mapsource: https://eros.usgs.gov/).
Fig. 3 in Characterization of phytochemicals in the roots of wild herbaceous peonies from China and screening for medicinal resources
Fig. 3. The range and distribution of the five metabolite categories in 20 populations of sect. Paeonia distributed in China. Median values are shown as horizontal lines within each box while 50% of the data is presented within the box. Data outside each box are indicated by black dots.
Fig. 2 in Characterization of phytochemicals in the roots of wild herbaceous peonies from China and screening for medicinal resources
Fig. 2. Chemical structures of major compounds identified in roots of sect. Paeonia native to China.
Fig. 4 in Characterization of phytochemicals in the roots of wild herbaceous peonies from China and screening for medicinal resources
Fig. 4. Hierarchical cluster dendritic diagram of 20 populations of sect. Paeonia distributed in China.
Fig. 1 in Characterization of phytochemicals in the roots of wild herbaceous peonies from China and screening for medicinal resources
Fig. 1. Representative HPLC chromatographic profiles of roots at 254 nm in samples from sect. Paeonia native to China. A: P2 (Paeonia lactiflora), B: P7 (P. anomala subsp. veitchii), C: P9 (P. anomala subsp. anomala), D: P10 (P. sterniana), E: P11 (P. emodi), F: P12 (P. obovata subsp. willottiae), G: P16 (P. obovata subsp. obovata), H: P18 (P. mairei), I: P20 (P. intermedia).
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).
To Study the Effects of Co-ingesting Different Forms of Almond, Almond Paste, Fibre, and Almond Phytochemicals With Bread on Postprandial Glucose and Insulin Profiles
ClinicalTrials.gov study NCT05504044. IPD Sharing: NO. Countries: 1. Publications: 1.
Dietary Intervention With Phytochemicals and Polyunsaturated Fatty Acids in Prostate Cancer Patients
ClinicalTrials.gov study NCT00433797. IPD Sharing: Not stated. Countries: 1. Publications: 1.
Effect of Antimullerian Hormone Levels on the Inflammatory Index, Phytochemical Index and NRF Nutrient Density
ClinicalTrials.gov study NCT06426771. IPD Sharing: UNDECIDED. Countries: 1. Publications: 2.
Data from: The simultaneous inducibility of phytochemicals related to plant direct and indirect defences against herbivores is stronger at low elevation
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Data from: Intraspecific phytochemical variation shapes community and population structure for specialist caterpillars
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Data from: The many dimensions of diet breadth: phytochemical, genetic, behavioral, and physiological perspectives on the interaction between a native herbivore and an exotic host
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Launaea cornuta (wild lettuce) leaf extract: Phytochemical analysis and synthesis of silver-zinc oxide nanocomposite
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Screening of anti-Acinetobacter baumannii phytochemicals, based on the potential inhibitory effect on OmpA and OmpW functions
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Data from: Phenolics lie at the center of functional versatility in the responses of two phytochemically diverse tropical trees to canopy thinning
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