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13 results for “Boesenbergia”
FIGURE 6 in A new species of Boesenbergia and rediscovery of B. rotunda (Zingiberaceae) from India
FIGURE 6. Comparison of anatomy of various parts and pollen grains of Boesenbergia meghalayensis (A, C, E, G, I, K, M, O & Q) and B. rotunda (B, D, F, H, J, L, N, P & R). A & B. T.S of midrib (towards base). C & D. T.S of midrib (towards tip). E & F. Lamina. G & H. Margin. I & J. Sheath. K & L. Petiole. M & N. Petiole margin. O & P. Epidermal peeling (abaxial surface) and Q & R. Pollen. (Inset in A. Oil cell in B. meghalayansis. M & N. Petiole margins- portion enlarged).
FIGURE 5 in A new species of Boesenbergia and rediscovery of B. rotunda (Zingiberaceae) from India
FIGURE 5. UPGMA tree using ITS gene sequences of Boesenbergia species in India (Bootstrap percentage indicated on side).
FIGURE 4 in A new species of Boesenbergia and rediscovery of B. rotunda (Zingiberaceae) from India
FIGURE 4. UPGMA tree using matK gene sequences of Boesenbergia species in India (Bootstrap percentage indicated on side).
FIGURE 3. Boesenbergia rotunda. A in A new species of Boesenbergia and rediscovery of B. rotunda (Zingiberaceae) from India
FIGURE 3. Boesenbergia rotunda. A. Habit (Inset: flower- front view). B. Flower. C. Bract. D. Bracteole. E. Calyx. F. Corolla lobes. G. Lateral staminodes. H. Labellum. I. Stamen- side view. J. Stamen- ventral view. K. Ovary with epigynous glands. L. Stigma. M. C.S of ovary. (Photos by Aishwarya, K. from Thomas, V.P. & Prasanth Kumar, M.G. 115304).
FIGURE 1. Boesenbergia meghalayensis. A in A new species of Boesenbergia and rediscovery of B. rotunda (Zingiberaceae) from India
FIGURE 1. Boesenbergia meghalayensis. A. Habit (Inset: flower- front view). B. Flower. C. Bract. D. Bracteole. E. Calyx. F. Corolla lobes. G. Lateral staminodes. H. Labellum. I. Stamen- side view. J. Stamen- ventral view. K. Ovary with epigynous glands. L. Stigma. M. C.S of ovary. (Photos by Aishwarya, K. from Sanoj, E. 95637).
FIGURE 2. Boesenbergia meghalayensis. A. Habit. B. Flower. C. Bract. D. Bracteole. E. Calyx. F. Corolla lobes. G. Lateral staminodes. H. Labellum. I. Stamen- side view. J. Stamen- ventral view. K. Ovary with epigynous glands. L. Stigma. M. C.S in A new species of Boesenbergia and rediscovery of B. rotunda (Zingiberaceae) from India
FIGURE 2. Boesenbergia meghalayensis. A. Habit. B. Flower. C. Bract. D. Bracteole. E. Calyx. F. Corolla lobes. G. Lateral staminodes. H. Labellum. I. Stamen- side view. J. Stamen- ventral view. K. Ovary with epigynous glands. L. Stigma. M. C.S of ovary. (Illustration by Aishwarya, K. from Sanoj, E. 95637).
FIGURE 1. Boesenbergia quangngaiensis. A in Boesenbergia quangngaiensis (Zingiberaceae), a new species from Central Vietnam
FIGURE 1. Boesenbergia quangngaiensis. A. Plant in natural habit; B. Mature plant with flower; C. Basal part of the plant with roots, rhizome cross-section of rhizome; D. Ligules in front and side views; E. Close-up of the flower; F. Inflorescence with flower in natural habit; G. Inflorescence with sterile bract and flower; H. Dissection of flower (from left): Flower, bract, bracteole, calyx, dorsal and ventral corolla lobes, lateral staminodes (above), labellum, and floral tube with ovary, calyx, and stamen attached (side view) (scale bar in cm); I. Detail of ovary with epigynous glands and anthers in side, front and back views (scale bar in mm); J. Mature fruit (below) and seeds (above) (scale bar in mm).—Photos by Ngọc-Sâm Lý.
Boesenbergia pandurata as Anti-breast Cancer: Molecular Docking and ADMET Study
<p><em>Boesenbergia pandurata</em> or fingerroot is known to have various pharmacological activities, including anticancer. Extracts from these plants are known to inhibit the growth of cancer cells, including breast cancer. Anti-breast cancer activity is significantly influenced by the inhibition of two receptors: ER-α and HER2. However, it is unknown which metabolites of <em>B. pandurata</em> play the most crucial role in their anticancer activity. This study aimed to determine the metabolites of <em>B. pandurata</em> with the best potential as ER-α and HER2 inhibitors. The method used was molecular docking of several <em>B. pandurata</em> metabolites against ER-α and HER2 receptors, followed by an ADMET study of several metabolites with the best docking results. The docking results showed eight metabolites with the best docking results for the two receptors based on the docking score and ligand-receptor interactions. Of these eight compounds, compounds <strong>11</strong> ((2S)-7,8-dihydro-5-hydroxy-2-methyl-2-(4''-methyl-3''-pentenyl)-8-phenyl-2H,6H-benzo(1,2-b-5,4-b')dipyran-6-one) and <strong>34</strong> (geranyl-2,4-dihydroxy-6-phenethylbenzoate) showed the potential to inhibit both receptors. Both ADMET profiles also show mixed results but still allow for further development. In conclusion, the metabolites of <em>B. pandurata</em> especially compounds <strong>11</strong> and <strong>34</strong>, can be developed as anti-breast cancer through the inhibition of ER-α and HER2.</p>
Fig. 2 in Panduratins Q-Y, dimeric metabolites from Boesenbergia rotunda and their antiausterity activities against the PANC-1 human pancreatic cancer cell line
Fig. 2. Connectivities (bold lines) deduced by the COSY spectrum and significant HMBC correlations (solid arrows) observed for 1–9.
Fig. 4 in Panduratins Q-Y, dimeric metabolites from Boesenbergia rotunda and their antiausterity activities against the PANC-1 human pancreatic cancer cell line
Fig. 4. Electronic circular dichroism (ECD) spectra of 1 6, and 9 in EtOH.
Fig. 3 in Panduratins Q-Y, dimeric metabolites from Boesenbergia rotunda and their antiausterity activities against the PANC-1 human pancreatic cancer cell line
Fig. 3. The key NOESY correlations of cyclohexenyl unit of 5 9.
Fig. 1 in Panduratins Q-Y, dimeric metabolites from Boesenbergia rotunda and their antiausterity activities against the PANC-1 human pancreatic cancer cell line
Fig. 1. Structures of isolated compounds from B. rotunda.
Andrographis Paniculata vs Boesenbergia Rotunda vs Control in Asymptomatic COVID-19
ClinicalTrials.gov study NCT05019326. IPD Sharing: UNDECIDED. Countries: 1. Publications: 0.
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