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Citing Use of BioBioPha Products
Original Papers
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Publications
Citing Use of BioBioPha Products
Citing Use of BioBioPha Products
Original Papers
Elevation of O-GlcNAc and GFAT Expression by Nicotine Exposure Promotes Epithelial-Mesenchymal Transition and Invasion in Breast Cancer Cells. Cell Death Dis., 2019, 10: 343.
Antioxidant Mechanisms of Echinatin and Licochalcone A. Molecules, 2019, 24: 3.
Dissection of Patulin Biosynthesis, Spatial Control and Regulation Mechanism in Penicillium expansum. Environ. Microbiol., 2019, 21: 1124–1139.
Synthesizing Ginsenoside Rh2 in Saccharomyces Cerevisiae Cell Factory at High-Efficiency. Cell Discov., 2019, 5: 5.
A Null B-Ring Improves the Antioxidant Levels of Flavonol: A Comparative Study between Galangin and 3,5,7-Trihydroxychromone. Molecules, 2018, 23: 3083.
2-Phenyl-4,4,5,5-tetramethylimidazoline-1-oxyl 3-oxide Radical (PTIO•) Trapping Activity and Mechanisms of 16 Phenolic Xanthones. Molecules, 2018,23:1692.
Antioxidation and Cytoprotection of Acteoside and Its Derivatives: Comparison and Mechanistic Chemistry. Molecules, 2018, 23: 498.
π-π Conjugation Enhances Oligostilbene’s Antioxidant Capacity: Evidence from α-Viniferin and Caraphenol A. Molecules, 2018, 23: 694.
E-Configuration Improves Antioxidant and Cytoprotective Capacities of Resveratrols. Molecules, 2018, 23: 1790.
Dual Effect of Glucuronidation of a Pyrogallol-Type Phytophenol Antioxidant: A Comparison between Scutellarein and Scutellarin. Molecules, 2018, 23: 3225.
OcUGT1-Catalyzed Glucosylation of Sulfuretin Yields Ten Glucosides. Catalysts, 2018, 8: 416.
Boosting 11-Oxo-β-amyrin and Glycyrrhetinic Acid Synthesis in Saccharomyces Cerevisiae via Pairing Novel Oxidation and Reduction System from Legume Plants. Metab. Eng., 2018, 45: 43–50.
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