An EGCG-mediated self-assembled micellar complex acts as a bioactive drug carrier.
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Yan Hou | Hongxia Duan | Chaobo Liu | Liqing Chen | Wei Huang | Zhong-gao Gao | Mingji Jin | Qi-ming Wang | Xiu-quan Quan | Shuangqing Wang | Liming Gong | Heming Zhao | Yanhong Liu | Haojie Wu | Minhu Cui | Hongshuang Wan | Xintong Zhang | Bowen Zeng
[1] Yiyun Cheng,et al. Carrier-free supramolecular nanomedicines assembled by small-molecule therapeutics for cancer treatment , 2022, Chinese Chemical Letters.
[2] Ruibo Wu,et al. pH-dependent interaction mechanisms between β-lactoglobulin and EGCG: Insights from multi-spectroscopy and molecular dynamics simulation methods , 2022, Food Hydrocolloids.
[3] Yan Hou,et al. Targeted therapeutic effects of oral inulin-modified double-layered nanoparticles containing chemotherapeutics on orthotopic colon cancer. , 2022, Biomaterials.
[4] Xin Xin,et al. Development of Mitomycin C-Loaded Nanoparticles Prepared Using the Micellar Assembly Driven by the Combined Effect of Hydrogen Bonding and π–π Stacking and Its Therapeutic Application in Bladder Cancer , 2021, Pharmaceutics.
[5] D. Fu,et al. Detection of amyloid-beta by Fmoc-KLVFF self-assembled fluorescent nanoparticles for Alzheimer’s disease diagnosis , 2020 .
[6] Jingwei Shao,et al. A smart dual-drug nanosystem based on co-assembly of plant and food-derived natural products for synergistic HCC immunotherapy , 2020, Acta pharmaceutica Sinica. B.
[7] Xiaoming Ma,et al. Preparation of Strong Antioxidative, Therapeutic Nanoparticles Based on Amino Acids-Induced Ultrafast Assembly of Tea Polyphenols. , 2020, ACS applied materials & interfaces.
[8] Joseph J. Richardson,et al. Polyphenol-Mediated Assembly for Particle Engineering. , 2020, Accounts of chemical research.
[9] W. Lu,et al. Disease progression model of 4T1 metastatic breast cancer , 2020, Journal of Pharmacokinetics and Pharmacodynamics.
[10] R. Cornu,et al. Influence of nanoparticles on liver tissue and hepatic functions: a review. , 2019, Toxicology.
[11] Dnyaneshwar Kalyane,et al. Employment of enhanced permeability and retention effect (EPR): Nanoparticle-based precision tools for targeting of therapeutic and diagnostic agent in cancer. , 2019, Materials science & engineering. C, Materials for biological applications.
[12] Guanghong Wei,et al. Expanding the Functional Scope of the Fmoc‐Diphenylalanine Hydrogelator by Introducing a Rigidifying and Chemically Active Urea Backbone Modification , 2019, Advanced science.
[13] Satheesh Natarajan,et al. GREEN TEA CATECHIN LOADED NANODELIVERY SYSTEMS FOR THE TREATMENT OF PANDEMIC DISEASES , 2019, Asian Journal of Pharmaceutical and Clinical Research.
[14] Y. Oh,et al. Applications of π-π stacking interactions in the design of drug-delivery systems. , 2019, Journal of controlled release : official journal of the Controlled Release Society.
[15] Wei-dong Yan,et al. Lipophilization of EGCG and effects on antioxidant activities. , 2019, Food chemistry.
[16] Yan Su,et al. Investigation of molecular aggregation mechanism of glipizide/cyclodextrin complexation by combined experimental and molecular modeling approaches , 2018, Asian journal of pharmaceutical sciences.
[17] Y. Wen,et al. The epigallocatechin gallate derivative Y6 reverses drug resistance mediated by the ABCB1 transporter both in vitro and in vivo , 2018, Acta pharmaceutica Sinica. B.
[18] Luis M Liz-Marzán,et al. Cellular Uptake of Nanoparticles versus Small Molecules: A Matter of Size. , 2018, Accounts of chemical research.
[19] Junjie Yan,et al. Rational Design of Polyphenol-Poloxamer Nanovesicles for Targeting Inflammatory Bowel Disease Therapy , 2018 .
[20] M. Kaksonen,et al. Mechanisms of clathrin-mediated endocytosis , 2018, Nature Reviews Molecular Cell Biology.
[21] Alaaldin M. Alkilany,et al. Cellular uptake of nanoparticles: journey inside the cell. , 2017, Chemical Society reviews.
[22] Karl Winkler,et al. Accumulating nanoparticles by EPR: A route of no return. , 2016, Journal of controlled release : official journal of the Controlled Release Society.
[23] Hao Liu,et al. A PEG-Fmoc conjugate as a nanocarrier for paclitaxel. , 2014, Biomaterials.
[24] A. Berger,et al. Preclinical evaluation of the antitumor activity of bortezomib in combination with vitamin C or with epigallocatechin gallate, a component of green tea , 2011, Cancer Chemotherapy and Pharmacology.
[25] J. Lambert,et al. The antioxidant and pro-oxidant activities of green tea polyphenols: a role in cancer prevention. , 2010, Archives of biochemistry and biophysics.
[26] H. Hua,et al. (-)-Epigallocatechin gallate sensitizes breast cancer cells to paclitaxel in a murine model of breast carcinoma , 2010, Breast Cancer Research.
[27] Arthur J. Olson,et al. AutoDock Vina: Improving the speed and accuracy of docking with a new scoring function, efficient optimization, and multithreading , 2009, J. Comput. Chem..
[28] H. Mukhtar,et al. Tea polyphenols for health promotion. , 2007, Life sciences.
[29] Di Chen,et al. A novel prodrug of the green tea polyphenol (-)-epigallocatechin-3-gallate as a potential anticancer agent. , 2007, Cancer research.
[30] Chi-Tang Ho,et al. Peracetylation as a Means of Enhancing in Vitro Bioactivity and Bioavailability of Epigallocatechin-3-Gallate , 2006, Drug Metabolism and Disposition.
[31] S. Katiyar,et al. Treatment of epigallocatechin‐3‐gallate inhibits matrix metalloproteinases‐2 and ‐9 via inhibition of activation of mitogen‐activated protein kinases, c‐jun and NF‐κB in human prostate carcinoma DU‐145 cells , 2004, The Prostate.
[32] T. Miyase,et al. Association of suppression of extracellular signal-regulated kinase phosphorylation by epigallocatechin gallate with the reduction of matrix metalloproteinase activities in human fibrosarcoma HT1080 cells. , 2003, Journal of agricultural and food chemistry.
[33] B. Frei,et al. Tea Catechins and Polyphenols: Health Effects, Metabolism, and Antioxidant Functions , 2003, Critical reviews in food science and nutrition.
[34] Ruibo Wu,et al. Explore the interaction mechanism between zein and EGCG using multi-spectroscopy and molecular dynamics simulation methods , 2021 .
[35] S. Sivasubramanian,et al. Paclitaxel/epigallocatechin gallate coloaded liposome: a synergistic delivery to control the invasiveness of MDA-MB-231 breast cancer cells. , 2015, Colloids and surfaces. B, Biointerfaces.
[36] Nicole J. Yang,et al. Getting across the cell membrane: an overview for small molecules, peptides, and proteins. , 2015, Methods in molecular biology.
[37] D. Goodsell,et al. Automated docking of substrates to proteins by simulated annealing , 1990, Proteins.