Biocompatible and biodegradable nanoparticles for enhancement of anti-cancer activities of phytochemicals.
暂无分享,去创建一个
Qian Wang | Q. Wang | S. Nie | M. Xie | Z. Deng | Chuan Li | Jun Cao | Ming-Yong Xie | Jia Zhang | Yujiao Zu | Shufang Nie | Shu Wang | Shu Wang | Jia Zhang | Chuan Li | Yu-Jiao Zu | Shu-Fang Nie | Jun Cao | Shao-Ping Nie | Ze-Yuan Deng | Qian Wang | Shaoping Nie
[1] A. Barzegar,et al. Intracellular ROS protection efficiency and free radical-scavenging activity of quercetin and quercetin-encapsulated liposomes , 2016, Artificial cells, nanomedicine, and biotechnology.
[2] Jing Zhang,et al. Quercetin induces human colon cancer cells apoptosis by inhibiting the nuclear factor-kappa B Pathway , 2015, Pharmacognosy magazine.
[3] S. Hoti,et al. Resveratrol loaded gelatin nanoparticles synergistically inhibits cell cycle progression and constitutive NF-kappaB activation, and induces apoptosis in non-small cell lung cancer cells. , 2015, Biomedicine & pharmacotherapy = Biomedecine & pharmacotherapie.
[4] Bing Li,et al. The synergistic antitumor effects of all-trans retinoic acid and C-phycocyanin on the lung cancer A549 cells in vitro and in vivo. , 2015, European journal of pharmacology.
[5] D. Mcclements,et al. Nutraceutical delivery systems: resveratrol encapsulation in grape seed oil nanoemulsions formed by spontaneous emulsification. , 2015, Food chemistry.
[6] Kyung-Han Lee,et al. Resveratrol-loaded polymeric nanoparticles suppress glucose metabolism and tumor growth in vitro and in vivo. , 2015, International journal of pharmaceutics.
[7] S. Mousa,et al. Excellent anti-proliferative and pro-apoptotic effects of (-)-epigallocatechin-3-gallate encapsulated in chitosan nanoparticles on human melanoma cell growth both in vitro and in vivo. , 2014, Nanomedicine : nanotechnology, biology, and medicine.
[8] E. Souto,et al. In vivo pharmacokinetics and biodistribution of resveratrol-loaded solid lipid nanoparticles for brain delivery. , 2014, International journal of pharmaceutics.
[9] D. Argenta,et al. Factorial design applied to the optimization of lipid composition of topical antiherpetic nanoemulsions containing isoflavone genistein , 2014, International journal of nanomedicine.
[10] Nadeem Zafar,et al. Anti-cancer activity of curcumin loaded nanoparticles in prostate cancer. , 2014, Biomaterials.
[11] K. Chennazhi,et al. Combinatorial anticancer effects of curcumin and 5-fluorouracil loaded thiolated chitosan nanoparticles towards colon cancer treatment. , 2014, Biochimica et biophysica acta.
[12] E. M. Lima,et al. Impact of lipid dynamic behavior on physical stability, in vitro release and skin permeation of genistein-loaded lipid nanoparticles. , 2014, European journal of pharmaceutics and biopharmaceutics : official journal of Arbeitsgemeinschaft fur Pharmazeutische Verfahrenstechnik e.V.
[13] Hak Soo Choi,et al. Self-assembled micellar nanocomplexes comprising green tea catechin derivatives and protein drugs for cancer therapy , 2014, Nature nanotechnology.
[14] P. Decuzzi,et al. Lipid-polymer nanoparticles encapsulating curcumin for modulating the vascular deposition of breast cancer cells. , 2014, Nanomedicine : nanotechnology, biology, and medicine.
[15] N. Moustaid‐Moussa,et al. Application of nanotechnology in improving bioavailability and bioactivity of diet-derived phytochemicals. , 2014, The Journal of nutritional biochemistry.
[16] Gustaaf Van Tendeloo,et al. Polyethylene glycol conjugated polymeric nanocapsules for targeted delivery of quercetin to folate-expressing cancer cells in vitro and in vivo. , 2014, ACS nano.
[17] Hao Peng,et al. The formulation and delivery of curcumin with solid lipid nanoparticles for the treatment of on non-small cell lung cancer both in vitro and in vivo. , 2013, Materials science & engineering. C, Materials for biological applications.
[18] Qing-Wen Zhang,et al. Curcumin-loaded solid lipid nanoparticles have prolonged in vitro antitumour activity, cellular uptake and improved in vivo bioavailability. , 2013, Colloids and surfaces. B, Biointerfaces.
[19] Livia P Mendes,et al. Multicompartimental Nanoparticles for Co-Encapsulation and Multimodal Drug Delivery to Tumor Cells and Neovasculature , 2013, Pharmaceutical Research.
[20] T. Elbayoumi,et al. Enhanced cytotoxicity of optimized liposomal genistein via specific induction of apoptosis in breast, ovarian and prostate carcinomas , 2013, Journal of drug targeting.
[21] Yitao Wang,et al. Delivering flavonoids into solid tumors using nanotechnologies , 2013, Expert opinion on drug delivery.
[22] T. Elbayoumi,et al. Mitochondria-specific pro-apoptotic activity of genistein lipidic nanocarriers. , 2013, Molecular pharmaceutics.
[23] Shilong Wang,et al. Synergetic effect of SLN-curcumin and LDH-5-Fu on SMMC-7721 liver cancer cell line. , 2013, Cancer biotherapy & radiopharmaceuticals.
[24] Jia Zhang,et al. Nanoencapsulation enhances epigallocatechin-3-gallate stability and its antiatherogenic bioactivities in macrophages. , 2013, Journal of agricultural and food chemistry.
[25] H. Mukhtar,et al. Resveratrol-loaded nanoparticles based on poly(epsilon-caprolactone) and poly(D,L-lactic-co-glycolic acid)-poly(ethylene glycol) blend for prostate cancer treatment. , 2013, Molecular pharmaceutics.
[26] J. Vishwanatha,et al. Efficacy of liposomal curcumin in a human pancreatic tumor xenograft model: inhibition of tumor growth and angiogenesis. , 2013, Anticancer research.
[27] P. Boonme,et al. Nanoencapsulation of polyphenols for protective effect against colon-rectal cancer. , 2013, Biotechnology advances.
[28] X. Gou,et al. Trans-resveratrol loaded chitosan nanoparticles modified with biotin and avidin to target hepatic carcinoma. , 2013, International journal of pharmaceutics.
[29] Zhaoyang Fan,et al. Anticancer activities of (−)-epigallocatechin-3-gallate encapsulated nanoliposomes in MCF7 breast cancer cells , 2013, Journal of liposome research.
[30] H. Mukhtar,et al. Nanoformulation of natural products for prevention and therapy of prostate cancer. , 2013, Cancer letters.
[31] Xin-Peng Zeng,et al. Nanomaterials in cancer-therapy drug delivery system. , 2013, Journal of biomedical nanotechnology.
[32] Hua Wu,et al. Galactosylated chitosan-polycaprolactone nanoparticles for hepatocyte-targeted delivery of curcumin. , 2013, Carbohydrate polymers.
[33] Murali M. Yallapu,et al. Curcumin nanomedicine: a road to cancer therapeutics. , 2013, Current pharmaceutical design.
[34] F. S. Ferreira,et al. Biodegradable polymeric nanocapsules based on poly(DL-lactide) for genistein topical delivery: obtention, characterization and skin permeation studies. , 2013, Journal of biomedical nanotechnology.
[35] Youngjoo Lee,et al. Curcumin and genistein coloaded nanostructured lipid carriers: in vitro digestion and antiprostate cancer activity. , 2013, Journal of agricultural and food chemistry.
[36] S. Mousa,et al. Potential Role of Naturally Derived Polyphenols and Their Nanotechnology Delivery in Cancer , 2013, Molecular Biotechnology.
[37] Anirban Sen Gupta,et al. EGF receptor-targeted nanocarriers for enhanced cancer treatment. , 2012, Nanomedicine.
[38] Chong-Zhi Wang,et al. Epigallocatechin Gallate (EGCG) Is the Most Effective Cancer Chemopreventive Polyphenol in Green Tea , 2012, Nutrients.
[39] Stefano Leporatti,et al. Halloysite clay nanotubes for resveratrol delivery to cancer cells. , 2012, Macromolecular bioscience.
[40] R. Tan,et al. Are nanostructured lipid carriers (NLCs) better than solid lipid nanoparticles (SLNs): development, characterizations and comparative evaluations of clotrimazole-loaded SLNs and NLCs? , 2012, European journal of pharmaceutical sciences : official journal of the European Federation for Pharmaceutical Sciences.
[41] G. Ying,et al. Quercetin inhibits human breast cancer cell proliferation and induces apoptosis via Bcl-2 and Bax regulation. , 2012, Molecular medicine reports.
[42] Pornsiri Pitchakarn,et al. Enhancement of cellular uptake and cytotoxicity of curcumin-loaded PLGA nanoparticles by conjugation with anti-P-glycoprotein in drug resistance cancer cells , 2012, Acta Pharmacologica Sinica.
[43] S. Mousa,et al. Oral administration of naturally occurring chitosan-based nanoformulated green tea polyphenol EGCG effectively inhibits prostate cancer cell growth in a xenograft model. , 2012, Carcinogenesis.
[44] Liangfang Zhang,et al. Nanoparticle-based combination therapy toward overcoming drug resistance in cancer. , 2012, Biochemical pharmacology.
[45] G. V. Kumar,et al. Purely aqueous PLGA nanoparticulate formulations of curcumin exhibit enhanced anticancer activity with dependence on the combination of the carrier. , 2012, International journal of pharmaceutics.
[46] Chang-jie Chen,et al. Effects of quercetin on the apoptosis of the human gastric carcinoma cells. , 2012, Toxicology in vitro : an international journal published in association with BIBRA.
[47] Yuanjie Liu,et al. Perorally active nanomicellar formulation of quercetin in the treatment of lung cancer , 2012, International journal of nanomedicine.
[48] S. Parveen,et al. Nanoparticles: a boon to drug delivery, therapeutics, diagnostics and imaging. , 2012, Nanomedicine : nanotechnology, biology, and medicine.
[49] Gang Wang,et al. Effects of quercetin nanoliposomes on C6 glioma cells through induction of type III programmed cell death , 2012, International journal of nanomedicine.
[50] Robert Langer,et al. Nanoparticle delivery of cancer drugs. , 2012, Annual review of medicine.
[51] Anil Mahapatro,et al. Biodegradable nanoparticles are excellent vehicle for site directed in-vivo delivery of drugs and vaccines , 2011, Journal of nanobiotechnology.
[52] M. Mimeault,et al. Potential applications of curcumin and its novel synthetic analogs and nanotechnology-based formulations in cancer prevention and therapy , 2011, Chinese medicine.
[53] Yan Zhang,et al. The use of mitochondrial targeting resveratrol liposomes modified with a dequalinium polyethylene glycol-distearoylphosphatidyl ethanolamine conjugate to induce apoptosis in resistant lung cancer cells. , 2011, Biomaterials.
[54] N. Škalko-Basnet,et al. Curcumin: An Anti-Inflammatory Molecule from a Curry Spice on the Path to Cancer Treatment , 2011, Molecules.
[55] E. Cooper,et al. Quercetin and Cancer Chemoprevention , 2011, Evidence-based complementary and alternative medicine : eCAM.
[56] Xia Zhao,et al. Curcumin-loaded biodegradable polymeric micelles for colon cancer therapy in vitro and in vivo. , 2011, Nanoscale.
[57] S. Uzzau,et al. Targeted biocompatible nanoparticles for the delivery of (-)-epigallocatechin 3-gallate to prostate cancer cells. , 2011, Journal of medicinal chemistry.
[58] Bo Tan,et al. Synthesis of three-dimensional calcium carbonate nanofibrous structure from eggshell using femtosecond laser ablation , 2011, Journal of nanobiotechnology.
[59] B. Aggarwal,et al. Delivery of antiinflammatory nutraceuticals by nanoparticles for the prevention and treatment of cancer. , 2010, Biochemical pharmacology.
[60] Véronique Préat,et al. To exploit the tumor microenvironment: Passive and active tumor targeting of nanocarriers for anti-cancer drug delivery. , 2010, Journal of controlled release : official journal of the Controlled Release Society.
[61] A. Jemal,et al. Cancer Statistics, 2010 , 2010, CA: a cancer journal for clinicians.
[62] Yan Peng,et al. Anticancer activity and molecular mechanism of resveratrol-bovine serum albumin nanoparticles on subcutaneously implanted human primary ovarian carcinoma cells in nude mice. , 2010, Cancer biotherapy & radiopharmaceuticals.
[63] Uday B Kompella,et al. Nanomicellar formulations for sustained drug delivery: strategies and underlying principles. , 2010, Nanomedicine.
[64] B. Aggarwal,et al. Design of curcumin-loaded PLGA nanoparticles formulation with enhanced cellular uptake, and increased bioactivity in vitro and superior bioavailability in vivo. , 2010, Biochemical pharmacology.
[65] N. Narayanan,et al. Liposome encapsulation of curcumin and resveratrol in combination reduces prostate cancer incidence in PTEN knockout mice , 2009, International journal of cancer.
[66] S. Ganta,et al. Coadministration of Paclitaxel and curcumin in nanoemulsion formulations to overcome multidrug resistance in tumor cells. , 2009, Molecular pharmaceutics.
[67] Zhiwei Wang,et al. Multi-targeted therapy of cancer by genistein. , 2008, Cancer letters.
[68] Chi-Hsien Liu,et al. Lipid nanoparticles as vehicles for topical psoralen delivery: solid lipid nanoparticles (SLN) versus nanostructured lipid carriers (NLC). , 2008, European journal of pharmaceutics and biopharmaceutics : official journal of Arbeitsgemeinschaft fur Pharmazeutische Verfahrenstechnik e.V.
[69] J. Benoit,et al. Design and production of nanoparticles formulated from nano-emulsion templates-a review. , 2008, Journal of controlled release : official journal of the Controlled Release Society.
[70] Y. Matsumura. Poly (amino acid) micelle nanocarriers in preclinical and clinical studies. , 2008, Advanced drug delivery reviews.
[71] B. Aggarwal,et al. Resveratrol: A multitargeted agent for age-associated chronic diseases , 2008, Cell cycle.
[72] Robert A Newman,et al. Bioavailability of curcumin: problems and promises. , 2007, Molecular pharmaceutics.
[73] V. Mohanraj,et al. Nanoparticles - A Review , 2007 .
[74] G. Feldmann,et al. Polymeric nanoparticle-encapsulated curcumin ("nanocurcumin"): a novel strategy for human cancer therapy , 2007, Journal of nanobiotechnology.
[75] Sung Ju Cho,et al. Quantum dot-induced cell death involves Fas upregulation and lipid peroxidation in human neuroblastoma cells , 2007, Journal of nanobiotechnology.
[76] V. Torchilin,et al. Micellar Nanocarriers: Pharmaceutical Perspectives , 2006, Pharmaceutical Research.
[77] Joseph A. Baur,et al. Therapeutic potential of resveratrol: the in vivo evidence , 2006, Nature Reviews Drug Discovery.
[78] David C. Martin,et al. Sustained release of dexamethasone from hydrophilic matrices using PLGA nanoparticles for neural drug delivery. , 2006, Biomaterials.
[79] S. Sen,et al. Role of mitochondria in quercetin-enhanced chemotherapeutic response in human non-small cell lung carcinoma H-520 cells. , 2006, Anticancer research.
[80] C. Astete,et al. Synthesis and characterization of PLGA nanoparticles , 2006, Journal of biomaterials science. Polymer edition.
[81] S. Katiyar,et al. Growth Inhibitory and Antimetastatic Effect of Green Tea Polyphenols on Metastasis-Specific Mouse Mammary Carcinoma 4T1 Cells In vitro and In vivo Systems , 2005, Clinical Cancer Research.
[82] V. Torchilin. Recent advances with liposomes as pharmaceutical carriers , 2005, Nature Reviews Drug Discovery.
[83] R. Müller,et al. Solid lipid nanoparticles for parenteral drug delivery. , 2004, Advanced drug delivery reviews.
[84] P. Cullis,et al. Drug Delivery Systems: Entering the Mainstream , 2004, Science.
[85] Chung S. Yang,et al. Mechanisms of cancer prevention by tea constituents. , 2003, The Journal of nutrition.
[86] Y. Surh,et al. Cancer chemoprevention with dietary phytochemicals , 2003, Nature Reviews Cancer.
[87] R. Liu,et al. Health benefits of fruit and vegetables are from additive and synergistic combinations of phytochemicals. , 2003, The American journal of clinical nutrition.
[88] L. Benjamin,et al. Angiogenesis: Tumorigenesis and the angiogenic switch , 2003, Nature Reviews Cancer.
[89] C. Xie,et al. The production and characteristics of solid lipid nanoparticles (SLNs). , 2003, Biomaterials.
[90] Xiaofeng Meng,et al. Stability, cellular uptake, biotransformation, and efflux of tea polyphenol (-)-epigallocatechin-3-gallate in HT-29 human colon adenocarcinoma cells. , 2002, Cancer research.
[91] Sandra N. Mohr,et al. Pharmacokinetics of tea catechins after ingestion of green tea and (-)-epigallocatechin-3-gallate by humans: formation of different metabolites and individual variability. , 2002, Cancer epidemiology, biomarkers & prevention : a publication of the American Association for Cancer Research, cosponsored by the American Society of Preventive Oncology.
[92] G. Beecher,et al. Catechins are bioavailable in men and women drinking black tea throughout the day. , 2001, The Journal of nutrition.
[93] R. Müller,et al. Solid lipid nanoparticles (SLN) for controlled drug delivery - a review of the state of the art. , 2000, European journal of pharmaceutics and biopharmaceutics : official journal of Arbeitsgemeinschaft fur Pharmazeutische Verfahrenstechnik e.V.
[94] Yihai Cao,et al. Angiogenesis inhibited by drinking tea , 1999, Nature.
[95] Maojung Lee,et al. Absorption, Distribution, and Elimination of Tea Polyphenols in Rats , 1997 .
[96] E. Skrzypczak‐Jankun,et al. Why drinking green tea could prevent cancer , 1997, Nature.
[97] R. Dixon,et al. Stress-Induced Phenylpropanoid Metabolism. , 1995, The Plant cell.
[98] S. Barnes. Effect of genistein on in vitro and in vivo models of cancer. , 1995, The Journal of nutrition.
[99] N. Van Rooijen,et al. Liposome mediated depletion of macrophages: mechanism of action, preparation of liposomes and applications. , 1994, Journal of immunological methods.
[100] N. Maggiano,et al. Inhibitory effect of quercetin on primary ovarian and endometrial cancers and synergistic activity with cis‐diamminedichloroplatinum(II) , 1993, Gynecologic oncology.
[101] N. Maggiano,et al. Inhibitory effect of quercetin on primary ovarian and endometrial cancers and synergistic activity with cis-diamminedichloroplatinum(II) , 1992 .
[102] J. Hassett,et al. The effects of the bioflavonoid quercetin on squamous cell carcinoma of head and neck origin. , 1989, American journal of surgery.
[103] A. Mariani,et al. Effect of chitosan concentration on PLGA microcapsules for controlled release and stability of resveratrol. , 2015, International journal of biological macromolecules.
[104] A. Jemal,et al. Cancer statistics, 2015 , 2015, CA: a cancer journal for clinicians.
[105] Xuan Pan,et al. Quercetin-nanostructured lipid carriers: characteristics and anti-breast cancer activities in vitro. , 2014, Colloids and surfaces. B, Biointerfaces.
[106] Chwan-Li Shen,et al. Novel insights of dietary polyphenols and obesity. , 2014, The Journal of nutritional biochemistry.
[107] S. Nathiya,et al. QUERCETIN, ENCAPSULATED QUERCETIN AND ITS APPLICATION- A REVIEW , 2014 .
[108] D. Mcclements,et al. Encapsulation and release of hydrophobic bioactive components in nanoemulsion-based delivery systems: impact of physical form on quercetin bioaccessibility. , 2013, Food & function.
[109] L. Helson. Curcumin (diferuloylmethane) delivery methods: A review , 2013, BioFactors.
[110] Luciana Facco Dalmolin,et al. Pharmacokinetics of curcumin-loaded PLGA and PLGA-PEG blend nanoparticles after oral administration in rats. , 2013, Colloids and surfaces. B, Biointerfaces.
[111] S. Karthikeyan,et al. Anticancer activity of resveratrol-loaded gelatin nanoparticles on NCI-H460 non-small cell lung cancer cells , 2013 .
[112] A. H. Sathali,et al. SOLID LIPID NANOPARTICLES: A REVIEW , 2017 .
[113] S. Nagini,et al. Cancer chemoprevention by dietary phytochemicals: promises and pitfalls. , 2012, Current pharmaceutical biotechnology.
[114] S. Mendoza,et al. Antioxidant effects of quercetin and catechin encapsulated into PLGA nanoparticles , 2012 .
[115] Murali M. Yallapu,et al. Curcumin nanoformulations: a future nanomedicine for cancer. , 2012, Drug discovery today.
[116] M. Coelho,et al. Epigallocatechin gallate-loaded polysaccharide nanoparticles for prostate cancer chemoprevention. , 2011, Nanomedicine.
[117] D. Nie,et al. Quercetin induces apoptosis by activating caspase-3 and regulating Bcl-2 and cyclooxygenase-2 pathways in human HL-60 cells. , 2011, Acta biochimica et biophysica Sinica.
[118] Robert Langer,et al. Nanoparticle technologies for cancer therapy. , 2010, Handbook of experimental pharmacology.
[119] T. Szekeres,et al. Resveratrol and its analogs: defense against cancer, coronary disease and neurodegenerative maladies or just a fad? , 2008, Mutation research.
[120] R. Liu,et al. Health benefits of fruit and vegetables are from additive and synergistic combinations of phytochemicals 1 – 4 , 2003 .
[121] H. Li,et al. Absorption, distribution, elimination of tea polyphenols in rats. , 1997, Drug metabolism and disposition: the biological fate of chemicals.