Self-emulsifying formulations to augment therapeutic efficacy of nutraceuticals: From concepts to clinic
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[1] Xin He,et al. Self-Nanoemulsifying Drug Delivery System of Genkwanin: A Novel Approach for Anti-Colitis-Associated Colorectal Cancer , 2021, Drug design, development and therapy.
[2] Yuanyuan Yang,et al. Synergetic delivery of triptolide and Ce6 with light-activatable liposomes for efficient hepatocellular carcinoma therapy , 2021, Acta pharmaceutica Sinica. B.
[3] E. Mitsou,et al. Development and Study of Nanoemulsions and Nanoemulsion-Based Hydrogels for the Encapsulation of Lipophilic Compounds , 2020, Nanomaterials.
[4] M. Leena,et al. Synergistic potential of nutraceuticals: mechanisms and prospects for futuristic medicine. , 2020, Food & function.
[5] Shaoyun Wang,et al. Self-microemulsifying delivery system of WPI-Dai nanocomplex mixed with nonionic surfactant and its superiority in delivering daidzein , 2020 .
[6] Hui Teng,et al. Self-nanoemulsions loaded with dihydromyricetin: Insights to their formulation stability , 2020 .
[7] Xing-jie Liang,et al. Light-activatable liposomes for repetitive on-demand drug release and immunopotentiation in hypoxic tumor therapy. , 2020, Biomaterials.
[8] I. Hargreaves,et al. Disorders of Human Coenzyme Q10 Metabolism: An Overview , 2020, International journal of molecular sciences.
[9] Walaa H El-Maadawy,et al. Impact of Reverse Micelle Loaded Lipid Nanocapsules on the Delivery of Gallic Acid into Activated Hepatic Stellate Cells: A Promising Therapeutic Approach for Hepatic Fibrosis , 2020, Pharmaceutical Research.
[10] K. Dev,et al. Self-emulsifying formulation of Spinacia oleracea reduces the dose and escalates bioavailability of bioactive compounds to accelerate fracture repair in rats , 2020, Clinical Phytoscience.
[11] A. Bernkop‐Schnürch,et al. Cosolvents in Self-Emulsifying Drug Delivery Systems (SEDDS): Do They Really Solve Our Solubility Problems? , 2020, Molecular pharmaceutics.
[12] Jiao Sun,et al. Drug delivery based pharmacological enhancement and current insights of quercetin with therapeutic potential against oral diseases. , 2020, Biomedicine & pharmacotherapy = Biomedecine & pharmacotherapie.
[13] Q. Xia,et al. Enhanced oral bioavailability of oligomeric proanthocyanidins by a self‐double‐emulsifying drug delivery system , 2020, Food science & nutrition.
[14] T. Webster,et al. A Soluplus/Poloxamer 407-based self-nanoemulsifying drug delivery system for the weakly basic drug carvedilol to improve its bioavailability. , 2020, Nanomedicine : nanotechnology, biology, and medicine.
[15] Min-Soo Kim,et al. Current Status of Supersaturable Self-Emulsifying Drug Delivery Systems , 2020, Pharmaceutics.
[16] A. Shahba,et al. Bioactive Self-Nanoemulsifying Drug Delivery Systems (Bio-SNEDDS) for Combined Oral Delivery of Curcumin and Piperine , 2020, Molecules.
[17] J. du Plessis,et al. Development of Topical/Transdermal Self-Emulsifying Drug Delivery Systems, Not as Simple as Expected , 2020 .
[18] Nawaz Ahmed,et al. Avocado-derived polyols for use as novel co-surfactants in low energy self-emulsifying microemulsions , 2020, Scientific Reports.
[19] G. Giammona,et al. Spray-Drying, Solvent-Casting and Freeze-Drying Techniques: a Comparative Study on their Suitability for the Enhancement of Drug Dissolution Rates , 2020, Pharmaceutical Research.
[20] Hui Teng,et al. A self-emulsifying formulation of Sonchus oleraceus Linn for an improved anti-diabetic effect in vivo. , 2020, Food & function.
[21] Ayad A. H. Faisal,et al. Waste foundry sand/MgFe-layered double hydroxides composite material for efficient removal of Congo red dye from aqueous solution , 2020, Scientific Reports.
[22] Jerson L. Silva,et al. Anticancer Potential of Resveratrol, β-Lapachone and Their Analogues , 2020, Molecules.
[23] M. Pai,et al. Neuroprotective effects of resveratrol in Alzheimer's disease. , 2020, Frontiers in bioscience.
[24] Zhen-Yu Chen,et al. Pharmacological basis and new insights of resveratrol action in the cardiovascular system , 2020, British journal of pharmacology.
[25] M. Aschner,et al. Neuroprotective Effects of Quercetin in Alzheimer’s Disease , 2019, Biomolecules.
[26] Beibei Yan,et al. In vitro and in vivo evaluation of poly (acrylic acid) modified mesoporous silica nanoparticles as pH response carrier for β-elemene self-micro emulsifying. , 2019, International journal of pharmaceutics.
[27] A. Bishayee,et al. Molecular Mechanisms of Action of Genistein in Cancer: Recent Advances , 2019, Front. Pharmacol..
[28] C. Bersani-Amado,et al. Rheumatoid arthritis induces enteric neurodegeneration and jejunal inflammation, and quercetin promotes neuroprotective and anti-inflammatory actions. , 2019, Life sciences.
[29] Narpinder Singh,et al. Development and characterization of Solid-SNEDDS formulation of DHA using hydrophilic carrier with improved shelf life, oxidative stability and therapeutic activity , 2019 .
[30] D. Mcclements,et al. Recent advances in colloidal delivery systems for nutraceuticals: A case study - Delivery by Design of curcumin. , 2019, Journal of colloid and interface science.
[31] S. Singh,et al. Enhancing the potential preclinical and clinical benefits of quercetin through novel drug delivery systems. , 2019, Drug discovery today.
[32] R. C. Zepeda,et al. Genistein as Potential Therapeutic Candidate for Menopausal Symptoms and Other Related Diseases , 2019, Molecules.
[33] K. Bremmell,et al. A self-emulsifying Omega-3 ethyl ester formulation (AquaCelle) significantly improves eicosapentaenoic and docosahexaenoic acid bioavailability in healthy adults , 2019, European Journal of Nutrition.
[34] A. Rao,et al. The impact of micelle size and increased absorption of ubiquinone using a novel delivery system (AquaCelle®) , 2019 .
[35] Harjinder Singh,et al. Delivery of bioactives in food for optimal efficacy: What inspirations and insights can be gained from pharmaceutics? , 2019, Trends in Food Science & Technology.
[36] B. Sarmento,et al. Multicomponent self nano emulsifying delivery systems of resveratrol with enhanced pharmacokinetics profile. , 2019, European journal of pharmaceutical sciences : official journal of the European Federation for Pharmaceutical Sciences.
[37] Q. Feng,et al. Protective effect of genistein on nonalcoholic fatty liver disease (NAFLD). , 2019, Biomedicine & pharmacotherapy = Biomedecine & pharmacotherapie.
[38] Juan Huang,et al. Development and characterization of a new non-aqueous self-double-emulsifying drug delivery system for topical application of rutin , 2019 .
[39] C. Schön,et al. A Novel Self-Emulsifying Drug Delivery System (SEDDS) Based on VESIsorb® Formulation Technology Improving the Oral Bioavailability of Cannabidiol in Healthy Subjects , 2019, Molecules.
[40] E. Mantzioris,et al. Nutraceuticals: Reviewing their Role in Chronic Disease Prevention and Management , 2019, Pharmaceutical Medicine.
[41] P. Devarajan,et al. Enhancing Curcumin Oral Bioavailability Through Nanoformulations , 2019, European Journal of Drug Metabolism and Pharmacokinetics.
[42] Xin‐an Zeng,et al. Dihydromyricetin: A review on identification and quantification methods, biological activities, chemical stability, metabolism and approaches to enhance its bioavailability , 2019, Trends in Food Science & Technology.
[43] R. Holm,et al. Nonionic surfactants modulate the transport activity of ATP-binding cassette (ABC) transporters and solute carriers (SLC): Relevance to oral drug absorption. , 2019, International journal of pharmaceutics.
[44] Catalina Carrasco-Pozo,et al. The Anti-Cancer Effect of Quercetin: Molecular Implications in Cancer Metabolism , 2019, International journal of molecular sciences.
[45] Ting Duan,et al. Molecular targets of β-elemene, a herbal extract used in traditional Chinese medicine, and its potential role in cancer therapy: A review. , 2019, Biomedicine & pharmacotherapy = Biomedecine & pharmacotherapie.
[46] Xiaoyu Chen,et al. Resveratrol alleviates inflammatory injury and enhances the apoptosis of fibroblast-like synoviocytes via mitochondrial dysfunction and ER stress in rats with adjuvant arthritis , 2019, Molecular medicine reports.
[47] Jiangnan Yu,et al. Anti-hyperuricemic property of 6-shogaol via self-micro emulsifying drug delivery system in model rats: formulation design, in vitro and in vivo evaluation , 2019, Drug development and industrial pharmacy.
[48] A. Fadda,et al. Antioxidant activity of quercetin in Eudragit-coated liposomes for intestinal delivery. , 2019, International journal of pharmaceutics.
[49] D. Mondhe,et al. Gemcitabine and betulinic acid co-encapsulated PLGA-PEG polymer nanoparticles for improved efficacy of cancer chemotherapy. , 2019, Materials science & engineering. C, Materials for biological applications.
[50] Martin Kuentz,et al. Approaches to increase mechanistic understanding and aid in the selection of precipitation inhibitors for supersaturating formulations – a PEARRL review , 2019, The Journal of pharmacy and pharmacology.
[51] A. Bernkop‐Schnürch,et al. Development and in vitro characterization of an oral self-emulsifying delivery system (SEDDS) for rutin fatty ester with high mucus permeating properties. , 2019, International journal of pharmaceutics.
[52] T. Rades,et al. In vitro digestion models to evaluate lipid based drug delivery systems; present status and current trends. , 2019, Advanced drug delivery reviews.
[53] M. Gumbleton,et al. Self-emulsifying drug delivery system: Mucus permeation and innovative quantification technologies. , 2019, Advanced drug delivery reviews.
[54] C. Bourlieu,et al. Variations in gastrointestinal lipases, pH and bile acid levels with food intake, age and diseases: Possible impact on oral lipid-based drug delivery systems. , 2019, Advanced drug delivery reviews.
[55] René Holm,et al. Bridging the gaps between academic research and industrial product developments of lipid-based formulations. , 2019, Advanced drug delivery reviews.
[56] Hui Teng,et al. Self-nano-emulsifying formulation of Sonchus oleraceus Linn for improved stability: Implications for phenolics degradation under in vitro gastro-intestinal digestion , 2019, Journal of Functional Foods.
[57] Jinjie Zhang,et al. Mechanisms of poor oral bioavailability of flavonoid Morin in rats: From physicochemical to biopharmaceutical evaluations , 2019, European journal of pharmaceutical sciences : official journal of the European Federation for Pharmaceutical Sciences.
[58] K. Abbaszadeh-Goudarzi,et al. Resveratrol: A new potential therapeutic agent for melanoma? , 1969, Current medicinal chemistry.
[59] C. Prestidge,et al. Solidification to improve the biopharmaceutical performance of SEDDS: Opportunities and challenges. , 2019, Advanced drug delivery reviews.
[60] I. Nardin,et al. Successful development of oral SEDDS: screening of excipients from the industrial point of view. , 2019, Advanced drug delivery reviews.
[61] S. Rannard,et al. Inhibitory Effects of Commonly Used Excipients on P-Glycoprotein in Vitro. , 2018, Molecular pharmaceutics.
[62] Jinyi Xu,et al. The protective effects of a novel synthetic β-elemene derivative on human umbilical vein endothelial cells against oxidative stress-induced injury: Involvement of antioxidation and PI3k/Akt/eNOS/NO signaling pathways. , 2018, Biomedicine & pharmacotherapy = Biomedecine & pharmacotherapie.
[63] Geoff G. Z. Zhang,et al. Impact of Porous Excipients on the Manufacturability and Product Performance of Solid Self-Emulsifying Drug Delivery Systems , 2018, AAPS PharmSciTech.
[64] J. Aguilera. The food matrix: implications in processing, nutrition and health , 2018, Critical reviews in food science and nutrition.
[65] Bingxue Sun,et al. Oral Bioavailability and Lymphatic Transport of Pueraria Flavone-Loaded Self-Emulsifying Drug-Delivery Systems Containing Sodium Taurocholate in Rats , 2018, Pharmaceutics.
[66] S. Onoue,et al. Improved biopharmaceutical properties of carvedilol employing α-tocopheryl polyethylene glycol 1000 succinate-based self-emulsifying drug delivery system , 2018, Drug development and industrial pharmacy.
[67] A. Pinheiro,et al. Advances in nutraceutical delivery systems: From formulation design for bioavailability enhancement to efficacy and safety evaluation , 2018, Trends in Food Science & Technology.
[68] J. Váradi,et al. Physico-chemical characterization of self-emulsifying drug delivery systems. , 2018, Drug discovery today. Technologies.
[69] D. Borderie,et al. Use of Resveratrol Self-Emulsifying Systems in T/C28a2 Cell Line as Beneficial Effectors in Cellular Uptake and Protection Against Oxidative Stress-Mediated Death , 2018, Front. Pharmacol..
[70] S. Onoue,et al. Supersaturable Self-Emulsifying Drug Delivery System of Krill Oil with Improved Oral Absorption and Hypotriglyceridemic Function. , 2018, Journal of agricultural and food chemistry.
[71] F. Razi,et al. Resveratrol supplementation decreases blood glucose without changing the circulating CD14+CD16+ monocytes and inflammatory cytokines in patients with type 2 diabetes: a randomized, double-blind, placebo-controlled study. , 2018, Nutrition research.
[72] F. Shahidi,et al. Omega-3 Polyunsaturated Fatty Acids and Their Health Benefits. , 2018, Annual review of food science and technology.
[73] Gergely Hetényi,et al. Self-emulsifying peptide drug delivery systems: How to make them highly mucus permeating. , 2018, International journal of pharmaceutics.
[74] L. Pani,et al. Nutraceuticals: opening the debate for a regulatory framework , 2018, British journal of clinical pharmacology.
[75] Juan Huang,et al. Self-double-emulsifying drug delivery system incorporated in natural hydrogels: a new way for topical application of vitamin C , 2018, Journal of microencapsulation.
[76] S. Onoue,et al. Enhanced pharmacokinetic behavior and hepatoprotective function of ginger extract-loaded supersaturable self-emulsifying drug delivery systems , 2018 .
[77] R. Dubey,et al. Nanosystems for drug delivery of coenzyme Q10 , 2018, Environmental Chemistry Letters.
[78] D. Arora,et al. Therapeutic applications of resveratrol nanoformulations , 2018, Environmental Chemistry Letters.
[79] S. Hustvedt,et al. A novel self-micro-emulsifying delivery system (SMEDS) formulation significantly improves the fasting absorption of EPA and DHA from a single dose of an omega-3 ethyl ester concentrate , 2017, Lipids in Health and Disease.
[80] A. Bernkop‐Schnürch,et al. Development and in vitro characterization of a papain loaded mucolytic self-emulsifying drug delivery system (SEDDS). , 2017, International journal of pharmaceutics.
[81] M. T. Moreira,et al. Rutin: A review on extraction, identification and purification methods, biological activities and approaches to enhance its bioavailability , 2017 .
[82] Jianguo Liu,et al. Evaluation of the cytotoxicity and intestinal absorption of a self‐emulsifying drug delivery system containing sodium taurocholate , 2017, European journal of pharmaceutical sciences : official journal of the European Federation for Pharmaceutical Sciences.
[83] Chih-Wei Chang,et al. Self-Nanoemulsifying Drug Delivery System for Resveratrol: Enhanced Oral Bioavailability and Reduced Physical Fatigue in Rats , 2017, International journal of molecular sciences.
[84] Juan Huang,et al. Stabilization of a non-aqueous self-double-emulsifying delivery system of rutin by fat crystals and nonionic surfactants: preparation and bioavailability study. , 2017, Food & function.
[85] A. Malfitano,et al. Cannabidiol: State of the art and new challenges for therapeutic applications. , 2017, Pharmacology & therapeutics.
[86] R. Andrew,et al. Principles of pharmacological research of nutraceuticals , 2017, British journal of pharmacology.
[87] F. Prüfert,et al. Self‐emulsifying drug delivery systems: Design of a novel vaginal delivery system for curcumin , 2017, European journal of pharmaceutics and biopharmaceutics : official journal of Arbeitsgemeinschaft fur Pharmazeutische Verfahrenstechnik e.V.
[88] G. Ponchel,et al. Increased intestinal permeation and modulation of presystemic metabolism of resveratrol formulated into self-emulsifying drug delivery systems. , 2017, International journal of pharmaceutics.
[89] Q. Wang,et al. Enhanced oral bioavailability of quercetin by a new non‐aqueous self‐double‐emulsifying drug delivery system , 2017 .
[90] J. P. D. Costa. A current look at nutraceuticals – Key concepts and future prospects , 2017 .
[91] Jinzhen Wu,et al. Association of the SPTLC3 rs364585 polymorphism and serum lipid profiles in two Chinese ethnic groups , 2017, Lipids in Health and Disease.
[92] Eman M. Shehata,et al. Self-emulsifying phospholipid pre-concentrates (SEPPs) for improved oral delivery of the anti-cancer genistein: Development, appraisal and ex-vivo intestinal permeation. , 2016, International journal of pharmaceutics.
[93] K. Borges,et al. The deleterious effect of cholesterol and protection by quercetin on mitochondrial bioenergetics of pancreatic β-cells, glycemic control and inflammation: In vitro and in vivo studies , 2016, Redox biology.
[94] Dinesh Kumar,et al. Evaluation of the inhibitory potential of HPMC, PVP and HPC polymers on nucleation and crystal growth , 2016 .
[95] Qiang Wang,et al. Improved oral absorption of (−)‐epigallocatechin‐3‐gallate via self‐double‐emulsifying solid formulation , 2016 .
[96] D. Arora,et al. Nanocarriers based delivery of nutraceuticals for cancer prevention and treatment: A review of recent research developments , 2016 .
[97] S. Jain,et al. Self-nanoemulsifying drug delivery system of docosahexanoic acid: development, in vitro, in vivo characterization , 2016, Drug development and industrial pharmacy.
[98] Frédéric Carrière,et al. Impact of gastrointestinal lipolysis on oral lipid-based formulations and bioavailability of lipophilic drugs. , 2016, Biochimie.
[99] Wenpeng Zhang,et al. The Effects of Pharmaceutical Excipients on Gastrointestinal Tract Metabolic Enzymes and Transporters—an Update , 2016, The AAPS Journal.
[100] E. Essa,et al. Self-emulsifying drug delivery systems as a tool to improve solubility and bioavailability of resveratrol , 2016, Drug design, development and therapy.
[101] Zhirong Zhang,et al. Biodistribution, hypouricemic efficacy and therapeutic mechanism of morin phospholipid complex loaded self‐nanoemulsifying drug delivery systems in an experimental hyperuricemic model in rats , 2016, The Journal of pharmacy and pharmacology.
[102] A. Saneja,et al. Recent Advances in Self-Emulsifying Drug-Delivery Systems for Oral Delivery of Cancer Chemotherapeutics , 2016 .
[103] Huiyong Zhang,et al. Improved Antioxidant Capacity of Optimization of a Self-Microemulsifying Drug Delivery System for Resveratrol , 2015, Molecules.
[104] A. Joshi,et al. Self-microemulsifying drug delivery system (SMEDDS) – challenges and road ahead , 2015, Drug delivery.
[105] M. Coleman,et al. In Vitro Protective Effect and Antioxidant Mechanism of Resveratrol Induced by Dapsone Hydroxylamine in Human Cells , 2015, PloS one.
[106] A. Hoffman,et al. Self-nano-emulsifying drug delivery systems: an update of the biopharmaceutical aspects , 2015, Expert opinion on drug delivery.
[107] R. Pai,et al. Trans-resveratrol self-nano-emulsifying drug delivery system (SNEDDS) with enhanced bioavailability potential: optimization, pharmacokinetics and in situ single pass intestinal perfusion (SPIP) studies , 2015, Drug delivery.
[108] L. Sanguansri,et al. Challenges and solutions to incorporation of nutraceuticals in foods. , 2015, Annual review of food science and technology.
[109] D. Mcclements,et al. The Nutraceutical Bioavailability Classification Scheme: Classifying Nutraceuticals According to Factors Limiting their Oral Bioavailability. , 2015, Annual review of food science and technology.
[110] Dinesh Kumar,et al. Design of a novel type IV lipid-based delivery system for improved delivery of drugs with low partition coefficient , 2015, Journal of liposome research.
[111] A. Gurram,et al. Self-Microemulsifying Drug Delivery Systems: An Attractive Strategy for Enhanced Therapeutic Profile , 2014, International scholarly research notices.
[112] A. Saneja,et al. Co-formulation of P-glycoprotein Substrate and Inhibitor in Nanocarriers: An Emerging Strategy for Cancer Chemotherapy. , 2014, Current cancer drug targets.
[113] A. Saneja,et al. Advances in P-glycoprotein-based approaches for delivering anticancer drugs: pharmacokinetic perspective and clinical relevance , 2014, Expert opinion on drug delivery.
[114] Amit Jain,et al. Novel self-emulsifying formulation of quercetin for improved in vivo antioxidant potential: implications for drug-induced cardiotoxicity and nephrotoxicity. , 2013, Free radical biology & medicine.
[115] Javed Ali,et al. Rutin: therapeutic potential and recent advances in drug delivery , 2013, Expert opinion on investigational drugs.
[116] A. Hahn,et al. Bioavailability of long-chain omega-3 fatty acids. , 2013, Prostaglandins, leukotrienes, and essential fatty acids.
[117] A. Yu,et al. Bioavailability of quercetin: problems and promises. , 2013, Current medicinal chemistry.
[118] A. Serajuddin,et al. Development of Solid SEDDS, IV: Effect of Adsorbed Lipid and Surfactant on Tableting Properties and Surface Structures of Different Silicates , 2013, Pharmaceutical Research.
[119] Hywel D Williams,et al. Strategies to Address Low Drug Solubility in Discovery and Development , 2013, Pharmacological Reviews.
[120] Wei Zhu,et al. Bioavailability and pharmacokinetics of genistein: mechanistic studies on its ADME. , 2012, Anti-cancer agents in medicinal chemistry.
[121] T. Kiss,et al. Evaluation of cytotoxicity of surfactants used in self-micro emulsifying drug delivery systems and their effects on paracellular transport in Caco-2 cell monolayer. , 2012, European journal of pharmaceutical sciences : official journal of the European Federation for Pharmaceutical Sciences.
[122] S. Onoue,et al. Novel solid self-emulsifying drug delivery system of coenzyme Q₁₀ with improved photochemical and pharmacokinetic behaviors. , 2012, European journal of pharmaceutical sciences : official journal of the European Federation for Pharmaceutical Sciences.
[123] M. Kuentz. Lipid-based formulations for oral delivery of lipophilic drugs. , 2012, Drug discovery today. Technologies.
[124] Abu T. M. Serajuddin,et al. Development of Solid Self-Emulsifying Drug Delivery System (SEDDS) I: Use of Poloxamer 188 as Both Solidifying and Emulsifying Agent for Lipids , 2012, Pharmaceutical Research.
[125] K. Tikoo,et al. Contribution of Formulation and Excipients Towards Enhanced Permeation of Curcumin , 2012, Arzneimittelforschung/Drug Research.
[126] Qiang Zhang,et al. Preparation, characterization, and in vivo evaluation of a self-nanoemulsifying drug delivery system (SNEDDS) loaded with morin-phospholipid complex , 2011, International journal of nanomedicine.
[127] Lishuang Wang,et al. Self-double-emulsifying drug delivery system (SDEDDS): a new way for oral delivery of drugs with high solubility and low permeability. , 2011, International journal of pharmaceutics.
[128] Werner Weitschies,et al. Effects of non-ionic surfactants on cytochrome P450-mediated metabolism in vitro. , 2011, European journal of pharmaceutics and biopharmaceutics : official journal of Arbeitsgemeinschaft fur Pharmazeutische Verfahrenstechnik e.V.
[129] A. Bansal,et al. Identification of permeability-related hurdles in oral delivery of curcumin using the Caco-2 cell model. , 2011, European journal of pharmaceutics and biopharmaceutics : official journal of Arbeitsgemeinschaft fur Pharmazeutische Verfahrenstechnik e.V.
[130] Jianhua Xu,et al. Self-microemulsifying drug delivery system improves curcumin dissolution and bioavailability , 2011, Drug development and industrial pharmacy.
[131] K. Kohli,et al. Self-emulsifying drug delivery systems: an approach to enhance oral bioavailability. , 2010, Drug discovery today.
[132] C. Pouton,et al. Design of lipid-based formulations for oral administration of poorly water-soluble drugs: precipitation of drug after dispersion of formulations in aqueous solution. , 2009, Journal of pharmaceutical sciences.
[133] Razelle Kurzrock,et al. Phase II Trial of Curcumin in Patients with Advanced Pancreatic Cancer , 2008, Clinical Cancer Research.
[134] V. Jannin,et al. Approaches for the development of solid and semi-solid lipid-based formulations. , 2008, Advanced drug delivery reviews.
[135] C. Porter,et al. Lipids and lipid-based formulations: optimizing the oral delivery of lipophilic drugs , 2007, Nature Reviews Drug Discovery.
[136] Colin W Pouton,et al. Formulation of poorly water-soluble drugs for oral administration: physicochemical and physiological issues and the lipid formulation classification system. , 2006, European journal of pharmaceutical sciences : official journal of the European Federation for Pharmaceutical Sciences.
[137] C. O’Driscoll. Lipid-based formulations for intestinal lymphatic delivery. , 2002, European journal of pharmaceutical sciences : official journal of the European Federation for Pharmaceutical Sciences.
[138] K. Wasan. Formulation and Physiological and Biopharmaceutical Issues in the Development of Oral Lipid-Based Drug Delivery Systems , 2001, Drug development and industrial pharmacy.
[139] C. Pouton,et al. Lipid formulations for oral administration of drugs: non-emulsifying, self-emulsifying and 'self-microemulsifying' drug delivery systems. , 2000, European journal of pharmaceutical sciences : official journal of the European Federation for Pharmaceutical Sciences.
[140] W. Charman,et al. Lipid-based vehicles for the oral delivery of poorly water soluble drugs , 1997 .
[141] Stephen L. DeFelice,et al. The nutraceutical revolution: its impact on food industry R&D , 1995 .
[142] H. Reiss. Entropy-induced dispersion of bulk liquids , 1975 .