Microemulsion systems: from the design and architecture to the building of a new delivery system for multiple-route drug delivery
暂无分享,去创建一个
E S T Egito | L Amaral-Machado | E N Alencar | A G Oliveira | E. Egito | A. G. Oliveira | L. Amaral-Machado | É. N. Alencar | Anselmo Gomes de Oliveira
[1] T. Decker,et al. A quick and simple method for the quantitation of lactate dehydrogenase release in measurements of cellular cytotoxicity and tumor necrosis factor (TNF) activity. , 1988, Journal of immunological methods.
[2] S. Cho,et al. Controlled release of paclitaxel from microemulsion containing PLGA and evaluation of anti-tumor activity in vitro and in vivo. , 2004, International journal of pharmaceutics.
[3] S. Feng,et al. Pharmaceutical stability aspects of nanomedicines. , 2009, Nanomedicine.
[4] B. Jönsson. Surfactants and Polymers in Aqueous Solution , 1998 .
[5] D. Banerjee,et al. Cytotoxicity and Cell Growth Assays , 2006 .
[6] M. F. Fernandes-Pedrosa,et al. Getting the Jump on the Development of Bullfrog Oil Microemulsions: a Nanocarrier for Amphotericin B Intended for Antifungal Treatment , 2018, AAPS PharmSciTech.
[7] A. Salem,et al. Bullfrog oil (Rana catesbeiana Shaw) induces apoptosis, in A2058 human melanoma cells by mitochondrial dysfunction triggered by oxidative stress. , 2019, Biomedicine & pharmacotherapy = Biomedecine & pharmacotherapie.
[8] P. A. Winsor. Hydrotropy, solubilisation and related emulsification processes , 1948 .
[9] Qingbiao Wang,et al. Thermodynamic behavior and flotation kinetics of an ionic liquid microemulsion collector for coal flotation , 2020 .
[10] M. J. Rosen. Surfactants and Interfacial Phenomena , 1978 .
[11] D. Mcclements. Nanoemulsions versus microemulsions: terminology, differences, and similarities , 2012 .
[12] T. Diamantino,et al. Lactate dehydrogenase activity as an effect criterion in toxicity tests with Daphnia magna straus. , 2001, Chemosphere.
[13] E. Wachtel,et al. Cholesterol crystalline polymorphism and the solubility of cholesterol in phosphatidylserine. , 2000, Biophysical journal.
[14] M. J. Rosen,et al. Ultralow interfacial tension for enhanced oil recovery at very low surfactant concentrations. , 2005, Langmuir : the ACS journal of surfaces and colloids.
[15] P. Becher,et al. Encyclopedia of emulsion technology , 1983 .
[16] M. Correa,et al. Effect of cosurfactant on the supramolecular structure and physicochemical properties of non-ionic biocompatible microemulsions , 2008 .
[17] G. Shipley,et al. The phase behavior of hydrated cholesterol. , 1979, Journal of lipid research.
[18] K. Shinoda. The correlation between the dissolution state of nonionic surfactant and the type of dispersion stabilized with the surfactant , 1967 .
[19] T. Hoar,et al. Transparent Water-in-Oil Dispersions: the Oleopathic Hydro-Micelle , 1943, Nature.
[20] A. Salis,et al. The Influence of Surfactant HLB and Oil/Surfactant Ratio on the Formation and Properties of Self-emulsifying Pellets and Microemulsion Reconstitution , 2012, AAPS PharmSciTech.
[21] W. Stoeckenius,et al. The structure of myelin figures and microemulsions as observed with the electron microscope , 1960 .
[22] I. Glass Containers,et al. Material for Containers 47 , 2016 .
[23] E. Egito,et al. Buccal Bullfrog (Rana catesbeiana Shaw) Oil Emulsion: A Mucoadhesive System Intended for Treatment of Oral Candidiasis , 2018, Pharmaceutics.
[24] L. M. Prince. Microemulsions : theory and practice , 1977 .
[25] David Heber,et al. Limitations of MTT and MTS-Based Assays for Measurement of Antiproliferative Activity of Green Tea Polyphenols , 2010, PloS one.
[26] S. Deore,et al. Emulsion Micro Emulsion and Nano Emulsion: A Review , 2016 .
[27] J. L. Salager. Quantifying the concept of physico-chemical formulation in surfactant-oil-water systems — State of the art , 1996 .
[28] M. Clausse,et al. Bicontinuous structure zones in microemulsions , 1981, Nature.
[29] R. Strey,et al. Small-angle neutron scattering from microemulsions near the disorder line in water/formamide-octane-CiEj systems , 1991 .
[30] K. Shinoda,et al. The Stability of O/W type emulsions as functions of temperature and the HLB of emulsifiers: The emulsification by PIT-method , 1969 .
[31] L. Guilhermino,et al. Novel bioassay based on acetylcholinesterase and lactate dehydrogenase activities to evaluate the toxicity of chemicals to soil isopods. , 1999, Ecotoxicology and environmental safety.
[32] C. Santilli,et al. Doxorubicin biocompatible O/W microemulsion stabilized by mixed surfactant containing soya phosphatidylcholine. , 2006, Colloids and surfaces. B, Biointerfaces.
[33] Patrycja Szumała. Structure of Microemulsion Formulated with Monoacylglycerols in the Presence of Polyols and Ethanol , 2014, Journal of Surfactants and Detergents (JSD).
[34] J. Sirithunyalug,et al. Transdermal delivery enhancement of carvacrol from Origanum vulgare L. essential oil by microemulsion. , 2020, International journal of pharmaceutics.
[35] D. Mcclements. Encapsulation, protection, and release of hydrophilic active components: potential and limitations of colloidal delivery systems. , 2015, Advances in colloid and interface science.
[36] I. B. Araújo,et al. Amphotericin B microemulsion reduces toxicity and maintains the efficacy as an antifungal product. , 2012, Journal of biomedical nanotechnology.
[37] N. Chandrasekaran,et al. Enhanced antifungal activity of Ketoconazole using rose oil based novel microemulsion formulation , 2018, Journal of Drug Delivery Science and Technology.
[38] A. Walker,et al. Inaccuracies in MTS assays: major distorting effects of medium, serum albumin, and fatty acids. , 2004, BioTechniques.
[39] B. Ninham,et al. Microstructure from x-ray scattering: the disordered open connected model of microemulsions , 1987 .
[40] T. Mosmann. Rapid colorimetric assay for cellular growth and survival: application to proliferation and cytotoxicity assays. , 1983, Journal of immunological methods.
[41] J. Chai,et al. A surfactant-free microemulsion containing diethyl malonate, ethanol, and water: Microstructure, micropolarity and solubilizations , 2020 .
[42] J. Schulman,et al. Light scattering investigation of the structure of transparent oil-water disperse systems. II , 1949 .
[43] A. Bansal,et al. Mechanism of generation of drug nanocrystals in celecoxib: mannitol nanocrystalline solid dispersion. , 2015, International journal of pharmaceutics.
[44] Jingyuan Wen,et al. Microemulsions as Drug Delivery Systems , 2010 .
[45] Tycho Heimbach,et al. Overcoming Poor Aqueous Solubility of Drugs for Oral Delivery , 2007 .
[46] P. Stenius,et al. Microemulsions formed by water, aliphatic hydrocarbons, and pentaethylene glycol dodecyl ether: the temperature dependence of aggregate size , 1987 .
[47] C. Cametti,et al. Direct evidence of multicompartment aggregates in polyelectrolyte-charged liposome complexes. , 2006, Biophysical journal.
[48] J. Schulman,et al. Influence of Water Structures on the Surface Pressure, Surface Potential, and Area of Soap Monolayers of Lithium, Sodium, Potassium, and Calcium , 1964 .
[49] C. Santilli,et al. Structural changes of biocompatible neutral microemulsions stabilized by mixed surfactant containing soya phosphatidylcholine and their relationship with doxorubicin release. , 2008, Colloids and surfaces. B, Biointerfaces.
[50] D. F. Evans,et al. Properties and structure of three-component ionic microemulsions , 1984 .
[51] Lakshmi,et al. Lipid Based Aqueous Core Nanocapsules (ACNs) for Encapsulating Hydrophillic Vinorelbine Bitartrate: Preparation, Optimization, Characterization and In vitro Safety Assessment for Intravenous Administration. , 2018, Current drug delivery.
[52] Sarfaraz Niazi,et al. Bracketing and Matrixing Designs for Stability Testing of New Drug Substances and Products , 2016, Handbook of Pharmaceutical Manufacturing Formulations, Second Edition.
[53] Y. Prasannaraju,et al. Insights of Microemulsions – A Thermodynamic Comprehension , 2017 .
[54] M. J. Schwuger,et al. Microemulsions in Technical Processes , 1995 .
[55] A. Date,et al. Parenteral microemulsions: an overview. , 2008, International journal of pharmaceutics.
[56] C. Vauthier,et al. Microemulsion systems containing bioactive natural oils: an overview on the state of the art , 2017, Drug development and industrial pharmacy.
[57] Gang Cheng,et al. Development of solid self-emulsifying drug delivery systems: preparation techniques and dosage forms. , 2008, Drug discovery today.
[58] D. Shah,et al. Solubilization and phase equilibria of water-in-oil microemulsions: I. Effects of spontaneous curvature and elasticity of interfacial films , 1987 .
[59] I. Oey,et al. Capacity of natural β-carotene loaded microemulsion to protect Caco-2 cells from oxidative damage caused by exposure to H2O2 , 2014 .
[60] B. Halliwell. Free radicals and antioxidants - quo vadis? , 2011, Trends in pharmacological sciences.
[61] A. G. Oliveira,et al. Inclusion complex of piroxicam with beta-cyclodextrin and incorporation in cationic microemulsion. In vitro drug release and in vivo topical anti-inflammatory effect. , 2001, International journal of pharmaceutics.
[62] Ashok Godavarthi,et al. IN VITRO CYTOTOXICITY OF CARALLUMA SPECIES BY MTT AND TRYPAN BLUE DYE EXCLUSION , 2014 .
[63] K. Uekama,et al. Design and evaluation of cyclodextrin-based drug formulation. , 2004, Chemical & pharmaceutical bulletin.
[64] J. Grossiord,et al. Characterization of a Sucrose Ester Microemulsion by Freeze Fracture Electron Micrograph and Small Angle Neutron Scattering Experiments , 1999 .
[65] R. Bodmeier,et al. Binding of drugs to monoglyceride-based drug delivery systems , 1997 .
[66] J. Schulman,et al. THE EFFECT OF DIFFERENT HYDROCARBONS ON THE FORMATION OF MICROEMULSIONS: Henry Krumb School of Mines, Stanley-Thompson Laboratories, Columbia University, New York 27, N.Y., USA , 1965 .
[67] G. Barratt,et al. In-vitro and in-vivo antileishmanial activity of inexpensive Amphotericin B formulations: Heated Amphotericin B and Amphotericin B-loaded microemulsion. , 2018, Experimental parasitology.
[68] H. Maag. Fatty acid derivatives: Important surfactants for household, cosmetic and industrial purposes , 1984 .
[69] A. Califano,et al. Physical and chemical stability under environmental stress of microemulsions formulated with fish oil. , 2019, Food research international.
[70] L. Qiu,et al. Polymersomes via Self-Assembly of Amphiphilic β-Cyclodextrin-Centered Triarm Star Polymers for Enhanced Oral Bioavailability of Water-Soluble Chemotherapeutics. , 2016, Biomacromolecules.
[71] N. G. Popovich,et al. Pharmaceutical Dosage Forms and Drug Delivery Systems , 1990 .
[72] K. Shinoda,et al. Organized surfactant systems: microemulsions , 1987 .
[73] K. Shinoda,et al. Microemulsions: Colloidal aspects , 1975 .
[74] M. Lawrence,et al. Microemulsion-based media as novel drug delivery systems , 2000 .
[75] J. Schulman,et al. Mechanism of Formation and Structure of Micro Emulsions by Electron Microscopy , 1959 .
[76] D. Shah,et al. Improved drug delivery using microemulsions: rationale, recent progress, and new horizons. , 2001, Critical reviews in therapeutic drug carrier systems.
[77] K. Shinoda,et al. Emulsifier selection in water/oil type emulsions by the hydrophile—lipophile balance—temperature system , 1978 .
[78] Krister Holmberg,et al. Handbook of applied surface and colloid chemistry , 2002 .
[79] G. Barratt,et al. Development of oil-in-water microemulsions for the oral delivery of amphotericin B. , 2013, International journal of pharmaceutics.
[80] D. F. Evans,et al. Curvature as a determinant of microstructure and microemulsions , 1986 .
[81] A. G. Oliveira,et al. Inclusion complex of piroxicam with beta-cyclodextrin and incorporation in hexadecyltrimethylammonium bromide based microemulsion. , 1999, International journal of pharmaceutics.
[82] R. Strey,et al. Microemulsions — A qualitative thermodynamic approach , 1990 .
[83] Qian Zhang,et al. Transferrin-functionalised microemulsion co-delivery of β-elemene and celastrol for enhanced anti-lung cancer treatment and reduced systemic toxicity , 2019, Drug Delivery and Translational Research.
[84] J. Tranchant,et al. Percutaneous absorption of sunscreens from liquid crystalline phases. , 1999, Journal of controlled release : official journal of the Controlled Release Society.
[85] I. Hussein,et al. Influence of Surfactant Structure on the Stability of Water-in-Oil Emulsions under High-Temperature High-Salinity Conditions , 2017 .
[86] E. Göker,et al. Controlled Release of Methotrexate from W/O Microemulsion and Its In Vitro Antitumor Activity , 2007, Drug delivery.
[87] M. Alam,et al. Commercially bioavailable proprietary technologies and their marketed products. , 2013, Drug discovery today.
[88] S. Friberg,et al. NMR and IR investigation of the conditions determining the stability of microemulsions , 1970 .
[89] M. Correa,et al. On the incorporation of the non-steroidal anti-inflammatory naproxen into cationic O/W microemulsions. , 2005, Colloids and surfaces. B, Biointerfaces.
[90] E. Wachtel,et al. A new high-temperature transition of crystalline cholesterol in mixtures with phosphatidylserine. , 2001, Biophysical journal.
[91] R. Kalendarev,et al. A new phase in solid state arsenic , 1979, Nature.
[92] V. H. Sarmento,et al. Oil-in-water lecithin-based microemulsions as a potential delivery system for amphotericin B. , 2008, Colloids and surfaces. B, Biointerfaces.
[93] S. Talegaonkar,et al. Nanocrystalization: An Emerging Technology to Enhance the Bioavailability of Poorly Soluble Drugs , 2019, Pharmaceutical nanotechnology.
[94] D. Hammer,et al. Polymersomes: a new multi-functional tool for cancer diagnosis and therapy. , 2008, Methods.
[95] J. Hildebrand,et al. THE THEORY OF EMULSIFICATION1 , 1923 .
[96] C. Santilli,et al. Relationship between structural features and in vitro release of doxorubicin from biocompatible anionic microemulsion. , 2007, Colloids and surfaces. B, Biointerfaces.
[97] E. Ruckenstein. Microemulsions, Macroemulsions, and the Bancroft Rule , 1996 .
[98] J. Schulman,et al. X-ray investigation of the structure of transparent oil-water disperse systems. , 1948, Journal of colloid science.
[99] A. Guinier. Théorie et technique de la radiocristallographie , 1956 .
[100] Sara Soares,et al. Nanomedicine: Principles, Properties, and Regulatory Issues , 2018, Front. Chem..
[101] T. Rades,et al. Preparation of Biodegradable Insulin Nanocapsules from Biocompatible Microemulsions , 2000, Pharmaceutical Research.
[102] L. Alexander,et al. X-Ray diffraction procedures for polycrystalline and amorphous materials , 1974 .
[103] P. Hartley,et al. Progress in microemulsion characterization , 2012 .
[104] Rakesh Kumar,et al. Nanocrystal technology in the delivery of poorly soluble drugs: an overview. , 2011, Current drug delivery.
[105] Solubilisation of soybean oil in microemulsions using various surfactants , 2006 .
[106] Ljiljana Djekic,et al. The influence of cosurfactants and oils on the formation of pharmaceutical microemulsions based on PEG-8 caprylic/capric glycerides. , 2008, International journal of pharmaceutics.
[107] B. Lindman,et al. The definition of microemulsion , 1981 .
[108] W. C. Griffin. Classification of surface-active agents by "HLB" , 1946 .
[109] B. Ninham,et al. Theory of self-assembly of hydrocarbon amphiphiles into micelles and bilayers , 1976 .
[110] Gregory Beaucage,et al. Approximations Leading to a Unified Exponential/Power-Law Approach to Small-Angle Scattering , 1995 .
[111] Wei Zhang,et al. Acute and sub-chronic toxicity studies of honokiol microemulsion. , 2015, Regulatory toxicology and pharmacology : RTP.
[112] R. S. Schechter,et al. Microemulsions and related systems : formulation, solvency, and physical properties , 1988 .