Utilization of solid in oil nanodispersion to prepare a topical vemurafenib as potential delivery system for skin melanoma
暂无分享,去创建一个
[1] Faisal Al-Madi,et al. Entrepreneurial networks, entrepreneurial orientation, and performance of small and medium enterprises: are dynamic capabilities the missing link? , 2021, Journal of Innovation and Entrepreneurship.
[2] M. Abdelgawad,et al. Olive Oil/Pluronic Oleogels for Skin Delivery of Quercetin: In Vitro Characterization and Ex Vivo Skin Permeability , 2021, Polymers.
[3] Bilal S. A. Alhayani,et al. Coronavirus disease (COVID-19) cases analysis using machine-learning applications , 2021, Applied Nanoscience.
[4] Husam Jasim Mohammed,et al. Intelligent Secured Two-Way Image Transmission Using Corvus Corone Module over WSN , 2021, Wireless Personal Communications.
[5] Ayman Abu-Rumman. Transformational leadership and human capital within the disruptive business environment of academia , 2021 .
[6] Maelíosa T. C. McCrudden,et al. Enhancement strategies for transdermal drug delivery systems: current trends and applications , 2021, Drug Delivery and Translational Research.
[7] Bilal Alhayani,et al. Manufacturing intelligent Corvus corone module for a secured two way image transmission under WSN , 2020 .
[8] Abdullah Q. Khudhur,et al. Highlight on lipids and its use for covalent and non-covalent conjugations , 2020, Al Mustansiriyah Journal of Pharmaceutical Sciences.
[9] Bilal S. A. Alhayani,et al. Visual sensor intelligent module based image transmission in industrial manufacturing for monitoring and manipulation problems , 2020, Journal of Intelligent Manufacturing.
[10] M. Hubbe,et al. Self-assembly of alkyl chains of fatty acids in papermaking systems: A review of related pitch issues, hydrophobic sizing, and pH effects , 2020, BioResources.
[11] V. Londhe,et al. Transdermal lipid vesicular delivery of iloperidone: Formulation, in vitro and in vivo evaluation. , 2019, Colloids and surfaces. B, Biointerfaces.
[12] V. P. Sousa,et al. Evaluation of the in vitro release and permeation of Cordia verbenacea DC essential oil from topical dosage forms , 2019, Journal of Drug Delivery Science and Technology.
[13] R. Kaur,et al. Transdermal delivery of fluvastatin loaded nanoemulsion gel: Preparation, characterization and in vivo anti-osteoporosis activity. , 2019, European journal of pharmaceutical sciences : official journal of the European Federation for Pharmaceutical Sciences.
[14] Shanshan Liu,et al. Development of sulconazole-loaded nanoemulsions for enhancement of transdermal permeation and antifungal activity , 2019, International journal of nanomedicine.
[15] V. Viswanad,et al. Formulation development and in-vitro characterisation of ethosomes for the enhanced transdermal delivery of clotrimazole , 2019, International Journal of Research in Pharmaceutical Sciences.
[16] Rania A. H. Ishak,et al. Tailoring novel soft nano‐vesicles ‘Flexosomes’ for enhanced transdermal drug delivery: Optimization, characterization and comprehensive ex vivo – in vivo evaluation , 2019, International journal of pharmaceutics.
[17] Sooho Yeo,et al. Characteristics of Skin Deposition of Itraconazole Solubilized in Cream Formulation , 2019, Pharmaceutics.
[18] H. Mahajan,et al. Quercetin loaded nanoemulsion-based gel for rheumatoid arthritis: In vivo and in vitro studies. , 2019, Biomedicine & pharmacotherapy = Biomedecine & pharmacotherapie.
[19] B. B. Panigrahi,et al. Development and Evaluation of Nanoemulsion gel for transdermal delivery of Valdecoxib , 2019, Research Journal of Pharmacy and Technology.
[20] Mahmoud M. Omar,et al. Preparation and optimization of lidocaine transferosomal gel containing permeation enhancers: a promising approach for enhancement of skin permeation , 2019, International journal of nanomedicine.
[21] A. Ahmed,et al. EFFECT OF MENTHOL ON THE TRANSDERMAL PERMEATION OF ACECLOFENAC FROM MICROEMULSION FORMULATION , 2019, International Journal of Applied Pharmaceutics.
[22] Yasser Q. Almajidi,et al. ENHANCE SOLUBILITY AND PROLONG RELEASE OF PROCHLORPERAZINE MALEATE USING FLOATING NANOEMULSION IN SITU GEL , 2019, Asian Journal of Pharmaceutical and Clinical Research.
[23] A. Halpern,et al. Guidelines of care for the management of primary cutaneous melanoma. , 2019, Journal of the American Academy of Dermatology.
[24] Haci Ilhan,et al. Efficient cooperative image transmission in one-way multi-hop sensor network , 2018, The International Journal of Electrical Engineering & Education.
[25] B. Qiu,et al. Peptide-modified vemurafenib-loaded liposomes for targeted inhibition of melanoma via the skin. , 2018, Biomaterials.
[26] P. Shende,et al. Pharmacotherapeutic approaches for transportation of anticancer agents via skin , 2018, Artificial cells, nanomedicine, and biotechnology.
[27] M. Goto,et al. Mechanistic investigation of transcutaneous protein delivery using solid‐in‐oil nanodispersion: A case study with phycocyanin , 2018, European journal of pharmaceutics and biopharmaceutics : official journal of Arbeitsgemeinschaft fur Pharmazeutische Verfahrenstechnik e.V.
[28] Vandana Gupta,et al. In vitro and in vivo characterization of pharmaceutical topical nanocarriers containing anticancer drugs for skin cancer treatment , 2018 .
[29] Shiow-Fern Ng,et al. Pluronic-F127 composite film loaded with erythromycin for wound application: formulation, physicomechanical and in vitro evaluations , 2019, Drug Delivery and Translational Research.
[30] Hiroaki Todo,et al. Transdermal Permeation of Drugs in Various Animal Species , 2017, Pharmaceutics.
[31] Shashank Jain,et al. Recent Advances in Lipid-Based Vesicles and Particulate Carriers for Topical and Transdermal Application. , 2017, Journal of pharmaceutical sciences.
[32] Nidhal K. Maraie نضال خزعل مرعي,et al. Effect of different mucoadhesive polymers on release of ondansetron HCl from intranasal mucoadhesive in situ gel , 2017 .
[33] M. Goto,et al. Solid‐in‐oil nanodispersions for transdermal drug delivery systems , 2016, Biotechnology journal.
[34] P. Marsden,et al. Expression in Cardiac Myocytes In Vitro and In Vivo p 38 MAP Kinase Signaling Cascade Regulates Cyclooxygenase-2 − MAP Kinase Kinase 6 , 2003 .
[35] Christian Peifer,et al. Photoactivatable Prodrugs of Antimelanoma Agent Vemurafenib. , 2015, ACS chemical biology.
[36] Thaisa Marinho Dezani,et al. Dissolution efficiency and bioequivalence study using urine data from healthy volunteers: a comparison between two tablet formulations of cephalexin , 2015 .
[37] Hongzhuo Liu,et al. Application of phospholipid complex technique to improve the dissolution and pharmacokinetic of probucol by solvent-evaporation and co-grinding methods. , 2014, International journal of pharmaceutics.
[38] A. Gomes,et al. Design of novel BSA/hyaluronic acid nanodispersions for transdermal pharma purposes. , 2014, Molecular pharmaceutics.
[39] R. Teraoka,et al. Efficient delivery and distribution in skin of chlorogenic acid and resveratrol induced by microemulsion using sucrose laurate. , 2014, Chemical & pharmaceutical bulletin.
[40] Nuno G. Azoia,et al. In vitro and computational studies of transdermal perfusion of nanoformulations containing a large molecular weight protein. , 2013, Colloids and surfaces. B, Biointerfaces.
[41] J. Grippo,et al. Improved human bioavailability of vemurafenib, a practically insoluble drug, using an amorphous polymer-stabilized solid dispersion prepared by a solvent-controlled coprecipitation process. , 2013, Journal of pharmaceutical sciences.
[42] N. Chandrasekaran,et al. Ultrasonic emulsification of food-grade nanoemulsion formulation and evaluation of its bactericidal activity. , 2013, Ultrasonics sonochemistry.
[43] P. Lakshmi,et al. Development of ethosomes with taguchi robust design-based studies for transdermal delivery of alfuzosin hydrochloride , 2012 .
[44] M. Goto,et al. A novel double-coating carrier produced by solid-in-oil and solid-in-water nanodispersion technology for delivery of genes and proteins into cells. , 2012, Journal of controlled release : official journal of the Controlled Release Society.
[45] Yihui Deng,et al. Effect of particle size on solubility , dissolution rate , and oral bioavailability : evaluation using coenzyme Q 10 as naked nanocrystals , 2012 .
[46] A. Nayak,et al. Development and Evaluation of Microemulsions for Transdermal Delivery of Insulin , 2011, ISRN pharmaceutics.
[47] K. Higashi,et al. Effect of particle size on skin permeation and retention of piroxicam in aqueous suspension. , 2010, Chemical & pharmaceutical bulletin.
[48] C. Compton,et al. The American Joint Committee on Cancer: the 7th Edition of the AJCC Cancer Staging Manual and the Future of TNM , 2010, Annals of Surgical Oncology.
[49] F. Gao,et al. Preparation of fluorescence ethosomes based on quantum dots and their skin scar penetration properties , 2009 .
[50] M. Goto,et al. A solid-in-oil nanodispersion for transcutaneous protein delivery. , 2008, Journal of controlled release : official journal of the Controlled Release Society.
[51] M. Goto,et al. A Novel Solid-in-oil Nanosuspension for Transdermal Delivery of Diclofenac Sodium , 2008, Pharmaceutical Research.
[52] Z. Aigner,et al. Study of thermal behaviour of sugar esters. , 2007, International journal of pharmaceutics.
[53] Y. Kalia,et al. Skin permeation enhancement by sucrose esters: a pH-dependent phenomenon. , 2005, International journal of pharmaceutics.
[54] M. Bentley,et al. Topical delivery of cyclosporin A: an in vitro study using monoolein as a penetration enhancer. , 2005, European journal of pharmaceutics and biopharmaceutics : official journal of Arbeitsgemeinschaft fur Pharmazeutische Verfahrenstechnik e.V.
[55] H. Junginger,et al. Transdermal Delivery of Pergolide from Surfactant-Based Elastic and Rigid Vesicles: Characterization and in Vitro Transport Studies , 2002, Pharmaceutical Research.
[56] N. Anderson,et al. An evaluation of fit factors and dissolution efficiency for the comparison of in vitro dissolution profiles. , 1998, Journal of pharmaceutical and biomedical analysis.
[57] I. Tannock,et al. Acid pH in tumors and its potential for therapeutic exploitation. , 1989, Cancer research.
[58] K. Sugibayashi,et al. Effect and mode of action of aliphatic esters on the in vitro skin permeation of nicorandil , 1988 .
[59] K. A. Khan. The concept of dissolution efficiency , 1975, The Journal of pharmacy and pharmacology.
[60] A. Polack,et al. The stability of sucrose monolaurate: Rate of formation of lauric acid , 1968, The Journal of pharmacy and pharmacology.
[61] W. S. Clark. The treatment of rheumatoid arthritis. , 1949, The Medical clinics of North America.