Super disintegrating oromucosal nanofiber patch of zolmitriptan for rapid delivery and efficient brain targeting
暂无分享,去创建一个
H. Khan | F. A. Sheikh | Abdalla Abdal-hay | S. Alrokayan | S. Rather | L. Azmi | Rumaisa Rashid | Abdalla Abdal‐hay | Hasham Shafi | D.V. Siva Reddy | Nisar Ahmad Khan | D. V. Siva Reddy
[1] Oluwatoyin A. Adeleke,et al. ORALLY DISINTEGRATING DRUG CARRIERS FOR PAEDIATRIC PHARMACOTHERAPY. , 2023, European journal of pharmaceutical sciences : official journal of the European Federation for Pharmaceutical Sciences.
[2] Kazuhiko Umeshita,et al. Development of an oral mucosal irritation test using a three-dimensional human buccal oral mucosal model. , 2022, Toxicology in vitro : an international journal published in association with BIBRA.
[3] S. Mortazavi,et al. Fast dissolving nanofibrous mats for diclofenac sodium delivery: Effects of electrospinning polymer and addition of super-disintegrant , 2022, Journal of Drug Delivery Science and Technology.
[4] Abdulrahman A Halwani,et al. Fast-Dissolving Nifedipine and Atorvastatin Calcium Electrospun Nanofibers as a Potential Buccal Delivery System , 2022, Pharmaceutics.
[5] Xuesi Chen,et al. Smart transformable nanoparticles for enhanced tumor theranostics , 2021, Applied Physics Reviews.
[6] J. Breitkreutz,et al. Orodispersible tablets for pediatric drug delivery: current challenges and recent advances , 2021, Expert opinion on drug delivery.
[7] M. Kassem,et al. Intranasal Zolmitriptan-Loaded Bilosomes with Extended Nasal Mucociliary Transit Time for Direct Nose to Brain Delivery , 2021, Pharmaceutics.
[8] A. Basit,et al. Fabrication and Characterization of Fast-Dissolving Films Containing Escitalopram/Quetiapine for the Treatment of Major Depressive Disorder , 2021, Pharmaceutics.
[9] Y. S. Zhang,et al. An oxidative stress-responsive electrospun polyester membrane capable of releasing anti-bacterial and anti-inflammatory agents for postoperative anti-adhesion. , 2021, Journal of controlled release : official journal of the Controlled Release Society.
[10] Joseph J. Richardson,et al. X-ray-Based Techniques to Study the Nano–Bio Interface , 2021, ACS nano.
[11] M. S. Pacheco,et al. A review on orally disintegrating films (ODFs) made from natural polymers such as pullulan, maltodextrin, starch, and others. , 2021, International journal of biological macromolecules.
[12] T. Uyar,et al. Electrospun formulation of acyclovir/cyclodextrin nanofibers for fast-dissolving antiviral drug delivery. , 2021, Materials science & engineering. C, Materials for biological applications.
[13] Fei Li,et al. Conductive Composite Fiber with Optimized Alignment Guides Neural Regeneration under Electrical Stimulation , 2020, Advanced healthcare materials.
[14] T. Uyar,et al. Progress in the design and development of "fast-dissolving" electrospun nanofibers based drug delivery systems - A systematic review. , 2020, Journal of controlled release : official journal of the Controlled Release Society.
[15] Y. S. Zhang,et al. Electrospun nanofibers for the delivery of active drugs through nasal, oral and vaginal mucosa: Current status and future perspectives. , 2020, Materials science & engineering. C, Materials for biological applications.
[16] T. Uyar,et al. Development of Ferulic Acid/Cyclodextrin Inclusion Complex Nanofibers for Fast-Dissolving Drug Delivery System. , 2020, International journal of pharmaceutics.
[17] Yanan Liu,et al. A nanofiber-based drug depot with high drug loading for sustained release. , 2020, International journal of pharmaceutics.
[18] A. Falcão,et al. Pre-Clinical Assessment of the Nose-to-Brain Delivery of Zonisamide After Intranasal Administration , 2020, Pharmaceutical Research.
[19] M. Filippi,et al. The Chronic Migraine Brain: What Have We Learned From Neuroimaging? , 2020, Frontiers in Neurology.
[20] Hasham S. Sofi,et al. Novel lavender oil and silver nanoparticles simultaneously loaded onto polyurethane nanofibers for wound-healing applications. , 2019, International journal of pharmaceutics.
[21] T. Uyar,et al. Fast Dissolving Oral Drug Delivery System based on Electrospun Nanofibrous Webs of Cyclodextrin/Ibuprofen Inclusion Complex Nanofibers. , 2019, Molecular pharmaceutics.
[22] Xuesi Chen,et al. Electrospun polymer micro/nanofibers as pharmaceutical repositories for healthcare. , 2019, Journal of controlled release : official journal of the Controlled Release Society.
[23] J. Breitkreutz,et al. Dissolution testing of oral film preparations: Experimental comparison of compendial and non‐compendial methods , 2019, International journal of pharmaceutics.
[24] He Liu,et al. Fabrication of Electrospun Polymer Nanofibers with Diverse Morphologies , 2019, Molecules.
[25] Chunsheng Xiao,et al. Electrospun polymer biomaterials , 2019, Progress in Polymer Science.
[26] Ying Zheng,et al. Application of flash nanoprecipitation to fabricate poorly water-soluble drug nanoparticles , 2018, Acta pharmaceutica Sinica. B.
[27] Hasham S. Sofi,et al. Reconstructing nanofibers from natural polymers using surface functionalization approaches for applications in tissue engineering, drug delivery and biosensing devices. , 2019, Materials science & engineering. C, Materials for biological applications.
[28] R. Bhattarai,et al. Biomedical Applications of Electrospun Nanofibers: Drug and Nanoparticle Delivery , 2018, Pharmaceutics.
[29] P. Panraksa,et al. Preparation and Evaluation of Metronidazole-Loaded Pectin Films for Potentially Targeting a Microbial Infection Associated with Periodontal Disease , 2018, Polymers.
[30] Mingshi Yang,et al. Biomedical application and controlled drug release of electrospun fibrous materials. , 2018, Materials science & engineering. C, Materials for biological applications.
[31] Anroop B Nair,et al. Formulation and Evaluation of Chitosan-Based Buccal Bioadhesive Films of Zolmitriptan , 2018, Journal of Pharmaceutical Innovation.
[32] T. Uyar,et al. Menthol/cyclodextrin inclusion complex nanofibers: Enhanced water-solubility and high-temperature stability of menthol , 2018 .
[33] V. Karri,et al. Nose to brain transport pathways an overview: potential of nanostructured lipid carriers in nose to brain targeting , 2017, Artificial cells, nanomedicine, and biotechnology.
[34] C. Limmatvapirat,et al. Design and characterization of monolaurin loaded electrospun shellac nanofibers with antimicrobial activity , 2017, Asian journal of pharmaceutical sciences.
[35] A. Charles. The pathophysiology of migraine: implications for clinical management , 2017, The Lancet Neurology.
[36] Zeynep Aytac,et al. Electrospinning of cyclodextrin/linalool-inclusion complex nanofibers: Fast-dissolving nanofibrous web with prolonged release and antibacterial activity. , 2017, Food chemistry.
[37] I. Som,et al. Fast Disintegrating Film Approach for the Oral Delivery of Zolmitriptan: Formulation, In Vitro and In Vivo Evaluation , 2017 .
[38] Yunhe Zhang,et al. Preparation of organic–inorganic hybrid membranes with superior antifouling property by incorporating polymer-modified multiwall carbon nanotubes , 2017 .
[39] R. Ranjan,et al. Intranasal Eutectic Powder of Zolmitriptan with Enhanced Bioavailability in the Rat Brain. , 2016, Molecular pharmaceutics.
[40] R. Shamma,et al. Trans-nasal zolmitriptan novasomes: in-vitro preparation, optimization and in-vivo evaluation of brain targeting efficiency , 2016, Drug delivery.
[41] Shery Jacob,et al. A simple practice guide for dose conversion between animals and human , 2016, Journal of basic and clinical pharmacy.
[42] Odon Planinšek,et al. Electrospun polycaprolactone nanofibers as a potential oromucosal delivery system for poorly water-soluble drugs. , 2015, European journal of pharmaceutical sciences : official journal of the European Federation for Pharmaceutical Sciences.
[43] E. Dadey. Bioequivalence of Ondansetron Oral Soluble Film 8 mg (ZUPLENZ) and Ondansetron Orally Disintegrating Tablets 8 mg (ZOFRAN) in Healthy Adults , 2015, American journal of therapeutics.
[44] Deng-Guang Yu,et al. Fast-dissolving sweet sedative nanofiber membranes , 2015, Journal of Materials Science.
[45] Gareth R Williams,et al. Fast dissolving paracetamol/caffeine nanofibers prepared by electrospinning. , 2014, International journal of pharmaceutics.
[46] T. Balkan,et al. New Preparation Route of TiO 2 Nanofibers by Electrospinning: Spectroscopic and Thermal Characterizations , 2014 .
[47] J. Lam,et al. Oral transmucosal drug delivery for pediatric use. , 2014, Advanced drug delivery reviews.
[48] Maie S. Taha,et al. Chitosan lactate wafer as a platform for the buccal delivery of tizanidine HCl: in vitro and in vivo performance. , 2014, International journal of pharmaceutics.
[49] Javed Ali,et al. Insights into direct nose to brain delivery: current status and future perspective , 2014, Drug delivery.
[50] Bogdan Cramariuc,et al. Fiber diameter in electrospinning process , 2013 .
[51] Ioannis S Chronakis,et al. Electrospun polyvinyl-alcohol nanofibers as oral fast-dissolving delivery system of caffeine and riboflavin. , 2013, Colloids and surfaces. B, Biointerfaces.
[52] V. Pillay,et al. A Review of the Effect of Processing Variables on the Fabrication of Electrospun Nanofibers for Drug Delivery Applications , 2013 .
[53] Jiang Yuan,et al. The influence of fiber diameter of electrospun poly(lactic acid) on drug delivery , 2012, Fibers and Polymers.
[54] Azza A Mahmoud,et al. Fast relief from migraine attacks using fast-disintegrating sublingual zolmitriptan tablets , 2012, Drug development and industrial pharmacy.
[55] L. Patton,et al. New developments and opportunities in oral mucosal drug delivery for local and systemic disease. , 2012, Advanced drug delivery reviews.
[56] Hoo-Kyun Choi,et al. Influence of formulation variables in transdermal drug delivery system containing zolmitriptan. , 2011, International journal of pharmaceutics.
[57] S. Yadav,et al. Fast dissolving films: a review. , 2011, Current drug delivery.
[58] Eva Maria Hoffmann,et al. Advances in orodispersible films for drug delivery , 2011, Expert opinion on drug delivery.
[59] S. Buratti,et al. Nicotine Fast Dissolving Films Made of Maltodextrins: A Feasibility Study , 2010, AAPS PharmSciTech.
[60] Yong Zhang,et al. PKSolver: An add-in program for pharmacokinetic and pharmacodynamic data analysis in Microsoft Excel , 2010, Comput. Methods Programs Biomed..
[61] Satoru Kidoaki,et al. Time-programmed dual release formulation by multilayered drug-loaded nanofiber meshes. , 2010, Journal of controlled release : official journal of the Controlled Release Society.
[62] Shaofei Xie,et al. DDSolver: An Add-In Program for Modeling and Comparison of Drug Dissolution Profiles , 2010, The AAPS Journal.
[63] S. Velaga,et al. Preparation of zolmitriptan-chitosan microparticles by spray drying for nasal delivery. , 2009, European journal of pharmaceutical sciences : official journal of the European Federation for Pharmaceutical Sciences.
[64] B. Mishra,et al. Mouth Dissolving Tablets I: An Overview of Formulation Technology , 2009 .
[65] T. Aminabhavi,et al. Evaluation and Controlled Release Characteristics of Modified Xanthan Films for Transdermal Delivery of Atenolol , 2007, Drug development and industrial pharmacy.
[66] 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.
[67] R. Benoliel,et al. The distribution of oral mucosal pH values in healthy saliva secretors. , 2006, Oral diseases.
[68] Shaobing Zhou,et al. Investigation of drug release and matrix degradation of electrospun poly(DL-lactide) fibers with paracetanol inoculation. , 2006, Biomacromolecules.
[69] R. Sharma,et al. Intranasal mucoadhesive microemulsions of zolmitriptan: Preliminary studies on brain-targeting , 2005, Journal of drug targeting.
[70] A. Bansal,et al. Physical stability and solubility advantage from amorphous celecoxib: the role of thermodynamic quantities and molecular mobility. , 2004, Molecular pharmaceutics.
[71] J. Bell,et al. A pilot study of buprenorphine-naloxone combination tablet (Suboxone) in treatment of opioid dependence. , 2004, Drug and alcohol review.
[72] Thom Baguley,et al. Understanding statistical power in the context of applied research. , 2004, Applied ergonomics.
[73] R. Strickley. Solubilizing Excipients in Oral and Injectable Formulations , 2004, Pharmaceutical Research.
[74] S. Tepper,et al. Zolmitriptan (Zomig®) , 2004, Expert review of neurotherapeutics.
[75] N. Peppas,et al. Drug/Polymer Matrix Swelling and Dissolution , 2004, Pharmaceutical Research.
[76] Kelly H. Jordan,et al. P-glycoprotein influences the brain concentrations of cetirizine (Zyrtec), a second-generation non-sedating antihistamine. , 2003, Journal of pharmaceutical sciences.
[77] N. Bodor,et al. Barriers to remember: brain-targeting chemical delivery systems and Alzheimer's disease. , 2002, Drug discovery today.
[78] S M Archer,et al. Bioavailability and Pharmacokinetics of Lorazepam after Intranasal, Intravenous, and Intramuscular Administration , 2001, Journal of clinical pharmacology.
[79] R. Fassihi,et al. Application of binary polymer system in drug release rate modulation. 2. Influence of formulation variables and hydrodynamic conditions on release kinetics. , 1997, Journal of pharmaceutical sciences.
[80] Darrell H. Reneker,et al. Electrospinning process and applications of electrospun fibers , 1993, Conference Record of the 1993 IEEE Industry Applications Conference Twenty-Eighth IAS Annual Meeting.
[81] John E. Hogan,et al. MATHEMATICAL MODELLING OF DRUG RELEASE FROM HYDROXYPROPYLMETHYLCELLULOSE MATRICES : EFFECT OF TEMPERATURE , 1991 .
[82] D. Breimer,et al. Drug absorption by sublingual and rectal routes. , 1984, British journal of anaesthesia.