Comparative evaluation of dithranol-loaded nanosponges fabricated by solvent evaporation technique and melt method
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Sunil Kumar | A. Kapoor | R. Rao | P. Dalal | Varsha Kadian
[1] S. Jafari,et al. Loading ferulic acid into β-cyclodextrin nanosponges; antibacterial activity, controlled release and application in pomegranate juice as a copigment agent , 2022, Colloids and Surfaces A: Physicochemical and Engineering Aspects.
[2] Ashok Kumar,et al. Formulation and modification of physicochemical parameters of p-Coumaric acid by cyclodextrin nanosponges , 2022, Journal of Inclusion Phenomena and Macrocyclic Chemistry.
[3] Sunil Kumar,et al. Cyclodextrin Nanosponge Based Babchi Oil Hydrogel Ameliorates Imiquimod-Induced Psoriasis in Swiss Mice: An impact on Safety and Efficacy , 2021 .
[4] P. Wakte,et al. Cyclodextrin based nanosponges: A multidimensional drug delivery system and its biomedical applications. , 2021, Current drug delivery.
[5] Anil Kumar,et al. Evaluation of solubility, photostability and antioxidant activity of ellagic acid cyclodextrin nanosponges fabricated by melt method and microwave-assisted synthesis , 2021, Journal of Food Science and Technology.
[6] Vikas Singh,et al. Experimental and computational insight of the supramolecular complexes of Irbesartan with β-cyclodextrin based nanosponges , 2021, Journal of Drug Delivery Science and Technology.
[7] Marjan Ghorbani,et al. In-vitro characterization and cytotoxicity study of flutamide loaded cyclodextrin nanosponges , 2021 .
[8] Sunil Kumar,et al. Topical delivery of clobetasol propionate loaded nanosponge hydrogel for effective treatment of psoriasis: Formulation, physicochemical characterization, antipsoriatic potential and biochemical estimation. , 2021, Materials science & engineering. C, Materials for biological applications.
[9] K. Mallikarjuna,et al. Formulation, optimization, and in vitro characterization of omega-3-rich binary lipid carriers for curcumin delivery: in vitro evaluation of sustained release and its potential antioxidant behavior , 2021, Polymer Bulletin.
[10] Sunil Kumar,et al. Novel dithranol loaded cyclodextrin nanosponges for augmentation of solubility, photostability and cytocompatibility , 2020, Current Nanoscience.
[11] Arunandan Kumar,et al. Enhancing efficacy and safety of azelaic acid via encapsulation in cyclodextrin nanosponges: development, characterization and evaluation , 2020, Polymer Bulletin.
[12] Mahmood Ahmad,et al. Novel β-cyclodextrin nanosponges by chain growth condensation for solubility enhancement of dexibuprofen: Characterization and acute oral toxicity studies , 2020 .
[13] R. Osmani,et al. Design & development of nanosponge loaded topical gel of curcumin and caffeine mixture for augmented treatment of psoriasis , 2020, DARU Journal of Pharmaceutical Sciences.
[14] Fares Ibrahim,et al. Formulation and evaluation of cyclodextrin-based nanosponges of griseofulvin as pediatric oral liquid dosage form for enhancing bioavailability and masking bitter taste , 2020, Saudi pharmaceutical journal : SPJ : the official publication of the Saudi Pharmaceutical Society.
[15] L. Coderch,et al. A comparative study of oregano (Origanum vulgare L.) essential oil-based polycaprolactone nanocapsules/ microspheres: Preparation, physicochemical characterization, and storage stability , 2019, Industrial Crops and Products.
[16] R. Cavalli,et al. Evaluation of solubility enhancement, antioxidant activity, and cytotoxicity studies of kynurenic acid loaded cyclodextrin nanosponge. , 2019, Carbohydrate polymers.
[17] M. Zanetti,et al. Comparative Evaluation of Solubility, Cytotoxicity and Photostability Studies of Resveratrol and Oxyresveratrol Loaded Nanosponges , 2019, Pharmaceutics.
[18] S. Jafari,et al. Improving the solubility and in vitro cytotoxicity (anticancer activity) of ferulic acid by loading it into cyclodextrin nanosponges , 2019, International journal of nanomedicine.
[19] Selvamuthukumar Subramanian,et al. Optimization of reaction parameters for synthesis of Cyclodextrin nanosponges in controlled nanoscopic size dimensions , 2019, Journal of Polymer Research.
[20] P. Kesharwani,et al. Dendrimer entrapped microsponge gel of dithranol for effective topical treatment , 2019, Heliyon.
[21] D. Alotto,et al. In Vitro Enhanced Skin Permeation and Retention of Imiquimod Loaded in β-Cyclodextrin Nanosponge Hydrogel , 2019, Pharmaceutics.
[22] G. Mahrle. Dithranol , 2018, Reactions Weekly.
[23] F. Trotta,et al. Investigation of Cyclodextrin-Based Nanosponges for Solubility and Bioavailability Enhancement of Rilpivirine , 2018, AAPS PharmSciTech.
[24] R. Pushpalatha,et al. Cross-linked, cyclodextrin-based nanosponges for curcumin delivery - Physicochemical characterization, drug release, stability and cytotoxicity , 2018, Journal of Drug Delivery Science and Technology.
[25] M. Colombo,et al. Kaempferol‐loaded mucoadhesive nanoemulsion for intranasal administration reduces glioma growth in vitro , 2018, International journal of pharmaceutics.
[26] M. F. Zidan,et al. In vitro and in vivo evaluation of cyclodextrin-based nanosponges for enhancing oral bioavailability of atorvastatin calcium , 2018, Drug development and industrial pharmacy.
[27] K. Jeganathan,et al. Synthesis and Characterization of Chrysin-Loaded β-Cyclodextrin-Based Nanosponges to Enhance In-Vitro Solubility, Photostability, Drug Release, Antioxidant Effects and Antitumorous Efficacy , 2017 .
[28] H. Gangadharappa,et al. Formulation, in vitro and in vivo evaluation of celecoxib nanosponge hydrogels for topical application , 2017 .
[29] J. Sangshetti,et al. Enhancement of oral bioavailability of anti-HIV drug rilpivirine HCl through nanosponge formulation* , 2017, Drug development and industrial pharmacy.
[30] L. Naldi,et al. The global state of psoriasis disease epidemiology: a workshop report , 2017, The British journal of dermatology.
[31] F. Trotta,et al. Tuning structural parameters for the optimization of drug delivery performance of cyclodextrin-based nanosponges , 2017, Expert opinion on drug delivery.
[32] M. Rao,et al. Enhancement of Bioavailability of Non-nucleoside Reverse Transciptase Inhibitor Using Nanosponges , 2017, AAPS PharmSciTech.
[33] Sourav Bhattacharjee,et al. DLS and zeta potential - What they are and what they are not? , 2016, Journal of controlled release : official journal of the Controlled Release Society.
[34] R. Beck,et al. Dithranol-loaded lipid-core nanocapsules improve the photostability and reduce the in vitro irritation potential of this drug. , 2015, Materials Science and Engineering C: Materials for Biological Applications.
[35] M. Amaral,et al. Use of solid dispersions to increase stability of dithranol in topical formulations , 2014 .
[36] Subramanian Selvamuthukumar,et al. Fabrication of cyclodextrin nanosponges for quercetin delivery: physicochemical characterization, photostability, and antioxidant effects , 2014, Journal of Materials Science.
[37] B. Amrita,et al. Cyclodextrin based nanosponges for pharmaceutical use: A review , 2013, Acta pharmaceutica.
[38] R. Cavalli,et al. Nanosponges encapsulating dexamethasone for ocular delivery: formulation design, physicochemical characterization, safety and corneal permeability assessment. , 2013, Journal of biomedical nanotechnology.
[39] Udita Agrawal,et al. Hyperbranched dendritic nano-carriers for topical delivery of dithranol , 2013, Journal of drug targeting.
[40] Bhupinder Singh,et al. Improved therapeutic performance of dithranol against psoriasis employing systematically optimized nanoemulsomes , 2013, Journal of microencapsulation.
[41] R. Cavalli,et al. Cyclodextrin-based nanosponges: effective nanocarrier for Tamoxifen delivery , 2013, Pharmaceutical development and technology.
[42] F. Trotta,et al. In vitro and in vivo evaluation of β-cyclodextrin-based nanosponges of telmisartan , 2013, Journal of Inclusion Phenomena and Macrocyclic Chemistry.
[43] R. Cavalli,et al. Structural evidence of differential forms of nanosponges of beta-cyclodextrin and its effect on solubilization of a model drug , 2013, Journal of Inclusion Phenomena and Macrocyclic Chemistry.
[44] M. Bhalekar,et al. Statistical optimization of dithranol-loaded solid lipid nanoparticles using factorial design , 2011 .
[45] A. Shukla,et al. Novel dithranol phospholipid microemulsion for topical application: development, characterization and percutaneous absorption studies , 2011, Journal of microencapsulation.
[46] G. Mustafa,et al. Cyclodextrins as Potential Excipients in Pharmaceutical Formulations: Solubilizing and Stabilizing Effects , 2011 .
[47] E. Peira,et al. On the Photodegradation of Dithranol in Different Topical Formulations: Use of SLN to Increase the Stability of the Drug , 2009 .
[48] R. Neubert,et al. Hydrophilic silica aerogels as dermal drug delivery systems--dithranol as a model drug. , 2008, European journal of pharmaceutics and biopharmaceutics : official journal of Arbeitsgemeinschaft fur Pharmazeutische Verfahrenstechnik e.V.
[49] R. Cavalli,et al. Cyclodextrin-based Nanosponges for Drug Delivery , 2006 .
[50] O. Katare,et al. Preparation and in vitro evaluation of liposomal/niosomal delivery systems for antipsoriatic drug dithranol. , 2001, International journal of pharmaceutics.
[51] K. Thoma,et al. Photostability of dithranol. , 1998, European journal of pharmaceutics and biopharmaceutics : official journal of Arbeitsgemeinschaft fur Pharmazeutische Verfahrenstechnik e.V.
[52] O. Braun-falco,et al. Dithranol: a review of the mechanism of action in the treatment of psoriasis vulgaris. , 1990 .