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Original Articles

An efficient approach for development and optimisation of curcumin-loaded solid lipid nanoparticles’ patch for transdermal delivery

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Pages 233-248 | Received 24 Sep 2020, Accepted 01 Mar 2021, Published online: 16 Mar 2021

References

  • Abdel-Hafez, S.M., Hathout, R.M., and Sammour, O.A., 2014. Towards better modeling of chitosan nanoparticles production: screening different factors and comparing two experimental designs. International journal of biological macromolecules, 64, 334–340.
  • Abdel-Hafez, S.M., Hathout, R.M., and Sammour, O.A., 2018. Curcumin-loaded ultradeformable nanovesicles as a potential delivery system for breast cancer therapy. Colloids and surfaces. B, biointerfaces, 167, 63–72.
  • Amoabediny, G., et al., 2018. Overview of preparation methods of polymeric and lipid-based (niosome, solid lipid, liposome) nanoparticles: a comprehensive review. International journal of polymeric materials, 67 (6), 383–400.
  • Badri, W., et al., 2017. Effect of process and formulation parameters on polycaprolactone nanoparticles prepared by solvent displacement. Colloids and surfaces A: physicochemical and engineering aspects, 516, 238–244.
  • BAR-Sela, G., Epelbaum, R., and Schaffer, M., 2010. Curcumin as an anti-cancer agent: review of the gap between basic and clinical applications. Current medicinal chemistry, 17 (3), 190–197.
  • Barry, B.W., 2001. Novel mechanisms and devices to enable successful transdermal drug delivery. European journal of pharmaceutical sciences : official journal of the European Federation for Pharmaceutical Sciences, 14 (2), 101–114.
  • Beers, R.F. and Sizer, I.W., 1952. A spectrophotometric method for measuring the breakdown of hydrogen peroxide by catalase. The journal of biological chemistry, 195 (1), 133–140.
  • Behbahani, E.S., et al., 2017. Optimization and characterization of ultrasound assisted preparation of curcumin-loaded solid lipid nanoparticles: application of central composite design, thermal analysis and X-ray diffraction techniques. Ultrasonics sonochemistry, 38, 271–280.
  • Binks, B.P., Dyab, A.K., and Fletcher, P.D., 2003. Novel emulsions of ionic liquids stabilised solely by silica nanoparticles. Chemical communications, (20), 2540–2541.
  • Chandak, A.R. and Prasad Verma, P.R., 2010. Eudragit-based transdermal delivery system of pentazocine:Physico-chemical,in vitro and invivo evaluation. Pharmaceutical development and technology, 15 (3), 296–304.
  • Das Kurmi, B., et al., 2017. Transdermal drug delivery: opportunities and challenges for controlled delivery of therapeutic agents using nanocarriers. Current drug metabolism, 18 (5), 481–495.
  • Deshpande, A., et al., 2017. Solid lipid nanoparticles in drug delivery: opportunities and challenges. In: A. Mitra, K. Cholkar, and A. Mandal, eds. Emerging nanotechnologies for diagnostics, drug delivery and medical devices. Amsterdam, Netherlands: Elsevier, 291.
  • Dubes, A., et al., 2003. Scanning electron microscopy and atomic force microscopy imaging of solid lipid nanoparticles derived from amphiphilic cyclodextrins. European journal of pharmaceutics and biopharmaceutics : official journal of Arbeitsgemeinschaft fur Pharmazeutische Verfahrenstechnik e.V, 55 (3), 279–282.
  • Esfandiarpour-Boroujeni, S., et al., 2017. Fabrication and study of curcumin loaded nanoparticles based on folate-chitosan for breast cancer therapy application. Carbohydrate polymers, 168, 14–21.
  • Garces, A., et al., 2018. Formulations based on solid lipid nanoparticles (SLN) and nanostructured lipid carriers (NLC) for cutaneous use: a review. European journal of pharmaceutical sciences., 112, 159–167.
  • Guideline, I.H.T., 2003. Stability testing of new drug substances and products. Q1A (R2), current step, 4, 1–24.
  • Gupta, B., et al., 2016. Effects of formulation variables on the particle size and drug encapsulation of Imatinib-Loaded Solid Lipid Nanoparticles. AAPS PharmSciTech, 17 (3), 652–662.
  • Hathout, R.M., et al., 2010. Microemulsion formulations for the transdermal delivery of testosterone. European journal of pharmaceutical sciences : official journal of the European Federation for Pharmaceutical Sciences, 40 (3), 188–196.
  • Higuchi, T., 1963. Mechanism of sustained‐action medication. Theoretical analysis of rate of release of solid drugs dispersed in solid matrices. Journal of pharmaceutical sciences, 52, 1145–1149.
  • Hixson, A. and Crowell, J., 1931. Dependence of reaction velocity upon surface and agitation. Industrial & engineering chemistry, 23 (10), 1160–1168.
  • Hussain, A., et al., 2012. Effect of Olive oil on transdermal penetration of flurbiprofen from topical gel as enhancer. Pakistan journal of pharmaceutical sciences, 25 (2), 365–369.
  • Jourghanian, P., et al., 2016. Sustained release curcumin loaded solid lipid nanoparticles. Advanced pharmaceutical bulletin, 6 (1), 17–21.
  • Kakkar, S. and Singh, R., 2016. A Review on transdermal drug delivery system. Innoriginal: International Journal of Sciences, 3 (4), 1–5.
  • Kawadkar, J., et al., 2013. Formulation, characterization and in vitro-in vivo evaluation of flurbiprofen-loaded nanostructured lipid carriers for transdermal delivery . Drug development and industrial pharmacy, 39 (4), 569–578.
  • Khan, D., et al., 2020. Development of novel pH-sensitive nanoparticle-based transdermal patch for management of rheumatoid arthritis. Nanomedicine (London, England), 15 (6), 603–624.
  • Korsmeyer, R.W., et al., 1983. Mechanisms of solute release from porous hydrophilic polymers. International journal of pharmaceutics., 15 (1), 25–35.
  • Krishnakumar, N., et al., 2011. Enhanced anticancer activity of naringenin-loaded nanoparticles in human cervical (HeLa) cancer cells. Biomedicine & preventive nutrition, 1 (4), 223–231.
  • Kumar, K. and Rai, A., 2012. Proniosomal formulation of curcumin having anti-inflammatory and anti-arthritic activity in different experimental animal models. International journal of pharmaceutical sciences and research, 67, 852–857.
  • Kusum Devi, V., et al., 2003. Design and evaluation of matrix diffusion controlled transdermal patches of verapamil hydrochloride. Drug development and industrial pharmacy, 29 (5), 495–503.
  • Liu, C.-H. and Chang, F.-Y., 2011. Development and characterization of eucalyptol microemulsions for topic delivery of curcumin. Chemical & pharmaceutical bulletin, 59 (2), 172–178.
  • Mahmood, H.S., et al., 2019. The enhancement effect of olive and almond oils on permeability of nimesulide as transdermal gel. International journal of pharmaceutical sciences and research, 11, 1200–1206.
  • Mangolim, C.S., et al., 2014. Curcumin-β-cyclodextrin inclusion complex: stability, solubility, characterisation by FT-IR, FT-Raman, X-ray diffraction and photoacoustic spectroscopy, and food application. Food chemistry, 153, 361–370.
  • Mehnert, W. and Mäder, K., 2012. Solid lipid nanoparticles: production, characterization and applications. Advanced drug delivery reviews, 64, 83–101.
  • Mehta, H.J., Patel, V., and Sadikot, R.T., 2014. Curcumin and lung cancer - a review. Targeted oncology, 9 (4), 295–310.
  • Modi, C. and Bharadia, P., 2012. Transfersomes: new dominants for transdermal drug delivery. American journal of pharmtech research, 2, 71–91.
  • Mora-Huertas, C., Fessi, H., and Elaissari, A., 2011. Influence of process and formulation parameters on the formation of submicron particles by solvent displacement and emulsification-diffusion methods critical comparison. Advances in colloid and interface science, 163 (2), 90–122.
  • Mota, A.H., et al., 2018. Design and evaluation of novel topical formulation with olive oil as natural functional active. Pharmaceutical development and technology, 23 (8), 794–805.
  • Nagai, M., et al., 2017. Two-step reprecipitation method with size and zeta potential controllability for synthesizing semiconducting polymer nanoparticles. Colloid and polymer science, 295, 1153–1164.
  • Naguib, S.S., Hathout, R.M., and Mansour, S., 2017. Optimizing novel penetration enhancing hybridized vesicles for augmenting the in-vivo effect of an anti-glaucoma drug. Drug delivery, 24 (1), 99–108.
  • Nguyen, M.-H., et al., 2017. Radioprotective activity of curcumin-encapsulated liposomes against genotoxicity caused by gamma cobalt-60 irradiation in human blood cells. International journal of radiation biology, 93, 1267–1273.
  • Paiva-Martins, F. and Kiritsakis, A., 2017. 5 Olive fruit and olive oil composition and their functional compounds. In: F. Shahidi, and A. Kiritsakis, eds.Olives and olive oil as functional foods: bioactivity. Chem Eng Process, Hoboken, NJ: John Wiley & Sons, 15, 35.
  • Patel, N.A., Patel, N.J., and Patel, R.P., 2009a. Design and evaluation of transdermal drug delivery system for curcumin as an anti-inflammatory drug. Drug development and industrial pharmacy, 35 (2), 234–242.
  • Patel, R., et al., 2009b. Development and characterization of curcumin loaded transfersome for transdermal delivery. Journal of pharmaceutical sciences and research, 1, 71–80.
  • Putri, F.R., et al., 2019. Formulation and physical characterization of curcumin nanoparticle transdermal patch. International journal of applied pharmaceutics, 11, 217–221.
  • Qindeel, M., et al., 2019a. Ligand decorated chitosan as an advanced nanocarrier for targeted delivery: a critical review. Nanomedicine (London, England), 14 (12), 1623–1642.
  • Qindeel, M., et al., 2019b. Development of novel pH-sensitive nanoparticles loaded hydrogel for transdermal drug delivery. Drug development and industrial pharmacy, 45 (4), 629–641.
  • Qindeel, M., et al., 2020a. New, environment friendly approach for synthesis of amphiphilic PCL–PEG–PCL triblock copolymer: an efficient carrier for fabrication of nanomicelles. Journal of polymers and the environment., 28, 1237–1251.
  • Qindeel, M., et al., 2020b. Surfactant free, self-assembled nanomicelles-based transdermal hydrogel for safe and targeted delivery of methotrexate against rheumatoid arthritis. ACS nano, 14 (4), 4662–4681.
  • Rodrigues, D., et al., 2018. Homogenization technique for heterogeneous composite materials using meshless methods. Engineering analysis with boundary elements, 92, 73–89.
  • Sabir, F., et al., 2019. Polymeric nanogels as versatile nanoplatforms for biomedical applications. Journal of nanomaterials, 2019, 1–16.
  • Sanap, G., et al., 2008. Preparation of transdermal monolithic systems of indapamide by solvent casting method and the use of vegetable oils as permeation enhancer G. International journal of green pharmacy, 2, 129.
  • Schwert, G.W. and Eisenberg, M.A., 1949. The kinetics of the amidase and esterase activities of trypsin. The journal of biological chemistry, 179 (2), 665–672.
  • Sharma, M., Sharma, S., and Wadhwa, J., 2019. Improved uptake and therapeutic intervention of curcumin via designing binary lipid nanoparticulate formulation for oral delivery in inflammatory bowel disorder. Artificial cells, nanomedicine, and biotechnology, 47 (1), 45–55.
  • Siddiqui, B., et al., 2020. Development, optimisation, and evaluation of nanoencapsulated diacerein emulgel for potential use in osteoarthritis. Journal of microencapsulation, 37 (8), 595–608.
  • Tapeinos, C., Battaglini, M., and Ciofani, G., 2017. Advances in the design of solid lipid nanoparticles and nanostructured lipid carriers for targeting brain diseases. Journal of controlled release : official journal of the Controlled Release Society, 264, 306–332.
  • Turabik, M. and Simsek, U.B., 2017. Effect of synthesis parameters on the particle size of the zero valent iron particles. Inorganic and nano-metal chemistry, 47 (7), 1033–1043.
  • Varma, M.V. and Panchagnula, R., 2005. Enhanced oral paclitaxel absorption with vitamin E-TPGS: effect on solubility and permeability in vitro, in situ and in vivo. European journal of pharmaceutical sciences : official journal of the European Federation for Pharmaceutical Sciences, 25 (4-5), 445–453.
  • Wang, M., et al., 2017. Transdermal adhesive patches loaded with ketoprofen evaluated by dynamic detection of percutaneous absorption. AAPS pharmscitech, 18 (6), 2141–2148.
  • Wei, L., et al., 2016. Preparation and characterization of loperamide-loaded dynasan 114 solid lipid nanoparticles for increased oral absorption in the treatment of diarrhea. Frontiers in pharmacology, 7, 332.

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