226
Views
5
CrossRef citations to date
0
Altmetric
Original Articles

Process optimisation, biocompatibility and anti-cancer efficacy of curcumin loaded gelatine microparticles cross-linked with dialdeyhde carboxymethyl cellulose

, , , , &
Pages 485-499 | Received 25 Mar 2019, Accepted 17 Jul 2019, Published online: 28 Aug 2019

References

  • Acharya, S., Dilnawaz, F., and Sahoo, S.K., 2009. Targeted epidermal growth factor receptor nanoparticle bioconjugates for breast cancer therapy. Biomaterials, 30(29), 5737–5750.
  • Ahmad, M.Z., et al., 2016. Progress in nanotechnology-based drug carrier in designing of curcumin nanomedicines for cancer therapy: current state-of-the-art. Journal of drug targeting, 24(4), 273–293.
  • Anand, P., et al., 2008. Curcumin and cancer: an “old-age” disease with an “age-old” solution. Cancer letters, 267(1), 133–164.
  • Brown, D. M., 2004. Drug delivery systems in cancer therapy. New York, NY: Humana Press.
  • Cano-Higuita, D.M., Malacrida, C.R., and Telis, V., 2015. Stability of curcumin microencapsulated by spray and freeze drying in binary and ternary matrices of maltodextrin, gum arabic and modified starch. Journal of food processing and preservation, 39(6), 2049–2060.
  • Cao, F., et al., 2011. Lung-targeted delivery system of curcumin loaded gelatin microspheres. Drug delivery, 18(8), 545–554.
  • Delfiya, D.S.A., et al., 2014. Microencapsulation of turmeric oleoresin by spray drying and in vitro release studies of microcapsules. Journal of food process engineering, 38, 37–48.
  • Dhule, S.S., et al., 2014. The combined effect of encapsulating curcumin and c6 ceramide in liposomal nanoparticles against osteosarcoma. Molecular pharmaceutics, 11(2), 417–427.
  • Do Kim, K., et al., 2007. Optimization of parameters for the synthesis of zinc oxide nanoparticles by Taguchi robust design method. Colloids and surfaces A, 311(1–3), 170–173.
  • Elmore, S., 2007. Apoptosis: a review of programmed cell death. Toxicologic pathology, 35(4), 495–516.
  • El-Sherbiny, I.M. and Smyth, H., 2012. Controlled release pulmonary administration of curcumin using swellable biocompatible microparticles. Molecular pharmaceutics, 9(2), 269–280.
  • Elzoghby, A.O., 2013. Gelatin-based nanoparticles as drug and gene delivery systems: reviewing three decades of research. Journal of controlled release: official journal of the controlled release society, 172(3), 1075–1091.
  • Fatima, M.T., et al., 2016. Cell permeating nano-complexes of amphiphilic polyelectrolytes enhance solubility, stability, and anti-cancer efficacy of curcumin. Biomacromolecules, 17(7), 2375–2383.
  • Figueiredo, K.C.S., Alves, T.L.M., and Borges, C.P., 2009. Poly(vinyl alcohol) films crosslinked by glutaraldehyde under mild conditions. Journal of applied polymer science, 111(6), 3074–3080.
  • Gou, M., et al., 2011. Curcumin-loaded biodegradable polymeric micelles for colon cancer therapy in vitro and in vivo. Nanoscale, 3(4), 1558–1567.
  • Harada, T., et al., 2013. Diamide linked γ cyclodextrin dimers as molecular-scale delivery systems for the medicinal pigment curcumin to prostate cancer cells. Molecular pharmaceutics, 10(12), 4481–4490.
  • Jana, P., et al., 2015. Potential use of curcumin loaded carboxymethylated guar gum grafted gelatin film for biomedical applications. International journal of biological macromolecules, 75, 437–446.
  • Jiang, X., et al., 2016. Preparation, characterization and feasibility study of dialdehyde carboxymethyl cellulose as a novel crosslinking reagent. Carbohydrate polymers, 137, 632–641.
  • Kaja, S., et al., 2015. An optimized lactate dehydrogenase release assay for screening of drug candidates in neuroscience. Journal of pharmacological and toxicological methods, 73, 1–6.
  • Kunnumakkara, A.B., et al., 2017. Curcumin, the golden nutraceutical: multitargeting for multiple chronic diseases. British journal of pharmacology, 174(11), 1325–1348.
  • Lee, S.H., et al., 2011. Nano spray drying: a novel method for preparing protein nanoparticles for protein therapy. International journal of pharmaceutics, 403(1–2), 192–200.
  • Liu, W., Chen, X.D., and Selomulya, C., 2015. On the spray drying of uniform functional microparticles. Particuology, 22, 1–12.
  • Madhavan, K., et al., 2010. Evaluation of composition and crosslinking effects on collagen-based composite constructs. Acta biomaterialia, 6(4), 1413–1422.
  • Mahmood, K., et al., 2015. Recent developments in curcumin and curcumin based polymeric materials for biomedical applications: A review. International journal of biological macromolecules, 81, 877–890.
  • Malacrida, C.R., et al., 2015. Freeze-drying for microencapsulation of turmeric oleoresin using modified starch and gelatin. Journal of food processing and preservation, 39(6), 1710–1719.
  • Manickam, B., Sreedharan, R., and Elumalai, M., 2014. The natural water soluble cross-linking agent and its importance in the modified drug delivery systems: an overview. Current drug delivery, 11(1), 139–145.
  • Mcilwain, D.R., Berger, T., and Mak, T.W., 2013. Caspase Functions in Cell Death and Disease. Cold spring harbor perspectives in biology, 5(4), a008656–28.
  • Mehta, S.B., et al., 2015. Gelation of a monoclonal antibody at the silicone oil – water interface and subsequent rupture of the interfacial gel results in aggregation and particle formation. Journal of pharmaceutical sciences, 104(4), 1282–1290.
  • Microencapsulation Market–Forecast to 2022. 2017. Markets and markets reports.
  • Mohan, P.R.K., et al., 2012. Vibrational spectroscopy water soluble complexes of curcumin with cyclodextrins: characterization by FT-raman spectroscopy. Vibrational spectroscopy, 62, 77–84.
  • Mu, C., et al., 2012. Preparation and properties of dialdehyde carboxymethyl cellulose crosslinked gelatin edible films. Food hydrocolloids, 27(1), 22–29.
  • Mu, C., et al., 2010. Collagen cryogel cross-linked by dialdehyde starch. Macromolecular materials engineering, 295, 100–107.
  • Munin, A. and Edwards-Lévy, F., 2011. Encapsulation of natural polyphenolic compounds; a review. Pharmaceutical, 3(4), 793–829.
  • O’Toole, M.G.O., et al., 2012. Curcumin encapsulation in submicrometer spray-dried chitosan/tween 20 particles. Biomacromolecules, 13, 2309–2314.
  • Paramera, E.I., Konteles, S.J., and Karathanos, V.T., 2011. Stability and release properties of curcumin encapsulated in Saccharomyces cerevisiae, β-cyclodextrin and modified starch. Food chemistry, 125(3), 913–922.
  • Qin, S., et al., 2017. Drug self-delivery systems for cancer therapy. Biomaterials, 112, 234–247.
  • Salem, M., Rohani, S., and Gillies, E.R., 2014. Curcumin, a promising anti-cancer therapeutic: a review of its chemical properties, bioactivity and approaches to cancer cell delivery. RSC advances, 4(21), 10815–10829.
  • Sarika, P.R. and James, N.R., 2016. Polyelectrolyte complex nanoparticles from cationised gelatin and sodium alginate for curcumin delivery. Carbohydrate polymers, 148, 354–361.
  • Sarika, P.R. and Nirmala, R.J., 2016. Curcumin loaded gum arabic aldehyde-gelatin nanogels for breast cancer therapy. Materials science and engineering C: materials, 65, 331–337.
  • Sarika, P.R., et al., 2016. Preparation, characterization and biological evaluation of curcumin loaded alginate aldehyde – gelatin nanogels. Materials science and engineering C: materials, 68, 251–257.
  • Shaikh, J., et al., 2009. Nanoparticle encapsulation improves oral bioavailability of curcumin by at least 9-fold when compared to curcumin administered with piperine as absorption enhancer. European journal of pharmaceutical sciences, 37(3–4), 223–230.
  • Sloth, J., 2007. Formation of enzyme containing particles by spray drying. Lyngby, Denmark: Technical University of Denmark.
  • Sosnik, A. and Seremeta, K.P., 2015. Advantages and challenges of the spray-drying technology for the production of pure drug particles and drug-loaded polymeric carriers. Advances in colloid and interface science, 223, 40–54.
  • Tan, H., et al., 2015. Collagen cryogel cross-linked by naturally derived dialdehyde carboxymethyl cellulose. Carbohydrate polymers, 129, 17–24.
  • Tang, X., et al., 2005. Effect of curcumin on multidrug resistance in resistant human gastric carcinoma cell line SGC7901/VCR. Acta pharmaceutica sinica B, 26(8), 1009–1016.
  • Tengroth, C., et al., 2005. Cross-linking of gelatin capsules with formaldehyde and other aldehydes: an FTIR spectroscopy study. Pharmaceutical development and technology, 10(3), 405–412.
  • Tewes, F., Boury, F., and Benoit, J.P., 2006. In: S. Benita, ed. Biodegradable microspheres: advances in production technology. Boca Raton, FL: CRC Press, Taylor & Francis Group, 1.
  • Tran, T.H., et al., 2014. Preparation and characterization of spray-dried gelatin microspheres encapsulating ganciclovir. Macromolecular research, 22(2), 124–130.
  • Wais, U., et al., 2016. Nanoformulation and encapsulation approaches for poorly water-soluble drug nanoparticles. Nanoscale, 8(4), 1746–1769.
  • Wang, Y., et al., 2009. Study on microencapsulation of curcumin pigments by spray drying. European food research and technology, 229(3), 391–396.
  • Xu, Y., et al., 2012. Feasibility study of a novel crosslinking reagent (alginate dialdehyde) for biological tissue fixation. Carbohydrate polymers, 87(2), 1589–1595.
  • Yadav, D. and Kumar, N., 2014. Nanonization of curcumin by antisolvent precipitation: process development, characterization, freeze drying and stability performance. International journal of pharmaceutics, 477(1–2), 564–577.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.