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Food & Nutrition Science

Monodisperse aqueous microspheres encapsulating high concentration of l-ascorbic acid: insights of preparation and stability evaluation from straight-through microchannel emulsification

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Pages 1852-1859 | Received 09 Dec 2014, Accepted 27 Apr 2015, Published online: 03 Jun 2015

References

  • Shin J, Anisur RM, Ko MK, et al. Hollow manganese oxide nanoparticles as multifunctional agents for magnetic resonance imaging and drug delivery. Angew. Chem. Int. Ed. 2009;48:321–324.10.1002/anie.v48:2
  • Yang S, Wang C, Chen L, et al. Facile dicyandiamide-mediated fabrication of well-defined CuO hollow microspheres and their catalytic application. Mat. Chem. Phys. 2010;120:296–301.10.1016/j.matchemphys.2009.11.005
  • McQuade DT, Pullen AE, Swager TM. Conjugated polymer-based chemical sensors. Chem. Rev. 2000;100:2537–2574.10.1021/cr9801014
  • Freiberg S, Zhu X. Polymer microspheres for controlled drug release. Int. J. Pharm. 2004;282:1–18.10.1016/j.ijpharm.2004.04.013
  • Pekarek kJ, Jacob JS, Mathiowitz E. Double-walled polymer microspheres for controlled drug release. Nature. 1994;367:258–260.10.1038/367258a0
  • Sinha V, Bansal K, Kaushik R, et al. Poly-ϵ-caprolactone microspheres and nanospheres: an overview. Int. J. Pharm. 2004;278:1–23.
  • Dudhani AR, Kosaraju SL. Bioadhesive chitosan nanoparticles: preparation and characterization. Carbohydr. Polym. 2010;81:243–251.10.1016/j.carbpol.2010.02.026
  • Qin R, Li F, Chen M, et al. Preparation of chitosan–ethylenediaminetetraacetate-enwrapped magnetic CoFe2O4 nanoparticles via zero-length emulsion crosslinking method. Appl. Surf. Sci. 2009;256:27–32.10.1016/j.apsusc.2009.07.032
  • Agnihotri SA, Aminabhavi TM. Controlled release of clozapine through chitosan microparticles prepared by a novel method. J. Controlled Release. 2004;96:245–259.10.1016/j.jconrel.2004.01.025
  • Workman VL, Tezera LB, Elkington PT, et al. Controlled generation of microspheres incorporating extracellular matrix fibrils for three-dimensional cell culture. Adv. Funct. Mater. 2014;24:2648–2657.10.1002/adfm.v24.18
  • Ochiuz L, Peris J-E. Preparation and characterisation of alendronate-loaded chitosan microparticles obtained through the spray drying technique. Med. Chem. 2009;5:191–196.10.2174/157340609787582963
  • Li B-Z, Wang L-J, Li D, et al. Fabrication of starch-based microparticles by an emulsification-crosslinking method. J. Food Eng. 2009;92:250–254.10.1016/j.jfoodeng.2008.08.011
  • Ellis A, Jacquier J. Manufacture of food grade κ-carrageenan microspheres. J. Food Eng. 2009;94:316–320.10.1016/j.jfoodeng.2009.03.030
  • Prasertmanakit S, Praphairaksit N, Chiangthong W, et al. Ethyl cellulose microcapsules for protecting and controlled release of folic acid. AAPS PharmSciTech. 2009;10:1104–1112.10.1208/s12249-009-9305-3
  • Duclairoir C, Orecchioni A, Depraetere P, et al. α-Tocopherol encapsulation and in vitro release from wheat gliadin nanoparticles. J. Microencapsulation. 2002;19:53–60.10.1080/02652040110055207
  • Abbas S, Da Wei C, Hayat K, et al. Ascorbic acid: microencapsulation techniques and trends–a review. Food Rev. Int. 2012;28:343–374.10.1080/87559129.2011.635390
  • Carr AC, Vissers M. Synthetic or food-derived vitamin C—are they equally bioavailable? Nutritional. 2013;5:4284–4304.
  • Weinstein M, Babyn P, Zlotkin S. An orange a day keeps the doctor away: scurvy in the year 2000. Pediatrics. 2001;108:e55–e55.10.1542/peds.108.3.e55
  • Yuan J-P, Chen F. Degradation of ascorbic acid in aqueous solution. J. Agric. Food Chem. 1998;46:5078–5082.10.1021/jf9805404
  • Munyaka AW, Makule EE, Oey I, et al. Thermal stability of l-ascorbic acid and ascorbic acid oxidase in broccoli (Brassica oleracea var. italica). J. Food Sci. 2010;75:C336–C340.10.1111/(ISSN)1750-3841
  • Van den Broeck I, Ludikhuyze L, Weemaes C, et al. Kinetics for isobaric−isothermal degradation of l -ascorbic acid. J. Agric. Food Chem. 1998;46:2001–2006.10.1021/jf9708251
  • Sugiura S, Nakajima M, Kumazawa N, et al. Characterization of spontaneous transformation-based droplet formation during microchannel emulsification. J. Phys. Chem. B. 2002;106:9405–9409.10.1021/jp0259871
  • Vladisavljevic GT, Kobayashi I, Nakajima M. Production of uniform droplets using membrane, microchannel and microfluidic emulsification devices. Microfluid. Nanofluid. 2012;13:151–178.10.1007/s10404-012-0948-0
  • Kobayashi I, Mukataka S, Nakajima M. Production of monodisperse oil-in-water emulsions using a large silicon straight-through microchannel plate. Ind. Eng. Chem. Res. 2005;44:5852–5856.10.1021/ie050013r
  • Kobayashi I, Wada Y, Hori Y, et al. Microchannel emulsification using stainless-steel chips: oil droplet generation characteristics. Chem. Eng. Technol. 2012;35:1865–1871.10.1002/ceat.v35.10
  • Kawakatsu T, Kikuchi Y, Nakajima M. Regular-sized cell creation in microchannel emulsification by visual microprocessing method. J. Am. Oil Chem. Soc. 1997;74:317–321.10.1007/s11746-997-0143-8
  • Sugiura S, Nakajima M, Tong JH, et al. Preparation of monodispersed solid lipid microspheres using a microchannel emulsification technique. J. Colloid Interface Sci. 2000;227:95–103.10.1006/jcis.2000.6843
  • Ikkai F, Iwamoto S, Adachi E, et al. New method of producing mono-sized polymer gel particles using microchannel emulsification and UV irradiation. Colloid Polym. Sci. 2005;283:1149–1153.10.1007/s00396-005-1271-z
  • Sugiura S, Kuroiwa T, Kagota T, et al. Novel method for obtaining homogeneous giant vesicles from a monodisperse water-in-oil emulsion prepared with a microfluidic device. Langmuir. 2008;24:4581–4588.10.1021/la703509r
  • Neves MA, Ribeiro HS, Kobayashi I, et al. Encapsulation of lipophilic bioactive molecules by microchannel emulsification. Food Biophys. 2008;3:126–131.10.1007/s11483-008-9056-9
  • Souilem S, Kobayashi I, Neves M, et al. Preparation of monodisperse food-grade oleuropein-loaded w/o/w emulsions using microchannel emulsification and evaluation of their storage stability. Food Bioprocess Technol. 2014;7:2014–2027.10.1007/s11947-013-1182-9
  • Neves MA, Ribeiro HS, Fujiu KB, et al. Formulation of controlled size PUFA-loaded oil-in-water emulsions by microchannel emulsification using beta-carotene-rich palm oil. Ind. Eng. Chem. Res. 2008;47:6405–6411.10.1021/ie071552u
  • Khalid N, Kobayashi I, Neves MA, et al. Monodisperse W/O/W emulsions encapsulating l-ascorbic acid: Insights on their formulation using microchannel emulsification and stability studies. Colloid Surf. A. 2014;458:69–77.10.1016/j.colsurfa.2014.04.019
  • Khalid N, Kobayashi I, Neves MA, et al. Formulation of monodisperse water-in-oil emulsions encapsulating calcium ascorbate and ascorbic acid 2-glucoside by microchannel emulsification. Colloid Surf. A. 2014;459:247–253.10.1016/j.colsurfa.2014.07.014
  • Desai KG, Park HJ. Encapsulation of vitamin C in tripolyphosphate cross-linked chitosan microspheres by spray drying. J. Microencapsulation. 2005;22:179–192.10.1080/02652040400026533
  • Esposito E, Cervellati F, Menegatti E, et al. Spray dried Eudragit microparticles as encapsulation devices for vitamin C. Int. J. Pharm. 2002;242:329–334.10.1016/S0378-5173(02)00176-X
  • Alishahi A, Mirvaghefi A, Tehrani MR, et al. Shelf life and delivery enhancement of vitamin C using chitosan nanoparticles. Food Chem. 2011;126:935–940.10.1016/j.foodchem.2010.11.086
  • Goncalves G, Compos P. Shelf life and rheology of emulsions containing vitamin C and its derivatives. Revista de Ciências Farmacêuticas Básica e Aplicada. 2009;30:217–224.
  • Kobayashi I, Mukataka S, Nakajima M. Novel asymmetric through-hole array microfabricated on a silicon plate for formulating monodisperse emulsions. Langmuir. 2005;21:7629–7632.10.1021/la050915x
  • Kobayashi I, Mukataka S, Nakajima M. Effect of slot aspect ratio on droplet formation from silicon straight-through microchannels. J. Colloid Interface Sci. 2004;279:277–280.10.1016/j.jcis.2004.06.028
  • Kobayashi I, Vladisavljevic GT, Uemura K, et al. CFD analysis of microchannel emulsification: droplet generation process and size effect of asymmetric straight flow-through microchannels. Chem. Eng. Sci. 2011;66:5556–5565.10.1016/j.ces.2011.07.061
  • Vladisavljevic GT, Kobayashi I, Nakajima M. Effect of dispersed phase viscosity on maximum droplet generation frequency in microchannel emulsification using asymmetric straight-through channels. Microfluid. Nanofluid. 2011;10:1199–1209.10.1007/s10404-010-0750-9
  • Khalid N, Kobayashi I, Neves MA, et al. Preparation and characterization of water-in-oil-in-water emulsions containing a high concentration of L-ascorbic acid. Biosci. Biotechnol. Biochem. 2013;77:1171–1178.10.1271/bbb.120870
  • Khalid N, Kobayashi I, Neves MA, et al. Preparation and characterization of water-in-oil emulsions loaded with high concentration of l-ascorbic acid. LWT—Food Sci. Technol. 2013;51:448–454.10.1016/j.lwt.2012.11.020
  • Viveros-Contreras R, Téllez-Medina D, Perea-Flores M, et al. Encapsulation of ascorbic acid into calcium alginate matrices through coacervation coupled to freeze-drying. Revista Mexicana de Ingeniería Química. 2013;12:29–39.
  • Devi N, Kakati DK. Smart porous microparticles based on gelatin/sodium alginate polyelectrolyte complex. J. Food Eng. 2013;117:193–204.10.1016/j.jfoodeng.2013.02.018
  • Kobayashi I, Wada Y, Uemura K, et al. Microchannel emulsification for mass production of uniform fine droplets: integration of microchannel arrays on a chip. Microfluid Nanofluid. 2010;8:255–262.10.1007/s10404-009-0501-y
  • Comunian TA, Abbaspourrad A, Favaro-Trindade CS, et al. Fabrication of solid lipid microcapsules containing ascorbic acid using a microfluidic technique. Food Chem. 2014;152:271–275.10.1016/j.foodchem.2013.11.149
  • Santana RC, Perrechil FA, Cunha RL. High- and low-energy emulsifications for food applications: a focus on process parameters. Food Eng. Rev. 2013;5:107–122.10.1007/s12393-013-9065-4
  • Farhang B, Kakuda Y, Corredig M. Encapsulation of ascorbic acid in liposomes prepared with milk fat globule membrane-derived phospholipids. Dairy Sci. Technol. 2012;92:353–366.
  • Rozman B, Gašperlin M. Stability of vitamins C and E in topical microemulsions for combined antioxidant therapy. Drug Delivery. 2007;14:235–245.10.1080/10717540601067786
  • Comunian TA, Thomazini M, Alves AJG, et al. Microencapsulation of ascorbic acid by complex coacervation: protection and controlled release. Food Res. Int. 2013;52:373–379.10.1016/j.foodres.2013.03.028

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