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Research Article

Coated biodegradable casein nanospheres: a valuable tool for oral drug delivery

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Pages 2006-2017 | Received 06 Nov 2014, Accepted 09 Apr 2015, Published online: 29 May 2015

References

  • Zheng C, Liu X, Zhu J, Zhao Y. Preparation of cationic biodegradable dextran microspheres loaded with BSA and study on the mechanism of protein loading. Drug Dev Ind Pharm 2012;38:653–8
  • Arias JL, López-Viota M, Gallardo V, Ruiz MA. Chitosan nanoparticles as a new delivery system for the chemotherapy agent tegafur. Drug Dev Ind Pharm 2010;36:744–50
  • Zuckerman ST, Kao WJ. Nanomaterials and biocompatibility: BioMEMS and dendimers. In: De Villiers MM, Aramwit P, Kwon GS, eds. Nanotechnology in drug delivery. 1st edn. New York: Springer; 2009:193–228
  • Clark AH. Gelation of globular proteins. In: Hill SE, Leward DA, Mitchell JR, eds. Functional properties of food macromolecules. Gaithersburg (MD): Aspen Publishers; 1998:77–142
  • Iemma F, Spizzirri UG, Puoci F, et al. Synthesis and release profile analysis of thermo-sensitive albumin hydrogels. Colloid Polym Sci 2009;287:779–87
  • Cirillo G, Iemma F, Spizzirri UG, et al. Synthesis of stimuli-responsive microgels for in vitro release of diclofenac diethyl ammonium. J Biomat Sci Polym Ed 2011;22:823–44
  • Korhonen H, Pihlanto A. Bioactive peptides: new challenges and opportunities for dairy industry. Aust J Dairy Technol 2003;58:129–34
  • Spizzirri UG, Cirillo G, Iemma F, et al. Thermo-responsive albumin hydrogels with LCST near the physiological temperature. J Appl Polym Sci 2010;121:342–51
  • Curcio M, Puoci F, Spizzirri UG, et al. Negative thermo-responsive microspheres based on hydrolyzed gelatin as drug delivery device. AAPS PharmSciTech 2010;11:652–62
  • Curcio M, Spizzirri UG, Iemma F, et al. Grafted thermo-responsive gelatin microspheres as delivery systems in triggered drug release. Eur J Pharm Biopharm 2010;76:48–55
  • Hébrard G, Hoffart V, Cardot J-M, et al. Development and characterization of coated-microparticles based on whey protein/alginate using the Encapsulator device. Drug Dev Ind Pharm 2013;39:128–37
  • Horne DS. Casein structure, self-assembly and gelation. Curr Opin Colloid Interface Sci 2002;7:456–61
  • Livney YD. Milk proteins as vehicles for bioactives. Curr Opin Colloid Interf Sci 2010;15:73–83
  • Song F, Zhang L-M, Yang C, Yan L. Genipin-crosslinked casein hydrogels for controlled drug delivery. Int J Pharm 2009;373:41–7
  • Latha MS, Jayakrishnan A. Glutaraldehyde crosslinked bovine casein microspheres as a matrix for the controlled release of theophylline: in-vitro studies. J Pharm Pharmacol 1994;46:8–13
  • Elzoghby AO, El-Fotoh WSA, Elgindy NA. Casein-based formulations as promising controlled release drug delivery systems. J. Control Release 2011;153:206–16
  • Neha A, Tarun G, Ajay B. Review on casein production and casein based nano-formulations. Int Res J Pharm 2012;3:41–5
  • Zhu J, Li P. Synthesis and characterization of poly(methyl methacrylate)/casein nanoparticles with a well-defined core-shell structure. J Polym Sci: Part A: Polym Chem 2003;41:3346–53
  • Huppertz T, de Kruif CG. Structure and stability of nanogel particles prepared by internal cross-linking of casein micelles. Int Dairy J 2008;18:556–65
  • Pan XY, Mu MF, Hu B, et al. Micellization of casein-graft-dextran copolymer prepared through Maillard reaction. Biopolymers 2006;81:29–38
  • Pan X, Yao P, Jiang M. Simultaneous nanoparticle formation and encapsulation driven by hydrophobic interaction of casein-graft-dextran and β-carotene. J Colloid Interface Sci 2007;315:456–63
  • Ye A, Flanagan J, Singh H. Formation of stable nanoparticles via electrostatic complexation between sodium caseinate and gum Arabic. Biopolymers 2006;82:121–33
  • Xu Q, Hashimoto M, Dang TT, et al. Preparation of monodisperse biodegradable polymer microparticles using a microfluidic flow-focusing device for controlled drug delivery. Small 2009;5:1575–81
  • Cirillo G, Nicoletta FP, Curcio M, et al. Enzyme immobilization on smart polymers: catalysis on demand. React Funct Polym 2014;83:62–9
  • Pittenger MF, Mackay AM, Beck SC, et al. Multilineage potential of adult human mesenchymal stem cells. Science 1999;284:143–7
  • Liu Y, Zhang Y, Liu Z, Deng K. Graft copolymerization of butyl acrylate onto casein initiated by potassium diperiodatonickelate (IV) in alkaline medium. Eur Polym J 2002;38:1619–25
  • Somanathan N, Sanjeevi R, Reddy CR, Radhakrishnan N. Graft co-polymerization of casein with acrylonitrile and n-butyl methacrylate. Eur Polym J 1987;23:489–92
  • Somanathan, N, Ganesh R, Sanjeevi R. Synthesis of casein graft poly(acrylonitrile). Polym J 1993;25:939–46
  • Wei S, Molinelli A, Mizaikoff B. Molecularly imprinted micro and nanospheres for the selective recognition of 17β-estradiol. Biosens Bioelectr 2006;21:1943–51
  • Curcio M, Altimari I, Spizzirri UG, et al. Biodegradable gelatin-based nanospheres as pH-responsive drug delivery systems. J Nanopart Res 2013;15:art. no 1581
  • Pathak MK, Chhabra G, Pathak K. Design and development of a novel pH triggered nanoemulsified in-situ ophthalmic gel of fluconazole: ex-vivo transcorneal permeation, corneal toxicity and irritation testing. Drug Dev Ind Pharm 2013;39:780–90
  • May JE, Morse HR, Xu J, Donaldson C. Development of a novel, physiologically relevant cytotoxicity model: application to the study of chemotherapeutic damage to mesenchymal stromal cells. Toxicol Appl Pharmacol 2012;263:374–89
  • Freire C, Podczeck F, Veiga F, Sousa J. Influence of the coating formulation on enzymatic digestibility and drug release from 5-aminosalicylic acid pellets coated with mixtures of high-amylose starch and Surelease® intended for colon-specific drug delivery: high-amylose starch-based coatings for colonic delivery. Drug Dev Ind Pharm 2010;36:161–72
  • Göpferich A. Mechanism of polymer degradation and erosion. Biomaterials 1996;17:103–14
  • Grainger S, El-Sayed MEH. Stimuli-sensitive particles for drug delivery. In: Jabbari E, Khademhosseini A, eds. Biologically responsive hybrid biomaterials. Boston (MA): Artech House; 2010:171–90
  • Venkatesh H, Sanghavi NM. Controlled drug delivery of pH-dependent soluble drug pindolol. Drug Dev Ind Pharm 1994;20:111–18
  • Eaimtrakarn S, Itoh Y, Kishimoto J, et al. Retention and transit of intestinal mucoadhesive films in rat small intestine. Int J Pharm 2001;224:61–7
  • Lankalapalli S, Kolapalli RM. Biopharmaceutical evaluation of diclofenac sodium controlled release tablets prepared from gum Karaya-chitosan polyelectrolyte complexes. Drug Dev Ind Pharm 2012;38:815–24
  • Warner TD, Vojnovic I, Bishop-Bailey D, Mitchell JA. Influence of plasma protein on the potencies of inhibitors of cyclooxygenase-1 and -2. FASEB J 2006;20:542–4
  • Zhang H, Gao S. Temozolomide/PLGA microparticles and antitumor activity against glioma C6 cancer cells. Int J Pharm 2007;329:122–8
  • Sairam M, Babu VR, Vijaya B, et al. Encapsulation efficiency and controlled release characteristics of crosslinked polyacrylamide particles. Int J Pharm 2006;320:131–6
  • Hopfenberg HB, Hsu KC. Swelling-controlled, constant rate delivery systems. Polym Eng Sci 1978;18:1186–91
  • Colombo P, Bettini R, Santi P, Peppas NA. Swellable matrices for controlled drug delivery: gel-layer behaviour, mechanisms and optimal performance. Pharm Sci Technol Today 2000;3:198–204

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