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Research Articles

Evaluation of superabsorbent linseed-polysaccharides as a novel stimuli-responsive oral sustained release drug delivery system

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Pages 409-420 | Received 28 Apr 2016, Accepted 01 Nov 2016, Published online: 28 Nov 2016

References

  • Abbas A, Hussain MA, Amin M, et al. Multiple cross-linked hydroxypropylcellulose-succinate-salicylate: prodrug design, characterization, stimuli responsive swelling-deswelling and sustained drug release. RSC Adv 2015;5:43440–8.
  • Amin MCIM, Ahmad N, Halib N, et al. Synthesis and characterization of thermo-and pH-responsive bacterial cellulose/acrylic acid hydrogels for drug delivery. Carbohydr Polym 2012;88:465–73.
  • Nicolas P, Tod M, Padoin C, et al. Clinical pharmacokinetics of diacerein. Clin Pharmacokinet 1998;35:347–59.
  • Wynne HA, Long A, Nicholson E, et al. Are altered pharmacokinetics of non-steroidal anti-inflammatory drugs (NSAIDs) a risk factor for gastrointestinal bleeding? Brit J Clin Pharmacol 1998;45:405–8.
  • Hussain MA, Muhammad G, Jantan I, et al. Arabinoxylan from Plantago ovata: a versatile biomaterial for potential medicinal, and pharmaceutical applications. Polym Rev 2016;56:1–30.
  • Chan A, Orme RP, Fricker RA, et al. Remote and local control of stimuli responsive materials for therapeutic applications. Adv Drug Deliv Rev 2013;65:497–14.
  • Ahmad N, Amin MCIM, Mahali SM, et al. Biocompatible and mucoadhesive bacterial cellulose-g-poly(acrylic acid) hydrogels for oral protein delivery. Mol Pharmaceut 2014;11:4130–42.
  • Aminabhavi TM. Polysaccharide-based hydrogels as biomaterials in drug delivery. J Pharm Care Health Systems 2015;2:e132. doi:10.4172/2376-0419.1000e132.
  • Iqbal MS, Akbar J, Hussain MA, et al. Evaluation of hot-water extracted arabinoxylans from ispaghula seeds as drug carriers. Carbohydr Polym 2011;83:1218–25.
  • Vashist A, Vashist A, Gupta YK, et al. Recent advances in hydrogel based drug delivery systems for the human body. J Mater Chem B 2014;2:147–66.
  • Ray S, Paynel F, Morvan C, et al. Characterization of mucilage polysaccharides, arabinogalactanproteins and cell-wall hemicellulosic polysaccharides isolated from flax seed meal: a wealth of structural moieties. Carbohydr Polym 2013;93:651–60.
  • Edwards SE, Rocha IC, Williamson EM, et al. Phytopharmacy: an evidence-based guide to herbal medicinal products. Hoboken, NJ: Wiley-Blackwell, 2015:246–50.
  • Williams PA, Phillips GO. Gums and stabilisers for the food industry 17: the changing face of food manufacture: the role of hydrocolloids. Cambridge: Royal Society of Chemistry; 2014.
  • Haseeb MT, Hussain MA, Yuk SH, et al. Polysaccharides based superabsorbent hydrogel from linseed: dynamic swelling, stimuli responsive on-off switching and drug release. Carbohydr Polym 2016;136:750–6.
  • Lachman L, Lieberman HA, Kanig JL. The theory and practice of industrial pharmacy. 3rd ed. Mumbai: Varghese Publishing House; 1987.
  • Wells JI. Pharmaceutical preformulation. In: The physicochemical properties of drug substances. 1st ed. Chichester: Ellis Horwood Limited; 1988.
  • Pourjavadi A, Kurdtabar M, Mahdavinia GR, et al. Synthesis and super-swelling behavior of a novel protein-based superabsorbent hydrogel. Polym Bull 2006;57:813–24.
  • Diez-Pena E, Quijada-Garrido I, Barrales-Rienda JM. Hydrogen-bonding effects on the dynamic swelling of P(N-iPAAm-co-MAA) copolymers. A case of autocatalytic swelling kinetics. Macromolecules 2002;35:8882–88.
  • Malana MA, Zafar ZI, Zuhra R. Effect of cross linker concentration on swelling kinetics of a synthesized ternary co-polymer system. J Chem Soc Pakistan 2012;34:793–801.
  • Gibaldi M, Feldman S. Establishment of sink conditions in dissolution rate determinations. Theoretical considerations and application to nondisintegrating dosage forms. J Pharm Sci 1967;56:1238–42.
  • Wagner JG. Interpretation of percent dissolved-time plots derived from in vitro testing of conventional tablets and capsules. J Pharm Sci 1969;58:1253–7.
  • Higuchi T. Rate of release of medicaments from ointment bases containing drugs in suspension. J Pharm Sci 1961;50:874–5.
  • Higuchi T. Mechanism of sustained-action medication. theoretical analysis of rate of release of solid drugs dispersed in solid matrices. J Pharm Sci 1963;52:1145–9.
  • Hixson AW, Crowell JH. Dependence of reaction velocity upon surface and agitation. III-Experimental procedure in study of agitation. Ind Eng Chem 1931;23:1160–8.
  • Korsmeyer RW, Gurny R, Doelker E, et al. Mechanisms of solute release from porous hydrophilic polymers. Int J Pharm 1983;15:25–35.
  • Ritger PL, Peppas NA. A simple equation for description of solute release II. Fickian and anomalous release from swellable devices. J Control Release 1987;5:37–41.
  • Zhang Y, Huo M, Zhou J, et al. DDSolver: an add-in program for modeling and comparison of drug dissolution profiles. AAPS J 2010;12:263–71.
  • Kacurakova M, Capek P, Sasinkova V, et al. FT-IR study of plant cell wall model compounds: pectic polysaccharides and hemicelluloses. Carbohydr Polym 2000;43:195–03.
  • Boulet JC, Williams P, Doco T. A Fourier transform infrared spectroscopy study of wine polysaccharides. Carbohydr Polym 2007;69:79–85.
  • Dragan ES, Apopei DF. Multiresponsive macroporous semi-IPN composite hydrogels based on native or anionically modified potato starch. Carbohydr Polym 2013;92:23–32.
  • Amin MCIM, Ahmad N, Pandey M, et al. Stimuli-responsive bacterial cellulose-g-poly(acrylic acid-co-acrylamide) hydrogels for oral controlled release drug delivery. Drug Dev Ind Pharm 2014;40:1340–49.
  • Wang W, Wang J, Kang Y, et al. Synthesis, swelling and responsive properties of a new composite hydrogel based on hydroxyethyl cellulose and medicinal stone. Compos Part B Eng 2011;42:809–18.
  • Peppas NA, Mikos A. Preparation methods and structure of hydrogels. In: Peppas NA, ed. Hydrogels in medicine and pharmacy (Vol. 3). Boca Raton, FL: CRC Press; 1987.
  • Razmjou A, Simon GP, Wang H. Effect of particle size on the performance of forward osmosis desalination by stimuli-responsive polymer hydrogels as a draw agent. Chem Eng J 2013;215–216:913–20.
  • Bao Y, Ma J, Li N. Synthesis and swelling behaviors of sodium carboxymethyl cellulose-g-poly(AA-co-AM-co-AMPS)/MMT superabsorbent hydrogel. Carbohydr Polym 2011;84:76–85.
  • Pandey M, Amin MCIM, Mohamad N, et al. Structure and characteristics of bacterial cellulose-based hydrogels prepared by cryotropic gelation and irradiation methods. Polym-Plast Technol Eng 2013;52:1510–18.

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