Effects of attapulgite on sustained release performance of chitosan/sodium alginate microspheres

被引:0
作者
机构
[1] School of Life Science and Chemical Engineering, Huaiyin Institute of Technology, Jiangsu Provincial Key Laboratory of Attapulgite Science and Applied Technology
来源
Wu, J. (wujie1760@126.com) | 1600年 / Zhejiang University卷 / 28期
关键词
Attapulgite (ATP); Chitosan; Sodium alginate; Sustained release;
D O I
10.3969/j.issn.1003-9015.2014.03.033
中图分类号
学科分类号
摘要
Attapulgite (ATP) was composited with sodium alginate (SA) to improve the sustained release properties of SA. Attapulgite/sodium alginate/chitosan composite microspheres (ASCM) were prepared by complex coacervation using ATP/SA composites as the core material of the microspheres and chitosan (CS) as the coating material. The effects of ATP on swelling, drug loading and sustained release of ASCM were investigated with diclofenac sodium (DS) as a model drug, and the optimum amount of ATP were obtained. The results show that ASCM exhibits excellent swelling and sustained release ability. Compared with sodium alginate/chitosan microspheres (SCM), the cumulative release of DS from ASCM (20%(wt) ATP/SA (w/w)) decreased from 58.8% to 38.7% after 2 h in phosphate buffer solution at pH 6.8. The study of drug release kinetics shows that the releasing processes are better fitted by first-order release kinetic model. The incorporation of ATP in microspheres improves the releasing performance of SA, and ASCM can be used as a potential sustained release carrier.
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页码:648 / 653
页数:5
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  • [1] Li Z.-L., Chen P., Preparation of chitosan-sodium alginate microcapusules containing ZnS nanoparticles and its effect on the drug release, Mater Sci Eng C, 29, 7, pp. 2250-2253, (2009)
  • [2] Gong W., Yang Y., Jin Y.-G., Et al., The research progress of drug delivery system, Scientia Sinica Vitae, 41, 10, pp. 894-903, (2011)
  • [3] Qi L.-L., Ying X.-G., Li X., Et al., Preparation of polyvinyl acetate-grafted-calcium alginate beads, Chemical industry and engineering progress, 31, 7, pp. 1555-1561, (2012)
  • [4] Wu M., Ni C.-H., Preparation of alginate gel modified by anise aldehyde and controlled release, Chemical Research and Application, 24, 3, pp. 400-403, (2012)
  • [5] Pongjanyakul T., Rongthong T., Enhanced entrapment efficiency and modulated drug release of alginate beads loaded with drug-clay intercalated complexes as microreservoirs, Carbohyd Polym, 81, 2, pp. 409-419, (2010)
  • [6] Huang H.-T., Zhai Z., Hui Z.-Y., Et al., Drug-release property of carbon nanotube-loaded alginate microspheres as drug carrier, J Wuhan Univ (Nat. Sci. Ed.), 56, 3, pp. 263-267, (2010)
  • [7] Chen J., Jin Y.L., Qian Y.H., Et al., A new approach to efficiently disperse aggregated palygorskite into single crystals via adding freeze process into traditional extrusion treatment, Ieee T Nanotechnol, 9, 1, pp. 6-10, (2010)
  • [8] Singh B., Sharma D.K., Kumar R., Et al., Controlled release of the fungicide thiram from starch-alginate-clay based formulation, Appl Clay Sci, 45, 1-2, pp. 76-82, (2009)
  • [9] Wu J., Chen J., Shu C., Et al., Preparation and characterization of attapulgite/chitosan resin microspheres, Journal of the Chinese ceramic society, 39, 7, pp. 1201-1205, (2011)
  • [10] Aguzzi C., Cerezo P., Viseras C., Et al., Use of clays as drug delivery systems: Possibilities and limitations, Appl Clay Sci, 36, 1-3, pp. 22-36, (2007)