A GREEN APPROACH FOR THE SYNTHESIS OF DRUG DELIVERY SYSTEM, MESOPOROUS SILICA GRAFTED ACRYLAMIDE –β- CYCLODEXTRIN COMPOSITE, FOR THE CONTROLLED RELEASE OF CURCUMIN

Authors

  • Manohar D Mullassery Department of Chemistry, Fatima Mata National College, Kollam - 691 001, Kerala, India.
  • Noeline B Fernandez Department of Chemistry, Fatima Mata National College, Kollam - 691 001, Kerala, India.
  • Surya R Department of Chemistry, Fatima Mata National College, Kollam - 691 001, Kerala, India.
  • Diana Thomas Department of Chemistry, Fatima Mata National College, Kollam - 691 001, Kerala, India.

DOI:

https://doi.org/10.22159/ajpcr.2018.v11i9.26769

Keywords:

Bentonite, Controlled release, Curcumin, Kinetics

Abstract

Objective: The scope of the present study was the preparation and characterization of a novel composite acrylamide β-cyclodextrin grafted 3-aminopropyltriethoxysilane bentonite (AMCD-g-APSB), for the controlled delivery of curcumin (CUR).

Methods: AMCD-g-APSB, was synthesized by solvent-free conditions using microwave irradiation. The structure and surface morphology of the composite was established using Fourier transform infrared spectroscopy, X-ray diffraction, scanning electron microscopy, thermal analysis, etc.

Results: The swelling percentage of the composite depends on both time and pH of the medium. The maximum swelling of the composite occurred at a pH of 7.4. The maximum drug encapsulation was occurring at a pH 3. About 96.5% of drug was loaded at pH 3. In vitro biocompatibility study was performed, and the result showed good biocompatibility of the composite in the concentration range 2.5–50 μg/ml.

Conclusions: Drug delivery study of the composite proved that CUR could be successfully released in a controlled manner in the colon without much loses of the drug in the stomach.

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Published

07-09-2018

How to Cite

Mullassery, M. D., N. B. Fernandez, S. R, and D. Thomas. “A GREEN APPROACH FOR THE SYNTHESIS OF DRUG DELIVERY SYSTEM, MESOPOROUS SILICA GRAFTED ACRYLAMIDE –β- CYCLODEXTRIN COMPOSITE, FOR THE CONTROLLED RELEASE OF CURCUMIN”. Asian Journal of Pharmaceutical and Clinical Research, vol. 11, no. 9, Sept. 2018, pp. 372-80, doi:10.22159/ajpcr.2018.v11i9.26769.

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