Evaluation of loading efficiency of azelaic acid-chitosan particles using artificial neural networks

Authors

  • Ali Hanafi Nanobiotechology Research Center, Baqiyatallah University of Medical Sciences, Tehran, Iran
  • Amir Amani Department of Medical Nanotechnology, School of Advanced Technologies in Medicine, Tehran University of Medical Sciences, Tehran, Iran|Medical Biomaterials Research Center, Tehran University of Medical Sciences, Tehran, Iran
  • Mehdi Kamali Nanobiotechology Research Center, Baqiyatallah University of Medical Sciences, Tehran, Iran
Abstract:

Objective(s): Chitosan, a biodegradable and cationic polysaccharide with increasing applications in biomedicine, possesses many advantages including mucoadhesivity, biocompatibility, and low-immunogenicity. The aim of this study, was investigating the influence of pH, ratio of azelaic acid/chitosan and molecular weight of chitosan on loading efficiency of azelaic acid in chitosan particles. Materials and Methods:  A model was generated using artificial neural networks (ANNs) to study interactions between the inputs and their effects on loading of azelaic acid. Results: From the details of the model, pH showed a reverse effect on the loading efficiency. Also, a certain ratio of drug/chitosan (~ 0.7) provided minimum loading efficiency, while molecular weight of chitosan showed no important effect on loading efficiency.Conclusion: In general, pH and drug/chitosan ratio indicated an effect on loading of the drug. pH was the major factor affecting in determining loading efficiency.

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Journal title

volume 3  issue 3

pages  169- 178

publication date 2016-07-01

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