dc.contributor.author | Maleki Dizaj, S | |
dc.contributor.author | Lotfipour, F | |
dc.contributor.author | Barzegar-Jalali, M | |
dc.contributor.author | Zarrintan, M-H | |
dc.contributor.author | Adibkia, K | |
dc.date.accessioned | 2018-08-26T08:35:00Z | |
dc.date.available | 2018-08-26T08:35:00Z | |
dc.date.issued | 2016 | |
dc.identifier | 10.3109/21691401.2015.1042108 | |
dc.identifier.uri | http://dspace.tbzmed.ac.ir:8080/xmlui/handle/123456789/52607 | |
dc.description.abstract | The aim of this research was to prepare and optimize calcium carbonate (CaCO3) nanoparticles as carriers for gentamicin sulfate. A chemical precipitation method was used to prepare the gentamicin sulfate-loaded CaCO3 nanoparticles. A 3-factor, 3-level Box-Behnken design was used for the optimization procedure, with the molar ratio of CaCl2: Na2CO3 (X1), the concentration of drug (X2), and the speed of homogenization (X3) as the independent variables. The particle size and entrapment efficiency were considered as response variables. Mathematical equations and response surface plots were used, along with the counter plots, to relate the dependent and independent variables. The results indicated that the speed of homogenization was the main variable contributing to particle size and entrapment efficiency. The combined effect of all three independent variables was also evaluated. Using the response optimization design, the optimized Xl-X3 levels were predicted. An optimized formulation was then prepared according to these levels, resulting in a particle size of 80.23 nm and an entrapment efficiency of 30.80%. It was concluded that the chemical precipitation technique, together with the Box-Behnken experimental design methodology, could be successfully used to optimize the formulation of drug-incorporated calcium carbonate nanoparticles. é 2015 Informa Healthcare USA, Inc. | |
dc.language.iso | English | |
dc.relation.ispartof | Artificial Cells, Nanomedicine and Biotechnology | |
dc.subject | Calcium | |
dc.subject | Calcium carbonate | |
dc.subject | Carbonation | |
dc.subject | Design | |
dc.subject | Efficiency | |
dc.subject | Nanoparticles | |
dc.subject | Particle size | |
dc.subject | Sulfur compounds | |
dc.subject | Chemical precipitation | |
dc.subject | Chemical precipitation method | |
dc.subject | Entrapment efficiency | |
dc.subject | Gentamicin sulfates | |
dc.subject | Independent variables | |
dc.subject | Mathematical equations | |
dc.subject | Optimization procedures | |
dc.subject | Response surface plot | |
dc.subject | Precipitation (chemical) | |
dc.subject | calcium carbonate nanoparticle | |
dc.subject | calcium chloride | |
dc.subject | gentamicin | |
dc.subject | nanocarrier | |
dc.subject | nanoparticle | |
dc.subject | sodium carbonate | |
dc.subject | unclassified drug | |
dc.subject | calcium carbonate | |
dc.subject | drug carrier | |
dc.subject | gentamicin | |
dc.subject | nanoparticle | |
dc.subject | Article | |
dc.subject | Box Behnken design | |
dc.subject | drug delivery system | |
dc.subject | drug formulation | |
dc.subject | independent variable | |
dc.subject | mathematical model | |
dc.subject | particle size | |
dc.subject | precipitation | |
dc.subject | process design | |
dc.subject | process optimization | |
dc.subject | response variable | |
dc.subject | Calcium Carbonate | |
dc.subject | Drug Carriers | |
dc.subject | Gentamicins | |
dc.subject | Nanoparticles | |
dc.title | Application of Box-Behnken design to prepare gentamicin-loaded calcium carbonate nanoparticles | |
dc.type | Article | |
dc.citation.volume | 44 | |
dc.citation.issue | 6 | |
dc.citation.spage | 1475 | |
dc.citation.epage | 1481 | |
dc.citation.index | Scopus | |
dc.identifier.DOI | 10.3109/21691401.2015.1042108 | |