Title of article :
The electrokinetic characterization of gold nanoparticles, functionalized with cationic functional groups, and its’ interaction with DNA
Author/Authors :
Lazarus، نويسنده , , Geraldine Genevive and Revaprasadu، نويسنده , , Neerish and Lَpez-Viota، نويسنده , , Juliلn and Singh، نويسنده , , Moganavelli، نويسنده ,
Issue Information :
روزنامه با شماره پیاپی سال 2014
Pages :
7
From page :
425
To page :
431
Abstract :
Gold nanoparticles have attracted strong biomedical interest for drug delivery due to their low toxic nature, surface plasmon resonance and capability of increasing the stability of the payload. However, gene transfection represents another important biological application. Considering that cellular barriers keep enclosed their secret to deliver genes using nanoparticles, an important step can be achieved by studying the functionalization of nanoparticles with DNA. In the present contribution the synthesis of nanoparticles consisting of a gold core coated with one or more layers of amino acid (l-lysine), and cationic polyelectrolytes (poly-ethyleneimine and poly-l-lysine) is reported. All nanoparticles were subjected to dynamic light scattering, electrophoretic mobility measurements, UV–vis optical spectrophotometry analysis and transmission electron microscopy imaging. In addition, the adsorption of DNA plasmid (pSGS) with linear and supercoiled configurations was studied for those gold nanoparticles under the most suitable surface modifications. Preliminary results showed that the gold nanoparticles functionalized with poly-ethyleneimine and poly-l-lysine, respectively, and bound to linear DNA configurations, present in absolute value a higher electrophoretic mobility irrespective of the pH of the media, compared to the supercoiled and nicked configuration. The findings from this study suggest that poly-ethyleneimine and poly-l-lysine functionalized gold nanoparticles are biocompatible and may be promising in the chemical design and future optimization of nanostructures for biomedical applications such as gene and drug delivery.
Keywords :
electrophoretic mobility , DNA , Gold nanoparticles , cytotoxicity
Journal title :
Colloids and Surfaces B Biointerfaces
Serial Year :
2014
Journal title :
Colloids and Surfaces B Biointerfaces
Record number :
1978787
Link To Document :
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