DocumentCode
1276276
Title
Hybrid Nanomaterial for Stabilizing the Antibiofilm Activity of Eugenia carryophyllata Essential Oil
Author
Grumezescu, A.M. ; Chifiriuc, M.C. ; Saviuc, C. ; Grumezescu, V. ; Hristu, R. ; Mihaiescu, D.E. ; Stanciu, G.A. ; Andronescu, E.
Author_Institution
Dept. of Sci. & Eng. of Oxidic Mater. & Nanomater., Univ. Politeh. of Bucharest, Bucharest, Romania
Volume
11
Issue
4
fYear
2012
Firstpage
360
Lastpage
365
Abstract
The aim of the present study was to demonstrate that Fe3O4/oleic acid core/shell nanostructures could be used as systems for stabilizing the Eugenia carryophyllata essential oil (EO) on catheter surface pellicles, in order to improve their resistance to fungal colonization. EO microwave assisted extraction was performed in a Neo-Clevenger (related) device and its chemical composition was settled by GC-MS analysis. Fe3O4/oleic acid-core/shell nanoparticles (NP) were obtained by a precipitation method under microwave condition. High resolution transmission electron microscopy (HR-TEM) was used as a primary characterization method. The NPs were processed to achieve a core/shell/EO coated-shell nanosystem further used for coating the inner surface of central venous catheter samples. The tested fungal strains have been recently isolated from different clinical specimens. The biofilm architecture was assessed by confocal laser scanning microscopy (CLSM). Our results claim the usage of hybrid nanomaterial (core/shell/coated-shell) for the stabilization of E. carryophyllata EO, which prevented or inhibited the fungal biofilm development on the functionalized catheter, highlighting the opportunity of using these nanosystems to obtain improved, anti-biofilm coatings for biomedical applications.
Keywords
biomedical materials; catheters; cellular biophysics; coatings; essential oils; high-speed optical techniques; iron compounds; laser applications in medicine; microorganisms; nanomedicine; nanostructured materials; organic compounds; precipitation; transmission electron microscopy; CLSM; E. carryophyllata EO; Eugenia carryophyllata essential oil; Fe3O4; GC-MS analysis; HRTEM; antibiofilm activity; antibiofilm coatings; biofilm architecture; biomedical applications; catheter surface pellicles; central venous catheter samples; chemical composition; confocal laser scanning microscopy; core-shell-EO coated-shell nanosystem; functionalized catheter; fungal biofilm development; fungal colonization; fungal strains; high resolution transmission electron microscopy; hybrid nanomaterial; microwave assisted extraction; microwave condition; neoclevenger device; oleic acid core-shell nanostructures; precipitation method; primary characterization method; Biomedical materials; Catheters; Fungi; Nanostructures; Surface treatment; Antibiofilm; Eugenia carryophyllata; core/shell nanostructure; essential oil; Antifungal Agents; Biofilms; Candida; Eugenia; Magnetite Nanoparticles; Oils, Volatile; Oleic Acid; Vascular Access Devices;
fLanguage
English
Journal_Title
NanoBioscience, IEEE Transactions on
Publisher
ieee
ISSN
1536-1241
Type
jour
DOI
10.1109/TNB.2012.2208474
Filename
6290401
Link To Document