Fabrication and characterization of bioactive nanoemulsion-based delivery systems

Author:

Yilmaz Azime1,Meral Raciye2,Kabli Mohammad3,Ermis Ertan4,Akman Perihan Kubra5,Dertli Enes5,Taylan Osman3,Sagdic Osman5,Yilmaz Mustafa Tahsin6

Affiliation:

1. Bioengineering Department, Chemical and Metallurgical Engineering Faculty, Yıldız Technical University, Istanbul, Turkey

2. Food Engineering Department, Engineering Faculty, Yüzüncü Yıl University, Van, Turkey

3. Department of Industrial Engineering, Engineering Faculty, King Abdulaziz University, Jeddah, Saudi Arabia

4. Food Engineering Department, Faculty of Engineering and Natural Sciences, Istanbul Sabahattin Zaim University, Istanbul, Turkey

5. Food Engineering Department, Chemical and Metallurgical Engineering Faculty, Yıldız Technical University, Istanbul, Turkey

6. Department of Industrial Engineering, Engineering Faculty, King Abdulaziz University, Jeddah, Saudi Arabia; Food Engineering Department, Chemical and Metallurgical Engineering Faculty, Yıldız Technical University, Istanbul, Turkey

Abstract

In this work, a nanoemulsion-based delivery system was developed by encapsulation of different concentrations (0.50%, 0.75% and 1.00% v/v) of oregano essential oil (OEO) within poly(vinyl alcohol). The delivery systems (OEO-loaded nanoemulsion systems (NESs)) were characterized in terms of size distribution, zeta potential and thermal, molecular, microstructural and antifungal properties. The average droplet diameter values were determined to be within the range 70–75 nm, while zeta potential values within the range 3.13–19.90 mV were recorded. An increase in the OEO concentration did not affect the size distribution of nanoemulsions. Change in the concentrations showed no visible differences in Fourier transform infrared spectra. However, for concentrations of 0.50, 0.75 and 1.00%, endothermic peak temperatures were recorded as 94, 105 and 117°C, respectively. The antifungal activity of NESs against the mycelial growth of Aspergillus niger was evaluated, revealing a significant enhancement in the antifungal activity in comparison with that of free OEO. The zone diameter of mycelial growth could be reduced by around 20, 55 and 65% using NESs at levels of 0.50, 0.75 and 1.00% v/v, respectively, over 6 days of incubation. The results of this study revealed the stronger antifungal efficiency of OEO by its encapsulation into NESs as compared with that of free OEO.

Publisher

Thomas Telford Ltd.

Subject

Condensed Matter Physics,General Materials Science

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