Synthesis and Investigation of Physicochemical and Biological Properties of Films Containing Encapsulated Propolis in Hyaluronic Matrix

Author:

Khachatryan Gohar1ORCID,Khachatryan Karen1ORCID,Krystyjan Magdalena1ORCID,Krzemińska-Fiedorowicz Lidia1,Lenart-Boroń Anna2ORCID,Białecka Anna3,Krupka Magdalena4,Krzan Marcel5ORCID,Blaszyńska Karolina6,Hanula Monika7,Juszczak Lesław1ORCID

Affiliation:

1. Faculty of Food Technology, University of Agriculture in Krakow, Al. Mickiewicza 21, 31-120 Krakow, Poland

2. Faculty of Agriculture and Economics, University of Agriculture in Krakow, 30-059 Krakow, Poland

3. Jan Bober Center for Microbiology and Autovaccines, 31-016 Krakow, Poland

4. Diagnostyka S.A., (JSC) Medical Microbiological Laboratory, os. Na Skarpie 66, 31-913 Krakow, Poland

5. Jerzy Haber Institute of Catalysis and Surface Chemistry, Polish Academy of Sciences, 30-239 Krakow, Poland

6. Faculty of Biotechnology and Horticulture, University of Agriculture in Krakow, Al. Mickiewicza 21, 31-120 Krakow, Poland

7. Institute of Human Nutrition Sciences, Warsaw University of Life Sciences, Nowoursynowska 159c Street 32, 02-776 Warsaw, Poland

Abstract

The dynamic development of nanotechnology has enabled the development of innovative and novel techniques for the production and use of nanomaterials. One of them is the use of nanocapsules based on biodegradable biopolymer composites. Closing compounds with antimicrobial activity inside the nanocapsule cause the gradual release of biologically active substances into the environment, and the effect on pathogens is regular, prolonged and targeted. Known and used in medicine for years, propolis, thanks to the synergistic effect of active ingredients, has antimicrobial, anti-inflammatory and antiseptic properties. Biodegradable and flexible biofilms were obtained, the morphology of the composite was determined using scanning electron microscopy (SEM) and particle size was measured by the dynamic light scattering (DLS) method. Antimicrobial properties of biofoils were examined on commensal skin bacteria and pathogenic Candida isolates based on the growth inhibition zones. The research confirmed the presence of spherical nanocapsules with sizes in the nano/micrometric scale. The properties of the composites were characterized by infrared (IR) and ultraviolet (UV) spectroscopy. It has been proven that hyaluronic acid is a suitable matrix for the preparation of nanocapsules, as no significant interactions between hyaluronan and the tested compounds have been demonstrated. Color analysis and thermal properties, as well as the thickness and mechanical properties of the obtained films, were determined. Antimicrobial properties of the obtained nanocomposites were strong in relation to all analyzed bacterial and yeast strains isolated from various regions of the human body. These results suggest high potential applicability of the tested biofilms as effective materials for dressings to be applied on infected wounds.

Funder

Ministry of Science and Higher Education for the University of Agriculture in Krakow

National Science Centre of Poland

Publisher

MDPI AG

Subject

Polymers and Plastics,General Chemistry

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