ELECTRONANOMEGA · DEVELOPMENT OF OMEGA-3 NANODELIVERY SYSTEMS USING ELECTROSPINNING PROCESSING
Horizon 2020 — Marie Skłodowska-Curie Actions
- Duration
- 2015-08-24 → 2017-08-23
- EU contribution
- €200,195
- Participants
- 1
- Scheme
- MSCA-IF-EF-ST
Lines connect the coordinator with its partners.
Results in brief
DEVELOPMENT OF OMEGA-3 NANODELIVERY SYSTEMS USING ELECTROSPINNING PROCESSING
Functional foods containing omega-3 polyunsaturated fatty acids (PUFA) is one of the food product categories with higher potential in Europa and North-America. This is due to the low consumption of fish-, krill or algae-based products by these populations and to the numerous beneficial health effects of omega-3 PUFA on human health (as recognized by the European Food Safety Authority, EFSA). However, omega-3 PUFA are highly susceptible to oxidation, which lead to the loss of nutritional value as well as the formation of unpleasant off-flavors and toxic compounds. Therefore, lipid oxidation must be prevented in order to successfully develop foods enriched with omega-3 PUFA. Omega-3 PUFA can be added to foods as neat oils or as a “delivery system” such as microencapsulated oil powders and oil-in-water emulsions. Nevertheless, the development of alternative omega-3 PUFA delivery systems, which are easy to disperse and which will lead to improved oxidative stability of omega-3 enriched food products, is required by the food industry in order to benefit the consumer. In this regard, the ELECTRONANOMEGA project aimed at developing: i) advanced omega-3 nano-microdelivery systems by using electrohydrodynamic processes, and ii) fortified food containing these delivery systems. Electrospinning and electrospraying processes allow the encapsulation of bioactive compounds in nano-microfibers or nano-microcapsules, respectively. These processes, in contrast to spray-drying, do not require heat for the drying of the parent emulsion which is beneficial for the stability of thermo-sensitive compounds such as omega-3 PUFA. Moreover, nano-microcapsules obtained by electrospraying have a reduced size compared to microcapsules produced by spray-drying. This is beneficial both in terms of incorporation of the encapsulates into the food matrix and of the release of the bioactive compound, but it is a challenge in terms of oxidative stability due to a larger specific surface area. Overall, ELECTRONANOMEGA project has delivered the following: - Suggestions of type of biopolymers (incl. concentration and type of solvents) and process conditions for the production of nano-microstructures containing omega-3 PUFA by electrohydrodynamic processes. - Optimum approaches to incorporate fish oil and natural antioxidants in order to improve the oxidative stability of the biopolymeric nano-microstructures. - Nano-microstructures (both nano-microfibers and capsules) with appropriate structural-functional properties and with adequate oxidative stability after production. - Process conditions selected for the incorporation of fish oil-loaded nano-microcapsules into mayonnaise (40 wt%. total fat). Fortified mayonnaise with good structural-functional properties has successfully been produced. It has to be mentioned that the oxidative stability during storage of the nano-microstructures obtained and of the enriched mayonnaise needs to be further improved. In this regard, it seems necessary to further reduce the oil droplets on the surface (or close to the surface) of the nano-microsctructures, which are easily oxidized due to its large area of contact with prooxidants.
Data: CORDIS, © European Union
Project objective
Functional foods containing omega-3 lipids, which have approved health claims by EFSA, have resulted in one of the fastest-growing food product categories in Europe. However, to successfully develop foods enriched with omega-3 PUFA, lipid oxidation of these highly unsaturated fatty acids must be prevented in order to avoid both the loss of nutritional value and the formation of unpleasant off-flavors.Omega-3 PUFA can be added to foods as neat oils or as a “delivery system” such as microencapsulated oil powders and oil-in-water emulsions. Nevertheless, delivery of omega-3 lipids in the form of emulsions reduces the oxidative stability of omega-3 PUFA in some products. Furthermore, microencapsulates are less suitable for liquid or semi-liquid foods than emulsified omega-3 oils due to handling/mixing issues. Therefore, the development of alternative omega-3 PUFA delivery systems, which are easy to disperse and which will lead to improved oxidative stability of omega-3 enriched food products, is urgently required. One of the more promising delivery systems can be functional nano-microstructures obtained by electrospinning technology, which is possible to up-scale.In light of the above, the aim of this research project is to develop advanced omega-3 delivery systems such as electrospun nano-microstructures. To this end, the specific objectives are:1)Development of physically and oxidatively stable nano-microstructures with omega-3 PUFA and natural antioxidants using electrospinning processing.2)Production of food enriched with the nano-microstructures having appropriate structural-functional properties and being oxidatively stable.The success of the research proposed will lead to an important advance in the protection of omega-3 PUFA against oxidation when incorporated into food. Thus, the knowledge generated by this study has the potential to being exploited by companies devoted to the production of functional foods containing omega-3 lipids.
Original text from CORDIS.
Participants
- DANMARKS TEKNISKE UNIVERSITET · Kongens LyngbyCoordinatorDenmark
Links
Data: CORDIS, © European Union
