PlantOleogels · Plant Particle based Hybrid Bicontinuous Oleogels
Horizon 2020 — Marie Skłodowska-Curie Actions
- Duration
- 2018-11-01 → 2020-10-31
- EU contribution
- €165,599
- Participants
- 1
- Scheme
- MSCA-IF-EF-SE
Lines connect the coordinator with its partners.
Results in brief
Plant Particle based Hybrid Bicontinuous Oleogels
Dietary intake of excess trans fatty acids and to a lesser extent, excess saturated fatty acids along with insufficient n-6 polyunsaturated fatty acids, has been estimated to increase coronary heart disease (CHD) mortality worldwide. Over the years, almost entire removal of hardstock trans fats has been achieved; whereas full substitution of hardstock long-chain saturated fatty acids (e.g. palmitic acid) by unsaturated fatty acids (i.e. liquid oil) has proven elusive. Substitution of saturated fats brings unprecedented industrial challenges, as their removal affects adversely physical properties, functionality, stability and sensory attributes of oil-based suspensions, leading to food products poor in quality and consumer acceptability. Furthermore, in addition to address the technological challenges brought about by the subsitution of saturated fats, it is desirable that any oil-structuring alternative to be “clean label” or free of additives, to boost their acceptability and commercialization. Currently, there are limited commercially-viable strategies to formulate healthier fats within the field of gelled oils or oleogels. None of the current ‘oleogel’ are suitable for food applications as they do only meet partially the following criteria: 1) being food grade, natural, 2) complement physical characteristics of fats such as temperature induced melting, 3) mimic or complement the rheology and texture of solid saturated lipids. Besides this criteria, it is of paramount important to establish links between the mesoscopic structure and mechanics of the developed oleogel systems. To address this grand industrial and fundamental challenge, we proposed to design novel hybrid ‘oleogels’ using a biomimetic approach based on edible plant particles along with economical solid fat sources, and understand the underlying structure, physical properties, and texture. To achieve this goal, we specifically met the following objectives: (1) Developed oil continuous colloidal gels and colloidal glasses based on individual/binary mixtures of plant derived edible colloidal nanoscale particles, (2) Developed new hybrid systems: bicontinuous glass-gel networks and bicontinuous gel networks, comprising individual/binary mixtures of colloidal particles along with the fat particles to introduce temperature melting and (3) Established structure and rheology relationships in (1) and (2), and (4) Extended findings from specific goals 1-3, to develop commercially-viable hybrid oleogel systems. Overall, we arrived to the following conclusions: 1) the mechanics of model suspensions of glass-gel and gel-gel comprising starch or micro fibrillated cellulose, and lipid particles can be closely described by phenomenological models for particle-filled yield stress fluids, and micromechanical models proposed for interpenetrating multiphase composites, 2) the mechanics of the previously mentioned systems depend on two main observables: total volume fraction, and mixture composition or the relative concentrations of colloidal species, 3) Bonding and caging mechanics, dependent on the observables, define static structures and dynamic properties and 4) The model glass-gel and gel-gel oil-continuous soft materials can be realized with commercially-relevant food-grade ingredients.
Data: CORDIS, © European Union
Project objective
Cardiovascular diseases (CVDs) continue to be the major cause of death in the EU, it accounts for over 1.8 million deaths and estimated economic burden of €210 billion a year to EU. One main dietary risk factor long associated with CVDs is the consumption of hardstock fats. Substitution of saturated fats by unsaturated fats is not always possible since it brings major technological challenges such as products that leak oil and have overall poor quality. To overcome this, a promising strategy is to promote oil gelation to form a type of soft condensed matter termed ‘oleogel’. Despite major breakthroughs in this field, there is a strong need for: creating oleogels derived from all-natural and economical biomaterials that display excellent rheology, shear stability and temperature-responsiveness, while meeting increasing consumer expectations for “clean” and natural labels and establishing structure-rheology relationships in such systems. This proposal aims to create novel hybrid oleogels using plant derived native cellulose- and starch- colloidal particles via two main soft matter approaches: colloidal glass-gel networks and bicontinuous gel with interpenetrated particle networks. Colloidal classes and gels are two types of colloidal systems, with differing structure and that display solid-like characteristics which we seek to exploit under these schemes. To incorporate temperature responsiveness, we will prepare oil continuous colloidal gel and glass in coexistence with fat crystal network. Such hybrid systems will be prepared by simultaneous addition of plant particles at high volume fraction and fat particles at low volume fraction (plant particles entrapped within the fat network), and gel-gel networks will be made by separate aggregation, first of the plant particles and then of fat particles. Structure, rheology, physical properties and phase behaviour will be investigated to identify formulations and soft matter systems with potential for food oil structuring.
Original text from CORDIS.
Participants
- UNILEVER INNOVATION CENTRE WAGENINGEN BV · WageningenCoordinatorNetherlands
Links
Data: CORDIS, © European Union
