FN7: Functional Properties of Food
How food ingredients behave during cooking: gelatinisation, coagulation, emulsification, foaming, browning, and shortening.
How food ingredients behave during cooking: gelatinisation, coagulation, emulsification, foaming, browning, and shortening.
How food ingredients behave during cooking: gelatinisation, coagulation, emulsification, foaming, browning, and shortening.
For Functional Properties of Food, you must know:
Q: Explain the process of gelatinisation and its role in sauce-making.
Q: What is the difference between the Maillard reaction and caramelisation?
Q: Explain how emulsification works, using mayonnaise as an example.
✗ Gelatinisation and gelation are the same process. ✓ Gelatinisation involves starch granules absorbing water and swelling when heated. Gelation involves a liquid setting into a gel when cooled (e.g. gelatine setting a jelly). They are different processes with different mechanisms.
✗ Caramelisation and Maillard reaction are the same. ✓ Caramelisation involves only sugar breaking down under heat. The Maillard reaction involves amino acids AND reducing sugars reacting together. They produce different flavours — caramelisation gives sweet toffee flavours; Maillard gives savoury, complex flavours.
✗ Eggs coagulate at a single fixed temperature. ✓ Egg white begins to coagulate at around 60°C and is fully set by 65°C. Egg yolk begins at around 65°C and is fully set by 70°C. This is why eggs can be cooked with a runny yolk but set white — the different proteins coagulate at different temperatures.
Explain how the functional properties of protein are used in cooking, using specific examples. [12 marks]
Proteins have several key functional properties that are exploited in cooking: denaturation, coagulation, foaming, emulsification, and gelation. Denaturation is the unfolding of protein molecules due to heat, acid, or mechanical action. This is the first stage before coagulation. Whisking egg whites denatures the proteins, uncoiling them so they can form a network around air bubbles. Coagulation follows denaturation — the unfolded proteins form new bonds, creating a solid network. In scrambled eggs, heating causes egg proteins to denature and then coagulate, transforming liquid egg into solid curds. Over-coagulation (excessive heat or time) makes proteins tough and rubbery — this is why overcooked eggs become rubbery and overcooked meat becomes dry and chewy. Foaming exploits the ability of denatured proteins to trap air. In meringues, egg white proteins denatured by whisking form a stable network around air bubbles. Acid (cream of tartar) stabilises the foam. Sugar strengthens the foam but must be added gradually. Baking sets the foam permanently through coagulation. Emulsification uses proteins as emulsifiers. Egg yolk contains lecithin, which stabilises oil-in-water emulsions like mayonnaise. The lecithin's hydrophilic head and hydrophobic tail sit between oil and water, preventing separation. Gelation occurs when proteins form a three-dimensional network that traps liquid. Gelatine (denatured collagen) forms a gel on cooling — used in jelly, panna cotta, and trifles. Understanding these properties allows cooks to control texture and structure: gentle heat for tender coagulation, correct technique for stable foams, and gradual addition for successful emulsification.
AO1 (Knowledge & Understanding): Demonstrate knowledge and understanding of functional properties of food, including nutritional principles, food science, and food safety regulations.
AO2 (Application): Apply knowledge and understanding of functional properties of food to practical cooking contexts, recipe adaptation, and food choice decisions.
AO3 (Analysis & Evaluation): Analyse and evaluate functional properties of food in relation to nutritional needs, food safety, sustainability, and cultural factors. Justify decisions with reasoned arguments and evidence.
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