The structure and properties of gluten: an elastic protein from wheat grain

Структура и свойства клейковины: эластичный белок зерна пшеницы
P. R. Shewry, Nigel G. Halford, P. S. Belton, Arthur S. Tatham
2002-02-28

HMM glutenin subunitsdisulphide-bonded polymersdough strengthviscoelastic networkwheat gluten
The wheat gluten proteins correspond to the major storage proteins that are deposited in the starchy endosperm cells of the developing grain. These form a continuous proteinaceous matrix in the cells of the mature dry grain and are brought together to form a continuous viscoelastic network when flour is mixed with water to form dough. These viscoelastic properties underpin the utilization of wheat to give bread and other processed foods. One group of gluten proteins, the HMM subunits of glutenin, is particularly important in conferring high levels of elasticity (i.e. dough strength). These proteins are present in HMM polymers that are stabilized by disulphide bonds and are considered to form the 'elastic backbone' of gluten. However, the glutamine-rich repetitive sequences that comprise the central parts of the HMM subunits also form extensive arrays of interchain hydrogen bonds that may contribute to the elastic properties via a 'loop and train' mechanism. Genetic engineering can be used to manipulate the amount and composition of the HMM subunits, leading to either increased dough strength or to more drastic changes in gluten structure and properties.
1
Genetic engineering can alter high-molecular-mass glutenin abundance and composition, producing stronger dough or more substantial changes in gluten structure and properties.
2
Glutamine-rich repetitive regions may enhance elasticity through extensive interchain hydrogen bonding operating via a loop-and-train mechanism.
3
High-molecular-mass glutenin polymers are stabilized by disulfide bonds and constitute the elastic backbone of gluten.
4
High-molecular-mass glutenin subunits are especially important for dough elasticity and strength.
5
Wheat gluten proteins form a continuous viscoelastic network during dough mixing, underpinning wheat’s use in bread and processed foods.

wheat gluten, particularly the high-molecular-mass (HMM) glutenin subunits and their polymers in dough

the structure, viscoelastic properties, and molecular mechanisms underlying the elasticity and dough-strengthening function of HMM glutenin polymers

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Publication Date
2002-02-28
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Authors
P. R. Shewry
Nigel G. Halford
P. S. Belton
Arthur S. Tatham
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