Assessing the Impact of the Level of Diastatic Power Enzymes and Their Thermostability on the Hydrolysis of Starch during Wort Production to Predict Malt Fermentability

Оценка влияния уровня ферментов диастатической силы и их термостабильности на гидролиз крахмала при производстве сусла для прогнозирования сбраживаемости солода
D. Evan Evans, Helen M. Collins, J. Eglinton, Annika Wilhelmson
2005-09-01

diastatic power enzymesmalt quality predictorsstarch hydrolysiswort fermentabilityβ-amylase thermostability
In this study, commercially produced malts were used for small-scale simulated mashing trials to investigate the impact of differences in the level and thermostability of malt diastatic power (DP) enzymes on the resultant wort fermentability. A modified European Brewery Convention/American Society Brewing Chemists mashing protocol was used with mash-in temperatures ranging between 45 and 76°C for full-malt and 30% rice adjunct mashes. Malt extract yield varied little with mashing temperature for most varieties in this temperature range. However, the fermentability, maltose content, and free amino nitrogen of that extract was considerably affected by mashing temperature with 65°C achieving the highest fermentability for all malt varieties. Multilinear regression analysis of full-malt and rice adjunct mashing trials at 65°C using 43 commercial malts showed that the level of α-amylase and total limit dextrinase activity, Kolbach Index, and the total β-amylase activity level and thermostability were the most important malt quality predictors of wort fermentability. These conclusions suggest that the conventional DP assessment could be replaced with the measurement of its component enzymes outlined above so that maltsters could better satisfy brewers malt quality expectations by blending and defining their malt quality in terms of these fermentability predicting factors. This information would be particularly useful to brewers who brew with multiple varieties and blends from different suppliers. The focus on individual enzyme characteristics by barley breeders is likely to provide selection targets that are more accurate and achievable.
1
A 65°C mash-in temperature produced the highest fermentability across all tested malt varieties in full-malt and 30% rice adjunct mashes.
2
Analysis of 43 commercial malts identified α-amylase, total limit dextrinase, Kolbach Index, and β-amylase activity and thermostability as the strongest predictors of wort fermentability.
3
Component-enzyme measurements may better predict fermentability than conventional diastatic power assessment, enabling targeted malt blending and quality specification.
4
Individual enzyme characteristics could provide more accurate and achievable selection targets for barley breeding aimed at improving malt fermentability.
5
Mashing temperature substantially affected wort fermentability, maltose content, and free amino nitrogen despite little variation in malt extract yield.

Commercially produced malts and their mashes during wort production, including full-malt and 30% rice-adjunct systems

The effects of malt diastatic enzyme levels and thermostability—particularly α-amylase, total limit dextrinase, and β-amylase—on starch hydrolysis, wort fermentability, and malt-quality prediction

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2005-09-01
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D. Evan Evans
Helen M. Collins
J. Eglinton
Annika Wilhelmson
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