Effect of combining additional bakery enzymes and high pressure treatment on bread making qualities.

Bread making quality Enzymes High pressure Response surface methodology

Journal

Journal of food science and technology
ISSN: 0022-1155
Titre abrégé: J Food Sci Technol
Pays: India
ID NLM: 0056471

Informations de publication

Date de publication:
Jan 2020
Historique:
revised: 01 05 2019
accepted: 19 08 2019
entrez: 25 1 2020
pubmed: 25 1 2020
medline: 25 1 2020
Statut: ppublish

Résumé

Various enzymes are added to dough to improve the quality. Two enzymes are α-amylase and hemicellulase (bakery enzymes), whose substrates are damaged starch and insoluble dietary fiber, respectively. They improve the formation of gluten networks in the dough, resulting in a higher specific loaf volume (SLV). The use of high-pressure treatment has also increased as a substitute for heat treatment and various products are being processed utilizing high-pressure treatment. This study investigated the effect of combing bakery enzyme and high-pressure treatment on dough qualities. The optimal concentration of bakery enzymes and high-pressure level were determined using response surface methodology and optimization technique. Bread dough was prepared by the optimal condition, 0.20% of bakery enzyme and 43 MPa of high-pressure treatment, and the bread dough was then baked. Optimal combining bakery enzyme and high-pressure treatment drastically improved bread making qualities such as increased SLV, higher concentrations of reducing sugar, and lower concentrations of damaged starch and insoluble dietary fiber compared to the control and to those that were only treated with bakery enzymes or high-pressure treatment, respectively. In addition, the bread with both bakery enzymes and high-pressure treatment showed improved micro structure in the crumb and maintained freshness longer.

Identifiants

pubmed: 31975716
doi: 10.1007/s13197-019-04038-4
pii: 4038
pmc: PMC6952523
doi:

Types de publication

Journal Article

Langues

eng

Pagination

134-142

Informations de copyright

© Association of Food Scientists & Technologists (India) 2019.

Références

Food Chem. 2008 Oct 15;110(4):865-72
pubmed: 26047272
J Food Sci Technol. 2019 Mar;56(3):1454-1461
pubmed: 30956325
Eur J Biochem. 2001 Feb;268(3):645-55
pubmed: 11168403
J Agric Food Chem. 2004 Sep 22;52(19):5987-94
pubmed: 15366853
Bioresour Technol. 2006 Nov;97(16):2047-53
pubmed: 16307877

Auteurs

Koki Matsushita (K)

1Department of Food Science, Obihiro University of Agriculture and Veterinary Medicine, West 2-11, Inada, Obihiro, Hokkaido 080-8555 Japan.
3The United Graduate School of Agricultural Science, Iwate University, 3-18-8 Ueda, Morioka, Iwate 020-8550 Japan.

Ayano Tamura (A)

1Department of Food Science, Obihiro University of Agriculture and Veterinary Medicine, West 2-11, Inada, Obihiro, Hokkaido 080-8555 Japan.

Daisuke Goshima (D)

1Department of Food Science, Obihiro University of Agriculture and Veterinary Medicine, West 2-11, Inada, Obihiro, Hokkaido 080-8555 Japan.

Dennis Marvin Santiago (DM)

2Institute of Food Science and Technology, College of Agriculture and Food Science, University of the Philippines Los Baños, College, 4031 Batong Malake, Los Baños, Laguna Philippines.

Takao Myoda (T)

4Faculty of Bio-Industry, Tokyo University of Agriculture, 196 Yasaka, Abashiri, Hokkaido 099-2493 Japan.

Kanenori Takata (K)

5Agricultural Research Center Western Region, National Agriculture and Food Research Organization, 6-12-1 Nishifukatsu, Fukuyama, Hiroshima 721-8514 Japan.

Hiroaki Yamauchi (H)

1Department of Food Science, Obihiro University of Agriculture and Veterinary Medicine, West 2-11, Inada, Obihiro, Hokkaido 080-8555 Japan.

Classifications MeSH