Enzyme preparation for modifying noodles and method for producing noodles

Combining lipase, α-glucosidase, and branching enzyme in noodle production suppresses texture deterioration and loosening, ensuring improved noodle quality over time.

JP7732207B2Active Publication Date: 2025-09-02AJINOMOTO CO INC
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Patent Information

Application Number
JP2021048753
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-03-24
Filing Date
2021-03-23
Publication Date
2025-09-02
Estimated Expiration
2041-03-23

AI Technical Summary

Technical Problem

Noodles deteriorate in texture and loosening properties over time due to changes during storage and distribution, with existing methods failing to effectively address these issues.

Method used

A combination of lipase, α-glucosidase, and branching enzyme, optionally with glucoamylase and/or transglutaminase, is added to noodle raw materials to suppress texture deterioration and loosening, enhancing noodle production properties.

Benefits of technology

The method produces noodles with improved texture stability and reduced loosening, maintaining desirable properties over time.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a method for producing a noodle which is inhibited from being aged and deteriorated in texture and a loosening property, and an enzyme preparation for producing the noodle.SOLUTION: An enzyme preparation for modifying a noodle contains (1) lipase, (2) α-glucosidase and (3) branching enzyme and / or glucoamylase. A method for producing a noodle includes adding (1) to (3) to precursor powder.SELECTED DRAWING: None
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Description

[Technical Field]

[0001] The present invention relates to an enzyme preparation for modifying noodles and a method for producing noodles using the enzyme. [Background technology]

[0002] In recent years, noodles (e.g., chilled noodles) have been sold and provided to consumers at convenience stores, supermarkets, etc. However, noodles have issues such as deterioration of texture and loosening due to changes over time during storage and distribution. As a means for solving the above problems with noodles, a method of adding enzymes during the production process has been reported. Patent Document 1 discloses a method for producing a starch-containing food, which is characterized by adding a branching enzyme and α-glucosidase to raw materials. Patent Document 2 discloses a method for producing noodles, which is characterized by adding lipase and amylase to dough. Patent Document 3 discloses a method for producing processed grain foods with improved flaking properties, which comprises adding lipase to raw material flour, kneading the mixture with water, and forming the mixture into a dough. However, no method for modifying noodles was known that involves adding a combination of (1) lipase, (2) α-glucosidase, and (3) branching enzyme and / or glucoamylase, or a method for modifying noodles that involves adding a combination of (1) lipase, (2) α-glucosidase, (3) branching enzyme and / or glucoamylase, and (4) transglutaminase. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Japanese Patent Application Publication No. 2018-139596 [Patent Document 2] WO2016 / 056407 [Patent Document 3] Japanese Patent Application Laid-Open No. 2001-327257 Summary of the Invention [Problem to be solved by the invention]

[0004] An object of the present invention is to provide a method for producing noodles that suppresses noodle aging, deterioration in texture, and deterioration in loosening properties due to changes over time, and an enzyme preparation for producing such noodles. [Means for solving the problem]

[0005] As a result of extensive research, the inventors of the present invention surprisingly discovered that by combining lipase, a lipid enzyme, with α-glucosidase and branching enzyme and / or glucoamylase, which are carbohydrate enzymes, and adding this to the noodle raw material (raw material flour), or by combining lipase, a lipid enzyme, with α-glucosidase and branching enzyme and / or glucoamylase, which are carbohydrate enzymes, and transglutaminase, which is a protein enzyme, and adding this to the noodle raw material (raw material flour), it is possible to produce noodles in which deterioration of noodle texture and loosening properties due to changes over time are suppressed. They also discovered that this production method is excellent in terms of noodle production properties (ease of handling the noodle sheet when producing noodles). Based on these findings, further research led to the completion of the present invention.

[0006] That is, the present invention is as follows. [1] An enzyme preparation for modifying noodles, comprising (1) lipase, (2) α-glucosidase, and (3) branching enzyme and / or glucoamylase. [2] (1) Lipase, (2) α-glucosidase, and (3) branching enzyme are contained, and the content of α-glucosidase is 2.5 × 10 per 1 U of lipase. -5 ~1.3×10 7 U, and the branching enzyme content is 5.0 x 10 per 1 U of lipase. -17 ~1.0×10 5 The formulation described in [1] above, wherein U. [3] (1) Lipase, (2) α-glucosidase, and (3) glucoamylase are contained, and the content of α-glucosidase is 2.5 × 10 per 1 U of lipase. -5 ~1.3×10 7 U, and the glucoamylase content is 2.5 x 10 per 1 U of lipase. -4 The formulation described in [1] above, wherein the dose is about 2.5 × 10 U or less.

[0007] [4] An enzyme preparation for modifying noodles, comprising (1) lipase, (2) α-glucosidase, (3) branching enzyme and / or glucoamylase, and (4) transglutaminase. [5] (1) Lipase, (2) α-glucosidase, (3) branching enzyme, and (4) transglutaminase are contained, and the content of α-glucosidase is 2.5 × 10 per 1 U of lipase. -5 ~1.3×10 7 U, and the branching enzyme content is 5.0 x 10 per 1 U of lipase. -17 ~1.0×10 5 U, and the transglutaminase content is 2.5 x 10 per 1 U of lipase. -6 The formulation according to [4] above, wherein the dose is 2.5 U or less. [6] (1) Lipase, (2) α-glucosidase, (3) glucoamylase, and (4) transglutaminase, wherein the α-glucosidase content is 2.5 × 10 per 1 U of lipase. -5 ~1.3×10 7 U, and the glucoamylase content was 2.5 × 10 per 1 U of lipase. -4 ~2.5×10 U, and the transglutaminase content is 2.5×10 per 1 U of lipase. -6 The formulation according to [4] above, wherein the dose is 2.5 U or less. [7] The formulation according to any one of the above [1] to [6], further comprising sodium L-ascorbate. [8] The amount of sodium L-ascorbate per 1U of lipase is 2.5 x 10 -9 ~2.5×10 -2 The formulation according to [7] above, wherein the dosage is 100 mg / kg.

[0008] [9] A method for producing noodles, comprising adding (1) lipase, (2) α-glucosidase, and (3) branching enzyme and / or glucoamylase to raw material flour.

[10] (1) Lipase, (2) α-glucosidase, and (3) Branching enzyme are added to a raw material flour, and the amount of lipase added is 1.0 × 10 per 1 g of raw material flour. -2 ~1.0×10 2 U, and the amount of α-glucosidase added was 1.0 × 10 per 1 g of raw flour. -4 ~5.0×10 7 U, and the amount of branching enzyme added is 2.0 × 10 per 1 g of raw material flour. -16 ~4.0×10 5 The method according to [9] above, wherein U is

[11] (1) Lipase, (2) α-glucosidase, and (3) glucoamylase are added to a raw material flour, and the amount of lipase added is 1.0 × 10 per 1 g of raw material flour. -2 ~1.0×10 2 U, and the amount of α-glucosidase added was 1.0 × 10 per 1 g of raw flour. -4 ~5.0×10 7 U, and the amount of glucoamylase added is 1.0 × 10 per 1 g of raw material flour. -3 ~1.0×10 2 The method according to [9] above, wherein U is

[0009]

[12] A method for producing noodles, comprising adding (1) lipase, (2) α-glucosidase, (3) branching enzyme and / or glucoamylase, and (4) transglutaminase to raw material flour.

[13] (1) lipase, (2) α-glucosidase, (3) branching enzyme, and (4) transglutaminase are added to a raw material flour, and the amount of lipase added is 1.0 × 10 per 1 g of raw material flour. -2 ~1.0×10 2 U, and the amount of α-glucosidase added was 1.0 × 10 per 1 g of raw flour. -4 ~5.0×107 U, and the amount of branching enzyme added is 2.0 × 10 per 1 g of raw material flour. -16 ~4.0×10 5 U, and the amount of transglutaminase added is 1.0 × 10 per 1 g of raw material flour. -5 The method described in

[12] above, wherein the concentration is 1.0 × 10 U or less.

[14] (1) Lipase, (2) α-glucosidase, (3) glucoamylase, and (4) transglutaminase are added to a raw material flour, and the amount of lipase added is 1.0 × 10 per 1 g of raw material flour. -2 ~1.0×10 2 U, and the amount of α-glucosidase added was 1.0 × 10 per 1 g of raw flour. -4 ~5.0×10 7 U, and the amount of glucoamylase added is 1.0 × 10 per 1 g of raw material flour. -3 ~1.0×10 2 U, and the amount of transglutaminase added is 1.0 × 10 per 1 g of raw material flour. -5 The method described in

[12] above, wherein the concentration is 1.0 × 10 U or less.

[15] The method according to any one of the above [9] to

[14] , further comprising adding sodium L-ascorbate.

[16] The amount of sodium L-ascorbate added is 1.0 × 10 per gram of raw flour. -8 ~1.0×10 -1 The method according to

[15] above, wherein

[17] The preparation according to any one of [1] to [8] above, which is for suppressing aging of noodles, deterioration of texture, and deterioration of loosening properties.

[18] The method according to any one of [9] to

[16] above, which is a method for producing noodles in which aging of the noodles, deterioration of the texture, and deterioration of the loosening properties are suppressed. [Effects of the Invention]

[0010] According to the present invention, by adding a combination of the specific enzymes of the present invention to the raw material flour, it is possible to produce noodles in which deterioration of noodle texture and loosening properties due to changes over time are suppressed. The noodle production method of the present invention in which a combination of the specific enzymes is added to the raw material also provides excellent noodle-making properties. DETAILED DESCRIPTION OF THE INVENTION

[0011] The present invention will be described in detail below. The enzyme preparation of the present invention contains (1) lipase, (2) α-glucosidase, and (3) branching enzyme and / or glucoamylase. The enzyme preparation of the present invention may further contain (4) transglutaminase. That is, the enzyme preparation of the present invention may be an enzyme preparation containing (1) lipase, (2) α-glucosidase, (3) branching enzyme and / or glucoamylase, and (4) transglutaminase. The enzyme preparation of the present invention can be used in the noodle production method of the present invention described below.

[0012] Noodles are generally made by kneading grain flour and the like. In the present invention, examples of "noodles" include soba noodles, udon noodles, Chinese noodles, pasta, rice flour noodles, and gyoza wrappers, with soba noodles, udon noodles, and Chinese noodles being preferred. In the present invention, the term "noodles" is a concept that includes chilled noodles (refrigerated noodles), frozen noodles, fresh noodles, semi-fresh noodles, boiled noodles, steamed noodles, fried noodles, dried noodles, freeze-dried noodles, etc.

[0013] The lipase used in the present invention is an enzyme that catalyzes the reaction of hydrolyzing fatty acid esters into fatty acids and glycerin. Examples of lipases include enzymes commercially available from Amano Enzyme Co., Ltd. under the trade names "Lipase A "Amano" 6" and "Lipase AY "Amano"." In the present invention, the enzyme activity of lipase is measured by emulsifying 100 ml of olive oil and 150 ml of 2% PVA reagent solution to form a substrate, mixing 5 ml of substrate, 4 ml of McIlvaine buffer (pH 7.0), and 1 ml of enzyme solution, reacting at 37°C for 60 minutes, and after stopping the reaction, measuring the produced fatty acids by titration. The activity that liberates an acid equivalent to 1 μmol of liberated oleic acid is defined as 1 U (unit).

[0014] The α-glucosidase used in the present invention is an enzyme that hydrolyzes non-reducing terminal α-1,4-glucosidic bonds to produce α-glucose. Among α-glucosidases, transglucosidase is preferred. An example of an α-glucosidase is the enzyme commercially available from Amano Enzyme Co., Ltd. under the trade name "Transglucosidase L 'Amano'." In the present invention, the enzymatic activity of α-glucosidase is defined as 1 U (unit) when 1 ml of 1 mM α-methyl-D-glucoside is mixed with 1 ml of 0.02 M acetate buffer (pH 5.0), 0.5 ml of enzyme solution is added, and the mixture is allowed to react at 40°C for 60 minutes.

[0015] The branching enzyme used in the present invention is an enzyme that transfers part of the 1,4-α-D-glucan chain to the 6-OH group of the acceptor 1,4-α-D-glucan, producing a branched structure with α-1,6 bonds similar to amylopectin or glycogen. An example is the food enzyme "Branching Enzyme" manufactured by Nagase & Co., Ltd. In the present invention, the enzymatic activity of the branching enzyme was measured by adding 50 μl of the enzyme solution dissolved in 0.1 M phosphate buffer (pH 7.0) to 50 μl of 0.1% amylose B (Nacalai Tesque) dissolved in 0.08 M phosphate buffer (pH 7.0). After incubation at 50°C for 30 minutes, 2 ml of iodine reagent (0.5 ml of a solution prepared by dissolving 0.26 g I2 and 0.26 g KI in 10 ml Milli-Q water and mixing it with 0.5 ml of 1 N HCl, and diluting the solution to 130 ml) was added, and the absorbance at 660 nm was measured. One unit (U) of enzyme is defined as the amount of enzyme that reduces the absorbance at 660 nm by 1% per minute of reaction in this reaction system.

[0016] The glucoamylase used in the present invention is an enzyme that exo-cleaves the α-1,4 glucoside chains of amylose and amylopectin, which are components of starch, from the non-reducing end to glucose units, and also degrades the α-1,6 bonds in the branched chains of amylopectin. In a preferred embodiment of the present invention, the glucoamylase is a glucoamylase that can be added to foods. Examples of glucoamylases that can be added to foods include, but are not limited to, "Sake Brewing Glucoamylase 'Amano' SD" (manufactured by Amano Enzyme Inc.), "Gluczyme AF6" (manufactured by Amano Enzyme Inc.), and "Glucozyme #20000" (manufactured by Nagase & Co., Ltd.). In the present invention, the enzymatic activity of glucoamylase is defined as 1 U (unit) of enzyme that produces a reducing power equivalent to 10 mg of glucose from soluble starch in 30 minutes under conditions of pH 5.0 and 40°C.

[0017] The transglutaminase used in the present invention is an enzyme that has the activity of catalyzing an acyl transfer reaction in which a glutamine residue in a protein or peptide serves as a donor and a lysine residue serves as an acceptor, and is known to be derived from a variety of origins, including mammals, fish, and microorganisms. The transglutaminase used in the present invention is not particularly limited in origin as long as it has the above-mentioned activity, and transglutaminases of any origin can be used, and recombinant enzymes can also be used. The transglutaminase used in the present invention may be a commercially available product; specifically, microbial transglutaminases commercially available from Ajinomoto Co., Inc. under the trade name "Activa" TG can be used alone or in combination. In the present invention, the enzymatic activity of transglutaminase is measured by reacting transglutaminase in a reaction system using benzyloxycarbonyl-L-glutamylglycine and hydroxylamine as substrates in a Tris buffer solution at 37°C and pH 6.0, forming an iron complex with the hydroxamic acid produced in the presence of trichloroacetic acid, measuring the absorbance at 525 nm, and determining the amount of hydroxamic acid using a calibration curve. One unit (1 U) is defined as the amount of enzyme required to produce 1 μmole of hydroxamic acid per minute (see Japanese Patent Laid-Open No. 27471 / 1989).

[0018] In the enzyme preparation of the present invention, the content of α-glucosidase is, for example, 2.5 × 10 per 1 U of lipase. -5 ~1.3×10 7 U, preferably 2.5 x 10 -3 ~1.3×10 5 U, more preferably 2.5 × 10 -2 ~1.3×10 3 U, more preferably 5.0 × 10 -2 ~1.3×10 2 It's U.

[0019] When the enzyme preparation of the present invention contains a branching enzyme, the content of the branching enzyme is, for example, 5.0 × 10 per 1 U of lipase. -17 ~1.0×10 5 U, preferably 5.0 x 10 -13 ~1.0×10 4 U, more preferably 5.0 × 10 -9 ~1.0×10 3 U, more preferably 5.0 × 10 -5 ~1.0×10 2 It's U.

[0020] When glucoamylase is contained in the enzyme preparation of the present invention, the content of glucoamylase is, for example, 2.5 × 10 per 1 U of lipase. -4 ~2.5×10U, preferably 5.0×10 -4 ~2.5×10U, more preferably 1.0×10 -3 ~2.5 × 10 U, more preferably 5.0 × 10-3 ~2.5×10U.

[0021] When the enzyme preparation of the present invention contains both a branching enzyme and a glucoamylase, The content of branching enzyme is, for example, 2.5 x 10 per 1 U of lipase. -17 ~5.0×10 4 U, preferably 2.5 x 10 -13 ~5.0×10 3 U, more preferably 2.5 × 10 -9 ~5.0×10 2 U, more preferably 2.5 × 10 -5 ~5.0 × 10 U, and The glucoamylase content is, for example, 1.3 x 10 per 1 U of lipase. -4 ~1.3×10U, preferably 2.5×10 -4 ~1.3×10U, more preferably 5.0×10 -4 ~1.3 × 10 U, more preferably 2.5 × 10 -3 ~1.3×10U.

[0022] When the enzyme preparation of the present invention contains transglutaminase, the content of transglutaminase is, for example, 2.5 × 10 per 1 U of lipase. -6 ~2.5U, preferably 5.0 × 10 -6 ~1.3U, more preferably 1.0 × 10 -5 ~2.5×10 -1 U, more preferably 2.0 × 10 -5 ~2.5×10 -2 It's U.

[0023] The enzyme preparation of the present invention preferably further contains sodium L-ascorbate, which further improves the texture and loosening properties of the noodles.

[0024] When sodium L-ascorbate is contained in the enzyme preparation of the present invention, the content of sodium L-ascorbate is, for example, 2.5 × 10 per 1 U of lipase.-9 ~2.5×10 -2 g, preferably 2.5 × 10 -8 ~1.0×10 -2 g, more preferably 2.5 × 10 -7 ~1.0×10 -2 g, and more preferably 2.5 × 10 -6 ~1.0×1.0 -2 g.

[0025] The enzyme preparation of the present invention can be produced, for example, by mixing (1) lipase, (2) α-glucosidase, and (3) branching enzyme and / or glucoamylase (and optionally sodium L-ascorbate). The enzyme preparation of the present invention may be a single preparation obtained by simultaneously formulating (1) lipase, (2) α-glucosidase, and (3) branching enzyme and / or glucoamylase (and optionally sodium L-ascorbate), or it may be a preparation in which (1) lipase, (2) α-glucosidase, and (3) branching enzyme and / or glucoamylase (and optionally sodium L-ascorbate) are separately formulated and used simultaneously or at different times.

[0026] When the enzyme preparation of the present invention contains transglutaminase, it can be produced by mixing, for example, (1) lipase, (2) α-glucosidase, (3) branching enzyme and / or glucoamylase, and (4) transglutaminase (and optionally sodium L-ascorbate). The enzyme preparation of the present invention may be a single preparation obtained by simultaneously formulating (1) lipase, (2) α-glucosidase, (3) branching enzyme and / or glucoamylase, and (4) transglutaminase (which may further optionally contain sodium L-ascorbate), or it may be a preparation in which (1) lipase, (2) α-glucosidase, (3) branching enzyme and / or glucoamylase, and (4) transglutaminase (which may further optionally contain sodium L-ascorbate) are separately formulated and used simultaneously or at staggered times.

[0027] In addition to the above-mentioned components, the enzyme preparation of the present invention may contain other enzymes or additives (e.g., emulsifiers, chelating agents such as citrates and polymeric phosphates, reducing agents such as glutathione and cysteine, alginic acid, alkaline water, trisodium phosphate, colorants, acidulants, flavorings, thickeners such as sodium alginate and thickening polysaccharides, and other food additives such as salt), as long as the effects of the present invention are not impaired. The enzyme preparation of the present invention may be in any form, such as a liquid, paste, granules, or powder.

[0028] The present invention also relates to a method for producing noodles, which comprises adding (1) lipase, (2) α-glucosidase, and (3) branching enzyme and / or glucoamylase to raw material flour. The noodle production method of the present invention may further include (4) adding transglutaminase to the raw material flour. That is, the noodle production method of the present invention may be a noodle production method that includes adding (1) lipase, (2) α-glucosidase, (3) branching enzyme and / or glucoamylase, and (4) transglutaminase to raw material flour. In the production method of the present invention, examples of "noodles," "lipase," "α-glucosidase," "branching enzyme," "glucoamylase," and "transglutaminase" are those described above, and the definitions of the activities of each enzyme are as described above.

[0029] In the production method of the present invention, the amount of lipase added is, for example, 1.0 × 10 per 1 g of raw material flour. -2 ~1.0×10 2 U, preferably 2.0 x 10 -2 ~5.0 × 10 U, more preferably 5.0 × 10 -2 ~2.5 × 10 U, more preferably 1.0 × 10 -1 ~1.0×10U.

[0030] In the production method of the present invention, the amount of α-glucosidase added is, for example, 1.0 × 10 per 1 g of raw material flour. -4 ~5.0×10 7 U, preferably 1.0 x 10 -3 ~5.0×10 5 U, more preferably 1.0 × 10 -2 ~5.0×10 3 U, more preferably 5.0 × 10 -2 ~5.0×10 2 It's U.

[0031] In the production method of the present invention, when a branching enzyme is used, the amount of branching enzyme added is, for example, 2.0 × 10 per 1 g of raw material flour. -16 ~4.0×10 5 U, preferably 2.0 x 10 -12 ~4.0×10 4 U, more preferably 2.0 × 10 -8 ~4.0×10 3 U, more preferably 2.0 × 10 -4 ~4.0×10 2 It's U.

[0032] When glucoamylase is used in the production method of the present invention, the amount of glucoamylase added is, for example, 1.0 × 10 per 1 g of raw material flour. -3 ~1.0×10 2 U, preferably 2.0 x 10 -3 ~1.0×10 2 U, more preferably 4.0 × 10 -3 ~1.0×10 2 U, more preferably 2.0 × 10 -2 ~1.0×102 It's U.

[0033] In the production method of the present invention, when both a branching enzyme and a glucoamylase are used, The amount of branching enzyme added is, for example, 1.0 x 10 per 1 g of raw material flour. -16 ~2.0×10 5 U, preferably 1.0 x 10 -12 ~2.0×10 4 U, more preferably 1.0 × 10 -8 ~2.0×10 3 U, more preferably 1.0 × 10 -4 ~2.0×10 2 U, and The amount of glucoamylase added is, for example, 5.0 x 10 per 1 g of raw material flour. -4 ~5.0×10U, preferably 1.0×10 -3 ~5.0 × 10 U, more preferably 2.0 × 10 -3 ~5.0 × 10 U, more preferably 1.0 × 10 -2 ~5.0×10U.

[0034] When transglutaminase is used in the production method of the present invention, the amount of transglutaminase added is, for example, 1.0 × 10 per 1 g of raw material flour. -5 ~1.0×10U, preferably 2.0×10 -5 ~5.0U, more preferably 4.0×10 -5 ~2.5U, more preferably 8.0 × 10 -5 ~1.0U.

[0035] In the production method of the present invention, it is preferable to further add sodium L-ascorbate, which further improves the texture and loosening properties of the noodles.

[0036] In the production method of the present invention, the amount of sodium L-ascorbate added is, for example, 1.0 × 10 -8 ~1.0×10 -1 g, preferably 1.0 × 10-7 ~5.0×10 -2 g, more preferably 1.0 × 10 -6 ~2.5×10 -2 g, and more preferably 2.0 × 10 -6 ~1.0×10 -2 g.

[0037] In the production method of the present invention, (1) lipase, (2) α-glucosidase, and (3) branching enzyme and / or glucoamylase (and optionally, sodium L-ascorbate) can be added to the raw material flour at any stage of the noodle production process. That is, they can be added to the raw material flour, or they can be added when mixing the raw material flour with other additives, or they can be kneaded into a noodle dough made by adding water to the raw material flour, or they can be sprinkled on the noodle dough. The order in which (1) lipase, (2) α-glucosidase, and (3) branching enzyme and / or glucoamylase (and optionally, sodium L-ascorbate) are added to the noodles is not particularly important; one or more of these can be added first, and then the rest can be added, but it is preferable to add them simultaneously.

[0038] When transglutaminase is used in the production method of the present invention, (1) lipase, (2) α-glucosidase, (3) branching enzyme and / or glucoamylase, and (4) transglutaminase (and optionally sodium L-ascorbate) can be added to the raw material flour at any stage of the noodle production process. That is, they can be added to the raw material flour, added when mixing the raw material flour with other additives, kneaded into a noodle dough prepared by adding water to the raw material flour, or sprinkled on top of the noodle dough. The order in which (1) lipase, (2) α-glucosidase, (3) branching enzyme and / or glucoamylase, and (4) transglutaminase (and optionally sodium L-ascorbate) are added to the noodles is not particularly important; one or more of these can be added first, followed by the rest, but it is preferable to add them simultaneously.

[0039] In this specification, "raw material flour" includes flour obtained by grinding grains such as rice, wheat, millet, buckwheat, barnyard millet, soybeans, and corn, which are used as raw materials for noodles. Examples include wheat flour, barley flour, rye flour, rice flour, and corn flour. When wheat flour is used, any variety of wheat flour may be used, such as ordinary wheat, spelt wheat, or durum wheat, and strong flour, semi-strong flour, medium-strength flour, weak flour, or durum semolina flour may also be used. "Raw material flour" also includes sugars such as dextrin, starch, and modified starch; seasonings such as meat extract; proteins such as vegetable proteins, gluten, egg whites, egg yolks, gelatin, and casein; protein hydrolysates; and partial protein hydrolysates. These contain carbohydrates, proteins, or lipids as their main components and can serve as substrates for the enzymes used in the present invention.

[0040] In the production method of the present invention, other enzymes and additives than lipase, α-glucosidase, branching enzyme, glucoamylase, and transglutaminase (for example, emulsifiers, chelating agents such as citrates and polymeric phosphates, reducing agents such as glutathione and cysteine, alginic acid, kansui, trisodium phosphate, colorants, acidulants, flavorings, thickeners such as sodium alginate and thickening polysaccharides, and other food additives such as salt) may be added as long as they do not inhibit the effects of the present invention.

[0041] The reaction time for each enzyme reaction is not particularly limited as long as it is long enough for the enzyme to act on the substrate substance, and can be very short or long, but a practical reaction time is preferably 5 minutes to 24 hours. The reaction temperature can also be any temperature within the range in which the enzyme maintains its activity, but a practical temperature range of 0 to 80°C is preferred. In other words, sufficient reaction time can be achieved by going through the usual noodle-making process.

[0042] The production method of the present invention makes it possible to produce noodles in which deterioration of noodle texture and loosening properties due to changes over time are suppressed. Furthermore, the production method of the present invention also provides excellent noodle-making properties during production. In the present invention, "noodle aging" is defined as deterioration over time caused by starch retrogradation, resulting in roughness on the noodle surface and a hard, brittle texture. "Noodle aging" can be evaluated in accordance with the sensory evaluation in the test examples described below. In the present invention, "texture" is defined as the desirable balance of noodle hardness, elasticity, stickiness, and core texture. The "texture" can be evaluated in accordance with the sensory evaluation in the test examples described below. In the present invention, "disentangling property" is defined as the ease with which the food can be disentangled when disentangled with chopsticks. The "disentangling property" can be evaluated according to the test examples described below. For example, it can be evaluated by pouring water, etc., in an amount of about 10 to 30% of the boiled noodle weight, on the noodles and measuring the time (seconds) until the noodles disentangle. In the present invention, "noodle-making properties" is defined as the ease with which the noodle sheet can be handled when producing noodles. "Noodle-making properties" can be evaluated based on the physical properties of noodle sheets made using a noodle-making machine (for example, a small continuous rolling noodle-making machine) in accordance with the test examples described below. [Example]

[0043] The present invention will be explained in more detail below with reference to test examples, but the present invention is not limited to these examples.

[0044] [Test Example 1] Buckwheat flour (Senjuyuki, manufactured by Nikkoku Flour Milling Co., Ltd.), starch (Actobody A900, manufactured by J-Oil Mills), all-purpose flour (Shiratsubaki, manufactured by Nisshin Flour Milling Co., Ltd.), wheat gluten (A-Glu G, manufactured by Glico Nutrition Foods Co., Ltd.), and thickening polysaccharide (Kombu Acid 501, manufactured by Kimika Co., Ltd.) in the proportions listed in Table 1, along with the enzyme preparation in the amount listed in Table 2, were placed in a bag and mixed by hand shaking. The resulting mixture (1 kg) was placed in a vertical kneading machine (2 kg vacuum kneading machine, manufactured by Ohtake Noodle Manufacturing Co., Ltd.) and mixed for 1 minute using a mixer. City water in the proportions listed in Table 1 was added over 30 seconds, dispersed, and then kneaded in the vertical kneading machine for 5 minutes (2 minutes at 100 rpm, 3 minutes at 50 rpm). After kneading, the ingredients were loosely mixed, combined, and rolled in a noodle making machine (small continuous rolling noodle making machine, manufactured by Sodick Co., Ltd.) to obtain buckwheat dough. The obtained soba dough was cut using a #18 cutting blade, and 100 g of the cut noodle strands (fresh soba) were wrapped in packaging vinyl and frozen at -25°C to produce frozen fresh soba. The frozen soba noodles were boiled in hot water for 1 minute 30 seconds, then drained, cooled, and drained. They were then refrigerated at 8°C overnight, after which a sensory evaluation and evaluation of loosening properties were carried out. The enzyme preparation of Comparative Example 2 is an enzyme preparation containing only lipase, as in Prior Art 3, and the enzyme preparation of Comparative Example 3 is a preparation containing lipase and amylase, as in Prior Art 2.

[0045] The sensory evaluation was carried out by three experienced panelists according to the following criteria, and the evaluation was decided after discussion among all panelists. (Texture) ◎: The balance of noodle hardness, elasticity, stickiness, and core texture is particularly excellent and very desirable. Good: The noodles have an excellent balance of firmness, elasticity, stickiness, and core texture, making them desirable. ×: The balance of noodle hardness, elasticity, stickiness, and core texture is poor and undesirable. (Noodle aging) ⊚: The roughness of the noodle surface and the gritty texture are significantly suppressed, which is very desirable. ×: The noodle surface is rough and has a gritty texture, which is undesirable.

[0046] The loosening property was measured by pouring 10% of the boiled noodle weight into water and measuring the time (seconds) until the noodles loosened.

[0047] In the above-mentioned soba dough production process, the noodle-making properties were evaluated based on the physical properties of the noodle bands produced using a small continuous rolling noodle-making machine, according to the following criteria. (Noodle making) ◎: The noodle dough has just the right amount of firmness and elasticity, and it sticks little to the roll, making it very easy to handle. 〇: The noodle dough has just the right amount of firmness and elasticity, and is easy to handle with minimal adhesion to the roll. △: The balance between the hardness and elasticity of the noodle sheet is poor, and it sticks to the roll, making it somewhat difficult to handle.

[0048] [Table 1]

[0049] [Table 2]

[0050] The results are shown in Table 3. No effect was observed in terms of loosening properties, inhibition of noodle aging, or improvement of texture for the soba noodles produced using the enzyme preparation of Comparative Example 2. The soba noodles produced using the enzyme preparation of Comparative Example 3 did not improve loosening properties, had a stretchy and soft texture after boiling, and did not exhibit any effect in inhibiting noodle aging. On the other hand, the soba noodles produced using the enzyme preparations of Examples 1, 2 and 3 showed improved loosening properties, and were significantly effective in inhibiting noodle aging and improving texture. Furthermore, in the soba manufacturing process, the soba dough prepared using the enzyme preparation of Comparative Example 2 was not significantly different from that of Comparative Example 1 (control) to which no enzyme was added, but the soba dough prepared using the enzyme preparation of Comparative Example 3 was slightly sticky. On the other hand, the soba dough prepared using the enzyme preparations of Examples 1, 2, and 3 was smooth.

[0051] [Table 3]

[0052] [Test Example 2] All-purpose flour (Shiratsubaki, manufactured by Nisshin Flour Milling Co., Ltd.), starch (Actobody A900, manufactured by J-Oil Mills), wheat gluten (A-Glu G, manufactured by Glico Nutrition Foods Co., Ltd.), and thickening polysaccharide (Kombu Acid 501, manufactured by Kimika Co., Ltd.) in the proportions listed in Table 4, along with the enzyme preparation in the amount listed in Table 5, were placed in a bag and mixed by shaking by hand. The resulting mixture (1 kg) was placed in a vertical kneading machine (vacuum kneading machine, manufactured by Ohtake Noodle Manufacturing Co., Ltd.) and mixed for 1 minute using a mixer. A saline solution prepared by mixing city water and salt in the proportions listed in Table 4 was added over 30 seconds, dispersed, and then kneaded for 5 minutes using the vertical kneading machine. After kneading, the mixture was loosely mixed, combined, rested for 30 minutes, and rolled in a noodle making machine (small continuous rolling noodle making machine, manufactured by Sodick Co., Ltd.) to obtain udon dough. The obtained udon dough was cut using a #10 cutting blade, and 150 g of the cut noodle strands (fresh udon) were wrapped in packaging vinyl and frozen at -25°C to produce frozen fresh udon. The frozen raw udon noodles were boiled in hot water for 7 minutes and 30 seconds, then drained, cooled, and drained. They were then refrigerated at 8°C overnight, after which a sensory evaluation and evaluation of the ease of separation were carried out.

[0053] The sensory evaluation was carried out by three experienced panelists according to the following criteria, and the evaluation was decided after discussion among all panelists. (Texture) Good: The noodles have an excellent balance of firmness, elasticity, stickiness, and core texture, making them desirable. ×: The balance of noodle hardness, elasticity, stickiness, and core texture is poor and undesirable. (Noodle aging) ⊚: The roughness of the noodle surface and the crumbly texture are significantly suppressed, which is very desirable. ×: The noodle surface is rough and the crumbly texture is apparent, which is undesirable.

[0054] The loosening property was measured by pouring 30% of the boiled noodles' weight with noodle soup and measuring the time (seconds) until the noodles loosened.

[0055] In the above-mentioned udon dough production process, the noodle-making properties were evaluated based on the physical properties of the noodle bands produced using a small continuous rolling noodle-making machine, according to the following criteria. (Noodle making) ◎: The noodle dough has just the right amount of firmness and elasticity, and it sticks little to the roll, making it very easy to handle. 〇: The noodle dough has just the right amount of firmness and elasticity, and is easy to handle with minimal adhesion to the roll.

[0056] [Table 4]

[0057] [Table 5]

[0058] The results are shown in Table 6. The udon noodles produced using the enzyme preparation of Example 4 showed improved loosening properties, and were significantly effective in inhibiting noodle aging and improving texture. Furthermore, the udon dough of Comparative Example 4 (control), in which no enzyme was added during the udon manufacturing process, was a slightly crumbly and tattered noodle sheet when it was broken into pieces. After resting, it became a flexible noodle sheet with a smooth surface. On the other hand, the udon dough using the enzyme preparation of Example 4 had few lumps when it was broken into pieces, and water penetrated evenly. When it was broken into pieces, it became a flexible noodle sheet with moderate stickiness. After resting, it became a flexible noodle sheet with a smooth surface.

[0059] [Table 6]

[0060] [Test Example 3] Buckwheat flour (Senjuyuki, manufactured by Nikkoku Flour Milling Co., Ltd.), starch (Actobody A900, manufactured by J-Oil Mills), all-purpose flour (Shiratsubaki, manufactured by Nisshin Flour Milling Co., Ltd.), wheat gluten (A-Glu G, manufactured by Glico Nutrition Foods Co., Ltd.), and thickening polysaccharide (Kombu Acid 501, manufactured by Kimika Co., Ltd.) in the proportions listed in Table 7, along with the enzyme preparation in the amount listed in Table 8, were placed in a bag and mixed by hand shaking. The resulting mixture (1 kg) was placed in a vertical kneading machine (2 kg vacuum kneading machine, manufactured by Ohtake Noodle Machinery Co., Ltd.) and mixed for 1 minute using a mixer. City water in the proportions listed in Table 7 was added over 30 seconds, dispersed, and then kneaded in the vertical kneading machine for 5 minutes (2 minutes at 100 rpm, 3 minutes at 50 rpm). After kneading, the ingredients were loosely mixed, combined, and rolled in a noodle making machine (small continuous rolling noodle making machine, manufactured by Sodick Co., Ltd.) to obtain buckwheat dough. The obtained soba dough was cut using a #18 cutting blade, and 100 g of the cut noodle strands (fresh soba) were wrapped in packaging vinyl and frozen at -25°C to produce frozen fresh soba. The frozen soba noodles were boiled in hot water for 1 minute 30 seconds, then drained, cooled, and drained. They were then refrigerated at 8°C overnight, after which a sensory evaluation and evaluation of loosening properties were carried out.

[0061] The sensory evaluation was carried out by three experienced panelists according to the following criteria, and the evaluation was decided after discussion among all panelists. (Texture) ◎: The balance of noodle hardness, elasticity, stickiness, and core texture is particularly excellent and very desirable. Good: The noodles have an excellent balance of firmness, elasticity, stickiness, and core texture, making them desirable. ×: The balance of noodle hardness, elasticity, stickiness, and core texture is poor and undesirable. (Noodle aging) ⊚: The roughness of the noodle surface and the gritty texture are significantly suppressed, which is very desirable. ×: The noodle surface is rough and has a gritty texture, which is undesirable.

[0062] The loosening property was measured by pouring 10% of the boiled noodle weight into water and measuring the time (seconds) until the noodles loosened.

[0063] In the above-mentioned soba dough production process, the noodle-making properties were evaluated based on the physical properties of the noodle bands produced using a small continuous rolling noodle-making machine, according to the following criteria. (Noodle making) ◎: The noodle dough has just the right amount of firmness and elasticity, and it sticks little to the roll, making it very easy to handle. 〇: The noodle dough has just the right amount of firmness and elasticity, and is easy to handle with minimal adhesion to the roll. △: The balance between the hardness and elasticity of the noodle sheet is poor, and it sticks to the roll, making it somewhat difficult to handle.

[0064] [Table 7]

[0065] [Table 8]

[0066] The results are shown in Table 9. The soba noodles produced using the enzyme preparations of Examples 5 and 6 showed improved loosening properties compared to Comparative Example 5 (control), in which no enzyme was used, and were significantly more effective in inhibiting noodle aging and improving texture. Furthermore, in the soba manufacturing process, the soba dough prepared using the enzyme preparations of Examples 5 and 6 was smoother than that prepared in Comparative Example 5 (control) in which no enzyme was added.

[0067] [Table 9] [Industrial Applicability]

[0068] The present invention can provide a method for producing noodles that suppresses noodle aging, deterioration in texture, and deterioration in loosening properties due to changes over time, and an enzyme preparation for producing such noodles.

Claims

1. An enzyme preparation for modifying noodles, comprising (1) lipase, (2) α-glucosidase, and (3) a branching enzyme, wherein the α-glucosidase content is 7.5 U per 1 U of lipase, and the branching enzyme content is 0.09 U per 1 U of lipase.

2. An enzyme preparation for modifying noodles, comprising (1) lipase, (2) α-glucosidase, and (3) glucoamylase, wherein the α-glucosidase content is 7.5 U per 1 U of lipase, and the glucoamylase content is 1.35 U per 1 U of lipase.

3. An enzyme preparation for modifying noodles, comprising (1) lipase, (2) α-glucosidase, (3) branching enzyme, and (4) transglutaminase, wherein the α-glucosidase content is 2.5 U per 1 U of lipase, the branching enzyme content is 0.03 U per 1 U of lipase, and the transglutaminase content is 0.00575 U per 1 U of lipase.

4. An enzyme preparation for modifying noodles, comprising (1) lipase, (2) α-glucosidase, (3) glucoamylase, and (4) transglutaminase, wherein the α-glucosidase content is 2.5 U per 1 U of lipase, the glucoamylase content is 0.45 U per 1 U of lipase, and the transglutaminase content is 0.00575 U per 1 U of lipase.

5. The preparation according to any one of claims 1 to 4, further comprising sodium L-ascorbate, the content of sodium L-ascorbate being 2.5 x 10 -4 to 2.5 x 10 -2 g per 1 U of lipase.

6. A method for producing noodles, comprising adding (1) lipase, (2) α-glucosidase, and (3) a branching enzyme to a raw material flour, wherein the amount of lipase added is 4 U per 1 g of raw material flour, the amount of α-glucosidase added is 30 U per 1 g of raw material flour, and the amount of branching enzyme added is 0.36 U per 1 g of raw material flour.

7. A method for producing noodles, comprising adding (1) lipase, (2) α-glucosidase, and (3) glucoamylase to a raw material flour, wherein the amount of lipase added is 4 U per 1 g of raw material flour, the amount of α-glucosidase added is 30 U per 1 g of raw material flour, and the amount of glucoamylase added is 5.4 U per 1 g of raw material flour.

8. A method for producing noodles, comprising adding (1) lipase, (2) α-glucosidase, (3) a branching enzyme, and (4) transglutaminase to a raw material flour, wherein the amount of lipase added is 4 U per 1 g of raw material flour, the amount of α-glucosidase added is 10.0 U per 1 g of raw material flour, the amount of branching enzyme added is 0.12 U per 1 g of raw material flour, and the amount of transglutaminase added is 0.023 U per 1 g of raw material flour.

9. A method for producing noodles, comprising adding (1) lipase, (2) α-glucosidase, (3) glucoamylase, and (4) transglutaminase to a raw material flour, wherein the amount of lipase added is 4 U per 1 g of raw material flour, the amount of α-glucosidase added is 10.0 U per 1 g of raw material flour, the amount of glucoamylase added is 1.8 U per 1 g of raw material flour, and the amount of transglutaminase added is 0.023 U per 1 g of raw material flour.

10. The method according to any one of claims 6 to 9, further comprising adding sodium L-ascorbate in an amount of 1.0 x 10 -3 to 1.0 x 10 -1 g per 1 g of raw material flour.

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