Food-grade enzyme composition

The food-grade enzyme composition, devoid of impurities and with controlled A/P and E/P ratios, addresses the issue of inadequate flavor and texture in conventional enzyme-treated foods by enhancing umami and smoothness through peptidase activity.

JP7844441B2Active Publication Date: 2026-04-13NAGASE VIITA CO LTD
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-03-30
Publication Date
2026-04-13

AI Technical Summary

Technical Problem

Conventional enzyme compositions for food production contain impurities such as amylase, leading to inadequate flavor and texture in treated foods.

Method used

A food-grade enzyme composition is developed that is substantially free of impurities, specifically designed to have minimal amylase and protease activities, utilizing peptidases, preferably aminopeptidases derived from bacteria like Streptomyces septatus, with controlled A/P and E/P ratios to enhance flavor and texture.

Benefits of technology

The enzyme composition effectively improves the flavor and texture of processed foods by increasing free amino acids and reducing bitterness, astringency, and off-flavors, resulting in enhanced umami taste and smoother textures.

✦ Generated by Eureka AI based on patent content.

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Abstract

Provided is an enzyme composition that has little foreign substances and enables the production of a food having excellent flavor and texture. This enzyme composition for a food contains a peptidase and has substantially no foreign activity.
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Description

Technical Field

[0001] The present invention relates to an enzyme composition for food.

Background Art

[0002] Protease is an enzyme that hydrolyzes peptide bonds present in proteins and polypeptides, and is used in the production of extracts derived from meat, softening of meat, production of amino acids, etc. Depending on its activity, protease is further classified into proteinase that cleaves the inside of the polypeptide chain, aminopeptidase that cleaves the polypeptide chain in order from the amino terminus, and carboxypeptidase that cleaves in order from the carboxy terminus. Patent Document 1 discloses a kind of aminopeptidase.

[0003] Patent Document 2 discloses that when treating egg yolk with protease, the change over time of the egg yolk-treated product can be suppressed by using an alkaline protease having no amylase activity.

Prior Art Documents

Patent Documents

[0004]

Patent Document 1

Patent Document 2

Summary of the Invention

Problems to be Solved by the Invention

[0005] Conventional enzyme compositions containing protease contain impurities such as amylase, and the flavor and texture of the food after enzyme treatment were not sufficient. An object of the present invention is to provide an enzyme composition capable of producing a food with few impurities and excellent flavor and texture.

Means for Solving the Problems

[0006] The inventors focused on impurities contained in enzyme compositions and completed the present invention. Specifically, the present invention relates to a food-grade enzyme composition containing peptidase that is substantially free of impurity activity.

[0007] It is preferable that the interfering activity is amylase activity or protease activity.

[0008] The aforementioned food enzyme composition preferably has an A / P ratio of 0.1 or less, where A represents amylase activity and P represents peptidase activity.

[0009] The aforementioned food enzyme composition preferably has an E / P ratio of 0.3 or less, where E represents protease activity and P represents peptidase activity.

[0010] It is preferable that the peptidase is an aminopeptidase.

[0011] It is preferable that the peptidase is derived from bacteria.

[0012] It is preferable that the bacteria are actinomycetes.

[0013] The aforementioned food enzyme composition is preferably for the production of processed meat products, processed seafood products, processed egg products, processed dairy products, processed plant products, insect products, or seasonings.

[0014] Furthermore, the present invention relates to a method for producing food, which includes a step of processing food materials with the aforementioned food enzyme composition.

[0015] The food ingredients are preferably meat, seafood, eggs, milk, plants, insects, or microbial cultures.

[0016] Furthermore, the present invention relates to a food product containing the aforementioned enzyme composition for food.

[0017] The aforementioned food is preferably selected from the group consisting of meat extract, seafood extract, custard sauce, custard cream, processed milk, soy products, insect products, and seasonings.

Advantages of the Invention

[0018] Since the enzyme composition for food of the present invention substantially has no contaminating activity, it can be used for producing foods excellent in flavor and texture.

Brief Description of the Drawings

[0019] [Figure 1] It shows the amount of free amino acids after enzymatic treatment of beef extract. [Figure 2] It shows the viscosity of custard cream produced using enzymatically treated egg yolk.

Modes for Carrying Out the Invention

[0020] <<Enzyme Composition for Food>> The enzyme composition for food of the present invention contains peptidase and is characterized by substantially having no contaminating activity.

[0021] <Peptidase> Peptidase is an enzyme that sequentially hydrolyzes peptide bonds of polypeptide chains constituting proteins from the terminal. Peptidases include aminopeptidase that sequentially hydrolyzes from the amino terminus, carboxypeptidase that sequentially hydrolyzes from the carboxy terminus, dipeptidase that hydrolyzes amino acids from the polypeptide chain by dimers, dipeptidyl peptidase, tripeptidyl peptidase that hydrolyzes amino acids from the polypeptide chain by trimers, and the like. Among these, aminopeptidase and carboxypeptidase are preferred, and aminopeptidase is more preferred.

[0022] The origin of peptidase is not particularly limited, and examples include those derived from microorganisms, animals, and plants. From the viewpoint of easy availability, those derived from microorganisms are preferred. Examples of microorganisms include bacteria and fungi, and bacteria are preferred. Examples of bacteria include actinomycetes and Aspergillus.

[0023] Actinomycetes include those belonging to the genera Streptomyces, Corynebacterium, Mycobacterium, Rhodococcus, and Micrococcus. Microorganisms of the genus Streptomyces include Streptomyces septatus, Streptomyces coelicolor, and Streptomyces cinnamoneus. Among these, it is more preferable that the product is derived from the genus Streptomyces, even more preferable that it is derived from Streptomyces septatus, and particularly preferable that it is an aminopeptidase derived from Streptomyces septatus.

[0024] The peptidase is preferably a polypeptide of the following (A), (B), or (C). (A) Polypeptide containing the amino acid sequence shown in Sequence ID No. 1; (B) A polypeptide exhibiting 85% or more sequence identity with the amino acid sequence shown in Sequence ID No. 1, and possessing the activity to sequentially hydrolyze the peptide bonds of the polypeptide chain from the terminal end; (C) A polypeptide having an amino acid sequence in which one or more amino acids are deleted, inserted, substituted and / or added in the amino acid sequence shown in Sequence ID No. 1, and which has the activity to sequentially hydrolyze the peptide bonds of a polypeptide chain from the terminal.

[0025] The sequence identity between the peptidase and the amino acid sequence shown in Sequence ID No. 1 is preferably 85% or higher, more preferably 90% or higher, even more preferably 95% or higher, even more preferably 98% or higher, and particularly preferably 99% or higher. The sequence identity of the amino acid sequence is expressed by comparing the amino acid sequence shown in Sequence ID No. 1 with the amino acid sequence to be evaluated, dividing the number of positions where amino acids match in both sequences by the total number of amino acids, and multiplying by 100.

[0026] The number of amino acids deleted, inserted, substituted and / or added is preferably 51 or less, more preferably 34 or less, even more preferably 17 or less, even more preferably 6 or less, and particularly preferably 3 or less.

[0027] Furthermore, the peptidase is preferably a polypeptide encoded by the DNA of (a), (b), or (c) below. (a) DNA containing the nucleotide sequence shown in Sequence ID No. 2; (b) DNA encoding a polypeptide that exhibits 85% or more sequence identity with the base sequence shown in Sequence ID No. 2 and has the activity to sequentially hydrolyze peptide bonds of proteins from the terminal end; (c) DNA encoding a polypeptide having the activity to sequentially hydrolyze the peptide bonds of a protein from the terminal side, comprising a base sequence in which one or more bases are deleted, inserted, substituted and / or added in the base sequence shown in Sequence ID No. 2.

[0028] The sequence identity between the DNA encoding the peptidase and the base sequence shown in Sequence ID No. 2 is preferably 85% or higher, more preferably 90% or higher, even more preferably 95% or higher, even more preferably 98% or higher, and particularly preferably 99% or higher. The sequence identity of the base sequences is expressed by comparing the base sequence shown in Sequence ID No. 2 with the base sequence to be evaluated, dividing the number of positions where bases match in both sequences by the total number of bases compared, and then multiplying by 100.

[0029] DNA encoding a polypeptide having the activity to sequentially hydrolyze the peptide bonds of a protein from the terminals, consisting of a base sequence in which one or more bases are deleted, inserted, substituted, and / or added, as shown in Sequence ID No. 2, can be prepared according to known gene modification methods.

[0030] The number of deleted, inserted, substituted and / or added bases is preferably 155 or less, more preferably 103 or less, even more preferably 51 or less, even more preferably 20 or less, and particularly preferably 10 or less.

[0031] The amino acid sequence shown in Sequence ID No. 1 and the nucleotide sequence shown in Sequence ID No. 2 are, respectively, the amino acid sequence of the aminopeptidase and the nucleotide sequence of its gene, found in Streptomyces sp.TH-2 strain (deposit number FERM P-173295).

[0032] The peptidase may be purified from the source plant, animal, or microorganism, or it may be mass-produced using genetic engineering technology and then purified. Furthermore, either wild-type peptidase or mutant peptidase may be used.

[0033] As a method for obtaining peptidase, if the peptidase accumulates within the cells of the source organism, the tissue and cells are disrupted, and a cell-free extract is obtained by centrifugation or other means. If necessary, the cell-free extract may be used as a starting material and purified using a combination of common protein purification methods such as salting out, ion exchange chromatography, gel filtration chromatography, hydrophobic chromatography, and affinity chromatography. If the peptidase is secreted and produced extracellularly by microorganisms, it can be purified from the culture medium.

[0034] The peptidase content in the food enzyme composition is not particularly limited, but it is preferable that the activity be 100 U or more per gram of the food enzyme composition, more preferably 500 U or more, and even more preferably 1000 U or more. The upper limit is preferable as it is higher and is not particularly limited, but generally it is 5000 U or less per gram of the food enzyme composition. Here, peptidase activity is defined as the enzyme activity that produces 1 μmol of para-nitroaniline per minute at 37°C, pH 8.0, and for 10 minutes, using L-leucyl-p-nitroanilide hydrochloride as a substrate.

[0035] <Interference Activity> The food-grade enzyme composition is substantially free of interfering activity. Interfering activity refers to enzyme activity other than peptidase activity, such as amylase activity, protease activity, and lipase activity. Among these, it is preferable that the composition does not have amylase activity, and it is more preferable that it does not have both amylase and protease activity. Here, "substantially free of interfering activity" means that when food is manufactured using the enzyme composition, food with superior flavor and texture can be produced.

[0036] Regarding the contaminating amylase activity, when amylase activity is A[U] and peptidase activity is P[U], it is preferable that the A / P ratio is 0.1 or less, more preferably 0.01 or less, and even more preferably 0.001 or less. Here, amylase activity is defined as the enzyme activity that reduces the absorbance at a wavelength of 660 nm by 1% per minute at 40°C, pH 6.0, and 10 minutes using potato starch as a substrate, with purified water as the control.

[0037] Furthermore, regarding the interfering protease activity, when protease activity is E(U) and peptidase activity is P(U), it is preferable that the E / P ratio is 0.3 or less, more preferably 0.1 or less, even more preferably 0.05 or less, and even more preferably 0.02 or less. Here, protease activity is defined as the amount of enzyme that, using milk casein as a substrate, increases the amount of forin reagent colored substance equivalent to 1 μg of L-tyrosine per minute over 10 minutes at 30°C, pH 7.5, with 1 U being the amount of enzyme that produces an increase in the forin reagent colored substance equivalent to 1 μg of L-tyrosine per minute.

[0038] <Optional ingredients> In addition to peptidase, the food enzyme composition may contain other components that enzyme compositions typically contain, to the extent that they do not inhibit the effects of the present invention. Examples of such components include excipients, pH adjusters, preservatives, thickening polysaccharides, emulsifiers, inorganic salts, amino acids, and enzymes. The content of these components is not particularly limited, and any amount can be selected by those skilled in the art.

[0039] Examples of excipients include dextrin, trehalose, rice flour, and grain flours such as wheat flour.

[0040] Examples of pH adjusters include ascorbic acid, acetic acid, dehydroacetic acid, lactic acid, citric acid, gluconic acid, succinic acid, tartaric acid, fumaric acid, malic acid, and adipic acid, as well as sodium (Na), calcium (Ca), and potassium (K) salts of these organic acids, and carbonic acid, phosphoric acid, and pyrophosphate, as well as sodium and potassium salts of these inorganic acids.

[0041] Examples of preservatives include propionic acid, propionates, sulfites, benzoates, sorbic acid, and sorbates. Examples of salts include sodium (Na) salts, calcium (Ca) salts, potassium (K) salts, and polyamines.

[0042] Examples of thickening polysaccharides include modified starch, gums, alginic acid, alginic acid derivatives, pectin, carrageenan, curdlan, pullulan, gelatin, cellulose derivatives, agar, tamarind, psyllium, and glucomannan.

[0043] Examples of emulsifiers include glycerin fatty acid esters, polyglycerin fatty acid esters, sucrose fatty acid esters, propylene glycol fatty acid esters, sorbitan fatty acid esters, lecithin, enzymatically hydrolyzed lecithin, and saponins.

[0044] Examples of inorganic salts include table salt, ammonium sulfate, sodium sulfate, calcium chloride, and polyphosphates.

[0045] Examples of amino acids include aspartic acid, threonine, serine, asparagine, glutamic acid, glutamine, proline, glycine, alanine, valine, cystine, methionine, isoleucine, leucine, tyrosine, phenylalanine, histidine, lysine, tryptophan, and arginine.

[0046] The method of producing a food-grade enzyme composition is not particularly limited, as long as it contains peptidase and does not substantially have interfering activity. For example, one method is to mix peptidase and excipients in a mixer. Examples of mixers include container-rotating type, container-fixed type, and combined type, which can be appropriately selected depending on the desired activity value and amount, and the type of excipient.

[0047] The form of the food enzyme composition is not particularly limited and may include, for example, powder, granules, liquid, paste, or solid. In the case of a powder, peptidase may be dissolved in a solvent such as water, and then, if necessary, an excipient such as dextrin may be added, and the mixture may be dried to obtain a powder.

[0048] <<Food products and methods for producing the same>> The present invention's method for producing food is characterized by including a step of processing food materials with the aforementioned food enzyme composition.

[0049] In the process of processing food materials, a food-grade enzyme composition is brought into contact with the food material to allow peptidase to act on the proteins contained in the food material. The food material is not particularly limited as long as it contains protein, and examples include meat, seafood, eggs, milk, plants, insects, microbial cultures, and cultured meat. Examples of meat include beef, chicken, pork, lamb, wild boar, bear, and venison, and the composition can also be applied to their extracts. Examples of seafood include mackerel, sardines, tuna, salmon, bonito, squid, octopus, crustaceans, seaweed, oysters, scallops, clams, mussels, and cockles. Examples of eggs include chicken eggs and quail eggs, and the composition can be applied to either the yolk or the egg white. Examples of milk include cow's milk, goat's milk, camel's milk, donkey's milk, mare's milk, and sheep's milk. Examples of plants include soybeans, peas, wheat, and brown rice. Other examples of insects include crickets and mealworms. Examples of microorganisms include yeast, lactic acid bacteria, and koji mold, while microbial cultures include cultured cells and culture solutions of these microorganisms.

[0050] The conditions for applying peptidase are not particularly limited, but the temperature is preferably 0 to 75°C, more preferably 35 to 75°C, and even more preferably 40 to 65°C. The processing time is preferably 0.5 to 3 hours. After applying peptidase to the food material, it may be heated. Heating to 80°C or higher inactivates the peptidase, and it is digested and absorbed in the body like other proteins contained in the food material.

[0051] Foods produced by the manufacturing method of the present invention include processed foods containing meat, seafood, eggs, milk, plants, insects, and microbial cultures, either individually or in combination of two or more. Examples of meat processed foods include sausages and ham. Examples of seafood processed foods include chikuwa and kamaboko. Examples of dairy processed foods include processed milk, cheese, and yogurt. Examples of plant processed foods include soy products. Examples of insect products include cookies and rice crackers. Examples of processed foods containing microbial cultures include yeast extract, soy sauce, mirin and other seasonings. Other processed foods containing a combination of two or more food ingredients include custard sauce, custard cream, and potato salad.

[0052] By using the above-mentioned food enzyme composition, the peptide bonds of proteins are hydrolyzed from the terminals, resulting in an increase in the amount of free amino acids and improving the umami flavor of the food. The free amino acids that increase are not particularly limited, but examples include hydrophobic amino acids such as leucine, isoleucine, and phenylalanine, as well as tyrosine and methionine.

[0053] Furthermore, it can improve the viscosity of foods such as custard cream, leading to an improvement in texture, such as smoothness. This is presumed to be because the above-mentioned food enzyme composition tends to hydrolyze hydrophobic amino acids, thereby shifting the entire protein to a hydrophilic state.

[0054] Furthermore, since the above-mentioned food enzyme composition has virtually no interfering activity, it can reduce bitterness, astringency, astringency, and off-flavors that occur in food due to interfering activity. In addition, milk, camel's milk, donkey's milk, goat's milk, mare's milk, sheep's milk, soybeans, peas, brown rice, etc., have characteristic odors that can hinder palatability. When treated with conventional enzyme compositions, the odor is intensified due to interfering activity, further reducing palatability, but when using the food enzyme composition of the present invention, the odor can be reduced and palatability can be improved. [Examples]

[0055] The present invention will be described below with reference to examples, but the present invention is not limited to the following examples. Hereinafter, unless otherwise specified, "parts" or "%" means "parts by weight" or "% by weight," respectively.

[0056] The following enzymes were used in the tests described below. The percentages (%) given later are relative to the weight of each substance. • Aminopeptidase derived from actinomycetes • Aspergillus oryzae-derived peptidase (manufactured by Novozymes Japan Co., Ltd., product name: Flavorzyme 1000L) • Aspergillus oryzae-derived protease (manufactured by Nagase ChemteX Corporation, product name: Denathyme AP) • Commercially available protease preparations 1

[0057] (1) Enzyme activity measurement test (Example 1, Comparative Examples 1-2) The protease activity, amylase activity, and aminopeptidase activity of actinomycete-derived aminopeptidase (Example 1), koji mold-derived protease (Comparative Example 1), and koji mold-derived peptidase (Comparative Example 2) were measured.

[0058] Protease activity was measured using milk casein as a substrate, at 30°C, pH 7.5, and for 10 minutes. The amount of enzyme that produced an increase in the colored substance of the forin reagent equivalent to 1 μg of L-tyrosine per minute was defined as 1 U. Amylase activity was measured using potato starch as a substrate, at 40°C, pH 6.0, and for 10 minutes, with purified water as the control. 1 U of enzyme activity was defined as the enzyme activity that reduced the absorbance at a wavelength of 660 nm by 1% per minute. Aminopeptidase activity was measured using L-leucyl-p-nitroanilide hydrochloride as a substrate, at 37°C, pH 8.0, and for 10 minutes, with the amount of enzyme producing 1 μmol of para-nitroaniline per minute defined as 1 U. Amylase activity per 1 U of aminopeptidase activity (A / P) and protease activity per 1 U of aminopeptidase activity (E / P) were also calculated.

[0059] The results are shown in Table 1. Compared to the Aspergillus-derived protease (Comparative Example 1) and Aspergillus-derived peptidase (Comparative Example 2), the actinomycete-derived aminopeptidase (Example 1) exhibited significantly lower protease and amylase activity, which are contaminating activities, and also had smaller A / P and E / P values. Some of the actinomycete-derived aminopeptidases used in Examples 2-11 were from different lots than those used in Example 1, and while there were slight differences in activity, the activity ratios of A / P < 0.1 and E / P < 0.3 were still met.

[0060] [Table 1]

[0061] (2) Beef extract production test (Example 2, Comparative Examples 3-5) 20g of ground beef was mixed with 40g of tap water and dispersed, after which each enzyme was added. The enzyme-containing ground beef dispersion was reacted at 50 to 55°C for 3 hours without adjusting the pH. After that, the enzymes were deactivated in boiling water for 20 minutes, and the solids were removed by filtration with filter paper to obtain beef extract.

[0062] The protein concentration of the enzyme-treated beef extract was measured using the DC Protein Assay Kit (manufactured by Bio-Rad). The taste of the enzyme-treated beef extract was evaluated by sensory testing. The free amino acids in the enzyme-treated beef extract were analyzed using the PTC (phenylthiocarbamoyl) method.

[0063] Table 2 shows the test results for beef extract production tests using no enzymes (Comparative Example 3), 0.1% of commercially available protease preparation 1 added to minced beef (Comparative Example 4), 0.1% of commercially available protease preparation 1 and 1.0% of koji mold-derived peptidase added to minced beef (Comparative Example 5), and 0.1% of commercially available protease preparation 1 and 0.35% of actinomycete-derived aminopeptidase added to minced beef (Example 2). In Example 2, which used actinomycete-derived aminopeptidase, the bitterness and astringency caused by commercially available protease preparation 1 in Comparative Example 4 were eliminated, and the umami flavor was improved.

[0064] The taste of beef extract was evaluated by three panelists. The evaluation involved orally ingesting a fixed amount of the extract and assigning a 5-point rating to each of the bitterness and umami according to the following criteria. At the time of evaluation, it was confirmed that the taste had disappeared from the mouth before evaluating the next sample.

[0065] Bitterness and umami rating 5 points: I feel it very strongly. 4 points: I feel it strongly. 3 points: Feel 2 points: I barely feel it. 1 point: I don't feel it.

[0066] Table 2 shows the results of judging the average of the umami scores given by the three panelists, based on the following criteria. 4 points or more: ◎, 3 points or more but less than 4 points: ○, 2 points or more but less than 3 points: Minor, Less than 2 points: ×

[0067] Table 2 shows the results of judging the average bitterness score from the three panelists according to the following criteria. 4 points or more: ×, 3 points or more but less than 4 points: Minor, 2 points or more but less than 3 points: ○, Less than 2 points: ◎

[0068] [Table 2]

[0069] Comparative Examples 3 and 4 lacked sufficient umami, while Comparative Example 5 had a strong umami flavor but also a strong bitterness. Example 2 was able to suppress bitterness while emphasizing umami.

[0070] Figure 1 shows the results of the analysis of free amino acids. After treatment with actinomycete-derived aminopeptidase (Example 2), a large amount of hydrophobic amino acids such as leucine, isoleucine, and phenylalanine were released. Furthermore, although the amount of enzyme used in Example 2 was smaller than that in Comparative Example 5, the amount of amino acids released was equal to or greater than that in Comparative Example 5.

[0071] (3) Egg yolk modification test (Example 3, Comparative Examples 6-8) Each enzyme listed in Table 3 was dispersed in 50 mL of tap water in an amount equivalent to 0.5% of the egg yolk. This enzyme solution was added to 300 g of 20% sweetened egg yolk (manufactured by Kewpie Corporation) and reacted in a 50 or 60°C water bath for 1 hour. After the reaction, it was cooled to room temperature.

[0072] Table 3 shows the results of the taste test of the modified egg yolk (Taste Test Results). In Example 3, the flavor was improved compared to Comparative Examples 6-7, and a different flavor from Comparative Example 8 was obtained.

[0073] Furthermore, the sweetness of the modified egg yolk was evaluated by three panelists. The evaluation involved orally ingesting a fixed amount of the modified egg yolk and assigning a score on a 5-point scale according to the following criteria. During the evaluation, it was confirmed that the taste had disappeared from the mouth before evaluating the next sample.

[0074] Sweetness rating 5 points: I feel it very strongly. 4 points: I feel it strongly. 3 points: Feel 2 points: I barely feel it. 1 point: I don't feel it.

[0075] Table 3 shows the average sweetness ratings from the three panelists. As shown in Table 3, Example 3 was able to reduce the excess sweetness compared to Comparative Examples 6-8.

[0076] [Table 3]

[0077] (4) Custard cream production test (Example 4, Comparative Examples 9-11) 600g of milk (manufactured by Marubishi Co., Ltd., product name: Sougen Sougen Sanka (Long Life)) and butter (manufactured by Yotsuba Dairy Co., Ltd.) were placed in a pot and brought to a boil. In another pot, the egg mixture obtained in (3) the egg yolk modification test was placed, and 100g of sifted cake flour (manufactured by Nippon Flour Mills Co., Ltd., product name: Sirius) was added and stirred continuously while gradually adding the boiled milk and butter. After mixing, the mixture was heated over medium heat and stirred continuously until it became glossy, thickened, and turned into a paste. The mixture was wrapped in plastic wrap and stored in the refrigerator overnight. The next day was designated as day 0, and the viscosity was measured on day 1, day 3, and day 6. Sensory evaluation was also performed only on day 0.

[0078] Viscosity was measured using a VISCO digital viscometer (manufactured by Atago Co., Ltd.). Specifically, a fixed amount of custard cream, which had been brought to room temperature before measurement, was placed in a dedicated beaker, and the viscosity was measured using spindle A3.

[0079] Table 4 shows the results of the taste test of the custard cream. In Example 4, a mild sweetness and a smoother, softer texture were obtained. In Comparative Example 9, a paste-like custard cream was obtained, but the texture was inferior. In Example 4, a paste-like consistency was achieved after about 10 minutes of mixing, but in Comparative Examples 10 and 11, a paste-like custard cream could not be obtained even after 30 minutes of mixing. This is presumed to be due to the activity of the interfering amylase contained in the enzyme.

[0080] The texture of the custard cream was evaluated by three panelists. The evaluation involved orally ingesting a fixed amount of custard cream and assigning a score on a 5-point scale to its smoothness according to the following criteria.

[0081] Smoothness rating 5 points: Very smooth, 4 points: Very smooth, 3 points: Smooth, 2 points: Not very smooth, 1 point: Not smooth

[0082] Table 4 shows the results of determining the average score of the three panelists based on the following criteria. 4 points or more: ◎, 3 points or more but less than 4 points: ○, 2 points or more but less than 3 points: Minor, Less than 2 points: ×

[0083] [Table 4]

[0084] In Comparative Example 9, the smoothness was moderate, and in Comparative Examples 10-11, no paste was obtained. In Example 4, the smoothness was improved.

[0085] Figure 2 shows the viscosity of custard cream produced using egg yolks treated with enzymes at 50°C. Example 4 showed a higher viscosity than Comparative Example 9 at all storage periods.

[0086] (5) Production Test of Seafood Extract 1 (Example 5, Comparative Example 12) Dried squid was finely chopped and then crushed in a food mill. 10g of dried squid was swelled by adding 30g of water, and then sterilized at 100°C for 60 minutes. After that, actinomycete-derived aminopeptidase and commercially available protease preparation 1 were added in the amounts shown in Table 5, and the enzymatic reaction was carried out at 50°C and unadjusted pH for 2 hours. After inactivating the enzymes by heating, the residue filtered through filter paper No. 2 was vacuum-dried.

[0087] The aroma of the obtained extracts was evaluated by five panelists. The evaluation involved orally ingesting a fixed amount of the extract and assigning a four-point rating to each of the bitterness and umami according to the following criteria. At the time of evaluation, it was confirmed that the taste had disappeared from the mouth before evaluating the next sample. 0 points: No sensation, 1 point: Slightly felt, 2 points: Felt, 3 points: Strongly felt

[0088] Table 5 shows the results of judging the average of the umami scores given by the five panelists according to the following criteria. 2 points or more: ○, 1 point or more but less than 2 points: Average, Less than 1 point: ×

[0089] Table 5 shows the average bitterness rating given by the five panelists, determined according to the following criteria. 2 points or more: ×, 1 point or more but less than 2 points: Average, Less than 1 point: ○

[0090] [Table 5] Compared to Comparative Example 12, Example 5 was able to reduce bitterness while enhancing umami.

[0091] (6) Enzyme treatment test of milk (Example 6, Comparative Examples 13-16) 50g of commercially available unpasteurized milk was mixed with the enzymes shown in Table 6, and the enzymatic reaction was carried out at 52°C for 3 hours. In Table 6, the weight of the added enzyme is shown, along with the corresponding protease activity and aminopeptidase activity. After the enzymatic reaction, the enzymes were deactivated by treatment at 100°C for 10 minutes.

[0092] For aminopeptidase activity, 1 U is defined as the enzyme activity that produces 1 μmol of para-nitroaniline per minute using L-leucyl-p-nitroanilide hydrochloride as a substrate at 37°C, pH 8.0, and for 10 minutes. For protease activity, 1 U is defined as the enzyme amount that increases the amount of forin reagent colorimetric substance equivalent to 1 μg of L-tyrosine per minute using milk casein as a substrate at 30°C, pH 7.5, and for 10 minutes.

[0093] The aroma and taste of enzyme-treated milk were evaluated by three panelists. The evaluation involved orally ingesting a set amount of enzyme-treated milk and assigning a 5-point rating to each of the aroma and taste according to the following criteria. At the time of evaluation, it was confirmed that the taste had disappeared from the mouth before evaluating the next sample.

[0094] 5 points: Strong off-flavors and non-milk aromas, 4 points: Off-flavors and non-milk aromas present, 3 points: Off-flavors and non-milk aromas reduced, but still has a milky smell, 2 points: No off-flavors or non-milk aromas, and a weak milky smell, 1 point: No off-flavors or non-milk aromas, and no milky smell.

[0095] Table 6 shows the results of determining the average score of the three panelists based on the following criteria. 4 points or more: ×, 3 points or more but less than 4 points: Minor, 2 points or more but less than 3 points: ○, Less than 2 points: ◎

[0096] [Table 6] Comparative Examples 13-16 had a characteristic milky odor, as well as off-flavors and non-milk aromas. However, Example 6 eliminated off-flavors and non-milk aromas, and reduced the characteristic milky odor.

[0097] (7) Enzyme treatment test of defatted soybeans (Example 7, Comparative Examples 17-19) A solution was prepared by mixing 35g of defatted soybeans (Fuji Oil Co., Ltd., Fuji Pro FM###) with 700g of water and then dispersing the mixture. The dispersion was dispensed in 100mL portions, and the amount of enzyme shown in Table 7 was added. An enzymatic reaction was then carried out at 52°C for 3 hours. After the enzymatic reaction, the enzyme was inactivated by treatment at 100°C for 10 minutes.

[0098] The taste of enzyme-treated defatted soybeans was evaluated by three panelists. The evaluation involved orally ingesting a fixed amount of enzyme-treated defatted soybeans and rating the bitterness and intensity of the soy flavor on a five-point scale according to the following criteria. At the time of evaluation, it was confirmed that the taste had disappeared from the mouth before evaluating the next sample. 5 points: Very strongly felt, 4 points: Strongly felt, 3 points: Felt, 2 points: Almost not felt, 1 point: Not felt

[0099] Table 7 shows the results of determining the average score of the three panelists based on the following criteria. 4 points or more: ×, 3 points or more but less than 4 points: Minor, 2 points or more but less than 3 points: ○, Less than 2 points: ◎

[0100] [Table 7]

[0101] Comparative Examples 17-19 retained bitterness and a soybean flavor. In Example 7, the bitterness and soybean flavor were eliminated, resulting in a soybean processed product that is easy to consume as a protein source.

[0102] (8) Enzyme treatment test of unsweetened soy milk (Example 8, Comparative Examples 20-22) 50g of commercially available unsweetened soy milk was mixed with the enzymes listed in Table 8, and then the enzymatic reaction was carried out at 52°C for 3 hours. After the enzymatic reaction, the enzymes were deactivated by treatment at 100°C for 10 minutes.

[0103] The taste and aroma of unsweetened soy milk after enzyme treatment were evaluated by three panelists. The evaluation involved orally ingesting a fixed amount of enzyme-treated unsweetened soy milk and assigning a 5-point rating to the taste (intensity of bitterness and off-flavors) and aroma (intensity of unpleasant odor) according to the following criteria. At the time of evaluation, it was confirmed that the taste had disappeared from the mouth before evaluating the next sample. 5 points: Very strongly felt, 4 points: Strongly felt, 3 points: Felt, 2 points: Almost not felt, 1 point: Not felt

[0104] Table 8 shows the results of determining the average score of the three panelists based on the following criteria. 4 points or more: ×, 3 points or more but less than 4 points: Minor, 2 points or more but less than 3 points: ○, Less than 2 points: ◎

[0105] [Table 8]

[0106] Comparative Examples 20-22 still contained bitterness, off-flavors, and unpleasant odors. In Example 8, bitterness, off-flavors, and unpleasant odors were reduced, resulting in soy milk that is easy to consume as a protein source.

[0107] (9) Enzyme treatment tests of insect-derived proteins (Example 9, Comparative Examples 23-24) 5g of ground cricket powder was added to 50g of water, and the enzymes listed in Table 9 were added. An enzymatic reaction was carried out at 52°C for 3 hours. After the enzymatic reaction, the enzymes were inactivated by treatment at 100°C for 10 minutes. The reaction solution was filtered through filter paper, and the liquid fraction was recovered as an extract.

[0108] The taste of the extract was evaluated by seven panelists. The evaluation involved orally ingesting a fixed amount of the extract and assigning a 5-point rating to the intensity of bitterness and astringency according to the following criteria. At the time of evaluation, it was confirmed that the taste had disappeared from the mouth before evaluating the next sample. 5 points: Very strongly felt, 4 points: Strongly felt, 3 points: Felt, 2 points: Almost not felt, 1 point: Not felt

[0109] Table 9 shows the results of judging the average score of the seven panelists according to the following criteria. 4 points or more: ×, 3 points or more but less than 4 points: Minor, 2 points or more but less than 3 points: ○, Less than 2 points: ◎

[0110] [Table 9]

[0111] Comparative Example 24 had a strong bitter and astringent taste. In Example 9, the bitterness and astringency were reduced, and an insect extract that was easy to consume as a protein source was obtained.

[0112] (10) Enzyme treatment test of yeast extract (Examples 10-11, Comparative Examples 25-27) 15 g of dried yeast and 135 g of tap water were mixed to prepare a 10% by weight yeast solution, which was pre-incubated at 55°C for 1.5 hours. The amounts of each enzyme that resulted in the protease activity and aminopeptidase activity described in Table 10 were added. In Example 11, the amounts of the two enzymes added were adjusted to achieve the specified protease activity and aminopeptidase activity. The enzymatic reaction was then carried out at 55°C for 3.5 hours under unadjusted pH conditions. After the enzymatic reaction, the enzymes were inactivated by treatment at 100°C for 10 minutes. The reaction solution was centrifuged at 20°C and 9000 rpm for 10 minutes, and the supernatant was collected as an extract.

[0113] The taste of the extract was evaluated by four panelists. The evaluation involved orally ingesting a fixed amount of the extract and assigning a 5-point rating to the intensity of umami and bitterness according to the following criteria. At the time of evaluation, it was confirmed that the taste had disappeared from the mouth before evaluating the next sample. 5 points: Very strongly felt, 4 points: Strongly felt, 3 points: Felt, 2 points: Almost not felt, 1 point: Not felt

[0114] Table 10 shows the results of judging the average of the umami scores given by the four panelists according to the following criteria. 4 points or more: ◎, 3 points or more but less than 4 points: ○, 2 points or more but less than 3 points: Minor, Less than 2 points: ×

[0115] Table 10 shows the average bitterness rating given by the four panelists, determined according to the following criteria. 4 points or more: ×, 3 points or more but less than 4 points: Minor, 2 points or more but less than 3 points: ○, Less than 2 points: ◎

[0116] [Table 10]

[0117] Comparative Example 25 had umami but a strong bitterness, while Comparative Examples 26-27 lacked umami and were extremely bitter. Examples 10-11 were able to improve umami while suppressing bitterness.

Claims

1. An enzyme composition containing aminopeptidase derived from actinomycetes, for improving the umami, texture, off-flavors, odors, sweetness, or astringency of food, When amylase activity is denoted as A, aminopeptidase activity as P, and protease activity as E, the ratio of A / P is 0.1 or less, and the ratio of E / P is 0.3 or less. The aforementioned protease activity is measured using milk casein as a substrate at 30°C, pH 7.5, for 10 minutes, with 1 unit of enzyme being the amount that gives an increase in the colored substance of the forin reagent equivalent to 1 μg of L-tyrosine per minute. The aminopeptidase activity is defined as the amount of enzyme that produces 1 μmol of para-nitroaniline per minute using L-leucyl-p-nitroanilide hydrochloride as a substrate at 37°C, pH 8.0, for 10 minutes, with 1 U being the amount of enzyme. Enzyme composition.

2. The enzyme composition according to claim 1 for the manufacture of processed meat products, processed seafood products, processed egg products, processed dairy products, processed plant products, insect products, or seasonings.

3. A method for producing food, comprising the step of processing food material with the enzyme composition described in claim 1 or 2.

4. The manufacturing method according to claim 3, wherein the food material is meat, seafood, eggs, milk, plants, insects, or microbial cultures.

Citation Information

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