Dietary fiber-derived flavor modifiers
Enzymatic hydrolysis and fermentation of dietary fiber create flavor modifiers that enhance mouthfeel, mask off-notes, and improve sweetness and saltiness in food products, addressing the need for natural vegetarian-friendly ingredients.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- GIVAUDAN SA
- Filing Date
- 2026-03-12
- Publication Date
- 2026-07-30
AI Technical Summary
The food industry requires flavor-modifying ingredients that are natural and suitable for strict vegetarians to improve mouthfeel, mask off-notes, and enhance sweetness or saltiness in food products.
A method involving enzymatic hydrolysis and/or fermentation of dietary fiber using enzymes such as carbohydrases and proteases, and microorganisms like lactic acid bacteria and Aspergillus fungi to produce flavor-modifying ingredients.
The method produces flavor modifiers that enhance the mouthfeel, mask off-notes, and improve sweetness and saltiness in food products, particularly in dairy alternatives and savory foods, while being natural and suitable for vegetarians.
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Figure 2026123818000001
Abstract
Description
Technical Field
[0001] The present invention generally relates to a method for producing a flavor-modifying ingredient using dietary fiber, and to a flavor-modifying ingredient produced by the method. The present invention further relates to a flavor composition and a food composition comprising the flavor-modifying ingredient, and to the use of the flavor-modifying ingredient in a food composition, for example, for improving the mouthfeel of a food composition and / or masking an off-note of a food composition and / or improving the sweetness of a food composition and / or enhancing the saltiness of a food composition.
Background Art
[0002] Background In the food industry, there is a need to modify the flavors of various food products to provide ingredients that can, for example, improve mouthfeel, mask off-notes, improve sweetness, and / or enhance saltiness. In particular, there is a need to provide flavor-modifying ingredients that are natural and / or suitable for strict vegetarians. Accordingly, novel flavor-modifying ingredients and methods for producing such flavor-modifying ingredients are provided by the present invention.
Disclosure of the Invention
[0003] Summary of the Invention According to a first aspect of the present invention, there is provided a method for producing a flavor-modifying ingredient, the method comprising subjecting dietary fiber to enzymatic hydrolysis and / or fermentation. The methods described in WO2010 / 053653 A1 and US 2009 / 0311376 A1 are excluded from the method of the first aspect of the present invention. For example, a method of the first aspect of the present invention may exclude a method that includes: (a) contacting a fiber-digesting enzyme with a suspension containing a certain amount of water and washed whole grain oat flour; and (b) treating the suspension for a time sufficient to hydrolyze the fiber particles so that modified whole grain oat flour is formed. For example, a method of the first aspect of the present invention may exclude a method that includes contacting a fiber-digesting enzyme with a suspension containing a certain amount of water and washed whole grain oat flour.
[0004] For example, the first aspect of the present invention may exclude methods comprising: combining a whole oat flour or barley flour starting mixture with a suitable enzyme to form an enzyme-starting mixture; heating the enzyme-starting mixture between approximately 120°F and approximately 200°F to initiate the hydrolysis of starch molecules; and extruding the resulting mixture to continue the hydrolysis of starch, and further gelatinizing and cooking the mixture to form soluble oat or barley flour. For example, the first aspect of the present invention may exclude methods comprising: combining a whole oat flour or barley flour starting mixture with a suitable enzyme to form an enzyme-starting mixture; and heating the enzyme-starting mixture between approximately 120°F and approximately 200°F to initiate the hydrolysis of starch molecules. For example, the dietary fiber does not have to be washed whole oat flour. For example, the dietary fiber does not have to be whole oat flour, and / or oat flour, and / or barley flour. For example, the dietary fiber does not have to be oat flour, and / or barley flour. For example, the dietary fiber does not have to be oat fiber, and / or barley fiber.
[0005] In one embodiment, the dietary fiber is isolated dietary fiber. In another embodiment, the dietary fiber is an aqueous slurry of dietary fiber. In one embodiment, dietary fiber is grain fiber (e.g., oat fiber), vegetable fiber (e.g., pea fiber), or fruit fiber (e.g., citrus fruit fiber, apple fiber, blueberry fiber, cranberry fiber, grape fiber). In one embodiment, enzymatic hydrolysis uses one or more enzymes selected from carbohydrases and proteases. In another embodiment, enzymatic hydrolysis uses at least one enzyme selected from cellulases, pectinases, and other carbohydrases.
[0006] In one embodiment, fermentation is carried out using lactic acid bacteria (e.g., Lactobacillus plantarum, L. delbruckeii ssp. bulgaricus, Streptococcus thermophiles and / or Lactobacillus acidophilus) and / or Bifidobacteria and / or Aspergillus fungi (e.g., Aspergillus oryzae). In one embodiment, enzymatic hydrolysis is carried out at a temperature in the range of approximately 25°C to approximately 60°C. In one embodiment, enzymatic hydrolysis is carried out over a period ranging from approximately 1 hour to approximately 48 hours. In one embodiment, fermentation is carried out at a temperature in the range of approximately 20°C to 45°C.
[0007] In one aspect, fermentation takes place over a period ranging from approximately 1 to 10 days. In one embodiment, the method of the first aspect of the present invention comprises subjecting dietary fiber to enzymatic hydrolysis and fermentation. In one embodiment, the enzymatic hydrolysis is carried out before and / or concurrently with fermentation. In one embodiment, the method of the first aspect of the present invention comprises subjecting dietary fiber to enzymatic hydrolysis, but does not involve subjecting dietary fiber to fermentation. In one embodiment, the method of the first aspect of the present invention comprises subjecting dietary fiber to fermentation, but does not involve subjecting dietary fiber to enzymatic hydrolysis.
[0008] In one embodiment, the method of the first aspect of the present invention further comprises heating the dietary fiber to a temperature of about 75°C or higher prior to enzymatic hydrolysis and fermentation. In one embodiment, the method of the first aspect of the present invention further comprises inactivating the enzyme and / or fermenting microorganisms following enzymatic hydrolysis and / or fermentation. In one embodiment, the method of the first aspect of the present invention further comprises combining a flavor modifier with propylene glycol. In one embodiment, the method of the first aspect of the present invention further includes spray-drying the flavor-modifying component.
[0009] According to a second aspect of the present invention, a flavor-modifying component is provided which can be obtained and / or obtained by the method of the first aspect of the present invention and any embodiment thereof. According to a third aspect of the present invention, a flavor composition is provided which comprises the flavor-modifying component of the second aspect of the present invention. According to a fourth aspect of the present invention, a food product is provided that contains the flavor-modifying component of the second aspect of the present invention. According to a fifth aspect of the present invention, the use of the flavor-modifying component of the second aspect of the present invention for improving the mouthfeel of a food product is provided.
[0010] According to a sixth aspect of the present invention, a method is provided for providing a food product having an improved mouthfeel, the method comprising mixing a flavor-modifying component of the second aspect of the present invention into a food product. According to a seventh aspect of the present invention, the use of the flavor-modifying components of the second aspect of the present invention for masking off-notes in food products is provided. According to an eighth aspect of the present invention, a method is provided for providing a food product having reduced off-notes, the method comprising mixing a flavor-modifying component of the second aspect of the present invention into a food product. According to a ninth aspect of the present invention, the use of the flavor-modifying component of the second aspect of the present invention for improving the sweetness of a food product is provided.
[0011] According to a tenth aspect of the present invention, a method is provided for providing a food product having improved sweetness, the method comprising mixing a flavor-modifying component of a second aspect of the present invention into a food product. According to an eleventh aspect of the present invention, the use of the flavor-modifying component of the second aspect of the present invention for enhancing the saltiness of a food product is provided. According to a twelfth aspect of the present invention, a method is provided for providing a food product having an enhanced salty taste, the method comprising mixing a flavor-modifying component of a second aspect of the present invention into a food product. In any aspect of the present invention, the food product is a dairy product or a dairy alternative, or a beverage or a savory food.
[0012] In any aspect of the present invention, the food product further comprises one or more sweeteners. In one embodiment, one or more sweeteners are selected from sucrose, fructose, glucose, arabinose, rhamnose, tagatose, allulose, trehalose, isomaltulose, steviol glycosides (e.g., rebaudioside A, rebaudioside B, rebaudioside C, rebaudioside D, rebaudioside M, stevioside), stevia, trilobatin, rubusoside, aspartame, advantame, agave syrup, acesulfame potassium (AceK), high-fructose corn syrup, neotame, saccharin, sucralose, high-fructose corn syrup, starch syrup, monk fruit extract, mogroside, neohespiridine, dihydrochalcone, naringin, and sugar alcohols (e.g., sorbitol, xylitol, inositol, mannitol, erythritol). Any aspect of the present invention may provide one or more of the following advantages: • Production of natural products; • Food products with improved texture and mouthfeel; • Food products with reduced off-notes; • Food products with improved sweetness; • Food products with enhanced saltiness; • A dairy alternative with improved dairy-like properties.
[0013] Details, examples, and preferences provided with respect to any particulate matter of one or more described aspects of the present invention are further described herein and apply equally to all aspects of the present invention. Any combination of the embodiments, examples, and preferences described herein and all possible variations thereof are incorporated herein unless otherwise indicated herein or unless clearly contradicted by the context.
[0014] Detailed explanation The present invention is at least in part based on the remarkable discovery that subjecting dietary fiber to enzymatic hydrolysis and / or fermentation produces products that can be used as flavor modifiers, for example, to improve the mouthfeel of a food product, to mask off-notes in a food product, to enhance the sweetness of a food product, and / or to increase the saltiness of a food product. In particular, the present invention is based at least in part on the remarkable discovery that by using the flavor modifiers described herein, it is possible to eliminate the unpleasant beany taste of alternative dairy products, give low-fat or non-fat dairy products a "fullness" similar to that of their corresponding full-fat dairy products, and enhance the saltiness of savory food products such as chips. It is surprising that the flavor modifiers described herein provide the advantageous taste and mouthfeel effects described herein, given that dietary fiber has previously been used in food products for its bulking effect.
[0015] In one aspect, the dietary fiber is subjected to enzymatic hydrolysis but not fermentation. When the dietary fiber is subjected to enzymatic hydrolysis but not fermentation, the dietary fiber may be a fruit fiber, such as grape fiber. In another aspect, the dietary fiber is subjected to fermentation but not enzymatic hydrolysis. When the dietary fiber is subjected to fermentation but not enzymatic hydrolysis, the dietary fiber may be a cereal fiber, such as oat fiber. In another aspect, the dietary fiber is subjected to both enzymatic hydrolysis and fermentation, for example, where enzymatic hydrolysis occurs before and / or simultaneously with fermentation.
[0016] Dietary fiber The term "dietary fiber" refers to types of carbohydrates that cannot be completely broken down by human digestive enzymes. It is found in edible plant foods such as grains, fruits, vegetables, nuts, seeds, legumes, fungi, and cereal grains. The term "dietary fiber" includes non - starch polysaccharides, resistant starch, cellulose, hemicellulose, lignin, dextrin, inulin, lichenin, chitin, pectin, β - glucan, and oligosaccharides. Dietary fiber can be, for example, soluble fiber or insoluble fiber.
[0017] Dietary fiber can be, for example, cereal fiber, vegetable fiber, fruit fiber, nut fiber, seed fiber, legume fiber, fungal fiber, or cereal grain fiber. Dietary fiber can be, for example, cereal fiber, vegetable fiber, or fruit fiber. The terms "cereal fiber", "vegetable fiber", and "fruit fiber" refer to types of fibers obtained from and / or obtainable from cereals, vegetables, or fruits, respectively. Dietary fiber can be, for example, obtained from and / or obtainable from one or more types of plants. Dietary fiber can be, for example, obtained from and / or obtainable from fresh, dried, or rehydrated plant materials. Dietary fiber can be, for example, isolated dietary fiber. The term "isolated dietary fiber" refers to dietary fiber that has been separated from the plant in which it is found.
[0018] Dietary fiber can be, for example, a side - stream from an industrial process, such as a side - stream from juice production. This can, for example, offer environmental advantages. Cereal fiber includes, for example, oat fiber, corn fiber, rice fiber, wild rice fiber, wheat fiber, barley fiber, sorghum fiber, millet fiber, rye fiber, triticale fiber, and fonio fiber. In one aspect, the cereal fiber is oat fiber. The fiber can be, for example, obtained from and / or obtainable from the seeds of plants. Vegetable fibers include, for example, legume fibers, such as pea fibers, chickpea fibers, lentil fibers, and soybean fibers; root vegetable fibers, such as potato fibers, sweet potato fibers, carrot fibers, celeriac fibers, parsnip fibers, radish fibers, and onion fibers; broccoli fibers; cabbage fibers; canola fiber; cauliflower fibers; zucchini fibers; and celery fibers. In one embodiment, vegetable fiber is legume fiber, such as pea fiber. Fibers may be obtained and / or can be obtained from, for example, the flowers, fruits, stems, leaves, roots, and / or seeds of plants.
[0019] Fruit fibers include, for example,: citrus fruit fibers, such as orange fiber, lemon fiber, lime fiber, clementine fiber, tangerine fiber, grapefruit fiber, kumquat fiber, yuzu fiber, etc.; apple fiber; grape fiber; tomato fiber; bell pepper fiber; cucumber fiber; berry fiber, such as blueberry fiber, cranberry fiber, strawberry fiber, raspberry fiber, blackberry fiber, red currant fiber, white currant fiber, and blackcurrant fiber, etc.; avocado fiber; fig fiber; plum fiber; prune fiber; banana fiber; pear fiber; and kiwi fiber. In one embodiment, the fruit fiber is cranberry fiber, grape fiber, or a combination of one or more of these. The fiber may be obtained, for example, from the fruit of a plant. When dietary fiber is subjected to enzymatic hydrolysis but not fermentation, the dietary fiber may be fruit fiber, such as citrus fruit fiber, apple fiber, blueberry fiber, cranberry fiber, or grape fiber. When dietary fiber is subjected to fermentation but not enzymatic hydrolysis, it may be cereal fiber such as oat fiber.
[0020] enzymatic hydrolysis In one embodiment, the dietary fiber is subjected to enzymatic hydrolysis, in which the dietary fiber is contacted with one or more enzymes for a period of time and under conditions suitable for the enzymes to break down the dietary fiber at least partially. All enzymes must be food grade. The enzymes used for enzymatic hydrolysis may be selected, for example, from one or more carbohydrases and proteases. When two or more enzymes are used, the enzymes may be from two or more classes and / or two or more enzymes within a single class. In one embodiment, the enzymes used for enzymatic hydrolysis include at least one carbohydrase. In one embodiment, the enzymes used for enzymatic hydrolysis include at least one of cellulase, pectinase, and other carbohydrases. In one embodiment, the enzymes used for enzymatic hydrolysis include at least one of cellulase and pectinase.
[0021] Carbohydrases catalyze the hydrolysis of carbohydrates. Carbohydrases may have specificity for either α- or β-glycosidic bonds. Examples of carbohydrases include cellulase, pectinase, mannanase, amylase, lactase, and β-glucanase. Examples of amylase enzymes include, but are not limited to, (i) α-amylase enzymes (Kleistase® SD-80, from Amano Enzyme), which are useful for breaking down amylose and amylopectin into maltose and various dextrins, and / or (ii) glucoamylase (Gluczyme® NLP, from Amano Enzyme), which are useful, for example, for breaking down maltose and others to release glucose. Cellulases catalyze the hydrolysis of β-1,4-glycosidic bonds found in cellulose, hemicellulose, lichenin, and cereal β-glucans. Examples of cellulases include hemicellulase, endo-1,4-β-D-glucanase, xylanase, and carboxymethylcellulase.
[0022] Pectinases catalyze the hydrolysis of α-1,4-glycosidic bonds between galacturonic acid residues found in pectin. An example of a pectinase is polygalacturonase (EC 3.2.1.15). Proteases catalyze the hydrolysis of proteins and peptides. Examples of proteases include proteinases, which hydrolyze proteins to form small peptides, and peptidases, which further hydrolyze small peptides to form amino acids. Proteases may have, for example, endopeptidase activity (acting on internal peptide bonds) and / or exopeptidase activity (acting on peptide bonds at the ends of proteins or peptides; e.g., aminopeptidases or carboxypeptidases). Protein-degrading enzymes include, for example, proteases, peptidases, glutaminases (e.g., L-glutamine-amide-hydrolase (EC 3.5.1.2)), endoproteases, serine endopeptidases, subtilisine peptidases (EC 3.4.21.62), serine proteases, threonine proteases, cysteine proteases, aspartate proteases, glutamate proteases, trypsin, chymotrypsin (EC 3.4.21.1), pepsin, papain, and elastases.
[0023] Proteolytic enzymes (EC3.4 and EC3.5) are classified by their EC number (enzyme number), with each class containing a variety of known enzymes of specific reaction types. EC3.4 includes enzymes that act on peptide bonds (peptidases / proteinases), while EC3.5 includes enzymes that act on carbon-nitrogen bonds other than peptide bonds. Examples of EC 3.4 include, for example, aminopeptidases (EC 3.4.11), dipeptidases (3.4.13), dipeptidyl peptidases (3.4.14), peptidyl dipeptidases (3.4.15), serine carboxypeptidases (3.4.16), metallocarboxypeptidases (3.4.17), cysteine carboxypeptidases (3.4.18), omegapeptidases (3.4.19), serine endopeptidases (3.4.21), cysteine endopeptidases (3.4.22), aspartic acid endopeptidases (3.4. 23), metalloendopeptidase (3.4.24), threonine-endopeptidase (3.4.25).
[0024] Examples of EC 3.5 include, but are not limited to, proteolytic enzymes that cleave with linear amides (3.5.1), such as, but are not limited to, glutaminases (EC 3.5.1.2) and protein glutaminases (e.g., protein glutaminase® 500 from Amano). A variety of proteolytic enzymes suitable for food-grade applications are commercially available from suppliers such as Novozymes, Amano, Biocatalysts, Bio-Cat, Valley Research (now a subsidiary of DSM), and EDC (Enzyme Development Corporation). Some examples include: Neutrase®, Alcalase®, Protamex®, and Flavorzyme® (available from Novozymes); Promod® series: e.g., 215P, 278P, 279P, 280P, 192P, and 144P, Flavorpro® 192, Peptidase 433P, and Peptidase 436P (available from Biocatalysts); Protein PC10, Umamizyme®, Peptidase R (or 723), Peptidase A, Peptidase M, Peptidase N, Peptidase P, Peptidase S, Acid protease II, and Thermoase GL30 (available from Amano); Peptidase 600 (available from Bio-Cat); Validase® AFP and Validase® FPII (available from Valley Research); Fungal Protease, Exo-protease, Papain, Bromelain, and the Enzeco® series of proteases and peptidases (available from EDC).
[0025] In one embodiment, the enzymes used for enzymatic hydrolysis include cellulase, β-glucanase, and aminopeptidase. In another embodiment, the enzymes used for enzymatic hydrolysis include cellulase, β-glucanase, aminopeptidase, hemicellulose, and mannanase. In yet another embodiment, the enzymes used for enzymatic hydrolysis include carbohydrase (such as α-amylase and / or glucoamylase) and protease and / or aminopeptidase (such as protein glutaminase). Enzymes may be part of an enzyme mix. Many enzyme preparations, such as Celluclast®, Ceramix®, Alcalase®, Viscozyme®, Flavorzyme®, and Umamizyme®, are commercially available and can be used in the enzymatic hydrolysis described herein. Enzymes can be obtained, or may be available, from sources such as microorganisms or plants. Examples include Aspergillus oryzae, Bacillus licheniformis, pineapple, and papaya.
[0026] The amount of enzyme is selected to ensure sufficient activity and depends on the enzyme activity, the amount of substrate, and the conditions under which it is used. The required amount of enzyme can be determined by trying various amounts and testing the effect of the resulting product by the sensory evaluation described herein. The enzyme:substrate ratio can be, for example, in the range of approximately 0.05:20 to approximately 3:20, for example, approximately 0.5:20 to approximately 3:20, or for example, approximately 1:20. The enzyme can be used in an amount ranging from approximately 0.1% to approximately 20% by weight, based on the total weight of dietary fiber. For example, the enzyme can be used in an amount ranging from approximately 0.5% to approximately 15% by weight, or approximately 1% to approximately 10% by weight, or approximately 0.5% to approximately 5% by weight, or approximately 0.5% to approximately 1.5% by weight, or approximately 1% to approximately 1.5% by weight, based on the total weight of dietary fiber.
[0027] (Ceremix (trademark), Novozymes, Bagsvaerd, Denmark has an activity of 300 β-glucanase units (BGU) per gram of enzyme; Viscozyme (trademark), Novozymes, Bagsvaerd, Denmark has an activity of 100 fungal β-glucanase units (FBG) per gram of enzyme; Alcalase (trademark), Novozymes, Bagsvaerd, Denmark has an activity of 2.4 anson units (AU) per gram of enzyme; Celluclast (trademark), Novozymes, Bagsvaerd, Denmark has an activity of 700 endoglucanase units (EGU) per gram of enzyme; Flavourzyme (trademark), Novozymes, Bagsvaerd, Denmark has an activity of 1000 leucine aminopeptidase units (LAPU) per gram of enzyme; Umamizyme (trademark), Amano, Nagoya, Japan has an activity of 70 U (units according to the LGG method, LGG = L-leucyl-glycyl-glycine); Flavorpro 373 (trademark), Biocatalysts, Cardiff, UK, which is a glutaminase, has an activity of 30 glutaminase units (GU).
[0028] The useful amounts of enzyme units per gram of starting material are shown for several types of enzymes below. The number of β-glucanase units (BGU) per gram of the starting material (liquefied celeriac slurry) is 0.03 to 15 BGU, for example, 0.1 to 3 BGU. The amount of fungal β-glucanase units (FBG) per gram of starting material is 0.002 to 3 FBG, for example, 0.01 to 1 FBG. The Anson units (AU) per gram of starting material are 0.0002 to 0.02 AU, for example, 0.0005 to 0.01 AU. The U (units in the LGG method, LGG = L-leucyl-glycyl-glycine) per gram of starting material is typically 0.007 to 0.7 U, for example, 0.01 to 0.1 U. The glutaminase units (GU) per gram of starting material used are typically 0.00075 to 0.075 GU, for example, 0.001 to 0.02 GU.
[0029] Enzymatic hydrolysis is carried out under conditions suitable for all enzymes involved (and all microorganisms involved if it occurs concurrently with fermentation). As will be apparent to those skilled in the art, the temperature and pH must be within a range suitable for hydrolysis to occur to the desired degree. The incubation length varies accordingly, with shorter incubations as the conditions approach optimal conditions. Required ions may be present if necessary or beneficial to the selected enzymes. Hydrolysis can be improved by stirring the incubated mixture, for example, by agitation (e.g., at 50-500 rpm or 100-200 rpm). Enzymatic hydrolysis can be carried out, for example, at a temperature lower than the temperature at which the enzyme denatures. The temperature can be selected, for example, to give a desired reaction rate. Enzymatic hydrolysis can be carried out, for example, at a temperature in the range of about 25°C to about 60°C. For example, enzymatic hydrolysis can be carried out at a temperature in the range of about 30°C to about 60°C, or about 35°C to about 55°C, or about 40°C to about 50°C, or about 50°C to about 55°C.
[0030] If dietary fiber is subjected to enzymatic hydrolysis but not fermentation, the enzymatic hydrolysis can be carried out at temperatures ranging, for example, from approximately 40°C to approximately 60°C. When dietary fiber is subjected to enzymatic hydrolysis and fermentation, the enzymatic hydrolysis may be carried out at temperatures ranging from, for example, about 30°C to about 60°C, for example, about 30°C to about 40°C, or about 50°C to about 55°C. Enzymatic hydrolysis can be carried out, for example, at a pH in which the enzyme does not denature. The pH can be selected, for example, to give a desired reaction rate. Enzymatic hydrolysis can be carried out at pH ranges such as about 4 to about 8, about 5 to about 8, about 6 to about 8, and about 6.5 to about 7.5.
[0031] Enzymatic hydrolysis can occur over a period ranging, for example, from about 1 hour to about 48 hours. For example, enzymatic hydrolysis can occur over a period ranging from about 2 hours to about 48 hours, or from about 4 hours to about 36 hours, or from about 6 hours to about 24 hours, or from about 8 hours to about 16 hours, or from about 1 to 2 hours or up to 5 hours. When dietary fiber is subjected to enzymatic hydrolysis but not fermentation, the enzymatic hydrolysis may be carried out for a longer period compared to methods in which the dietary fiber is subjected to both enzymatic hydrolysis and fermentation. For example, when dietary fiber is subjected to enzymatic hydrolysis but not fermentation, the enzymatic hydrolysis may be carried out for a period of at least about 12 hours, for example, at least about 18 hours or at least about 24 hours. For example, when dietary fiber is subjected to enzymatic hydrolysis but not fermentation, the enzymatic hydrolysis may be carried out for a period ranging from about 12 hours to about 48 hours, or from about 18 hours to about 48 hours, or from about 24 hours to about 48 hours.
[0032] When dietary fiber is subjected to enzymatic hydrolysis and fermentation, the enzymatic hydrolysis can be carried out for a shorter period compared to methods in which the dietary fiber is subjected to enzymatic hydrolysis alone. For example, when dietary fiber is subjected to enzymatic hydrolysis and fermentation, the enzymatic hydrolysis can be carried out for a period ranging from about 1 hour to about 36 hours, or about 2 hours to about 36 hours, or about 4 hours to about 24 hours, or about 1 to 2 hours or up to 5 hours.
[0033] fermentation In one embodiment, dietary fiber is subjected to fermentation, in which the dietary fiber is brought into contact with one or more fermenting microorganisms for a period of time and under conditions suitable for the microorganisms to break down / metabolize the dietary fiber at least partially. If the dietary fiber is subjected to enzymatic hydrolysis before fermentation, the dietary fiber is a product of enzymatic hydrolysis (dietary fiber hydrolysate). Dietary fiber that is a product of enzymatic hydrolysis is sometimes called hydrolyzed dietary fiber or partially hydrolyzed dietary fiber. Fermentation can, for example, involve the use of one or more species of microorganisms. Fermentation may use, for example, one or more lactic acid bacteria, such as Lactobacillus plantarum, Lactobacillus casei, Lactobacillus brevis, and Lactobacillus helveticus. In one embodiment, fermentation may use Lactobacillus plantarum. For example, fermentation may use Lactobacillus plantarum, ATCC14917.
[0034] Fermentation may use, for example, one or more lactic acid bacteria, such as L. delbruckeii ssp. bulgaricus, Streptococcus thermophiles, and / or Lactobacillus acidophilus. Fermentation may also use, for example, bifidobacteria. Fermentation can be carried out using, for example, Aspergillus fungi, such as Aspergillus oryzae (also known as koji) and Aspergillus saitoi. In one embodiment, the Aspergillus fungus is Aspergillus oryzae. Fermentation may be carried out using an overnight culture of microorganisms, or by directly inoculating microbial clones into dietary fiber (or dietary fiber hydrolysates obtained from the enzymatic hydrolysis step) and performing fermentation for a slightly longer time accordingly.
[0035] An overnight culture (sometimes called a seed ferment) can be prepared by methods well known in the art. It can be grown overnight, for example, for 12 hours, at a temperature suitable for the microorganism. Approximately 37°C is a suitable temperature for many microorganisms, including: Lactobacillus plantarum, L. delbruckeii ssp. bulgaricus, Streptococcus thermophilus, Lactobacillus acidophilus, and / or Bifidobacteria and / or Aspergillus oryzae. Any suitable medium, such as MRS broth (Difco, United States of America), may be used. Microorganisms can be administered, for example, on a carrier. For example, a microorganism (e.g., Aspergillus oryzae) can be coated onto rice grains. For example, microorganisms can be grown on rice grains and supplied in this form by suppliers (e.g., available from Rhapsody Natural Foods, Cabot VT 05647). This may, for example, induce the production of specific endogenous enzymes and / or pathways, thereby providing the microorganism with desirable properties.
[0036] The amount of microorganisms is selected to ensure sufficient activity, which depends on the microbial activity, the amount of substrate, and the conditions under which it is used. The required amount of microorganisms can be determined by trying various amounts and testing the effect of the resulting product by the sensory evaluation described herein. The amount of microorganisms may range from approximately 0.1% to approximately 1% based on the total weight of the reaction mixture. For example, the amount of microorganisms used may range from approximately 0.1% to approximately 0.5% or approximately 0.3% to approximately 0.7% based on the total weight of the reaction mixture.
[0037] Fermentation is carried out under conditions suitable for all microorganisms involved (and all enzymes involved, if it occurs simultaneously with enzymatic hydrolysis). As will be apparent to those skilled in the art, temperature and pH must be within a range appropriate for fermentation to occur to the desired extent. The length of incubation varies accordingly, with shorter incubations as conditions approach optimal conditions. Necessary nutrients may be present if required or beneficial to the selected microorganisms. Fermentation can be improved by stirring the incubated mixture, for example, by agitation (e.g., at 50-500 rpm or 100-200 rpm). Since some microorganisms, such as lactic acid bacteria, may grow faster under anaerobic conditions, it may be preferable to minimize stirring. In some embodiments, aerobic tolerance may be manganese-dependent.
[0038] Fermentation can be carried out at a temperature lower than the temperature at which microorganisms die and / or their numbers decrease. The temperature can be selected to give a desired reaction rate, for example. Fermentation can be carried out at a temperature in the range of approximately 20°C to approximately 45°C. For example, fermentation can be carried out at a temperature in the range of approximately 25°C to approximately 40°C, or approximately 30°C to approximately 40°C, or approximately 34°C to approximately 40°C, or approximately 30°C to approximately 37°C, or approximately 30°C to approximately 35°C. The useful temperature range for Lactobacilli, particularly Lactobacillus plantarum, includes, for example, approximately 20°C to 40°C, or approximately 30°C to 40°C, or approximately 35°C to 40°C, with the optimal value being approximately 36°C to 38°C.
[0039] The useful temperature range for Bifidobacteria or Lactobacillus, particularly L. delbruckeii ssp. bulgaricus, Streptococcus thermophiles, and / or Lactobacillus acidophilus, is, for example, about 20°C to about 40°C, or about 30°C to about 40°C, or about 35°C to about 40°C, with the optimal values being about 36°C to about 38°C, or about 30°C to about 35°C, or about 30°C to about 37°C. When dietary fiber is subjected to fermentation but not enzymatic hydrolysis, fermentation can be carried out at temperatures ranging from approximately 30°C to 45°C.
[0040] Fermentation can be carried out at a pH lower than the temperature at which microorganisms denature, for example. The pH is selected to give the desired reaction rate. Fermentation can be carried out at a pH in the range of approximately 5 to approximately 8, for example, approximately 5 to approximately 7, or approximately 6 to approximately 8, or approximately 6.5 to approximately 7.5. Fermentation may be carried out for a period of time until the desired product is formed. Fermentation may be carried out, for example, until the pH of the fermentation medium reaches approximately 5.5 or lower, for example, between approximately 4.5 and 5.5. Fermentation can take place over a period ranging from approximately 1 to 10 days. For example, fermentation can take place over a period ranging from approximately 2 to 9 days, or approximately 3 to 8 days, or approximately 4 to 7 days.
[0041] When dietary fiber is subjected to fermentation but not enzymatic hydrolysis, the fermentation may take place for a longer period compared to methods in which the dietary fiber is subjected to both fermentation and enzymatic hydrolysis. For example, when dietary fiber is subjected to fermentation but not enzymatic hydrolysis, the fermentation may take place for at least about 4 days. For example, when dietary fiber is subjected to fermentation but not enzymatic hydrolysis, the fermentation may take place for a period ranging from about 4 to 10 days, or from about 5 to 10 days, or from about 6 to 10 days. When dietary fiber is subjected to fermentation and enzymatic hydrolysis, fermentation may occur for a shorter period compared to methods in which dietary fiber is subjected to fermentation but not enzymatic hydrolysis. For example, when dietary fiber is subjected to fermentation and enzymatic hydrolysis, fermentation may occur for a period ranging from about 1 to 8 days, or about 2 to 6 days, or about 2 to 5 days, or about 2 to 4 days, or about 1 to 2 days.
[0042] Further processing steps Products of enzymatic hydrolysis and / or fermentation can be used directly, for example, as flavor modifiers. However, these methods may involve, for example, one or more additional steps. The dietary fiber subjected to enzymatic hydrolysis and / or fermentation may be, for example, an aqueous slurry of dietary fiber. Therefore, in one embodiment, this method may involve combining the dietary fiber with water before enzymatic hydrolysis and / or fermentation. The aqueous slurry of dietary fiber may contain, for example, at least about 5% by weight of dietary fiber, for example at least about 10% by weight of dietary fiber, for example at least about 15% by weight of dietary fiber. The aqueous slurry of dietary fiber may contain, for example, up to about 90% by weight of dietary fiber, or up to about 50% by weight of dietary fiber, or up to about 30% by weight of dietary fiber.
[0043] Enzymatic hydrolysis and fermentation must be carried out in sterile containers. Therefore, the containers can be sterilized before the addition of dietary fiber. Dietary fiber (e.g., an aqueous slurry of dietary fiber) may be heated, for example, before enzymatic hydrolysis and / or fermentation. For example, dietary fiber may be heated to a temperature of about 50°C or higher before enzymatic hydrolysis and / or fermentation, for example, to a temperature in the range of 50°C to about 55°C, or to a temperature of about 75°C or higher, for example, about 100°C or about 110°C or higher. For example, dietary fiber may be heated to a temperature of about 140°C or lower, for example, about 130°C or lower, before enzymatic hydrolysis and / or fermentation. For example, dietary fiber may be heated to a temperature of about 121°C before enzymatic hydrolysis and / or fermentation. This may be to inactivate and / or kill any microbial contaminants and / or hydrate and / or preheat the dietary fiber (e.g., an aqueous slurry of dietary fiber) before enzymatic hydrolysis and / or fermentation. The dietary fiber is then maintained at a suitable temperature and / or cooled to a suitable temperature for enzymatic hydrolysis and / or fermentation, before enzymes and / or microorganisms are added.
[0044] Enzymes and / or microorganisms can be inactivated, for example, before being incorporated into a flavor composition or food product. This can be done, for example, by heating for a sufficiently long time to inactivate the enzymes and / or microorganisms, for example, to a temperature in the range of about 60°C to about 121°C, for example, about 100°C. For example, any pasteurization or sterilization method known in the art can be used. For example, enzymes and / or microorganisms can be inactivated by heating to about 70°C, about 90°C, or about 100°C or above for 30 minutes, 45 minutes, or 60 minutes. When heating above about 100°C, for example, about 121°C for about 30 minutes, the heating can be carried out under a pressure of, for example, about 12 to about 15 psi.
[0045] The products of enzymatic hydrolysis and / or fermentation (flavor modifiers) can be removed, for example, by filtration or centrifugation to remove large particles. The products of enzymatic hydrolysis and / or fermentation (flavor modifiers) can be concentrated, for example, by evaporation, including boiling up to about 100°C. The products of enzymatic hydrolysis and / or fermentation (flavor modifiers) can be spray-dried, for example, by methods known in the art, using carriers such as oat fiber, soluble corn fiber, and maltodextrin and / or anti-caking agents.
[0046] Filtration can be carried out by any suitable filtration method, such methods are well known in the art, for example, by passing the culture through a felt filter bag in a filter centrifuge. The filtered culture (the supernatant containing smaller residual solids minus the larger biomass containing undigested proteins) can be concentrated, for example, by evaporation / boiling at 100°C. The solid content of the resulting concentrate can be determined using a moisture analyzer and can be spray-dried on a suitable carrier, for example. Many carriers are well known in the art, for example, but not limited to potato maltodextrin carriers (for example, a ratio of about 1:1 solids to carrier in the 2x concentrate may be suitable). Anticaking agents can optionally be added, and such agents are well known. A suitable anticaking agent is, for example, tricalcium phosphate (TPC); a suitable amount is about 0.5% (wt / wt) based on the total weight of the 2x concentrate.
[0047] Flavoring modifiers may be used, for example, in filtered and / or concentrated forms. Products of enzymatic hydrolysis and / or fermentation (flavor modifiers) can be combined with one or more stabilizers, such as propylene glycol.
[0048] product Flavor modifiers prepared by enzymatic hydrolysis and / or fermentation as described herein can be used directly in flavor compositions and / or food compositions, or they can undergo further processing as described above. For example, flavor modifiers may be in filtered and / or concentrated and / or paste and / or spray-dried forms. Flavor modifiers may be combined with stabilizers such as propylene glycol, or with one or more carriers and / or anti-caking agents used in the spray-drying process. Flavor modifiers may be considered natural products, for example, for food labeling and / or food regulation reasons. The final form of the flavor modifier can be selected according to methods well known in the art and will depend on the specific food application. For example, in liquid foods such as soups, the flavor modifier can be used in its liquid form without further processing. For dry applications such as crackers, spray-dried concentrated flavor modifiers can be used.
[0049] Flavor modifiers can be added directly to food products or provided as part of a flavor composition for flavoring or seasoning food products. The flavor composition comprises a flavor modifier and optionally one or more food-grade excipients. Excipients suitable for the flavor composition are well known in the art and include, but are not limited to, solvents (including water, alcohol, ethanol, oil, fat, vegetable oil, and migliol), binders, diluents, disintegrants, lubricants, flavoring agents, colorants, preservatives, antioxidants, emulsifiers, stabilizers, flavor enhancers, sweeteners, anti-caking agents, etc. Examples of such carriers or diluents for flavors can be found, for example, in: "Perfume and Flavour Materials of Natural Origin", S. Arctander, Ed., Elizabeth, NJ, 1960; "Perfume and Flavor Chemicals", S. Arctander, Ed., Vol. I & II, Allured Publishing Corporation, Carol Stream, USA, 1994; "Flavourings", E. Ziegler and H. Ziegler (ed.), Wiley-VCH Weinheim, 1998; and "CTFA Cosmetic Ingredient Handbook", JM Nikitakis (ed.), 1st ed., The Cosmetic, Toiletry and Fragrance Association, Inc., Washington, 1988.
[0050] The flavor composition may include additional flavor components, including flavor compounds, flavors from natural sources including plant sources, and components produced by fermentation. The flavor composition may have any suitable form, for example, in the form of a liquid or solid, wet or dry, or encapsulated by being bound or coated on a carrier / particle, or as a powder. The flavor composition may contain, for example, about 0.02% to about 0.5% (by weight) of non-concentrated flavor modifiers. The term "food product" is used in a broad sense to include any product that is placed in the oral cavity but is not necessarily ingested, such as foods, beverages, dietary supplements, and dental care products, including mouthwash.
[0051] Food products include: cereal products, rice products, pasta products, ravioli, tapioca products, sago products, bakery products, biscuit products, pastry products, bread products, confectionery products, dessert products, gum, chewing gum, chocolate, ice, honey products, molasses products, yeast products, salt & spice products, savory food products, mustard products, vinegar products, sauces (condiments), processed foods, cooked fruit and vegetable products, meat and meat products, meat substitutes / alternatives / alternatives, jellies, jams, fruit sauces, egg products, dairy products (including milk), cheese products, butter and butter substitutes, milk substitutes, soy milk products (e.g., soy "milk"), edible oils and fats products, pharmaceuticals, beverages, juices, fruit juices, vegetable juices, food extracts, plant extracts, meat extracts, condiments, dietary supplements, gelatin, tablets, lozenges, drops, emulsions, elixirs, syrups, and combinations thereof.
[0052] Processed foods include: margarine, peanut butter, soups (clear, canned, cream, instant, UHT), gravy, canned juices, canned vegetable juices, canned tomato juices, canned fruit juices, canned juice drinks, canned vegetables, pasta sauces, frozen meals, frozen dinners, frozen hand-held meals, dry packaged dinners (macaroni and cheese, dry dinners with meat, dry salad / side dish mixes, dry dinners with meat). Soups can take various forms, including concentrated moist, ready-to-drink, ramen, dried, and bouillon, as well as processed and pre-prepared low-sodium foods. Of particular interest are dairy products, such as milk (cow's milk, goat's milk, sheep's milk, camel's milk, etc.), cream, butter, cheese, yogurt, ice cream, and custard. Dairy products can be sweetened or unsweetened. Dairy products (e.g., milk) can be full-fat, low-fat, or fat-free.
[0053] Dairy alternatives are also of particular interest. Dairy alternatives are plant-based products that do not contain true dairy products derived from animals. For example, dairy alternatives include alternative "milk," "cream," and "yogurt" products, which may be derived from, for example, soybeans, almonds, rice, peas, coconuts, and nuts (for example, cashews). Dairy alternatives may be sweetened or unsweetened, for example. Of particular interest are beverages including, for example, beverage mixtures and concentrates, such as ready-to-drink alcoholic and non-alcoholic beverages and dry powder beverages, carbonated and non-carbonated beverages, such as soda, fruit or vegetable juices, alcoholic and non-alcoholic beverages. The beverages may be sweetened or unsweetened.
[0054] Even more interesting are, for example, food products that traditionally had high sodium salt concentrations but have reduced sodium salt concentrations, including: condiments and sauces (cold, hot, instant, preserved, satay, tomato, BBQ sauce, ketchup, mayonnaise and similar, béchamel), gravy, chutney, salad dressings (storage stable, refrigerated), batter mixes, vinegar, pizza, pasta, instant noodles, French fries, croutons, salted snacks (potato chips, crisps, nuts, tortilla tostada, pretzels, cheese snacks, corn snacks, potato snacks, ready-to-eat popcorn, microwaveable popcorn, caramel corn, pork skin, nuts), crackers (salted, "Ritz" tarts) Ip), "sandwich type" cracker snacks, breakfast cereals, cheese and cheese products containing the following cheese-like substances (low-salt cheese, pasteurized processed cheese (food, snacks & spreads), savory spreads, cold-packed cheese products, cheese sauce products), meats, aspic, cured meats (ham, bacon), lunch / breakfast meats (hot dogs, cold cuts, sausages), soy-based products, tomato products, potato products, dried spice or seasoning compositions, liquid spice or seasoning compositions containing pesto, marinades, and soup-type / meal replacement beverages, and vegetable juices containing tomato juice, carrot juice, mixed vegetable juice and other vegetable juices.
[0055] Food products may contain, for example, about 0.001% to about 0.5% (by weight) based on non-concentrated flavor modifiers, or about 0.001% to about 0.02% (by weight) based on non-concentrated flavor modifiers. When flavor modifiers are added as unconcentrated liquids, for localized food applications such as soups, chips, crisps, and snacks, for example, without limitation, approximately 0.005 to 0.5% (by weight) is usually sufficient. Some food products may require higher concentrations. For most topical applications, approximately 0.1% to 0.5% (wt / wt) is sufficient. When using concentrates (e.g., by distillation) or spray-dried salt-enhancing components, the indicated concentrations should be adjusted with an appropriate coefficient to account for changes in the salt-enhancing component concentration.
[0056] Depending on the food product, if the food product contains approximately 10-100%, for example 25-50%, and has less sodium than comparable food products (e.g., a 25% reduced sodium product or a 50% light-in-sodium product), the flavor modifier can be used as follows: A concentration useful for most food applications may be approximately 0.001% to 0.015% (weight / weight) based on, for example, an unconcentrated flavor modifier. Alternatively, 25-300 ppm or 0.002% to 0.03% (weight / weight) may be used, for example, based on a spray-dried 2x concentrate. Flavor modifiers can be used in unconcentrated or concentrated form, or concentrates can be formulated into pastes or powders by methods known in the art. In this case, the amount used must be adjusted accordingly. Flavor compositions such as spices are often further concentrated, for example, 10-fold concentrates, and the concentration is adjusted accordingly to be higher (250 ppm to 3000 ppm).
[0057] The NaCl concentration in common food products with normal NaCl concentrations varies in the range of approximately 0.5% to 5% (wt / wt) NaCl for most products. Products used as seasonings, or in small amounts, such as croutons, sauces, or salad dressings (for example, applied to salads or noodles), have an NaCl concentration of approximately 2% to 5% (wt / wt). Soups typically contain approximately 0.6% to 1.25% (wt / wt) NaCl. Salty crackers and meat products (salami, ham, bacon, etc.) typically contain approximately 2% to 4% (wt / wt) NaCl. Grains typically contain approximately 0.6% to 3% (wt / wt) NaCl. Products requiring reconstitution (dry soups) typically have the concentration range indicated after reconstitution. In the case of low-sodium products with even lower NaCl content than reduced-sodium products (for example, 353 mg per serving), it may be necessary to increase the amount of salt-fortifying ingredients.
[0058] In food products to which KCl has been added, the concentration of KCl can range from about 0.1% or about 0.2% to a maximum of about 1%, a maximum of about 1.5%, a maximum of about 2% (wt / wt), or more, depending on the food product and the ingredients, and how much the sodium concentration is reduced. A KCl concentration of about 0.25% to about 1.5% (wt / wt), for example, about 0.5% to about 1.5% (wt / wt), is useful for most low-salt products. The range in which the NaCl concentration can be effectively reduced in most applications is, for example, about 0.25% (wt / wt) to about 2.5% (wt / wt), or about 0.125% to about 1.25% (wt / wt). The amount of flavor modifiers added to food products as ingredients depends on the concentration of KCl used, as well as on the specific food product containing the particular base and flavor. Concentrations useful for most food applications may be approximately 0.001% to 0.015% (weight / weight), based on, for example, unconcentrated flavor modifiers. Alternatively, concentrations of 25–300 ppm or 0.002%–0.03% (weight / weight), based on, for example, spray-dried 2x concentrates, may be used.
[0059] Flavor-modifying ingredients may be used in a non-concentrated form, or concentrates may be incorporated into paste, powder, or spray-dried salt-enhancing ingredients by methods known in the art. In this case, the amount used should be adjusted as appropriate. The appropriate concentration of flavor-modifying ingredients can be easily tested by sensory titration. This method is well-known in the field of sensory analysis. Flavor compositions and food products may, for example, contain one or more sweeteners. Examples of sweeteners that can be used in sweetened compositions are disclosed, for example, in WO2013 / 038617, which is incorporated herein by reference.
[0060] One or more sweeteners may be selected from, for example, the following: sucrose, fructose, glucose, xylose, arabinose, rhamnose, tagatose, allulose, trehalose, isomaltulose, steviol glycosides (e.g., rebaudioside A, rebaudioside B, rebaudioside C, rebaudioside D, rebaudioside E, rebaudioside F, rebaudioside G, rebaudioside H, rebaudioside I, rebaudioside J, rebaudioside K, rebaudioside L, rebaudioside 11-O-Mogroside (e.g., 11-O-Mogroside II, 11-O-Mogroside I, 11-O-Mogroside II(I), 11-O-Mogroside II(II), 11-O-Mogroside II(III), 11-Dehydroxy-Mogroside III, 11-O-Mogroside III, Mogroside III (I), Mogroside III(II), Mogroside IIIe, Mogroside IIIx, Mogroside IV(I) (Siamenoside), Mogroside IV(II), Mogroside IV(III), Mogroside IV(IV), Deoxymogroside V(I), Deoxymogroside V(II), 11-O-Mogroside V(I), Mogroside V isomers, Mogroside V, Iso-Mogroside V, 7-O-Mogroside V, 11-O-Mogroside VI, Mogroside VI(I), Mogroside VI(II), Mogroside VI(III) (Neomogroside) Mogroside VI (IV), stevia, trilobatin, rubusoside, aspartame, advantame, agave syrup, acesulfame potassium (AceK), high fructose corn syrup, neotame, saccharin, sucralose, high fructose corn syrup, starch syrup, monk fruit extract, neohespiridine, dihydrochalcone, naringin, sugar alcohols (e.g., sorbitol, xylitol, inositol, mannitol, erythritol), cellobiose, psicose, and cyclamate.
[0061] use Flavor-modifying components obtained and / or obtainable by the methods described herein can be added to food products (for example, as part of a flavor composition) to modify the flavor or mouthfeel of the food product. Flavor modifiers obtained and / or obtainable by the methods described herein may be used, for example, to improve the mouthfeel of a food product, and / or to mask off-notes in a food product, and / or to improve the sweetness of a food product, and / or to enhance the saltiness of a food product, and / or to act as prebiotics in a food product. Accordingly, this specification also provides a method for providing a food product having improved mouthfeel and / or reduced off-note and / or improved sweetness and / or enhanced saltiness and / or use as a prebiotic, the method comprising mixing a flavor modifier obtained and / or obtainable by the method described herein into a food product.
[0062] In general terms, "mouthfeel" refers to the complexity of sensations experienced in the mouth, influenced by the aroma, taste, and texture quality of food and beverage products. However, from a technical standpoint, the sensation of mouthfeel is particularly related to the physical (e.g., touch, temperature) and / or chemical (e.g., pain) properties perceived in the mouth via the trigeminal nerve. Thus, they are the result of oral tactile stimulation, involving mechanoreceptors, pain receptors, and temperature receptors located in the oral mucosa, lips, tongue, cheeks, palate, and throat. Oral sensation includes, for example, one or more of the following textures: astringent, burning, cold, tingling, gooey, burning, greasy, rich, slimy, foamy, melting, rough, chalky, watery, acidic, lingering, metallic, body, body sweet, carbonated, cooling, warming, hot, juicy, dry mouth, numb, irritating, salivating, spongy, sticky, rich, cohesiveness, density, brittleness, granular, roughness, gum-like, hard, heavy, hygroscopic, hygroscopic, mouth-coating, roughness, smooth, uniformity, uniform bite, uniform chewing, viscous, rapid diffusion, full body, salivation and retention.
[0063] As previously mentioned, the perceived mouthfeel of food or beverage can be broadly influenced by the presence of aroma and taste attributes, in addition to the characteristics of texture. Thus, many other attributes can influence the overall mouthfeel of a product experienced, including one or more tastes or aromas, such as sweet, salty, umami, sour, bitter, creamy sour, acidic, acidic dairy products, green onion, toasted onion, and parsley. "Improved mouthfeel" means that one or more desirable mouthfeel perceptions are enhanced and / or one or more undesirable mouthfeel perceptions are reduced. In particular, one or more of the following perceptions may be enhanced by the products and methods described herein: creamy acidity, acidic dairy, sweetness, saltiness, and umami.
[0064] "Off-note masking" means that the intensity and / or duration of the perception of an undesirable attribute of a food product is reduced when a food containing an off-note masking component is compared to a food without off-note masking, as determined by analysis by trained panelists. "Improved sweetness" refers to the effect of a flavor-modifying ingredient on the sweetness characteristics of a food, and means the effect that is deemed more favorable when a food containing a sweetness-improving ingredient is compared to a food without the sweetness-improving ingredient, based on analysis by trained panelists. Improving sweetness can, for example, provide sweetness characteristics more similar to those of sucrose.
[0065] Sweetness characteristics can refer to the flavor profile (taste profile), which describes the intensity and perceptual attributes of the flavor of a particular compound. Exemplary flavor attributes of sweetness include sweetness intensity, bitterness, and black licorice. Sweetness characteristics can refer to a temporal profile, which describes the change in sweetness perception over time. All sweeteners exhibit characteristic onset time (AT) and disappearance time (ET). Most high-potency sweeteners, in contrast to carbohydrate sweeteners, exhibit a long ET (long-lasting). Generally, detected sucrose equivalence spikes to a maximum response level and then gradually decreases over time. The longer the taper (decrease), the greater the residual sweetness of the detected compound. Sweetness improvement can be achieved, for example, when flavor modifiers are used in sweetened food products. Sweetness improvement can be achieved particularly in dairy products or beverages, for example, in sweetened dairy products or beverages.
[0066] In one embodiment, flavor modifiers can be used to reduce the lingering sweetness of a food product (e.g., a sweetened food product). In other words, flavor modifiers can be used to shorten the disappearance time (ET) of a food product (e.g., a sweetened food product). This relates to the unpleasant lingering sweetness in the mouth after the food product has been first ingested or spat out. This lingering sweetness may also refer to, for example, the length of time the sweetness persists after initial detection, how quickly the intensity of the sweetness decreases or disappears after initial detection, and the intensity of the sweetness after initial detection. Flavor modifiers may, for example, shorten the length of time the sweetness persists after initial detection, and / or increase the rate at which the sweetness decreases after initial detection, and / or decrease the intensity of the sweetness after initial detection.
[0067] In one embodiment, a flavor modifier can be used to reduce the bitterness and / or astringency and / or metallic and / or licorice taste of a food product (e.g., a sweetened food product). In one embodiment, flavor modifiers can be used to enhance the sweetness impact of a food product (e.g., a sweetened food product). The sweetness impact is related to the length of time it takes for the sweetness to be first detected and the intensity at which the sweetness is first detected. Flavor modifiers can, for example, shorten the time it takes for the sweetness to be first detected and / or increase the intensity at which the sweetness is first detected.
[0068] The degree of sweetness and other sweetness characteristics described herein may be evaluated by a panel of trained experts in taste testing, as described, for example, in the following examples. "Salt enhancement" means the effect of a flavor modifier on the saltiness of a food, such that, when a food containing a salt-enhancing ingredient is compared to a food without the salt-enhancing ingredient, as analyzed by a panel of salt-sensitive trained individuals, the salt-enhancing effect is more pronounced (stronger, enhanced) in terms of taste intensity and / or longer in terms of duration. "Prebiotic" refers to the effect of a flavor modifier on improving the gut microbiota, for example, by increasing the activity of the gut microbiota and / or by increasing the population of the gut microbiota. [Examples]
[0069] Example 1 - Fermented oat fiber The flavor-modifying component was produced by fermenting oat fiber through the following process. 831g of water was added to a clean, sterilized tank. 166g of oat fiber (AvenOLait® oat fiber, commercially available from Axiom Foods Inc.) was added to the water. The mixture was heated to 121°C within 1 hour with continuous stirring. The mixture was maintained at 121°C for 30 minutes. The mixture was then cooled to 37°C, after which 3g of starter ferment was added. The mixture was incubated at 37°C for 4 days with slow stirring. The mixture was then pasteurized at 100°C for 45 minutes. The product was stored at 4°C.
[0070] The starter ferment used was either rice coated with Aspergillus oryzae (flavor modifier (FMI)-A) obtained from Rhapsody Natural Foods, Cabot VT 05647, or rice coated with Lactobacillus plantarum ATCC 14917. Sensory evaluation was conducted using each flavor modifier at a concentration of approximately 0.1% in various food products (pea yogurt, non-fat yogurt, soy milk yogurt, and 2% fat milk). For the potato chips, a flavor modifier was used in the sour cream and onion base seasoning at a concentration of 0.1%, and the sour cream and onion base seasoning was added to the potato chips at a concentration of 7%.
[0071] The various food products are as follows: Pea yogurt (Ripple, Original - Dairy alternative) Fat-free yogurt (available from Danon - unsweetened, fat-free dairy product) Soy milk yogurt (Silk, plain - dairy alternative) 2% Fat Milk (Available from Kroger - Unsweetened, Low-Fat Dairy Product) Potato Chips (Mike Sells Original Unsalted Chips) + 7% Sour Cream & Onion Base Flavor Sensory evaluations of pea yogurt, non-fat yogurt, soy milk yogurt, and 2% fat milk were conducted by a flavorist (descriptive analysis).
[0072] The sensory evaluation of sour cream and onion chips was conducted using a paired comparison strategy, comparing potato chips with a sour cream and onion base flavor containing FMI-A to potato chips with a sour cream and onion base flavor without FMI-A. Eleven panelists underwent pre-evaluation review and training using sour cream and onion potato chips. For sensory evaluation, samples were presented to the panelists in pairs as blinded samples, randomized and in a fully balanced order. Panelists were instructed to select the sample with the higher value for each attribute (creamy acidity, green onion, toasted onion, parsley, acidic dairy, sweetness, saltiness, umami) for each pair of products. Each paired evaluation was repeated four times.
[0073] The attributes tested for the sensory evaluation of sour cream and onion chips were defined as follows: Creamy acidity: A tangy dairy aroma reminiscent of sour cream, butter, and yogurt. Green Onion: The green, onion-like aroma of herbs, associated with green onions. Toasted Onion: A sweet, brown, toasted onion aroma associated with onion powder. Parsley: Green leafy and woody aroma associated with fresh parsley leaves. Acidic dairy products: Basic tastes on the tongue related to lactic acid in solutions, such as fermented milk. Sweetness: A basic taste associated with sugars and strong sweeteners in solutions. Saltiness: A basic taste associated with table salt (NaCl) diluted in water. Umami: A basic taste associated with MSG, characterized by its rich flavor in the mouth, often found in broths, soy sauce, and mushrooms. The results are shown below.
[0074] Pea Yogurt FMI-A Taste Evaluation: Clean pea notes, masking astringency, good cultured note profile, cleaner, sourer (preferable compared to FMI-B). FMI-B Taste Evaluation: Sweeter, less astringent, masks pea notes, creamy, masks acidity, more sweet notes, less grittiness.
[0075] Fat-free yogurt FMI-A Taste Rating: Very acidic, more sour, most cultured notes, clean, more cultured. FMI-B Taste Evaluation: Creates a more balanced yogurt profile, cleaner acidity notes, more cultured and dairy notes, very acidic and sharp with a balanced and clean finish, more cultured and sour notes (preferable compared to FMI-A).
[0076] Soy milk yogurt FMI-B Taste Rating: Good yogurt profile, low astringency, masks beany notes, creamy, sweet, good upfront, acidic mid-end, slightly cultured, very smooth, balanced acidity. 2% fat milk FMI-B Taste Rating: High in fat, almost like whole milk, yogurt-like, creamy, cultured at the end, clean profile.
[0077] Sour cream & onion chips FMI-A Taste Assessment: Enhanced creamy notes, saltier than base alone (p<0.05), less vegetable notes (parsley) than base alone (p<0.05), stronger perception of umami, acidic dairy, and toasted onion than base alone (p<0.1). Surprisingly, the flavor modifiers were found to eliminate the unpleasant beany taste of alternative dairy products (pea yogurt and soy yogurt). Even more surprisingly, the flavor-modifying ingredients were found to impart a sense of "richness" to low-fat or non-fat dairy products (non-fat yogurt and 2% fat milk), giving them an impression similar to the corresponding full-fat dairy products. Even more surprisingly, the flavor modifier FMI-A was found to impart saltiness to savory products (sour cream and onion chips).
[0078] Example 2 - Enzymatic hydrolysis of grape fiber Flavor-modifying components were produced by enzymatic hydrolysis of grape fiber. The flavor modifier (FMI-C) was prepared by mixing 70g of Concord grape fiber (obtained from FruitSmart) and 623.35g of water in a clean, sterilized tank. The following enzymes were then added to the mixture: 3.5g of Celluclast® (from Novozyme), 1.4g of Viscozyme® (from Novozyme), 0.7g of Flavorzyme® (from Novozyme), 0.35g of Umamizyme® (from Amano Enzymes), and 0.7g of Ceramix® (from Novozyme). The mixture was incubated at 50°C for 24 hours with continuous stirring.
[0079] Next, FMI-C was filtered and centrifuged through a felt filter bag at 1000 rpm for 10 minutes to remove large solids. The filtrate (532 g) was heated at 100°C for 1 hour to inactivate the enzyme. Then, FMI-C was stabilized by mixing with 228 g of propylene glycol and stored at 4°C. Sensory evaluation was conducted using FMI-C at concentrations of 0.07% and 0.09% in various beverage bases sweetened with RebA, sucralose, and sugar.
[0080] The base, sweetened with RebA, sucralose, and sugar, is as follows: Hybrid RebA-sugar based (a non-carbonated, neutral beverage sweetened with RebA-sugar for a 30% reduction in sugar content—7.3% sugar + 0.1% citric acid) Low-sugar base (5% sucrose + 0.03% citric acid in water; benchmark: 5.5% sucrose + 0.03% citric acid in water) Hybrid sucrose-glucose-fructose-RebA base (in water, 0.9% sucrose, 0.45% glucose, 0.45% fructose, and 180 ppm RebA + 0.05% citrate; benchmark: in water, 1.4% sucrose, 0.7% glucose, 0.7% fructose, and 120 ppm RebA + 0.05% citrate)
[0081] Hybrid sucralose-AceK base (in water, 70 ppm sucralose and 21 ppm AceK + 0.05% citric acid; benchmark: in water, 35 ppm sucralose, 21 ppm AceK and 2.5% sucrose + 0.05% citric acid) Sensory evaluation was performed by groups of 2-4 flavorists, comparing samples containing FMI-C to their corresponding base and benchmark samples (paired comparison). Adding FMI-C at a concentration of 0.09% improved the frontal sweetness and reduced lingering flavor of the hybrid RebA-sugar-sweetened base. Adding FMI-C at a concentration of 0.07% resulted in an approximately 1 / 2 Brix increase in the sweetness of a low-sugar base containing 5% sucrose.
[0082] Example 3 - Enzymatic hydrolysis and fermentation of cranberry fiber Flavor-modifying components were prepared by enzymatic hydrolysis of cranberry fiber, followed by fermentation. Flavor Modifier (FMI-D) was prepared by mixing 105 g of cranberry fiber (from FruitSmart) and 589.4 g of water in a clean, sterilized tank. The following enzymes were then added to the mixture: 3.5 g of Celluclast® (from Novozyme), 1.4 g of Viscozyme® (from Novozyme), 0.7 g of Flavorzyme® (from Novozyme), 0.35 g of Umamizyme® (from Amano Enzymes), and 0.7 g of Ceramix® (from Novozyme). The mixture was then incubated at 50°C for 24 hours with continuous stirring. The mixture was then cooled to 37°C, and 3.5 g of Aspergillus oryzae culture (from Rhapsody Natural Foods) was added. The mixture was incubated at 37°C for 96 hours with the ports open and stirring.
[0083] Next, the slurry was diluted with water to reduce the solid content from 15% to 10%, and large solid particles were removed by filter centrifugation through a felt filter bag at 1000 rpm for 10 minutes. Then, the filtrate (511 g) was heated at 100°C for 1 hour to inactivate the enzyme. Next, FMI-D was stabilized by mixing with 219 g of propylene glycol and stored at 4°C. Sensory evaluation was performed using a 0.05% concentration of FMI-D in a zero-calorie base containing 180 ppm RebA and 0.05% citrate (descriptive analysis). The sensory evaluation was conducted by six panelists (flavorists and scientists).
[0084] It was found that adding FMI-D to a zero-calorie base reduced lingering effects, masked bitterness and metallic taste, and resulted in a more sugary mouthfeel. Sensory evaluation was also performed using 0.075% FMI-D in plain pea yogurt obtained from Ripple foods sweetened with 180 ppmn RebA. FMI-D offered a sweeter, creamier, and cleaner flavor profile compared to the blind blank base.
[0085] Example 4 - Enzymatic hydrolysis of grape fiber Flavor-modifying components were produced by enzymatic hydrolysis of grape fiber. Flavor Modifier (FMI-E) was prepared by mixing 140 g of Concord grape fiber (obtained from FruitSmart) and 547.9 g of water in a clean, sterilized tank. The following enzymes were then added to the mixture: 5.25 g of Celluclast® (from Novozyme), 2.1 g of Viscozyme® (from Novozyme), 1.05 g of Flavorzyme® (from Novozyme), 0.525 g of Umamizyme® (from Amano Enzymes), 1.05 g of Ceramix® (from Novozyme), 1.4 g of Hemicellulase (from Amano Enzymes), and 0.7 g of Mannanase (from Amano Enzymes). The mixture was incubated at 50°C for 24 hours with continuous stirring.
[0086] Next, the slurry was filtered and centrifuged at 1000 rpm for 10 minutes through a felt filter bag to remove large solid particles. The filtrate (429 g) was heated at 100°C for 1 hour to inactivate the enzymes, and the components were stabilized by mixing with 184 g of propylene glycol and stored at 4°C. Sensory evaluation was conducted using FMI-E at concentrations ranging from 0.02% to 0.09% in various beverage bases sweetened with RebA, sucralose, and sugar. The base sweetened with RebA, sucralose, and sugar had the same composition as the base used in Example 2, as follows: Low sugar base (5% sucrose + 0.03% citric acid) Hybrid sucrose-glucose-fructose-RebA base Hybrid sucralose-AceK base
[0087] The sensory evaluation was conducted by six flavorists. FMI-E was found to increase the sweetness of a low-sugar base (containing 5% sucrose) by more than 1 / 2 Brix at a concentration of 0.09%. At a concentration of 0.045%, the sweetness of the low-sugar base (containing 5% sucrose) increased by approximately 1 / 2 Brix. At a concentration of 0.03%, FMI-E added body to the sweetness and adjusted (reduced) the metallic aftertaste of sucralose in hybrid sucralose-AceK-sugar bases.
[0088] Example 5 - Enzymatic hydrolysis and fermentation of oat fiber Flavoring modifiers or probiotic drinks were prepared by enzymatic hydrolysis and fermentation of oat fiber. Flavor modifiers or probiotic drinks were prepared by mixing oat flour (codename P12 or BG28, from Naturex) or oat grains (from Grain Millers Inc. US) with water to form a slurry with a solid content of 20-30%. The aqueous slurry was heated to a temperature in the range of 50°C to approximately 55°C prior to enzymatic hydrolysis. Next, α-amylase enzyme (Kleistase® SD-80, from Amano Enzyme, at a concentration of 1-1.5%) was added, and the mixture was incubated at 50-55°C for 2 hours to break down amylose and amylopectin into maltose and various dextrins. Then, glucoamylase (Gluczyme® NLP from Amano Enzyme at a concentration of 0.5-1.5%, incubated at 50°C to 55°C for a further 1-2 hours) was added to further break down the mixture and release glucose. The protease / aminopeptidase enzyme (Protein Glutaminase® 500 from Amanono) was also added, and the protein was hydrolyzed at 50°C-55°C for 1-2 hours. The mixture was pasteurized at 100°C for 45 minutes to inactivate all enzymes. This was then fermented with lactic acid bacteria (e.g., L. delbruckeii ssp. bulgaricus, Streptococcus thermophilus, Lactobacillus acidophilus, etc.) and / or bifidobacteria at a concentration of 0.3-0.7% at 30-35°C for 24-48 hours. The culture was obtained as a freeze concentrate from a commercial supplier (e.g., Vivolac, US). The resulting flavor modifier was then further processed by refrigeration or spray drying.
[0089] Sensory evaluation was conducted by adding a 0.05% concentration of the flavor modifier to GoodBelly® dairy-free probiotic shots. Six panelists conducted the sensory evaluation. All panelists found that the flavor modifier provided a good body and improved mouthfeel, as well as off-note masking and some sweetness improvement. The results are shown in the table below.
[0090] Evaluation of oat fiber enzymatically hydrolyzed and fermented at a concentration of 0.05% in GoodBelly® Dairy-Free Probiotic Shot. [Table 1]
[0091] The above broadly describes certain aspects of the present invention without limitation. Changes and modifications that would be readily apparent to those skilled in the art are intended to fall within the scope of the present invention as defined in the appended claims.
Claims
1. A method for producing a flavor-modifying component, comprising subjecting dietary fiber to enzymatic hydrolysis and / or fermentation, wherein the method comprises (a) contacting a fiber-digesting enzyme with a suspension comprising a certain amount of water and washed whole grain oat flour, and (b) treating the suspension for a time sufficient to hydrolyze fiber particles to form modified whole grain oat flour.
2. The method according to claim 1, wherein the dietary fiber is isolated dietary fiber.
3. The method according to claim 1 or 2, wherein the dietary fiber is an aqueous slurry of dietary fiber.
4. The method according to any one of claims 1 to 3, wherein the dietary fiber is grain fiber (e.g., oat fiber), vegetable fiber (e.g., pea fiber), or fruit fiber (e.g., citrus fruit fiber, apple fiber, blueberry fiber, cranberry fiber, grape fiber).
5. The method according to any one of claims 1 to 4, wherein the enzymatic hydrolysis uses one or more enzymes selected from carbohydrases and proteolytic enzymes.
6. The method according to any one of claims 1 to 5, wherein the enzymatic hydrolysis uses at least one enzyme selected from cellulase, pectinase, and other carbohydrases.
7. The method according to any one of claims 1 to 6, wherein the fermentation uses lactic acid bacteria (e.g., Lactobacillus plantarum) or Aspergillus fungi (e.g., Aspergillus oryzae).
8. The method according to any one of claims 1 to 7, wherein the enzymatic hydrolysis is carried out at a temperature in the range of about 25°C to about 60°C.
9. The method according to any one of claims 1 to 8, wherein enzymatic hydrolysis is carried out for a period of time ranging from about 1 hour to about 48 hours.
10. The method according to any one of claims 1 to 9, wherein the fermentation is carried out at a temperature in the range of approximately 20°C to approximately 45°C.
11. The method according to any one of claims 1 to 10, wherein fermentation is carried out for a period ranging from about 1 day to about 10 days.
12. The method according to any one of claims 1 to 11, wherein the method comprises subjecting dietary fiber to enzymatic hydrolysis and fermentation.
13. The method according to claim 12, wherein enzymatic hydrolysis occurs before and / or simultaneously with fermentation.
14. The method according to claim 12 or 13, wherein the dietary fiber is grain fiber (e.g., oat fiber) or fruit fiber (e.g., citrus fruit fiber, apple fiber, blueberry fiber, cranberry fiber, grape fiber).
15. The method according to any one of claims 1 to 11, wherein the method comprises subjecting dietary fiber to enzymatic hydrolysis, but does not involve subjecting dietary fiber to fermentation.
16. The method according to claim 15, wherein the dietary fiber is vegetable fiber (e.g., pea fiber) or fruit fiber (e.g., citrus fruit fiber, apple fiber, blueberry fiber, cranberry fiber, grape fiber).
17. The method according to claim 15 or 16, wherein the enzymatic hydrolysis is carried out at a temperature in the range of about 40°C to about 60°C.
18. The method according to any one of claims 15 to 17, wherein enzymatic hydrolysis is carried out for a period of time ranging from about 12 hours to about 48 hours.
19. The method according to any one of claims 1 to 11, wherein the method comprises subjecting dietary fiber to fermentation, but does not involve subjecting dietary fiber to enzymatic hydrolysis.
20. The method according to claim 19, wherein the dietary fiber is grain fiber (for example, oat fiber).
21. The method according to claim 19 or 20, wherein the fermentation is carried out at a temperature in the range of approximately 30°C to approximately 45°C.
22. The method according to any one of claims 19 to 21, wherein fermentation is carried out for a period ranging from about 4 days to about 10 days.
23. The method according to any one of claims 1 to 22, wherein the method comprises heating the dietary fiber to a temperature of about 75°C or higher before enzymatic hydrolysis and fermentation.
24. The method according to any one of claims 1 to 23, wherein the method further comprises inactivating the enzyme and / or fermenting microorganisms following enzymatic hydrolysis and / or fermentation.
25. The method according to any one of claims 1 to 24, further comprising combining a flavor modifier with propylene glycol.
26. The method according to any one of claims 1 to 25, wherein the method further comprises spray-drying a flavor-modifying component.
27. A flavor modifier that can be obtained and / or obtained by the method described in any one of claims 1 to 26.
28. A flavor composition for food products comprising the flavor-modifying component described in claim 27.
29. The flavor composition according to claim 28, further comprising one or more food-grade excipients.
30. The flavor composition according to claim 28 or 29, wherein the concentration of the flavor modifier according to claim 27 is about 0.02% to about 0.5% (w / w) based on the unconcentrated flavor modifier.
31. A flavor composition according to any one of claims 28 to 30, further comprising one or more sweeteners.
32. The flavor composition according to claim 31, wherein one or more sweeteners are selected from sucrose, fructose, glucose, arabinose, rhamnose, tagatose, allulose, trehalose, isomaltulose, steviol glycosides (e.g., rebaudioside A, rebaudioside B, rebaudioside C, rebaudioside D, rebaudioside M, stevioside), stevia, trilobatin, rubusoside, aspartame, advantame, agave syrup, acesulfame potassium (AceK), high-fructose corn syrup, neotame, saccharin, sucralose, high-fructose corn syrup, starch syrup, monk fruit extract, mogroside, neohespiridine, dihydrochalcone, naringin, and sugar alcohols (e.g., sorbitol, xylitol, inositol, mannitol, erythritol).
33. A food product comprising the flavor-modifying component described in claim 27.
34. The food product according to claim 33, wherein the concentration of the flavor modifier according to claim 27 is about 0.001% to about 0.5% (w / w) based on the unconcentrated flavor modifier.
35. The food product according to claim 33 or 34, wherein the food product is a dairy product or a dairy alternative, or a beverage or a savory food.
36. A food product according to any one of claims 33 to 35, further comprising one or more sweeteners.
37. The food product according to claim 36, wherein one or more sweeteners are selected from sucrose, fructose, glucose, arabinose, rhamnose, tagatose, allulose, trehalose, isomaltulose, steviol glycosides (e.g., rebaudioside A, rebaudioside B, rebaudioside C, rebaudioside D, rebaudioside M, stevioside), stevia, trilobatin, rubusoside, aspartame, advantame, agave syrup, acesulfame potassium (AceK), high-fructose corn syrup, neotame, saccharin, sucralose, high-fructose corn syrup, starch syrup, monk fruit extract, mogroside, neohespiridine, dihydrochalcone, naringin, and sugar alcohols (e.g., sorbitol, xylitol, inositol, mannitol, erythritol).
38. Use of the flavor-modifying component described in claim 27 to improve the mouthfeel of a food product.
39. A method for providing a food product having an improved mouthfeel, comprising mixing a flavor-modifying component according to claim 27 into a food product.
40. Use of the flavor modifier according to claim 27 for masking off-notes in a food product.
41. A method for providing a food product having reduced off-notes, comprising mixing a flavor-modifying component according to claim 27 into a food product.
42. Use of the flavor-modifying component described in claim 27 to improve the sweetness of a food product.
43. A method for providing a food product having improved sweetness, comprising mixing the flavor-modifying component described in claim 27 into a food product.
44. Use of the flavor modifier according to claim 27 for enhancing the saltiness of a food product.
45. A method for providing a food product having an enhanced salty taste, comprising mixing the flavor-modifying component described in claim 27 into a food product.
46. Use of the flavor-modifying component described in claim 27 as a prebiotic.
47. A method for providing a prebiotic food product, comprising mixing a flavor-modifying component according to claim 27 into a food product.
48. The use or method according to any one of claims 38 to 45, wherein the food product is a dairy product or a dairy alternative, or a beverage or a savory food.