Compositions containing brazzein
Patent Information
- Application Number
- JP2024215031
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2019-04-01
- Filing Date
- 2024-12-10
- Publication Date
- 2025-06-02
AI Technical Summary
Existing low-calorie or no-calorie saccharin has adverse flavor characteristics such as delayed sweetness development, persistent sweetness after-flavor, bitter, metallic, dry and licorice-like flavors, which are difficult to achieve high sugar flavor and taste-profile.
A combination of sweet or flavor improvements comprising Brazein (or its analogue) and at least one Steviol glycoside or Mogroside is used for the preparation and use of a sweet or flavor improvement consumer product.
Provides a time and flavor-profile similar to the high-sugar substance Sucrose, reducing sweetness lasting time, improving taste experience, and reducing bitterness.
Abstract
Description
[Technical field]
[0001] CROSS-REFERENCE TO RELATED APPLICATIONS This application claims priority to U.S. Provisional Patent Application No. 62 / 827,487, filed April 1, 2019, which is incorporated by reference in its entirety.
[0002] FIELD OF THEINVENTION Disclosed herein are sweetener compositions, flavor improving compositions, and methods of preparing and using the same. Also disclosed are consumable products (e.g., beverages) containing such sweetener compositions and / or flavor improving compositions. [Background technology]
[0003] 2. Background of the Invention The beverage, food, pharmaceutical, and oral health / beauty industries utilize large amounts of high-calorie natural sugars, such as sucrose, fructose, and glucose, due to their pleasant taste. In particular, sucrose provides a taste that is favored by consumers. Sucrose provides excellent sweetness characteristics, but is high in calories. While calories are essential for proper bodily function, there exists a preference among some consumers for alternative non-calorie or low-calorie sweeteners that have a taste similar to sugar. To meet consumer demand, non-calorie or low-calorie sweeteners have been introduced, but sweeteners within this group are accompanied by undesirable taste characteristics. Specifically, non-calorie or low-calorie sweeteners exhibit a time profile, maximum response, flavor profile, texture, and / or adaptation behavior that is different from sugar. When used in consumer products, delayed sweetness onset, persistent sweet aftertaste, bitterness, metallic taste, astringent taste, refreshing taste, and / or liquorice-like taste are often detected.
[0004] Thus, there remains a need to develop low- or non-caloric sweeteners and sweetened compositions suitable for use in consumer products that also provide a temporal and flavor profile similar to that of sucrose. Summary of the Invention [Problem to be solved by the invention]
[0005] Summary of the Invention Disclosed herein are compositions that include brazzein (or analogs thereof), and methods of making and using these compositions. [Means for solving the problem]
[0006] In a first embodiment, a sweetener composition or flavor improving composition is disclosed comprising (i) brazzein (or an analogue thereof) and (ii) at least one steviol glycoside or mogroside.
[0007] In certain embodiments, the steviol glycoside is selected from rebaudioside M ("RebM"), rebaudioside A ("RebA"), and A95. In certain embodiments, the mogroside is siamenoside I.
[0008] In a second embodiment, a sweetener composition or flavor improving composition is disclosed that comprises: (i) brazzein (or an analog thereof); and (ii) high fructose corn syrup (HFCS).
[0009] In a third embodiment, a consumable product (e.g., a beverage) is provided that comprises (i) brazzein (or an analogue thereof); and (ii) at least one steviol glycoside or HFCS.
[0010] In certain embodiments, brazzein (or an analog thereof) is present in an amount of about 1 ppm to about 50 ppm.
[0011] In a third embodiment, a method is disclosed for imparting a more sugar-like temporal, flavor and / or taste profile to a consumable (e.g., a beverage or other ingestible consumable) by adding a sweetener composition or flavor improving composition disclosed herein to the consumable, thereby providing the consumable with a more sugar-like temporal, flavor and / or taste profile.
[0012] In one embodiment, the more sugar-like temporal profile is a reduced sweetness linger compared to a consumable product to which the sweetener composition or flavor improving composition disclosed herein is not added.
[0013] In another embodiment, the more sugar-like flavor profile is an improved mouthfeel compared to a consumable product to which the sweetener or flavor improving compositions disclosed herein have not been added, hi a particular embodiment, the improved mouthfeel is an improved body or fullness.
[0014] In a further embodiment, the more sugar-like taste profile is a reduced bitterness compared to a consumable product to which the sweetener composition or flavor improving composition disclosed herein has not been added.
[0015] The method may further include the addition of other sweeteners, additives, functional ingredients, and combinations thereof.
[0016] The brazzein used in the compositions disclosed herein (e.g., sweetener compositions, flavor improving compositions, or consumable products containing the same) can be produced by any suitable means, such as extraction, chemical synthesis, in vivo or in vitro.
[0017] The one or more steviol glycosides can be used in any form. In one embodiment, the steviol glycosides are present in a Stevia extract, where the steviol glycosides comprise about 5% to about 100% of the Stevia extract by weight on a dry basis. In a further embodiment, the steviol glycosides are present in a mixture of steviol glycosides, where the steviol glycosides comprise about 5% to about 100% of the steviol glycoside mixture by weight on a dry basis.
[0018] The compositions disclosed herein can also contain one or more additional sweeteners, including, for example, natural sweeteners, intense sweeteners, carbohydrate sweeteners, synthetic sweeteners, and combinations thereof.
[0019] The composition may also contain one or more additives including, for example, carbohydrates, polyols, amino acids and their corresponding salts, polyamino acids and their corresponding salts, sugar acids and their corresponding salts, nucleotides, organic acids, inorganic acids, organic salts including organic acid salts and organic base salts, inorganic salts, bitter compounds, flavor and flavoring ingredients, astringent compounds, proteins or protein hydrolysates, surfactants, emulsifiers, flavonoids, alcohols, polymers, and combinations thereof.
[0020] The composition may also contain one or more functional ingredients, such as, for example, saponins, antioxidants, dietary fiber sources, fatty acids, vitamins, glucosamine, minerals, preservatives, hydrating agents, probiotics, prebiotics, weight control agents, osteoporosis control agents, phytoestrogens, long chain primary aliphatic saturated alcohols, phytosterols, and combinations thereof.
[0021] Disclosed consumer products include, for example, pharmaceutical compositions, edible gel mixes and compositions, dental compositions, food, beverages, and beverage products.
[0022] In certain embodiments, beverages are disclosed that contain the sweetener or flavor improving compositions disclosed herein, the beverages containing a liquid substrate that forms the major component of the beverage, such as deionized water, distilled water, reverse osmosis water, carbon-treated water, purified water, demineralized water, phosphoric acid, phosphate buffer, citric acid, citrate buffer, and carbon-treated water.
[0023] Low-calorie and zero-calorie beverages containing the sweetener compositions or flavor improving compositions disclosed herein are also provided.
[0024] Also provided is a tabletop sweetener composition comprising the sweetener composition or flavor and / or taste improving composition disclosed herein. The tabletop composition may further comprise at least one filler, additive, anti-caking agent, functional ingredient, and combinations thereof. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0025] Detailed Description of the Invention definition The term "analog" as used herein refers to a molecule that is not identical but has similar functional or structural characteristics. For example, a polypeptide analog retains the biological activity of the corresponding naturally occurring polypeptide while having certain biochemical modifications that enhance the function of the analog compared to the naturally occurring polypeptide. The modification can be, for example, a substitution, deletion, or insertion of one or more amino acids compared to the wild-type polypeptide. In some embodiments, an analog has at most 10, 9, 8, or 7 amino acids substituted, deleted, or inserted compared to the wild-type peptide or portion thereof. In some embodiments, an analog has at most 6 amino acids substituted, deleted, or inserted compared to the wild-type peptide or portion thereof. In some embodiments, an analog has at most 5 or 4 amino acids substituted, deleted, or inserted compared to the wild-type peptide or portion thereof. In some embodiments, an analog has at most 3, 2, or 1 amino acid substituted, deleted, or inserted compared to the wild-type peptide or portion thereof. An analog can include a non-natural amino acid.
[0026] The term "astringency" as used herein refers to a mouth-pucking sensation and dryness of the palate, which is known to intensify and become increasingly difficult to remove from the mouth during repeated exposure. Astringency is a dry sensation experienced in the mouth and is generally described as resulting from loss of lubrication due to protein deposition from the salivary film that coats and lubricates the oral cavity. Astringency is not localized to a specific area of the mouth, but is a widespread surface phenomenon characterized by loss of lubrication.
[0027] The term "bitter" or "bitter taste", as used herein, refers to the perception or taste resulting after detection of a bitter tastant. The following characteristics can contribute to bitterness: astringent, bitter-astringent, metallic, bitter-metallic, as well as off-tastes, aftertastes, and undesirable tastes (including but not limited to freezer burn and cardboard taste), and / or any combination thereof. It is noted that in the art, the term "off-taste" is often synonymous with "bitter taste". The bitterness of a substance can be compared to the bitterness threshold of quinine, which is 1. (Guyton, Arthur C. (1991) Textbook of Medical Physiology. (8th ed). Philadelphia: WB Saunders; McLaughlin S., Margolskee RF (1994). "The Sense of Taste". American Scientist. 82(6):538-545). Bitterness can be tested using a panel of subjects as described herein, or in vitro, for example using taste receptor cell lines.
[0028] The term "consumable product" as used herein refers to a material that comes into contact with the mouth of a human or animal, including materials that are ingested and then expelled from the mouth, and materials that are drunk, eaten, swallowed, or otherwise ingested and that are safe for human or animal consumption when used in generally acceptable ranges. Exemplary consumable products include, but are not limited to, pharmaceutical compositions, edible gel mixes and compositions, dental compositions, foodstuffs (confectionery, condiments, chewing gum, cereal compositions, baked products, dairy products, and tabletop sweetener compositions), beverages and beverage products. Consumable products can be sweetened or unsweetened.
[0029] As used herein, the term "degree Brix" refers to the sugar content of an aqueous solution. 1 degree Brix is 1 gram of sucrose in 100 grams of solution, expressed as the concentration of the solution as a weight percent (% w / w).
[0030] The term "expression" as used herein refers to the transcription and / or translation process occurring in a cell. The level of transcription of a nucleic acid sequence of interest in a cell can be determined based on the amount of corresponding mRNA present in the cell. For example, mRNA transcribed from a sequence of interest can be quantified by RT-PCR or Northern hybridization (see Sambrook et al., 1999, supra). The polypeptide encoded by a nucleic acid of interest can be quantified by various methods, for example, by ELISA, or by quantifying the biological activity of the polypeptide, or by using quantification methods that are independent of such activity, such as Western blotting or radioimmunoassays that use immunoglobulins that recognize and bind to the polypeptide (see Sambrook et al., 1999, supra).
[0031] The term "expression vector" as used herein refers to a nucleic acid that provides all elements required for the expression of a contained structural gene in a host cell. Typically, an expression plasmid contains a prokaryotic (e.g., for E. coli) plasmid propagation unit that contains an origin of replication, and a selectable marker, a eukaryotic selectable marker, and one or more expression cassettes for the expression of the structural gene of interest, each of which contains a promoter, a structural gene, and a transcription terminator including a polyadenylation signal. Gene expression is usually placed under the control of a promoter, and such a structural gene is said to be "operably linked" to the promoter. Similarly, a regulatory element and a core promoter are operably linked if the regulatory element regulates the activity of the core promoter.
[0032] The term "flavor" or "flavor characteristic" as used herein refers to the sensory perception of taste, odor (aroma), and / or texture components. The flavor profile of a composition is a quantitative profile of the relative intensity of all the taste characteristics exhibited. Such profiles are often plotted as a histogram or radar plot. In certain embodiments, a flavor profile includes one or more flavors that contribute to a subject's sensory experience. In certain embodiments, modifying, changing, or varying the combination of cues in a flavor profile can change the subject's sensory experience.
[0033] The term "flavor improving composition" as used herein refers to a composition that modulates (including enhances, multiplies, intensifies, reduces, inhibits, or induces) the taste, odor, flavor and / or texture of a natural or synthetic tastant, flavoring, taste profile, flavor profile, and / or texture profile in a subject to which it is administered.
[0034] The term "high intensity sweetener," as used herein, refers to any synthetic or semi-synthetic sweetener or sweetener found in nature that is many times sweeter than sucrose (e.g., more than 20 times, more than 30 times, more than 50 times, or more than 100 times sweeter than sucrose).
[0035] The term "isosweet" as used herein refers to a composition having an equivalent sweetness. In general, the sweetness of a given composition is typically measured relative to a solution of sucrose. See "A Systematic Study of Concentration-Response Relationships of Sweeteners," GEDuBois, DEWalters, S.S. Schiffman, Z.S. Warwick, B.J. Booth, S.D.Pecore, K. Gibes, B.T. Carr, and L.M. Brands (in Sweeteners: Discovery, Molecular Design and Chemoreception, DEWalters, FT Orthoefer, and GEDuBois, Eds., American Chemical Society, Washington, DC (1991), pp 261-276).
[0036] As used herein, the term "texture" refers to the sensory and tactile properties of a consumable product that are perceived when the composition comes into contact with the oral cavity and surfaces. Sensory and tactile properties include texture, thickness, consistency, and body.
[0037] The term "organoleptic" or "sensory attributes" as used herein refers to sensations perceived by the senses during consumption of a consumer good (e.g., a food or beverage). Thus, sensory attributes include the taste and aroma of the consumer good as well as color and texture. Sensory attributes are subjective and affect different people differently. These sensory attributes can be evaluated, for example, by a panel of trained or untrained individuals with the required sensory skills. Analytical methods can include, for example, discrimination / differential and descriptive analysis. In certain embodiments, the sensory attributes, or improvements therein, are sensed by a majority of the individuals tested.
[0038] The term "ppm" as used herein means parts per million and is a relative parameter by weight. Parts per million is one microgram per gram, so that a component present at 10 ppm is present in 10 micrograms of that particular component per gram of total mixture.
[0039] The term "purity" as used herein refers to a material that is substantially or essentially free of components normally associated with the compound as found in its native state. Purity and homogeneity are typically determined using analytical chemistry techniques. Specifically, in one embodiment, the compound is at least 85% pure, more preferably at least 90% pure, more preferably at least 95% pure, and most preferably at least 99% pure. In another embodiment, the compound is at least 90% pure, at least 91% pure, at least 92% pure, at least 93% pure, at least 95% pure, at least 95% pure, at least 96% pure, at least 97% pure, at least 98% pure, or at least 99% pure.
[0040] As used herein, "sensory experience" refers to a subject's sensory perception of a taste, taste profile, flavor, flavor profile, or texture profile.
[0041] The term "sour" or "sour taste" as used herein refers to a taste that detects acidity. It is caused by hydrogen atoms or ions. The more atoms present in a food product, the more sour it will taste. The sour taste of a substance is rated relative to dilute hydrochloric acid (which has an acidity index of 1). By comparison, tartaric acid has an acidity index of 0.7, citric acid has an index of 0.46, and carbonic acid has an index of 0.06. The reduction in sour taste can be expressed as a percentage of sour taste inhibition. In one embodiment, the taste improving composition of the present invention reduces the sour taste of a consumable (e.g., beverage) by at least about 5%, at least about 10%, at least about 15%, at least about 20%, or at least about 25% or more compared to a consumable not containing the taste improving composition.
[0042] As used herein, the term "steviol glycoside" refers to naturally occurring steviol glycosides, such as, but not limited to, rebaudioside A (RebA), rebaudioside B (RebB), rebaudioside C (RebC), rebaudioside D (RebD), rebaudioside E (RebE), rebaudioside F (RebF), rebaudioside G (RebG), rebaudioside H (RebH), rebaudioside I (RebI), rebaudioside J (RebJ), rebaudioside K (RebK), rebaudioside L (RebL), rebaudioside M (RebM), rebaudioside N (RebN), rebaudioside O (RebO), rebaudioside Q (RebQ), rebaudioside N (RebN), rebaudioside O (RebO), rebaudioside Q (RebQ), rebaudioside B (RebB), rebaudioside C (RebC), rebaudioside D (RebD), rebaudioside E (RebE), rebaudioside F (RebF), rebaudioside G (RebG), rebaudioside H (RebH), rebaudioside I (RebI), rebaudioside J (RebJ), rebaudioside K (RebK), rebaudioside L (RebL), rebaudioside M (RebM), rebaudioside N (RebN), rebaudioside O (RebO), rebaudioside Q (RebQ ... It refers to glycosides of steviol, including rebaudioside R (RebR), rebaudioside S (RebS), rebaudioside T (RebT), rebaudioside U (RebU), rebaudioside V (RebV), rebaudioside W (RebW), rebaudioside Y (RebY), stevioside, steviolbioside, dulcoside A, and rubusoside, or synthetic or biosynthetic steviol glycosides, such as enzymatically glycosylated steviol glycosides, steviol glycoside products from biocatalytic bioconversion of steviol glycosides, steviol glycosides from fermentation of recombinant microbial hosts capable of de novo synthesis of steviol glycosides, and combinations thereof. In certain embodiments, the steviol glycoside is a rebaudioside analog. Steviol glycosides have a sweetness ranging from 40 to 300 times sweeter than sucrose and are characterized as being heat stable, pH stable, and non-fermentable.
[0043] The term "sucrose equivalence" as used herein refers to the sweetness of a non-sucrose composition relative to a sucrose standard. Typically, tasters are trained to detect the sweetness of a standard sucrose solution containing 1-15% sucrose (w / v). Other non-sucrose sweeteners are then tasted in a dilution series to determine the concentration of the non-sucrose sweetener that is as sweet (i.e., equivalently sweet) to a given percentage of the sucrose standard.
[0044] The term "sugar-like properties" refers to any properties similar to those of sucrose, including, but not limited to, maximum response, flavor profile, taste profile, temporal profile, adaptation behavior, mouthfeel, concentration / response function, tastant / and flavor / sweetness interactions, distribution pattern selectivity, and temperature effect. These properties are the degree to which the taste of sucrose differs from the taste of other compounds. The term "sweetener composition" as used herein means a composition containing at least one sweet component in combination with at least one other substance, such as another sweetener or additive.
[0045] The term "sweetenable composition" as used herein refers to a substance that comes into contact with the mouth of a human or animal, including a substance that is ingested and then excreted from the mouth, and a substance that is drunk, eaten, swallowed, or otherwise ingested and is safe for human or animal consumption when used in a generally acceptable manner. For example, a beverage that does not contain a sweetener component is a type of sweetenable composition. A sweetener composition containing RebX and erythritol can be added to an unsweetened beverage to provide a sweetened beverage. In another example, a beverage containing RebM or RebA is a type of sweetenable composition. A sweetener composition containing brazzein can be added to this RebM or RebA-containing beverage to provide a sweetened beverage.
[0046] The term "sweetened composition" as used herein means a substance that contains both a sweetenable composition and a sweetener or sweetener composition.
[0047] The term "sweetness perception threshold concentration" generally used herein is the lowest known concentration of sweet compounds that can be perceived by human taste, typically about 1.0% sucrose equivalent (1.0% SE).Sweetness perception threshold concentration can be easily determined by tasting increasing concentrations of a given enhancer until more than 1.0% sucrose equivalent is detected in a given beverage matrix.The concentration that provides about 1.0% sucrose equivalent is considered to be the sweetness perception threshold.
[0048] The term "synergy," as used herein, refers to a situation in which a combination of substances or compounds results in an activity (chemical and / or biological) that is greater than the sum of their individual activities. In one embodiment, the activity is sweetness.
[0049] The term "taste," as used herein, refers to the sensation or perception caused by the activation or inhibition of receptor cells in a subject's taste buds. Taste buds are capable of distinguishing between different tastes through the detection of interactions with different molecules or ions. Tastes are considered to include sweet, sour, salty, bitter (the so-called "basic tastes"), as well as kokumi and umami.
[0050] As used herein, "texture profile" or "mouthfeel" refers to the physical and chemical interactions of a composition in the mouth. The texture profile of a composition may include one or more textures, such as, but not limited to, mouthwatering, lubricating, slippery, astringent, hardness, cohesiveness, viscosity, elasticity, adhesiveness, brittleness, chewiness, gumminess, moisture content, grittiness, smoothness, oiliness, and greasiness. In certain embodiments, the texture profile may include one or more texture characteristics of the same or different intensities.
[0051] Sweetener composition / flavor improving composition Disclosed herein are sweetener compositions and flavor improving compositions, in each case containing brazzein (or an analog thereof). In certain embodiments, the sweetener compositions and flavor improving compositions alter (e.g., enhance) one or more sensory experiences of a subject consuming them.
[0052] A flavor improving composition can modify (e.g. enhance, inhibit or change) the taste, aroma and / or texture of a given composition, e.g. a consumer product. In certain embodiments, the flavor improving composition modifies (e.g. enhances, inhibits or changes) a certain taste. In other embodiments, the flavor improving composition modifies (e.g. enhances, inhibits or changes) a given texture. In certain embodiments, the flavor improving composition modifies (e.g. enhances, inhibits or changes) both a given taste and texture.
[0053] The flavor improving composition can be sweetened or unsweetened. Thus, in some embodiments, the addition of a flavor improving composition can serve to add a flavor improving agent or can further provide sweetness to the selected composition for taste modification. The addition of a sweetened flavor improving composition can be used in addition to or instead of the addition of another sweetener composition.
[0054] The sweetener compositions and flavor improving compositions disclosed herein contain brazzein, a variant or analog thereof. In certain embodiments, brazzein (or an analog thereof) is the only sweet component in the sweetener composition or flavor improving composition. In certain embodiments, the sweetener composition or flavor improving composition further comprises one or more additional sweet components. In particular embodiments, the one or more sweet components include steviol glycosides (e.g., RebM, RebA) and HFCS.
[0055] Brazzein is a small, sweet-tasting protein originally isolated from the fruit of the West African plant Pentadiplandra brazzeana (Baillon). (Ming D et al., FEBS Lett. (1994) 355:106-108). Brazzein is a monomeric protein with a molecular weight of 6.5 kd. As a member of the Csβα fold family, brazzein contains four disulfide bonds that confer a high degree of thermal and pH stability to its structure. Specifically, the sweetness of brazzein remains after incubation at 98°C for 2 hours and at 80°C for 4.5 hours in the pH range of 2.5-8. Brazzein is also water soluble (>50 mg / mL). Brazzein is a highly soluble protein (>50 g / L) with an isoelectric point of 5.4.
[0056] At least three forms of this protein are known, but only two are present in ripe fruit: the major form (pGlu-brazzein) (approximately 80%) contains a pyroglutamic acid (pGlu) residue at its N-terminus, whereas the minor form (des-pGlu1-brazzein, commonly referred to as "brazzein") (approximately 20%) lacks this residue.
[0057] The 53 amino acid sequence of wild-type brazzein (minor form) is shown in SEQ ID NO: 1. The compositions disclosed herein may contain wild-type brazzein or naturally occurring variants or recombinant analogs thereof.
[0058] The minor form is approximately twice as sweet as the major form. Specifically, brazzein has a sweetness intensity of about 500 to 2000 times that of sucrose. The taste of brazzein is more similar to sucrose than to the taste of thaumatin, another sweet protein. In certain embodiments, the sweetener compositions or flavor improving compositions disclosed herein comprise a minor wild-type brazzein.
[0059] Brazzein is thought to be involved in a multipoint binding interaction with the human sweet taste receptor, a heterodimeric G protein-coupled receptor composed of Taste type 1 Receptor 2 (T1R2) and Taste type 1 Receptor 3 (T1R3) subunits (Assadi-Porter FM, et al., J Mol. Bio. (2010) 14; 398 (4): 584-99). The brazzein binding site is distinct from the sucrose binding site.
[0060] In certain embodiments, the sweetener compositions and flavor improving compositions disclosed herein comprise a brazzein analog. In one embodiment, the brazzein analog differs from wild-type brazzein at at least one amino acid position, more specifically at one, two, three or more amino acid positions. In certain embodiments, the wild-type amino acid sequence of the brazzein analog is conserved at a first site (loop residue R43), a second site (N- and C-terminal regions / residues E36 and loop 33), or a third site (loop residues 9-19). In certain embodiments, the brazzein analog is selected from the group including Asp40Ala, Asp40Ly, Glu41Ala, Lys42Ala, Asp50Lys, Tyr54Trp, Asp29Ala / Glu41Lys, Asp29Asn / Glu41Lys, Asp29Lys / Glu41Lys.
[0061] In one embodiment, the sweetener compositions and flavor improving compositions disclosed herein comprise brazzein analogs that have a sweetness equal to or greater than that of wild-type brazzein.
[0062] In one embodiment, the sweetener compositions and flavor improving compositions disclosed herein comprise a brazzein analog that has equal or greater stability than wild-type brazzine.
[0063] Brazzein (or analogs thereof) suitable for use in the compositions disclosed herein (e.g., sweetener compositions, flavor and / or taste improving compositions, consumables) can be produced by any suitable method. Exemplary methods of production include extraction, chemical synthesis (i.e., solid phase synthesis) or recombinant production (i.e., in vivo or in vitro production).
[0064] In one embodiment, the brazzein used in the compositions disclosed herein is isolated from the fruit of Pentadiplandra brazzeana (Baillon), as described, for example, in WO 97 / 94 / 19467. The content of brazzein in the flesh of this fruit, between the skin and the seeds, is approximately 0.2-0.05% by weight.
[0065] In another embodiment, the brazzein (or analogues thereof) used in the compositions disclosed herein is produced in vivo. In one embodiment, the nucleic acid coding sequence of a minor form of brazzein isolated from Pentadiplandra brazzeana fruit (or analogues thereof) is optionally optimized and introduced into a suitable vector, which is then cloned into a host cell in a suitable growth system / environment, resulting in expression of the protein in a recombinant manner. In one embodiment, the host cell is a prokaryotic or eukaryotic cell.
[0066] In certain embodiments, brazzein (or analogs thereof) is produced in a cell-free system, i.e., in vitro synthesis. A cell-free system is one that has the ability to translate polynucleotides into peptides, polypeptides, and / or proteins, which does not occur in intact cells. Cell-free systems that can be used to produce brazzein for use in the compositions described herein include, but are not limited to, protein expression components from eukaryotic, prokaryotic, and / or viral sources. For example, cell-free systems used herein can include mammalian and / or bacterial protein expression systems obtained from mammalian and / or bacterial lysates.
[0067] In certain embodiments, recombinant brazzein is produced by a transgenic mammal, i.e., in the milk.
[0068] In certain embodiments, brazzein (or an analogue thereof) can be expressed as a fusion protein, which in certain embodiments comprises brazzein and a fusion tag, such as an affinity tag (e.g., a His tag) or a solubility enhancing tag (e.g., a GST tag).
[0069] Expression of brazzein (or its analogues) can be stable or transient. In stable expression systems, the foreign DNA is integrated into a chromosome or as an episome (a separate piece of nuclear DNA) and passed on to subsequent generations of the host cell.
[0070] In cell-based systems, the first step in the protein purification process is to extract proteins from cells by lysing or breaking open the cells. Any suitable cell lysis method can be used, such as mechanical disruption, chemical disintegration, freeze-thaw cycles, or enzymatic digestion. Proteins can then be purified by any suitable protein purification method, such as affinity chromatography, ion exchange chromatography, filtration, electrophoresis, hydrophobic interaction chromatography, gel filtration chromatography, reversed-phase chromatography, concanavalin A chromatography, isoelectric focusing, and precipitation or differential lysis.
[0071] The yield of in vivo production of brazzein (or analogs thereof) can vary. In certain embodiments, brazzein represents at least about 1% of the total intracellular protein. In certain embodiments, brazzein represents about 1% to about 5% of the total intracellular protein. In other embodiments, brazzein represents about 5% to about 10% of the total intracellular protein. In further embodiments, brazzein represents 10% to about 20% of the total intracellular protein. In certain embodiments, brazzein represents more than 20% of the total intracellular protein.
[0072] In another specific embodiment, brazzein is purified to provide a yield of about 1 mg / mL to about 200 mg / mL, more specifically about 20 mg / mL to about 180 mg / mL, about 40 mg / mL to about 160 mg / mL, about 60 mg / mL to about 140 mg / mL, or about 80 mg / mL to about 120 mg / mL. In one embodiment, brazzein is purified to provide a yield of about 25 mg / mL, about 50 mg / mL, about 75 mg / mL, about 100 mg / mL, about 125 mg / mL, about 150 mg / mL, about 175 mg / mL, or about 200 mg / L or more. Optionally, brazzein is produced as a fusion protein further comprising a tag, and the yields listed above reflect both purification and removal of the tag.
[0073] In certain embodiments, the brazzein (or analogue thereof) is substantially pure. In one embodiment, the brazzein (or analogue thereof) is at least about 80% pure, at least about 85% pure, at least about 90% pure, at least about 95% pure, or at least about 99% pure. In another embodiment, the brazzein (or analogue thereof) is about 90%, about 91%, about 92%, about 93%, about 94%, about 95%, about 96%, about 97%, about 98%, or about 99% pure.
[0074] In certain embodiments, the brazzein (or analogs thereof) used in the compositions disclosed herein is produced in a yeast expression system (i.e., yeast-derived brazzein or analogs thereof), such as in Kluyveromyces (e.g., K. lactis), Lactococcus (e.g., L. lactis), Lactobacillus, Saccharomyces (e.g., S. cerevisiae), Pischia (e.g., P. pastoris), Hansenula (e.g., H. polymorpha), or Yarrowia (e.g., Y. lipolytica).
[0075] In another specific embodiment, the brazzein (or analog thereof) used in the compositions disclosed herein is produced in a bacterial expression system (i.e., bacterially derived brazzein or analog thereof), for example, in Escherichia coli or Bacillus subtilis. In one embodiment, the brazzein (or analog thereof) is not produced in E. coli.
[0076] In further specific embodiments, the brazzein (or analog thereof) used in the compositions disclosed herein is produced in an insect expression system (i.e., insect-derived brazzein or analog thereof), such as in baculovirus-infected or non-lytic insect cells (e.g., sf9, Sf21).
[0077] In another embodiment, the brazzein (or analog thereof) used in the compositions disclosed herein is produced in a fungal expression system (i.e., a brazzein or analog thereof derived from a fungus), such as in the genera Chrysosporium, Thielavia, Talaromyces, Thermomyces, or Thermoascus.
[0078] In a further embodiment, brazzein (or analogues thereof) is produced in an algal expression system (i.e., algal-derived brazzein or analogues thereof).
[0079] In another embodiment, brazzein (or an analogue thereof) is produced in a plant expression system (i.e., brazzein or an analogue thereof derived from a plant), for example, in corn, tobacco, potato, strawberry, or sugarcane. In one embodiment, the plant expression system is a plant cell culture expression system.
[0080] In a particular embodiment, brazzein (or an analogue thereof) is produced in corn, more specifically in corn seeds. According to this embodiment, brazzein (or an analogue thereof) can be utilized as brazzein-containing germ flour.
[0081] In yet another embodiment, brazzein (or an analog thereof) is produced in a mammalian expression system (i.e., mammalian-derived brazzein or an analog thereof), such as in Chinese hamster ovary (CHO) cells, human embryonic kidney (HEK), COS, and baby hamster kidney (BHK) cells.
[0082] Alternatively, brazzein (or analogs thereof) for use in the compositions disclosed herein can be produced in vitro using cell-free expression systems such as E. coli S30 extracts.
[0083] The amount of brazzein (or an analog thereof) in the sweetener compositions and flavor improving compositions disclosed herein can vary. In one embodiment, brazzein (or an analog thereof) is present above its sweetness threshold concentration.
[0084] In one embodiment, brazzein (or an analogue thereof) is present in the sweetener composition or flavor improving composition in any amount that imparts the desired sweetness when the sweetener composition or flavor improving composition is added to a consumable product (e.g., a beverage) either alone or in combination with one or more additional sweet tasting components (e.g., steviol glycosides, HFCS) present in the sweetener composition or flavor improving composition (i.e., before such composition is added to the consumable product).
[0085] In certain embodiments, the desired sweetness of the consumable is equivalent to a sucrose-sweetened consumable having a sweetness of at least about 8 degrees Brix, e.g., about 9 degrees Brix, about 10 degrees Brix, about 11 degrees Brix, about 12 degrees Brix, about 13 degrees Brix, about 14 degrees Brix, or about 15 degrees Brix.
[0086] In another embodiment, the desired sweetness of the consumable is equivalent to a sucrose-sweetened consumable having a sweetness of about 10 degrees Brix to about 15 degrees Brix, e.g., about 10 degrees Brix to about 14 degrees Brix, about 10 degrees Brix to about 13 degrees Brix, about 10 degrees Brix to about 12 degrees Brix, about 10 degrees Brix to about 11 degrees Brix, about 11 degrees Brix to about 15 degrees Brix, about 11 degrees Brix to about 14 degrees Brix, about 11 degrees Brix to about 13 degrees Brix, about 11 degrees Brix to about 12 degrees Brix, about 12 degrees Brix to about 15 degrees Brix, about 12 degrees Brix to about 14 degrees Brix, about 12 degrees Brix to about 13 degrees Brix, about 13 degrees Brix to about 15 degrees Brix, about 13 degrees Brix to about 14 degrees Brix, and about 14 degrees Brix to about 15 degrees Brix.
[0087] In one embodiment, brazzein (or an analogue thereof) is present in the sweetener composition or flavor improving composition in an amount that enhances the sweetness of the consumable to which it is added by about 1.0% (w / v) sucrose equivalent (SE) or more, either alone or in combination with one or more additional sweet tasting components (e.g., steviol glycosides, HFCS) present in the sweetener composition or flavor improving composition (i.e., before such composition is added to a consumable).
[0088] In certain embodiments, brazzein (or an analogue thereof), alone or in combination with one or more additional sweet tasting components (e.g., steviol glycosides, HFCS) present in the sweetener composition or flavor improving composition (i.e., before such composition is added to a consumable), is present in the sweetener composition in an amount that enhances the sweetness of the consumable to which it is added by about 1.0% to about 3.0% (w / v) sucrose equivalent (SE), for example, about 1.1%, about 1.2%, about 1.3%, about 1.4%, about 1.5%, about 1.6%, about 1.7%, about 1.8%, about 1.9%, about 2.0%, about 2.1%, about 2.2%, about 2.3%, about 2.4%, about 2.5%, about 2.6%, about 2.7%, about 2.8%, about 2.9%, or about 3.0% sucrose equivalent.
[0089] In another particular embodiment, brazzein (or an analogue thereof) is present in the sweetener composition or flavor improving composition in an amount that, alone or in combination with one or more additional sweet tasting components (e.g., steviol glycosides, HFCS) present in the sweetener composition or flavor improving composition (i.e., before such composition is added to a consumable), enhances the sweetness of the consumable to which it is added by about 3.0% to about 5% (w / v) sucrose equivalent (SE), e.g., about 3.1%, about 3.2%, about 3.3%, about 3.4%, about 3.5%, about 3.6%, about 3.7%, about 3.8%, about 3.9%, about 4.0%, about 4.1%, about 4.2%, about 4.3%, about 4.4%, about 4.5%, about 4.6%, about 4.7%, about 4.8%, about 4.9%, or about 5.0%.
[0090] The sweetness of a given composition is typically measured relative to a solution of sucrose. See generally, "A Systematic Study of Concentration-Response Relationships of Sweeteners," G.E. DuBois, D.E. Walters, S.S. Schiffman, Z.S. Warwick, B.J. Booth, S.D.Pecore, K. Gibes, B.T. Carr, and L.M. Brands (in Sweeteners: Discovery, Molecular Design and Chemoreception, D.E. Walters, F.T. Orthoefer, and G.E. DuBois, Eds., American Chemical Society, Washington, DC (1991), pp. 261-276).
[0091] The amount of sucrose in a reference solution can be described in degrees Brix (Bx): 1 degree Brix is 1 gram of sucrose in 100 grams of solution, and represents the concentration of the solution as a weight percent (% w / w) (strictly speaking, mass percent).
[0092] In one embodiment, a sweetener composition is provided that contains brazzein (or an analog thereof), alone or in combination with one or more sweet tasting components (e.g., steviol glycosides, HFCS) present in the sweetener composition or flavor improving composition or consumable product, in an amount effective to provide a sweetness equivalent to about 1 to about 12 degrees Brix of sugar when added to a consumable product (e.g., a beverage), e.g., about 2 to about 9 degrees Brix, about 3 to about 8 degrees Brix, about 4 to about 7 degrees Brix, or about 5 degrees Brix. In another embodiment, brazzein (or an analog thereof), alone or in combination with one or more sweet tasting components (e.g., steviol glycosides, HFCS) present in the sweetener composition, flavor improving composition, or consumable product to which it is added, is present in an amount effective to provide a sweetness equivalent to about 10 degrees Brix when added to a sweetenable composition.
[0093] The sweetness of a non-sucrose sweetener can also be measured against a sucrose standard by determining the sucrose equivalent of the non-sucrose sweetener. Typically, tasters are trained to detect the sweetness of a standard sucrose solution containing 1-15% sucrose (w / v). Other non-sucrose sweeteners are then tasted in a dilution series to determine the concentration of the non-sucrose sweetener that is as sweet as a given percentage of the sucrose standard. For example, if a 1% solution of a sweetener is as sweet as a 10% sucrose solution, the sweetener is said to be 10 times more potent than sucrose.
[0094] In one embodiment, the amount of brazzein (or analogues thereof) present in the sweetener composition or flavor improving composition disclosed herein is any amount that contributes to improved one or more sensory attributes of a consumable product (e.g., a beverage) to which the sweetener composition or taste improving composition is added. In a particular embodiment, the improved sensory attribute is related to taste. In one embodiment, improving one or more sensory attributes translates to an improved taste profile. The overall taste profile of a composition is an interplay of several different tastes, such as sweet, sour, etc.
[0095] Examples of improved sensory characteristics can include, for example, reduced bitterness, reduced astringency and liquorice odor, slower sweetness development, reduced lingering sweetness, reduced lingering bitterness, reduced bitter aftertaste, reduced metallic aftertaste, reduced chemical and synthetic aftertaste, and combinations thereof. In certain embodiments, the term "improved sensory characteristics" means that a sweetened or flavor-improved composition (e.g., beverage) will have one or more sensory characteristics that are improved for a majority of users. This improvement can be expressed qualitatively or quantitatively, for example, as a percentage of improvement.
[0096] The enhanced sensory properties can be measured by or using technological means such as taste sensing systems (TSS), a term that refers to analytical sensory array units (e.g., electrochemical, gravimetric, optical, or biosensors) that can detect specific substances. Sliwi'nska, M et al. J. Agric. Food Chem. (2014), 62, 1423-1448.
[0097] In certain embodiments, brazzein (or an analog thereof), alone or in combination with one or more sweet components (e.g., steviol glycosides, HFCS) in the sweetener composition or flavor improving composition (i.e., before it is added to a consumable product), is present in the sweetener composition or flavor improving composition in an amount that either reduces, inhibits, or masks the bitterness of the consumable product (e.g., a beverage) to which the sweetener or flavor improving composition is added, and a comparison is made with a consumable product to which the sweetener or flavor improving composition is not added.
[0098] In certain embodiments, brazzein (or an analogue thereof), alone or in combination with one or more sweet components (e.g., steviol glycosides, HFCS) in the sweetener or flavor improving composition (i.e., before it is added to the consumable), is present in the sweetener or flavor improving composition in an amount that reduces the bitterness of the consumable (e.g., beverage) to which it is added by at least about 5%, at least about 10%, at least about 15%, at least about 20%, or at least about 25% or more. In one embodiment, the majority of subjects perceive the reduction in bitterness. A comparison is made to a consumable without the addition of the sweetener or flavor improving composition.
[0099] In certain embodiments, brazzein (or an analog thereof), alone or in combination with one or more sweet components (e.g., steviol glycosides, HFCS) in the sweetener composition or flavor improving composition (i.e., before it is added to the consumable), is present in the sweetener composition or flavor improving composition in an amount that reduces the bitter aftertaste of the consumable (e.g., beverage) to which the sweetener or flavor improving composition is added. In certain embodiments, brazzein (or an analog thereof) is present in the sweetener composition or flavor improving composition in an amount that reduces the bitter aftertaste of the consumable (e.g., beverage) to which it is added by at least about 5%, at least about 10%, at least about 15%, at least about 20%, or at least about 25% or more. In one embodiment, a majority of subjects perceive a reduced bitter aftertaste. A comparison is made with a consumable to which the sweetener or flavor improving composition is not added.
[0100] In another embodiment, brazzein (or an analog thereof) is present in the sweetener composition or flavor improving composition in any amount that reduces the sweetness duration of the consumable product (e.g., beverage) to which the sweetener or flavor improving composition is added. Sucrose exhibits a sweetness in which the maximum response is perceived quickly and the perceived sweetness fades relatively quickly upon swallowing the food or beverage. In contrast, the sweetness of essentially all high-intensity sweeteners reaches its maximum response somewhat slowly and then fades in intensity more slowly than does sucrose. This sweetness fade is often referred to as "sweetness duration" and is the main limitation of high-intensity sweeteners, including NHPSs. A slow onset of sweetness can also be an issue. However, sweetness duration is generally a more significant issue. Thus, preferred embodiments of the present invention exhibit a significant reduction in sweetness duration.
[0101] In certain embodiments, brazzein (or an analog thereof), alone or in combination with one or more sweet tasting components (e.g., steviol glycosides, HFCS) in the sweetener or flavor improving composition (i.e., before it is added to the consumable), is present in the sweetener or flavor improving composition in an amount that reduces the sweetness lingering of the consumable (e.g., beverage) to which it is added by at least about 5%, at least about 10%, at least about 15%, at least about 20%, or at least about 25% or more. In one embodiment, a majority of subjects perceive a reduction in sweetness lingering. In certain embodiments, a comparison is made to a consumable to which the sweetener or flavor composition has not been added.
[0102] In certain embodiments, the sweetener composition, or the flavor and / or taste improving composition, contains one or more additional sweeteners. In one embodiment, the additional sweetener is present above its sweetness threshold concentration. In certain embodiments, a sweetener composition containing brazzein and one or more additional sweeteners synergistically enhances the sweetness of a consumable to which the sweetener composition is added. In one embodiment, the sweetness of the consumable is enhanced in a manner that would not be expected by one of ordinary skill in the art.
[0103] The additional sweetener can be any type of sweetener, e.g., natural, non-natural, or synthetic sweeteners.
[0104] As used herein, the term "high-intensity sweetener" refers to any synthetic or semi-synthetic sweetener or sweetener found in nature. High-intensity sweeteners are compounds or mixtures of compounds that are sweeter than sucrose. High-intensity sweeteners are typically many times sweeter (e.g., 20 times or more, 30 times or more, 50 times or more, or 100 times or more sweeter than sucrose).
[0105] In at least one embodiment, the at least one additional sweetener is selected from natural sweeteners other than stevia sweeteners, hi another embodiment, the at least one additional sweetener is selected from synthetic high-potency sweeteners (SHPS).
[0106] In certain embodiments, the one or more additional sweeteners may be natural high-potency sweeteners (NHPS). Suitable natural high-potency sweeteners include, but are not limited to, rebaudioside A, rebaudioside B, rebaudioside C, rebaudioside D, rebaudioside E, rebaudioside F, dulcoside A, dulcoside B, rubusoside, stevia, stevioside, mogroside IV, mogroside V, Luo Han These include Guo sweetener, siamenoside, monatin and its salts (monatin SS, RR, RS, SR), curculin, glycyrrhizic acid and its salts, thaumatin, monellin, mabinlin, brazzein, hernandulcin, phyllodulcin, glycyphyllin, phloridzin, trilobatin, bayunoside, osladin, polypodoside A, pterocaryoside A, pterocaryoside B, mukuroziosid, phlomisoside I, periandrin I, abrusoside A, steviolbioside, and cyclocaryoside I. Natural high-intensity sweeteners can be provided as pure compounds or as part of an extract. For example, rebaudioside A can be provided as a single compound or as part of a stevia extract.
[0107] In one embodiment, the one or more additional sweeteners are selected from the group consisting of rebaudioside M, rebaudioside A, siamenoside I, and mogroside V.
[0108] In a particular embodiment, the sweetener composition and / or flavor improving composition of the present invention comprises brazzein (or an analogue thereof) and siamenoside I.
[0109] In another particular embodiment, the sweetener composition and / or flavor improving composition of the present invention comprises brazzein (or an analogue thereof) and mogroside V.
[0110] In another embodiment, the one or more additional sweeteners are rebaudioside D, rebaudioside N, rebaudioside O, rebaudioside E, steviol monoside, steviolbioside, rubusoside, dulcoside B, dulcoside A, rebaudioside B, rebaudioside G, stevioside, rebaudioside C, rebaudioside F, rebaudioside I, rebaudioside H ... Rebaudioside L, Rebaudioside K, Rebaudioside J, Rebaudioside M2, Rebaudioside D2, Rebaudioside S, Rebaudioside T, Rebaudioside U, Rebaudioside V, Rebaudioside W, Rebaudioside Z1, Rebaudioside Z2, Rebaudioside IX, enzymatically glucosylated steviol glycosides, and combinations thereof.
[0111] In further embodiments, the one or more additional sweeteners are selected from the group consisting of mogroside IA, mogroside IE, 11-oxomogroside IA, mogroside II, mogroside IIA, mogroside IIB, mogroside IIE, 7-oxomogroside IIE, mogroside III, mogroside IIIe, 11-deoxymogroside III, mogroside IV, 11-oxomogroside IV, 11-oxomogroside IVA, 11-deoxymogroside V, 7-oxomogroside V, 11-oxomogroside V, isomogroside V, mogroside VI, mogrol, 11-oxomogrol, the 1,6-alpha isomer of siamenoside I, monk fruit extract, and combinations thereof.
[0112] In certain embodiments, the one or more additional sweeteners have the formula: [ka] Rebaudioside M (13-[2-O-β-D-glucopyranosyl-3-O-β-D-glucopyranosyl-β-D-glucopyranosyl)oxy]-Ent-kaur-16-en-19-oic acid-[2-O-β-D-glucopyranosyl-3-O-β-D-glucopyranosyl) ester having the formula:
[0113] RebM can be provided in purified or unpurified form, i.e., as part of a naturally occurring mixture containing RebM. In one embodiment, RebM can be obtained from the stevia extract by any suitable purification method. Suitable purification methods are known in the art, including, but not limited to, column chromatography, recrystallization, phase separation, extraction, high performance liquid chromatography, and combinations thereof.
[0114] In another embodiment, the additional sweetener is a steviol glycoside composition. An exemplary steviol glycoside composition is A95, which contains mainly rebD and RebM, with minor amounts of one or more of the following: RebE, RebO, RebN, RebA, stevioside, RebC, and RebB. Methods for obtaining A95 are provided in WO2017 / 059414, which is incorporated herein by reference. An exemplary A95 blend is provided in Example 7 herein.
[0115] The amount of RebM in a sweetener composition or taste improving composition can vary. In one embodiment, RebM is present in the sweetener composition in any amount that imparts a desired sweetness when the sweetener composition is added to a consumable (e.g., a beverage). In a particular embodiment, the desired sweetness of the consumable is greater than about 10 degrees Brix.
[0116] In one embodiment, the sweetener composition contains an amount of RebM effective to provide a sweetness equivalent to about 1 to 12 degrees Brix, e.g., about 2 to about 9 degrees Brix, about 3 to about 8 degrees Brix, about 4 to about 7 degrees Brix, or about 5 degrees Brix, when added to a consumable product (e.g., a beverage).
[0117] In certain embodiments, RebM is present in an amount effective to provide about 8 or less sucrose equivalents (SE), eg, about 7, about 6.5, about 6, about 5.5, or about 5 SE.
[0118] In another specific embodiment, RebM is present in an amount effective to provide about 8 or more, e.g., about 9, about 9.5, about 10, about 10.5, about 11, about 11.5, about 12, about 12.5, about 13, about 13.5, about 14, about 14.5, or about 15 sucrose equivalents.
[0119] In one embodiment, RebM is present in the flavor improving composition in any amount that imparts a desired flavor when the flavor improving composition is added to a flavor modifiable composition (e.g., a beverage), In a particular embodiment, the desired flavor is a more sugar-like temporal or taste profile.
[0120] In one embodiment, RebM and brazzein provide a synergistic effect, e.g., a synergistic sweetness, i.e., the sweetness of the combination exceeds the sum of the individual sweeteners. In certain embodiments, RebM and brazzein provide an effect that would not be predicted by one of skill in the art.
[0121] RebM can be provided in purified form or as a component of a mixture containing RebM and one or more additional components. In one embodiment, RebX is provided as a component of a mixture. In a particular embodiment, the mixture is a stevia extract. The stevia extract can contain an amount of RebM that is in the range of about 5% to about 100% by weight, for example, about 10% to about 100%, about 20% to about 100%, about 30% to about 100%, about 40% to about 100%, about 50% to about 100%, about 60% to about 100%, about 70% to about 100%, about 80% to about 100%, and about 90% to about 100% on a dry basis. In still further embodiments, the stevia extract contains RebM in an amount greater than about 90% by weight on a dry basis, e.g., greater than about 91%, greater than about 92%, greater than about 93%, greater than about 94%, greater than about 95%, greater than about 96%, greater than about 97%, greater than about 98%, or greater than about 99%.
[0122] In one embodiment, RebM is provided as a component of a steviol glycoside mixture, i.e., a mixture of steviol glycosides where the remaining non-RebM portion of the mixture is comprised entirely of steviol glycosides. Steviol glycoside identities are known in the art and include, but are not limited to, steviol, steviol monoside, rubososide, steviolbioside, stevioside, rebaudioside A, rebaudioside B, rebaudioside C, rebaudioside D, rebaudioside E, rebaudioside F, and dulcoside A. Steviol glycoside mixtures can contain from about 5% to about 100% RebM by weight on a dry basis. For example, the steviol glycoside mixture can contain about 10% to about 100%, about 20% to about 100%, about 30% to about 100%, about 40% to about 100%, about 50% to about 100%, about 60% to about 100%, about 70% to about 100%, about 80% to about 100%, and about 90% to about 100% RebM by weight on a dry basis. In still further embodiments, the steviol glycoside mixture can contain greater than about 90% RebM by weight on a dry basis, e.g., greater than about 91%, greater than about 92%, greater than about 93%, greater than about 94%, greater than about 95%, greater than about 96%, greater than about 97%, greater than about 98%, and greater than about 99%.
[0123] RebM80 refers to a stevia extract or steviol glycoside composition having about 80% RebM by weight.
[0124] In a particular embodiment, the one or more additional sweeteners is rebaudioside A.
[0125] RebA can be provided in purified or unpurified form, i.e., as part of a naturally occurring mixture containing RebA. In one embodiment, RebA can be obtained from the stevia extract by any suitable purification method. Suitable purification methods are known in the art, including, but not limited to, column chromatography, recrystallization, phase separation, extraction, high performance liquid chromatography, and combinations thereof.
[0126] RebA can be provided in purified form or as a component of a mixture containing RebA and one or more additional components. In one embodiment, RebA is provided as a component of a mixture. In a particular embodiment, the mixture is a stevia extract. The stevia extract can contain an amount of RebA that is in the range of about 5% to about 100% by weight, for example, about 10% to about 100%, about 20% to about 100%, about 30% to about 100%, about 40% to about 100%, about 50% to about 100%, about 60% to about 100%, about 70% to about 100%, about 80% to about 100%, and about 90% to about 100%, on a dry basis. In still further embodiments, the stevia extract contains RebA in an amount greater than about 90% by weight on a dry basis, e.g., greater than about 91%, greater than about 92%, greater than about 93%, greater than about 94%, greater than about 95%, greater than about 96%, greater than about 97%, greater than about 98%, or greater than about 99%.
[0127] In one embodiment, RebA is provided as a component of a steviol glycoside mixture, i.e., a mixture of steviol glycosides with the remaining non-RebA portion of the mixture consisting entirely of steviol glycosides. The steviol glycoside mixture can contain about 5% to about 100% by weight of RebA on a dry basis. For example, the steviol glycoside mixture can contain about 10% to about 100%, about 20% to about 100%, about 30% to about 100%, about 40% to about 100%, about 50% to about 100%, about 60% to about 100%, about 70% to about 100%, about 80% to about 100%, and about 90% to about 100% by weight of RebA on a dry basis. In still further embodiments, the steviol glycoside mixture can contain greater than about 90% by weight RebA on a dry basis, e.g., greater than about 91%, greater than about 92%, greater than about 93%, greater than about 94%, greater than about 95%, greater than about 96%, greater than about 97%, greater than about 98%, or greater than about 99%.
[0128] The amount of RebA in the sweetener composition or taste improving composition can vary. In one embodiment, RebA is present in the sweetener composition in any amount that imparts a desired sweetness when the sweetener composition is added to a sweetenable composition. In a particular embodiment, the desired sweetness of the sweetened composition is greater than about 10 degrees Brix.
[0129] In one embodiment, RebA and brazzein provide a synergistic effect, e.g., a synergistic sweetness, i.e., the sweetness of the combination is greater than the sum of the individual sweeteners. In certain embodiments, RebA and brazzein provide an effect that one of skill in the art would not expect.
[0130] In certain embodiments, RebA is present in an amount effective to provide about 8 or less sucrose equivalents (SE), e.g., about 7, about 6.5, about 6, about 5.5, or about 5 SE.
[0131] In another specific embodiment, RebA is present in an amount effective to provide about 8 or more, e.g., about 9, about 9.5, about 10, about 10.5, about 11, about 11.5, about 12, about 12.5, about 13, about 13.5, about 14, about 14.5, or about 15 sucrose equivalents (SE).
[0132] In another specific embodiment, RebA is present in an amount effective to provide a sucrose equivalent of about 8 SE or more, e.g., about 9 SE, about 9.5 SE, about 10 SE.
[0133] In one embodiment, RebA is present in the flavor improving composition in any amount that imparts a desired taste when the taste improving composition is added to a taste modifiable composition (e.g., a beverage). In a particular embodiment, the desired taste is a sugar-like taste.
[0134] In certain embodiments, brazzein and RebA provide a synergistic effect. In certain embodiments, brazzein and RebA provide an effect that would not be expected by one of skill in the art.
[0135] In another embodiment, the one or more additional sweeteners may be a carbohydrate sweetener. Non-limiting examples of suitable carbohydrate sweeteners include sucrose, fructose, glucose, erythritol, maltitol, lactitol, sorbitol, mannitol, xylitol, D-tagatose, trehalose, galactose, rhamnose, cyclodextrins (e.g., α-cyclodextrin, β-cyclodextrin, and γ-cyclodextrin), ribulose, threose, arabinose, xylose, lyxose, allose, altrose, mannose, idose, lactose, maltose, invert sugar, isotrehalose, neotrehalose, palatinose or isomaltulose, erythrose, deoxyribose, gulose, idose, talose, erythrulose, xylulose, psicose, turanose, cellobiose, glucosamine, mannosamine, fucose, fuculose, glucuronic acid, gluconic acid, glucose, glucose, glucose-containing sugars, glucose-containing saccharide ... Leuconolactone, abequose, galactosamine, xylo-oligosaccharides (xylotriose, xylobiose, etc.), gentio-oligosaccharides (gentiobiose, gentiotriose, gentiotetraose, etc.), galactooligosaccharides, sorbose, ketotriose (dehydroxyacetone), aldotriose (glyceraldehyde), nigerooligosaccharides, fructooligosaccharides (kestose, nystose, etc.), maltotetraose, maltotriol, tetrasaccharides, mannanoligosaccharides, maltooligosaccharides (maltotriose, maltotetraose, maltopentaose, maltohexaose, maltoheptaose, etc.), dextrin, lactulose, melibiose, raffinose, rhamnose, ribose, isomerized liquid sugar, such as high fructose liquid sugar (high fructose corn / starch syrup (HFCS / HFSS) (e.g., HFCS55, HFCS42, or HFCS90), coupling sugar, soybean oligosaccharides, glucose syrup, and combinations thereof).
[0136] In other embodiments, at least one additional sweetener is a synthetic sweetener.As used herein, the expression "synthetic sweetener" refers to any composition that is not naturally found in nature and has a characteristic sweetness that exceeds that of sucrose, fructose, or glucose, but has fewer calories.Non-limiting examples of synthetic high-intensity sweeteners suitable for embodiments of the present disclosure include sucralose, acesulfame potassium, aspartame, alitame, saccharin, neohesperidin dihydrochalcone, cyclamate, neotame, advantame, glucosylated steviol glycoside (GSG), and combinations thereof.
[0137] The sweetener composition can be customized to obtain a desired calorie content. For example, the sweetener composition can be "high calorie" so that when added to a sweetenable composition (e.g., as a beverage), it provides a desired sweetness and has about 120 calories per 8 ounce serving.
[0138] The sweetener composition can be customized to obtain a desired calorie content. For example, the sweetener composition can be "mid-calorie" so that when added to a sweetenable composition (e.g., as a beverage), it provides a desired sweetness and has about 80 calories per 8 ounce serving.
[0139] The sweetener composition can be "low calorie" so that when added to a sweetenable composition (e.g., a beverage), it imparts a desired sweetness and has about 40 calories per 8 ounce serving.
[0140] In other embodiments, the sweetener composition may be "zero calorie" such that when added to a sweetenable composition (e.g., as a beverage), it imparts a desired sweetness and has about 5 calories per 8 ounce serving.
[0141] additive The sweetener composition or flavor improving composition disclosed herein may optionally include additional additives, as detailed herein below, in addition to brazzein (or an analog thereof) and, optionally, one or more additional sweeteners (e.g., one or more steviol glycosides). In some embodiments, the sweetener composition contains additives, including, but not limited to, carbohydrates, polyols, amino acids and their corresponding salts, polyamino acids and their corresponding salts, sugar acids and their corresponding salts, nucleotides, organic acids, inorganic acids, organic salts, including organic acid salts and organic base salts, inorganic salts, bitter compounds, flavors and flavoring ingredients, astringent compounds, proteins or protein hydrolysates, surfactants, emulsifiers, flavonoids, alcohols, polymers, and combinations thereof. In some embodiments, the additives act to enhance the temporal and flavor profiles of the sweetener to provide a sweetener composition with a taste similar to sucrose.
[0142] In one embodiment, the sweetener composition or flavor improving composition contains one or more polyols. The term "polyol" as used herein refers to a molecule containing two or more hydroxyl groups. The polyol can be a diol, triol, or tetraol, containing 2, 3, and 4 hydroxyl groups, respectively. The polyol can also contain more than four hydroxyl groups, such as pentaols, hexaols, heptaols, containing 5, 6, and 7 hydroxyl groups, respectively. Furthermore, the polyol can also be a sugar alcohol, a polyhydric alcohol, or a polyalcohol, which is a reduced form of a carbohydrate, in which the carbonyl group (aldehyde or ketone, reducing sugar) has been reduced to a secondary or secondary hydroxyl group.
[0143] Non-limiting examples of polyols in some embodiments include erythritol, maltitol, mannitol, sorbitol, lactitol, xylitol, isomalt, propylene glycol, glycerol (glycerin), threitol, galactitol, palatinose, reduced isomaltooligosaccharides, reduced xylo-oligosaccharides, reduced gentio-oligosaccharides, reduced maltose syrup, reduced glucose syrup, and sugar alcohols or any other carbohydrates that can be reduced that do not adversely affect the taste.
[0144] Suitable sweet taste improving amino acid additives include, but are not limited to, aspartic acid, arginine, glycine, glutamic acid, proline, threonine, theanine, cysteine, cystine, alanine, valine, tyrosine, leucine, arabinose, trans-4-hydroxyproline, isoleucine, asparagine, serine, lysine, histidine, ornithine, methionine, carnitine, aminobutyric acid (α-, β-, and / or δ-isomers), glutamine, hydroxyproline, taurine, norvaline, sarcosine, and salt forms thereof, such as sodium or potassium salts or acid salts. The sweet taste improving amino acid additives may also be D- or L-configuration, and mono-, di-, or tri-forms of the same or different amino acids. Furthermore, these amino acids may be α-, β-, γ-, and / or δ-isomers, if appropriate. Combinations of the aforementioned amino acids and their corresponding salts (e.g., sodium, potassium, calcium, magnesium salts, or other alkali or alkaline earth metal salts thereof, or acid salts) are also suitable sweet taste improving additives in some embodiments. These amino acids can be natural or synthetic. The amino acids can also be modified. Modified amino acids refer to any amino acid in which at least one atom has been added, removed, substituted, or a combination thereof (e.g., N-alkyl amino acids, N-acyl amino acids, or N-methyl amino acids). Non-limiting examples of modified amino acids include amino acid derivatives such as trimethylglycine, N-methyl-glycine, and N-methyl-alanine. As used herein, modified amino acids include both modified and unmodified amino acids. As used herein, amino acids also include both peptides and polypeptides (e.g., dipeptides, tripeptides, tetrapeptides, and pentapeptides), such as glutathione and L-alanyl-L-glutamine.Suitable sweet taste improving polyamino acid additives include poly-L-aspartic acid, poly-L-lysine (e.g., poly-L-α-lysine or poly-L-ε-lysine), poly-L-ornithine (e.g., poly-L-α-ornithine or poly-L-ε-ornithine), poly-L-arginine, other polymeric forms of amino acids, and their salt forms (e.g., calcium, potassium, sodium, magnesium salts, such as monosodium L-glutamate salt). The sweet taste improving polyamino acid additives may also be in the D- or L-configuration. Furthermore, these polyamino acids may be α-, β-, γ-, and / or δ-, and ε-isomers, as appropriate. Combinations of the aforementioned polyamino acids and their corresponding salts (e.g., sodium, potassium, calcium, magnesium salts, or other alkali or alkaline earth metal salts thereof, or acid salts) are also suitable sweet taste improving additives in some embodiments. The polyamino acids described herein may also include copolymers of different amino acids. These polyamino acids may be natural or synthetic. Polyamino acids can also be modified such that at least one atom has been added, removed, substituted (or a combination thereof, e.g., N-alkyl or N-acyl polyamino acids). As used herein, polyamino acids encompass both modified and unmodified polyamino acids. For example, modified polyamino acids include polyamino acids of various molecular weights (MW), such as, but not limited to, poly-L-α-lysine having a MW of 1,500, a MW of 6,000, a MW of 25,200, a MW of 63,000, a MW of 83,000, or a MW of 300,000.
[0145] Suitable sugar acid additives include, but are not limited to, aldonic acid, uronic acid, aldaric acid, alginic acid, gluconic acid, glucuronic acid, glucaric acid, galactaric acid, galacturonic acid, and salts thereof (e.g., sodium, potassium, calcium, magnesium salts, or other physiologically acceptable salts), and combinations thereof.
[0146] Suitable nucleotide additives include, but are not limited to, inosine monophosphate ("IMP"), guanosine monophosphate ("GMP"), adenosine monophosphate ("AMP"), cytosine monophosphate (CMP), uracil monophosphate (UMP), inosine diphosphate, guanosine diphosphate, adenosine diphosphate, cytosine diphosphate, uracil diphosphate, inosine triphosphate, guanosine triphosphate, adenosine triphosphate, cytosine triphosphate, uracil triphosphate, alkali or alkaline earth metal salts thereof, and combinations thereof. The nucleotides described herein can also include nucleotide-related additives, such as nucleosides or nucleic acid bases (e.g., guanine, cytosine, adenine, thymine, uracil). In certain embodiments, the nucleotide is present in the sweetener composition in an amount of about 5 ppm to about 1,000 ppm.
[0147] Suitable organic acid additives include any compound containing a -COOH moiety, such as C2-C30 carboxylic acids, substituted hydroxyl C2-C30 carboxylic acids, benzoic acid, substituted benzoic acids (e.g., 2,4-dihydroxybenzoic acid), substituted cinnamic acids, hydroxy acids, substituted hydroxybenzoic acids, substituted cyclohexyl carboxylic acids, tannic acid, lactic acid, tartaric acid, citric acid, gluconic acid, glucoheptonic acid, adipic acid, hydroxycitric acid, malic acid, fruitaric acid (a blend of malic acid, fumaric acid, and tartaric acid), fumaric acid, maleic acid, succinic acid, chlorogenic acid, salicylic acid, creatine, caffeic acid, bile acid, acetic acid, ascorbic acid, alginic acid, erythorbic acid, polyglutamic acid, glucono delta lactone, and alkali or alkaline earth metal derivatives thereof. Additionally, the organic acid additives may also be in the D- or L-configuration.
[0148] Suitable organic acid addition salts include, but are not limited to, the sodium, calcium, potassium, and magnesium salts of all organic acids, such as the salts of citric acid, malic acid, tartaric acid, fumaric acid, lactic acid (e.g., sodium lactate), alginic acid (e.g., sodium alginate), ascorbic acid (e.g., sodium ascorbate), benzoic acid (e.g., sodium benzoate or potassium benzoate), and adipic acid. The listed examples of sweet taste improving organic acid additives can be optionally substituted with at least one group selected from hydrogen, alkyl, alkenyl, alkynyl, halo, haloalkyl, carboxyl, acyl, acyloxy, amino, amido, carboxyl derivatives, alkylamino, dialkylamino, arylamino, alkoxy, aryloxy, nitro, cyano, sulfo, thiol, imine, sulfonyl, sulfenyl, sulfinyl, sulfamyl, carboxalkoxy, carboxamide, phosphonyl, phosphinyl, phosphoryl, phosphino, thioester, thioether, anhydride, oxyimino, hydrazino, carbamyl, phosphor, or phosphonato. In certain embodiments, the organic acid additive is present in the sweetener composition in an amount of from about 10 ppm to about 5,000 ppm.
[0149] Suitable inorganic acid additives include, but are not limited to, phosphoric acid, phosphorous acid, polyphosphoric acid, hydrochloric acid, sulfuric acid, carbonic acid, sodium dihydrogen phosphate, and alkali or alkaline earth metal salts thereof (e.g., Mg / Ca inositol hexaphosphate).
[0150] Suitable bitter compound additives include, but are not limited to, caffeine, quinine, urea, bitter orange oil, naringin, bitter orange, and salts thereof.
[0151] Suitable flavor and flavoring additives include, but are not limited to, vanillin, vanilla extract, mango extract, cinnamon, citrus, coconut, ginger, viridiflorol, almond, menthol (including menthol without mint), grape skin extract, and grape seed extract. "Fragrance" and "flavoring ingredient" are synonymous and may include natural or synthetic substances or combinations thereof. Flavoring also includes any other substance that imparts flavor and may include natural or non-natural (synthetic) substances that are safe for humans or animals when used within generally accepted limits. Non-limiting examples of in-house developed flavors include Doehler™ Natural Flavoring Sweetness Enhancer K14323 (Doehler™, Darmstadt, Germany), Symrise™ Natural Flavor Mask for Sweetners 161453 and 164126 (Symrise™, Holzminden, Germany), Natural Advantage™ Bitterness Blockers 1, 2, 9, and 10 (Natural Advantage™, Freehold, New Jersey, USA), and Sucramask™ (Creative Research Management, Stockton, California, USA).
[0152] Suitable polymer additives include, but are not limited to, chitosan, pectin, pectinic acid, pectinic acid, polyuronic acid, polygalacturonic acid, starch, food hydrocolloids or crude extracts thereof (e.g., acacia senegal gum (Fibergum™), acacia seyal gum, carrageenan), poly-L-lysine (e.g., poly-L-α-lysine or poly-L-ε-lysine), poly-L-ornithine (e.g., poly-L-α-ornithine or poly-L-ε-ornithine), polypropylene glycol, polyethylene glycol, poly(ethylene glycol methyl ether), polyarginine, polyaspartic acid, polyglutamic acid, polyethyleneimine, alginic acid, sodium alginate, propylene glycol alginate, and sodium polyethylene glycol alginate, sodium hexametaphosphate and its salts, as well as other cationic and anionic polymers.
[0153] Suitable protein or protein hydrolysate additives include, but are not limited to, bovine serum albumin (BSA), whey protein (fractions or concentrates thereof, including, for example, 90% instant whey protein isolate, 34% whey protein, 50% hydrolyzed whey protein, and 80% whey protein concentrate), soluble rice protein, soy protein, protein isolates, protein hydrolysates, reaction products of protein hydrolysates, glycoproteins, and / or proteoglycans containing amino acids (e.g., glycine, alanine, serine, threonine, asparagine, glutamine, arginine, valine, isoleucine, leucine, norvaline, methionine, proline, tyrosine, hydroxyproline, and the like), collagen (e.g., gelatin), partially hydrolyzed collagen (e.g., hydrolyzed fish collagen), and collagen hydrolysates (e.g., porcine collagen hydrolysates).
[0154] Suitable surfactant additives include, but are not limited to, polysorbates (e.g., polyoxyethylene sorbitan monooleate (polysorbate 80), polysorbate 20, polysorbate 60), sodium dodecylbenzenesulfonate, dioctyl sulfosuccinate or dioctyl sodium sulfosuccinate, sodium dodecyl sulfate, cetylpyridinium chloride (hexadecylpyridinium chloride), hexadecyltrimethylammonium bromide, sodium cholate, carbamoyl, choline chloride, sodium glycocholate, sodium taurodeoxycholate, lauric arginate, sodium stearoyl lactylate, sodium taurocholate, lecithin, sucrose oleate, sucrose stearate, sucrose palmitate, sucrose laurate, and other emulsifiers.
[0155] Suitable flavonoid additives are classified as flavonols, flavones, flavanones, flavan-3-ols, isoflavones, or anthocyanidins. Non-limiting examples of flavonoid additives include, but are not limited to, catechins (e.g., green tea extracts such as Polyphenon™ 60, Polyphenon™ 30, and Polyphenon™ 25 (Mitsui Norin Co., Ltd., Japan), polyphenols, rutin (e.g., enzyme-modified rutin Sanmelin™ AO (San-fi Gen FFI, Inc., Osaka, Japan)), neohesperidin, naringin, neohesperidin dihydrochalcone, and the like.
[0156] Suitable alcohol additives include, but are not limited to, ethanol.
[0157] Suitable astringent compound additives include, but are not limited to, tannic acid, europium chloride (EuCl3), gadolinium chloride (GdCl3), terbium chloride (TbCl3), alum, tannic acid, and polyphenols (e.g., tea polyphenols). In certain embodiments, the astringent additive is present in an amount of about 10 ppm to about 5,000 ppm.
[0158] In certain embodiments, the sweetener composition or flavor improving composition comprises one or more steviol glycosides (e.g., RebM, RebA), a polyol selected from erythritol, maltitol, mannitol, xylitol, sorbitol, and combinations thereof; and brazzein (or an analog thereof), optionally in combination with at least one additional sweetener and / or functional ingredient. In certain embodiments, the polyol is erythritol. The steviol glycosides (e.g., RebM, RebA) can be provided as pure compounds or as part of a stevia extract or steviol glycoside mixture, as described above. The steviol glycosides (e.g., RebM, RebA) can be present in the steviol glycoside mixture or stevia extract in an amount of about 5% to about 100% by weight on a dry basis.
[0159] In certain embodiments, the sweetener composition or flavor improving composition comprises one or more steviol glycosides (e.g., RebM, RebA); a carbohydrate sweetener selected from sucrose, fructose, glucose, maltose, and combinations thereof; and brazzein (or an analog thereof), optionally in combination with at least one additional sweetener and / or functional ingredient. The steviol glycosides (e.g., RebM, RebA) can be provided as pure compounds or as part of a stevia extract or steviol glycoside mixture, as described above. The steviol glycosides (e.g., RebM, RebA) can be present in the steviol glycoside mixture or stevia extract in an amount of about 5% to about 100% by weight on a dry basis.
[0160] In certain embodiments, the sweetener composition or flavor improving composition comprises one or more steviol glycosides (e.g., RebM, RebA); an amino acid selected from glycine, alanine, proline, and combinations thereof; and brazzein (or an analog thereof), optionally in combination with at least one additional sweetener and / or functional ingredient. The steviol glycosides can be provided as pure compounds or as part of a stevia extract or steviol glycoside mixture, as described above. The steviol glycosides (e.g., RebM, RebA) can be present in the steviol glycoside mixture or stevia extract in an amount of about 5% to about 100% by weight on a dry basis.
[0161] In certain embodiments, the sweetener composition or flavor improving composition comprises brazzein (or an analog thereof), optionally in combination with one or more steviol glycosides (e.g., RebM, RebA); a salt selected from sodium chloride, magnesium chloride, potassium chloride, calcium chloride, and combinations thereof; and optionally at least one additional sweetener and / or functional ingredient. The steviol glycosides (e.g., RebM, RebA) can be provided as pure compounds or as part of a stevia extract or steviol glycoside mixture, as described above.
[0162] functional ingredients The sweetener compositions or flavor improving compositions disclosed herein can also contain one or more functional ingredients that provide a real or perceived health benefit to the composition, including, but not limited to, saponins, antioxidants, dietary fiber sources, fatty acids, vitamins, glucosamine, minerals, preservatives, hydrating agents, probiotics, prebiotics, weight control agents, osteoporosis control agents, phytoestrogens, long chain primary aliphatic saturated alcohols, phytosterols, and combinations thereof.
[0163] Examples of antioxidants suitable for embodiments of the present invention include, but are not limited to, vitamins, vitamin cofactors, minerals, hormones, carotenoids, carotenoid terpenoids, non-carotenoid terpenoids, flavonoids, flavonoid polyphenols (e.g., bioflavonoids), flavonols, flavones, phenols, polyphenols, esters of phenols, esters of polyphenols, non-flavonoid phenols, isothiocyanates, and combinations thereof.In some embodiments, the antioxidant is vitamin A, vitamin C, vitamin E, ubiquinone, the mineral selenium, manganese, melatonin, alpha-carotene, beta-carotene, lycopene, lutein, zeanthin, crypoxanthin, reservatol, eugenol, quercetin, catechin, gossypol, hesperetin, curcumin, ferulic acid, thymol, hydroxytyrosol, turmeric, thyme, olive oil, lipoic acid, glutathinone, gutta. Gutamine, oxalic acid, tocopherol-derived compounds, butylated hydroxyanisole (BHA), butylated hydroxytoluene (BHT), ethylenediaminetetraacetic acid (EDTA), tert-butylhydroquinone, acetic acid, pectin, tocotrienols, tocopherol, coenzyme Q10, zeaxanthin, astaxanthin, canthaxanthin, saponins, limonoids, kaempfedrol, myricetin, isorhamnetin, proanthocyanidins, quercetin, rutin, Luteolin, apigenin, tangeritin, hesperetin, naringenin, erodictyol, flavan-3-ols (e.g., anthocyanidins), gallocatechin, epicatechin and its gallate forms, epigallocatechin and its gallate forms (ECGC), theaflavin and its gallate forms, thearubigins, isoflavone phytoestrogens, genistein, daidzein, glycitein, anythocyanin, cyanidin niding, delphinidin, malvidin, pelargonidin, peonidin, petunidin, ellagic acid, gallic acid, salicylic acid, rosmarinic acid, cinnamic acid and its derivatives (e.g., ferulic acid), chlorogenic acid, chicoric acid, gallotannins, ellagitannins, anthoxanthins, betacyanins, and other plant pigments, silymarin, citric acid, lignans, antinutrients, bilirubin, uric acid, R-α-lipoic acid, N-acetylcysteine, emblicanin, and phytic acid, or combinations thereof.In alternative embodiments, the antioxidant is a synthetic antioxidant, such as butylated hydroxytolune or butylated hydroxyanisole. Other sources of antioxidants suitable for embodiments of the present invention include, but are not limited to, fruits, vegetables, tea, cocoa, chocolate, spices, herbs, rice, offal, yeast, whole grains, or cereal grains.
[0164] Certain antioxidants belong to a class of phytonutrients called polyphenols (also known as "polyphenolics"), a group of chemicals found in plants characterized by the presence of two or more phenolic groups per molecule. Polyphenols suitable for embodiments of the present invention include catechins, proanthocyanidins, procyanidins, anthocyanins, quercerin, rutin, reservatrol, isoflavones, curcumin, punicalagins, ellagitannins, hesperidin, naringin, citrus flavonoids, chlorogenic acid, other similar materials, and combinations thereof.
[0165] In certain embodiments, the antioxidant is a catechin, such as epigallocatechin gallate (EGCG). Sources of catechins suitable for embodiments of the present invention include, but are not limited to, green tea, white tea, black tea, oolong tea, chocolate, cocoa, red wine, grape seeds, red grape skin, purple grape skin, red grape juice, purple grape juice, berries, pycnogenol, and red apple skin.
[0166] In some embodiments, the antioxidant is selected from proanthocyanidins, procyanidins, or combinations thereof. Suitable sources of proanthocyanidins and procyanidins for embodiments of the present invention include, but are not limited to, red grapes, purple grapes, cocoa, chocolate, grape seeds, red wine, cocoa beans, cranberries, apple skins, plums, blueberries, blackcurrants, chokeberries, green tea, sorghum, cinnamon, barley, red kidney beans, pinto beans, hops, almonds, hazelnuts, pecans, pistachios, pycnogenol, and various berries.
[0167] In certain embodiments, the antioxidant is an anthocyanin. Suitable sources of anthocyanins for embodiments of the present invention include, but are not limited to, red berries, blueberries, bilberries, cranberries, raspberries, cherries, pomegranates, strawberries, elderberries, chokeberries, red grape skins, purple grape skins, grape seeds, red wine, blackcurrants, red currants, cocoa, plums, apple skins, peaches, red pears, red cabbage, red onions, red oranges, and blackberries.
[0168] In some embodiments, the antioxidant is selected from quercetin, rutin, or a combination thereof. Suitable sources of quercetin and rutin for embodiments of this invention include, but are not limited to, red apple, onion, kale, bog whortleberry, bilberry, chokeberry, cranberry, blackberry, blueberry, strawberry, raspberry, blackcurrant, green tea, black tea, plum, apricot, parsley, chive, broccoli, hot pepper, berry wine, and ginkgo.
[0169] In some embodiments, the antioxidant is resveratrol. Suitable sources of resveratrol for embodiments of the present invention include, but are not limited to, red grapes, peanuts, cranberries, blueberries, bilberries, mulberry, Japanese knotweed tea, and red wine.
[0170] In certain embodiments, the antioxidant is an isoflavone. Suitable sources of isoflavones for embodiments of the present invention include, but are not limited to, soybeans, soybean products, legumes, alfalfa sprouts, chickpeas, peanuts, and red clover.
[0171] In some embodiments, the antioxidant is curcumin. Suitable sources of curcumin for embodiments of the present invention include, but are not limited to, turmeric and mustard.
[0172] In certain embodiments, the antioxidant is selected from punicalagins, ellagitannins, or combinations thereof. Suitable sources of punicalagins and ellagitannins for embodiments of this invention include, but are not limited to, pomegranate, raspberry, strawberry, walnut, and oak barrel aged red wine.
[0173] In some embodiments, the antioxidant is a citrus flavonoid, such as hesperidin or naringin. Suitable sources of citrus flavonoids, such as hesperidin or naringin, for embodiments of the present invention include, but are not limited to, oranges, grapefruit, and citrus juices.
[0174] In certain embodiments, the antioxidant is chlorogenic acid. Suitable sources of chlorogenic acid for embodiments of the present invention include, but are not limited to, green coffee, yerba mate, red wine, grape seeds, red grape skin, purple grape skin, red grape juice, purple grape juice, apple juice, cranberry, pomegranate, blueberry, strawberry, sunflower, Echinacea, Pycnogenol, and apple peel.
[0175] Suitable dietary fibers include, but are not limited to, non-starch polysaccharides, lignin, cellulose, methylcellulose, hemicellulose, β-glucans, pectins, gums, mucilages, waxes, inulin, oligosaccharides, fructooligosaccharides, cyclodextrins, chitin, and combinations thereof.
[0176] Food sources of dietary fiber include, but are not limited to, grains, legumes, fruits, and vegetables. Grains that provide dietary fiber include, but are not limited to, oats, rye, barley, and wheat. Legumes that provide fiber include, but are not limited to, peas and beans, such as soybeans. Fruits and vegetables that provide a source of fiber include, but are not limited to, apples, oranges, pears, bananas, berries, tomatoes, green beans, broccoli, cauliflower, carrots, potatoes, and celery. Plant foods such as bran, nuts, and seeds (such as flaxseed) are also sources of dietary fiber. Plant parts that provide dietary fiber include, but are not limited to, stems, roots, leaves, seeds, pulp, and skins.
[0177] Fatty acids are straight-chain monocarboxylic acids, including saturated fatty acids, unsaturated fatty acids, long-chain fatty acids, medium-chain fatty acids, short-chain fatty acids, fatty acid precursors (including omega-9 fatty acid precursors), and esterified fatty acids.As used herein, "long-chain polyunsaturated fatty acids" refers to any polyunsaturated carboxylic acid or organic acid with a long aliphatic tail.Suitable omega-3 fatty acids include, but are not limited to, linoleic acid, alpha-linolenic acid, eicosapentaenoic acid, docosahexaenoic acid, stearidonic acid, eicosatetraenoic acid, and combinations thereof.
[0178] Suitable omega-6 fatty acids include, but are not limited to, linoleic acid, gamma-linolenic acid, dihomo-gamma-linolenic acid, arachidonic acid, eicosadienoic acid, docosadienoic acid, adrenic acid, docosapentaenoic acid, and combinations thereof. Esterified fatty acids suitable for embodiments of the present invention include, but are not limited to, monoacylglycerols containing omega-3 and / or omega-6 fatty acids, diacylglycerols containing omega-3 and / or omega-6 fatty acids, or triacylglycerols containing omega-3 and / or omega-6 fatty acids, and combinations thereof.
[0179] Suitable vitamins include vitamin A, vitamin D, vitamin E, vitamin K, vitamin B1, vitamin B2, vitamin B3, vitamin B5, vitamin B6, vitamin B7, vitamin B9, vitamin B12, and vitamin C. Various other compounds have also been classified as vitamins by several organizations. These compounds can be referred to as pseudo-vitamins and include, but are not limited to, compounds such as ubiquinone (coenzyme Q10), pangamic acid, dimethylglycine, taestrile, amygdaline, flavanoids, para-aminobenzoic acid, adenine, adenylic acid, and s-methylmethionine. As used herein, the term vitamin includes pseudo-vitamins.
[0180] The minerals are selected from macrominerals, trace minerals, or combinations thereof. Non-limiting examples of macrominerals include calcium, chlorine, magnesium, phosphorus, potassium, sodium, and sulfur. Non-limiting examples of trace minerals include chromium, cobalt, copper, fluorine, iron, manganese, molybdenum, selenium, zinc, and iodine. Iodine is generally classified as a trace mineral, but is required in greater amounts than other trace minerals and is often classified as a macromineral.
[0181] In other specific embodiments of the invention, the minerals are trace minerals considered essential for human nutrition, non-limiting examples of which include bismuth, boron, lithium, nickel, rubidium, silicon, strontium, tellurium, tin, titanium, tungsten, and vanadium.
[0182] The preservative is selected from an antimicrobial, an antioxidant, an antienzymatic, or a combination thereof. Non-limiting examples of antimicrobials include sulfites, propionates, benzoates, sorbates, nitrates, nitrites, bacteriocins, salts, sugars, acetate, dimethyl dicarbonate (DMDC), ethanol, and ozone. Sulfites include, but are not limited to, sulfur dioxide, sodium bisulfite, and potassium bisulfite. Propionates include, but are not limited to, propionic acid, calcium propionate, and sodium propionate. Benzoates include, but are not limited to, sodium benzoate and benzoic acid. Sorbates include, but are not limited to, potassium sorbate, sodium sorbate, calcium sorbate, and sorbic acid. Nitrates and nitrites include, but are not limited to, sodium nitrate and sodium nitrite. In yet another particular embodiment, the at least one preservative is a bacteriocin, e.g., nisin. In another particular embodiment, the preservative is ethanol. In yet another particular embodiment, the preservative is ozone. Antienzyme agents suitable for use as preservatives in certain embodiments of the present invention include ascorbic acid, citric acid, and metal chelators, e.g., ethylenediaminetetraacetic acid (EDTA).
[0183] The hydration product may be an electrolyte, non-limiting examples of which include sodium, potassium, calcium, magnesium, chloride, phosphate, bicarbonate, and combinations thereof. Electrolytes suitable for use in certain embodiments of the present invention are also described in U.S. Patent No. 5,681,569, the disclosure of which is expressly incorporated herein by reference. Non-limiting examples of salts for use in certain embodiments include chloride, carbonate, sulfate, acetate, bicarbonate, citrate, phosphate, hydrogen phosphate, tartrate, sorbate, citrate, benzoate, or combinations thereof.
[0184] In certain embodiments of the present invention, the hydration product is a carbohydrate to supplement the energy reserves burned by muscles. Carbohydrates suitable for use in certain embodiments of the present invention are described in U.S. Patent Nos. 4,312,856, 4,853,237, 5,681,569, and 6,989,171, the disclosures of which are expressly incorporated herein by reference. Non-limiting examples of suitable carbohydrates include monosaccharides, disaccharides, oligosaccharides, complex polysaccharides, or combinations thereof. Non-limiting examples of types of monosaccharides suitable for use in certain embodiments include trioses, tetraoses, pentoses, hexoses, heptoses, octose, and nonoses. Non-limiting examples of specific types of suitable monosaccharides include glyceraldehyde, dihydroxyacetone, erythrose, threose, erythrulose, arabinose, lyxose, ribose, xylose, ribulose, xylulose, allose, altrose, galactose, glucose, gulose, idose, mannose, talose, fructose, psicose, sorbose, tagatose, mannoheptulose, sedoheptulose, octolose, and sialos. Non-limiting examples of suitable disaccharides include sucrose, lactose, and maltose. Non-limiting examples of suitable oligosaccharides include saccharose, maltotriose, and maltodextrin. In other particular embodiments, the carbohydrate is provided by corn syrup, beet sugar, cane sugar, fruit juice, or tea. In another particular embodiment, the hydration is a flavanol that provides rehydration of the cells. Non-limiting examples of flavanols suitable for use in certain embodiments of the present invention include catechin, epicatechin, gallocatechin, epigallocatechin, epicatechin gallate, epigallocatechin 3-gallate, theaflavin, theaflavin 3-gallate, theaflavin 3'-gallate, theaflavin 3,3'gallate, thearubigin, or combinations thereof. In certain embodiments, the hydration product is a glycerol solution for enhancing exercise endurance.
[0185] Probiotics include microorganisms that provide health benefits when taken in effective amounts. Probiotics may include, but are not limited to, bacteria, yeasts, and fungi. Examples of probiotics include, but are not limited to, bacteria of the genus Lactobacilli, Bifidobacteria, Streptococci, or combinations thereof. In certain embodiments of the present invention, at least one probiotic is selected from the genus Lactobacilli. Lactobacilli (i.e., bacteria of the genus Lactobacillus, hereafter "L."). Non-limiting examples of species of Lactobacilli found in the human intestinal tract include L. acidophilus, L. casei, L. fermentum, L. saliva roes, L. brevis, L. leichmannii, L. plantarum, L. cellobiosus, L. reuteri, L. rhamnosus, L. GG, L. bulgaricus, and L. thermophilus. According to other particular embodiments of the invention, the probiotic is selected from the genus Bifidobacteria.Non-limiting species of Bifidobacteria found in the human gastrointestinal tract include B. angulatum, B. animalis, B. asteroides, B. bifidum, B. boum, B. breve, B. catenulatum, B. choerinum, B. coryneforme, B. cuniculi, B. dentium, B. gallicum, B. gallinarum, B. indicum, B. longum, and B. magnum. Examples of species include B. magnum, B. merycicum, B. minimum, B. pseudocatenulatum, B. pseudolongum, B. psychraerophilum, B. pullorum, B. ruminantium, B. saeculare, B. scardovii, B. simiae, B. subtile, B. thermocidophilum, B. thermophilum, B. urinalis, and B. sp. According to another specific embodiment of the present invention, the probiotic is selected from the genus Streptococcus. Streptococcus thermophilus is a gram-positive facultative anaerobe. Other non-limiting probiotic species of this bacterium include Streptococcus salivarus and Streptococcus cremoris.
[0186] Prebiotics are compositions that promote the growth of beneficial bacteria in the intestine. Prebiotics include, but are not limited to, mucopolysaccharides, oligosaccharides, polysaccharides, amino acids, vitamins, nutrient precursors, proteins, and combinations thereof. According to certain embodiments, the prebiotics are selected from dietary fibers, including, but not limited to, polysaccharides and oligosaccharides. Non-limiting examples of oligosaccharides classified as prebiotics according to certain embodiments of the present invention include fructooligosaccharides, inulin, isomaltooligosaccharides, lactitol, lactosucrose, lactulose, pyrodextrin, soybean oligosaccharides, transgalactooligosaccharides, and xylo-oligosaccharides. According to other certain embodiments, the prebiotics are amino acids.
[0187] As used herein, "weight management agents" include appetite suppressants and / or thermogenic agents. As used herein, the expressions "appetite suppressant," "appetite satiation composition," "satiety agent," and "satiety component" are synonymous. The expression "appetite suppressant" refers to macronutrients, herbal extracts, exogenous hormones, anorectics, anorexic agents, pharmaceuticals, and combinations thereof that, when delivered in an effective amount, suppress, inhibit, reduce, or otherwise decrease a person's appetite. The expression "thermogenic agent" refers to macronutrients, herbal extracts, exogenous hormones, anorectics, anorexic agents, pharmaceuticals, and combinations thereof that, when delivered in an effective amount, activate or otherwise enhance a person's thermogenic or metabolic activity.
[0188] Suitable weight management agents include macronutrients selected from the group consisting of proteins, carbohydrates, dietary fats, and combinations thereof. Carbohydrates generally include sugars, starches, cellulose, and gums that the body converts into glucose for energy. Non-limiting examples of carbohydrates include polydextrose; inulin; monosaccharide-derived polyols such as erythritol, mannitol, xylitol, and sorbitol; disaccharide-derived alcohols such as isomalt, lactitol, and maltitol; and hydrogenated starch hydrolysates. Carbohydrates are described in more detail herein below. Dietary fats are lipids that contain a combination of saturated and unsaturated fatty acids. Polyunsaturated fatty acids have been shown to have a greater satiety effect than monounsaturated fatty acids. Thus, the dietary fats exemplified herein desirably contain polyunsaturated fatty acids, non-limiting examples of which include triacylglycerols.
[0189] In certain embodiments, the weight management agent is an herbal extract. Non-limiting examples of plants whose extracts have appetite suppressing properties include plants from the genus Hoodia, Trichocaulon, Caralluma, Stapelia, Orbea, Asclepias, and Camelia. Other embodiments include extracts from Gymnema Sylvestre, Kola Nut, Citrus Aurantium, Yerba Mate, Griffonia Simplicifolia, Guarana, Myrrh, Guggul Lipids, and Blackcurrant Seed Oil. In certain embodiments, the herbal extract is derived from a plant of the genus Hoodia (whose species include H. alstonii, H. currorii, H. dregei, H. flava, H. gordonii, H. jutatae, H. mossamedensis, H. officinalis, H. parviflorai, H. pedicellata, H. pilifera, H. rustii, and H. triebneri). Hoodia plants are succulent-stemmed plants native to southern Africa.
[0190] In another particular embodiment, the herbal extract is derived from a plant of the genus Caralluma (whose species include C. indica, C. fimbriata, C. attenuate, C. tuberculata, C. edulis, C. adscendens, C. stalagmifera, C. umbellate, C. penicillata, C. russeliana, C. retrospicens, C. arabica, and C. lasiantha). The Caralluma genus of plants belongs to the same subfamily as the Hoodia genus, Asclepiadaceae.
[0191] In another particular embodiment, the at least one herbal extract is derived from a plant of the Trichocaulon genus. Trichocaulon plants, like Hoodia, are succulent plants that are generally native to Southern Africa and include the species T. piliferum and T. officinale. In another particular embodiment, the herbal extract is derived from a plant of the Stapelia or Orbea genus (whose species include S. gigantean and O. variegate, respectively). Both Stapelia and Orbea plants belong to the same subfamily as Hoodia, the Asclepiadaceae family.
[0192] In another particular embodiment, the herbal extract is derived from a plant of the genus Asclepias. Asclepias plants also belong to the family Asclepiadaceae. Non-limiting examples of Asclepias plants include A. incarnate, A. curassayica, A. syriaca, and A. tuberose. Without wishing to be bound by any theory, it is believed that these extracts contain steroid compounds, such as pregnane glycosides and pregnane aglycones, which have appetite suppressing effects. In a particular embodiment, the weight management agent is an exogenous hormone with weight management effects. Non-limiting examples of such hormones include CCK, peptide YY, ghrelin, bombesin, and gastrin releasing peptide (GRP), enterostatin, apolipoprotein A-IV, GLP-1, amylin, somastatin, and leptin.
[0193] In certain embodiments, the osteoporosis treatment agent is at least one calcium source, i.e., any compound containing calcium, including salt complexes, solubilized species, and other forms of calcium. Non-limiting examples of calcium sources include amino acid chelated calcium, calcium carbonate, calcium oxide, calcium hydroxide, calcium sulfate, calcium chloride, calcium phosphate, calcium hydrogen phosphate, calcium dihydrogen phosphate, calcium citrate, calcium malate, calcium citrate malate, calcium gluconate, calcium tartrate, calcium lactate, solubilized species thereof, and combinations thereof. According to certain embodiments, the osteoporosis treatment agent is a magnesium source, i.e., any compound containing magnesium, including salt complexes, solubilized species, and other forms of magnesium. Non-limiting examples of magnesium sources include magnesium chloride, magnesium citrate, magnesium gluceptate, magnesium gluconate, magnesium lactate, magnesium hydroxide, magnesium picolate, magnesium sulfate, solubilized species thereof, and mixtures thereof. In another particular embodiment, the magnesium source includes amino acid chelated or creatine chelated magnesium. In other embodiments, the osteoporosis drug is selected from vitamins D, C, K, their precursors, and / or beta-carotene, and combinations thereof. Numerous plants and plant extracts have also been shown to be effective in preventing and treating osteoporosis. Without wishing to be bound by any theory, it is believed that plants and plant extracts stimulate bone morphogenetic proteins and / or inhibit bone resorption, thereby stimulating bone regeneration and strength.Non-limiting examples of suitable plants and plant extracts as osteoporosis management agents include species of the genus Taraxacum and Amelanchier as disclosed in U.S. Patent Application Publication No. 2005 / 0106215, and species of the genus Lindera, Artemisia, Acorus, Carthamus, Carum, Cnidium, Curcuma, Cyperus, Juniperus, Scutellaria, and the like as disclosed in U.S. Patent Application Publication No. 2005 / 0079232. These include species of the genera Prunus, Iris, Cichorium, Dodonaea, Epimedium, Erigonoum, Soya, Mentha, Ocimum, thymus, Tanacetum, Plantago, Spearmint, Bixa, Vitis, Rosemarinus, Rhus, and Anethum.
[0194] Examples of phytoestrogens suitable for embodiments of the present invention include, but are not limited to, isoflavones, stilbenes, lignans, resorcylic acid lactones, coumestans, coumestrol, equol, and combinations thereof. Isoflavones belong to a group of phytonutrients called polyphenols. In general, polyphenols (also known as "polyphenolics") belong to a group of chemicals found in plants that are characterized by the presence of two or more phenolic groups per molecule. Suitable phytoestrogenic isoflavones according to embodiments of the present invention include genistein, daidzein, glycitein, biochanin A, formononetin, their respective naturally occurring glycosides and glycoside conjugates, matairesinol, secoisolariciresinol, enterolactone, enterodiol, textured vegetable proteins, and combinations thereof.
[0195] Long-chain primary aliphatic saturated alcohols are a diverse group of organic compounds. The term long-chain refers to the fact that the number of carbon atoms in these compounds is at least 8 carbons. Non-limiting examples of specific long chain primary aliphatic saturated alcohols for use in certain embodiments of the present invention include 1-octanol of 8 carbon atoms, 1-nonanol of 9 carbon atoms, 1-decanol of 10 carbon atoms, 1-dodecanol of 12 carbon atoms, 1-tetradecanol of 14 carbon atoms, 1-hexadecanol of 16 carbon atoms, 1-octadecanol of 18 carbon atoms, 1-eicosanol of 20 carbon atoms, 1-docosanol of 22 carbons, 1-tetracosanol of 24 carbons, 1-hexacosanol of 26 carbons, 1-heptacosanol of 27 carbons, 1-octanosol of 28 carbons, 1-nonacosanol of 29 carbons, 1-triacontanol of 30 carbons, 1-dotriacontanol of 32 carbons, and 1-tetracontanol of 34 carbons. In a particularly desirable embodiment of the present invention, the long chain primary aliphatic saturated alcohol is polycosanol, a term that describes a mixture of long chain primary aliphatic saturated alcohols consisting primarily of 1-octanosol (28 carbons) and 1-triacontanol (30 carbons), with smaller concentrations of other alcohols such as 1-docosanol (22 carbons), 1-tetracosanol (24 carbons), 1-hexacosanol (26 carbons), 1-heptacosanol (27 carbons), 1-nonacosanol (29 carbons), 1-dotriacontanol (32 carbons), and 1-tetracontanol (34 carbons).
[0196] At least 44 naturally occurring phytosterols have been discovered and are generally obtained from plants such as corn, soybean, wheat, and wood oils; however, they can also be produced synthetically to form compositions having properties identical to those found in nature or similar to those of naturally occurring phytosterols. According to certain embodiments of the present invention, non-limiting examples of phytosterols known to those skilled in the art include 4-desmethylsterols (e.g., β-sitosterol, campesterol, stigmasterol, brassicasterol, 22-dehydrobrassicasterol, and Δ5-avenasterol), 4-monomethylsterols, and 4,4-dimethylsterols (triterpene alcohols) (e.g., cycloartenol, 24-methylenecycloartenol, and cyclobranol).
[0197] According to certain embodiments of the present invention, non-limiting examples of phytostanols include β-sitostanol, campestanol, cycloartanol, and other triterpene alcohols in saturated form.
[0198] Both phytosterols and phytostanols, as used herein, include various isomers such as α and β isomers (e.g., α-sitosterol and β-sitostanol, which respectively comprise one of the most effective phytosterols and phytostanols for lowering serum cholesterol in mammals). The phytosterols and phytostanols of the present invention may also be in their ester form. Non-limiting examples of suitable phytosterol and phytostanol esters include sitosterol acetate, sitosterol oleate, stigmasterol oleate, and the corresponding phytostanol esters. The phytosterols and phytostanols of the present invention may also include derivatives thereof.
[0199] Generally, the amount of functional ingredient in a composition will vary widely depending on the particular composition and the desired functional ingredient. Those skilled in the art will readily ascertain the appropriate amount of functional ingredient for each composition.
[0200] consumer goods Disclosed herein are consumables (e.g., beverages) comprising the sweetener compositions or flavor compositions disclosed herein.
[0201] The brazzein (or analogs thereof) or brazzein-containing sweetener or flavor improving compositions disclosed herein can be incorporated into any known foodstuff (referred to herein as "consumable goods," "sweetenable compositions," or "flavor and / or taste improved compositions"), such as edible gel mixes and compositions, dental compositions, foodstuffs (confectionery, condiments, chewing gum, cereal compositions, baked products, dairy products, and tabletop sweetener compositions), beverages and beverage products.
[0202] In one embodiment, the consumable product is a beverage or beverage product. In other words, disclosed herein are beverages or beverage products comprising brazzein (or an analog thereof) or brazzein-containing sweetener compositions or flavor improving compositions disclosed herein.
[0203] As used herein, a "beverage product" is a ready-to-drink beverage, beverage concentrate, beverage syrup, or powdered beverage. Suitable ready-to-drink beverages include carbonated and non-carbonated beverages. Carbonated beverages include, but are not limited to, cola, ginger ale, soft drink, and root beer. Non-carbonated beverages include, but are not limited to, fruit juice, fruit-flavored juice, vegetable juice, vegetable-flavored juice, sports drinks, energy drinks, plant protein drinks, near-water drinks (e.g., water with natural or synthetic flavors), teas (e.g., black tea, green tea, red tea, oolong tea), coffee, cocoa drinks, dairy beverages (e.g., dairy beverages, dairy coffee, cafe au lait, milk tea, fruit milk beverages).
[0204] In particular embodiments, the beverage is a flavored black tea beverage, a zero calorie enhanced water beverage, or an orange flavored sparkling beverage.
[0205] Beverage concentrates and beverage syrups are prepared with an initial volume of a liquid substrate (e.g., water) and the desired beverage ingredients. A full strength beverage is then prepared by adding an additional volume of water. Powdered beverages are prepared by dry mixing all of the beverage ingredients in the absence of a liquid substrate. A full strength beverage is prepared by adding a sufficient volume of water.
[0206] Beverages contain water as a liquid substrate, i.e., the base component in which ingredients, including sweeteners or sweetener compositions, are dissolved. Drinking water quality water can be used, such as deionized water, distilled water, reverse osmosis water, carbon-treated water, purified water, demineralized water, and combinations thereof. Additional suitable liquid substrates include, but are not limited to, phosphoric acid, phosphate buffers, citric acid, citrate buffers, and carbon-treated water.
[0207] In one embodiment, a beverage or beverage product containing brazzein or an analog thereof is disclosed. In a particular embodiment, the beverage contains a brazzein analog that has the same or increased sweetness compared to a beverage containing the same amount of wild-type brazzein.
[0208] In one embodiment, the concentration of brazzein (or an analog thereof) in the beverage is at or above its sweetness perception threshold concentration or flavor perception threshold concentration, hi certain embodiments, the concentration of brazzein is at least about 1%, at least about 5%, at least about 10%, at least about 15%, at least about 20%, at least about 25%, at least about 30%, at least about 35%, at least about 40%, at least about 45%, at least about 50% or more greater than its sweetness or flavor perception threshold concentration.
[0209] In one embodiment, the beverage or beverage product contains brazzein (or an analog thereof) in an amount of about 1 ppm to about 50 ppm, e.g., about 5 ppm to about 50 ppm, about 5 ppm to about 40 ppm, about 5 ppm to about 30 ppm, about 5 ppm to about 20 ppm, about 5 ppm to about 10 ppm, about 10 ppm to about 50 ppm, about 10 ppm to about 40 ppm, about 10 ppm to about 30 ppm, about 10 ppm to about 20 ppm, about 20 ppm to about 50 ppm, about 20 ppm to about 40 ppm, about 20 ppm to about 30 ppm, about 30 ppm to about 50 ppm, about 30 ppm to about 40 ppm, or about 40 ppm to about 50 ppm.
[0210] In a more specific embodiment, the beverage or beverage product contains brazzein (or an analog thereof) in an amount of about 10 ppm to about 25 ppm.
[0211] In another embodiment, the beverage contains brazzein (or an analogue thereof) in an amount of from about 1 ppm to less than about 15 ppm. In one embodiment, the beverage contains brazzein (or an analogue thereof) in an amount of from about 1 ppm to about 5 ppm, from about 5 ppm to about 10 ppm, or from about 10 ppm to about 15 ppm.
[0212] In another embodiment, the beverage contains brazzein (or an analogue thereof) in an amount greater than about 15 ppm. In one embodiment, the beverage contains brazzein (or an analogue thereof) in an amount between about 15 ppm and about 20 ppm, between about 20 ppm and about 25 ppm, between about 25 ppm and about 30 ppm, between about 30 ppm and about 35 ppm, between about 35 ppm and about 40 ppm, between about 40 ppm and about 50 ppm, or greater than about 50 ppm.
[0213] In one embodiment, the beverage contains brazzein (or an analog thereof) in an amount of about 1 ppm, about 3 ppm, about 5 ppm, about 10 ppm, about 12 ppm, about 15 ppm, about 18 ppm, about 20 ppm, about 22 ppm, about 25 ppm, about 28 ppm, about 30 ppm, about 35 ppm, about 40 ppm, about 45 ppm, about 50 ppm, about 55 ppm, about 60 ppm, about 65 ppm, about 70 ppm, or about 75 ppm or more.
[0214] The beverage may further comprise at least one additional sweetener. Any of the sweeteners detailed herein may be used, including natural, unnatural, or synthetic sweeteners.
[0215] In a particular embodiment, the at least one additional sweetener is one or more steviol glycosides. In a particular embodiment, the steviol glycoside is RebM. In another particular embodiment, the steviol glycoside is RebA. In one embodiment, the beverage contains a steviol glycoside blend, e.g., RebM and RebA, in addition to brazzein (or an analog thereof).
[0216] The amount of steviol glycosides (e.g., RebM, RebA) can vary. In one embodiment, the amount of steviol glycosides provides less than about 8 sucrose equivalents (SE), e.g., about 7.5SE, about 7.0SE, about 6.5SE, or about 6.0SE or less. In another embodiment, the amount of steviol glycosides provides more than about 8 sucrose equivalents (SE), e.g., about 8.5SE, about 9.0SE, about 9.5SE, about 10SE, about 10.5SE, about 11SE, or about 12SE or more.
[0217] In another embodiment, the amount of steviol glycosides (e.g., RebM, RebA) is less than about 450 ppm. In certain embodiments, the amount of steviol glycosides is less than about 400 ppm, less than about 350 ppm, less than about 300 ppm, less than about 300 ppm, less than about 250 ppm, less than about 200 ppm, less than about 150 ppm, or less than about 100 ppm.
[0218] In another embodiment, the amount of steviol glycosides (e.g., RebM, RebA) is from about 100 ppm to about 450 ppm, more specifically, from about 100 ppm to about 400 ppm, from about 100 ppm to about 350 ppm, from about 100 ppm to about 300 ppm, from about 100 ppm to about 250 ppm, from about 100 ppm to about 200 ppm, or from about 100 ppm to 250 ppm.
[0219] In further embodiments, the amount of steviol glycosides (e.g., RebM, RebA) is about 100 ppm to about 200 ppm, more specifically, about 110 ppm, about 120 ppm, about 130 ppm, about 140 ppm, about 150 ppm, about 160 ppm, about 170 ppm, about 180 ppm, about 190 ppm, or about 200 ppm.
[0220] In further embodiments, the amount of steviol glycosides (e.g., RebM, RebA) is about 200 ppm to about 300 ppm, more specifically, about 210 ppm, about 220 ppm, about 230 ppm, about 240 ppm, about 250 ppm, about 260 ppm, about 270 ppm, about 280 ppm, about 290 ppm, or about 300 ppm.
[0221] In another embodiment, the amount of steviol glycosides (e.g., RebM, RebA) is about 300 ppm to about 400 ppm, more specifically, about 310 ppm, about 320 ppm, about 330 ppm, about 340 ppm, about 350 ppm, about 360 ppm, about 370 ppm, about 380 ppm, about 390 ppm, or about 400 ppm.
[0222] In another embodiment, the amount of steviol glycosides (e.g., RebM, RebA) is about 400 ppm to about 500 ppm, more specifically, about 410 ppm, about 420 ppm, about 430 ppm, about 440 ppm, about 450 ppm, about 460 ppm, about 470 ppm, about 480 ppm.
[0223] In certain embodiments, the beverage comprises brazzein (or an analog thereof) in an amount of about 1 ppm to about 100 ppm and at least one steviol glycoside (e.g., RebM, RebA), where the amount of the at least one steviol glycoside is sufficient to provide an amino acid content of less than about 8 SE, e.g., about 7.5 SE, about 7.0 SE, about 6.5 SE, about 6 SE, about 5.5 SE, about 5.0 SE, about 4.5 SE, about 4.0 SE, about 3.5 SE, about 3.0 SE, about 2.5 SE, about 2.0 SE, about 1.5 SE, or about 1.0 SE.
[0224] In another specific embodiment, the beverage comprises brazzein (or an analog thereof) in an amount of about 1 ppm to about 100 ppm and at least one steviol glycoside (e.g., RebM, RebA), wherein the amount of the at least one steviol glycoside is about 450 ppm or less, e.g., about 425 ppm, about 400 ppm, about 375 ppm, about 350 ppm, about 325 ppm, about 300 ppm, about 275 ppm, about 250 ppm, about 225 ppm, about 200 ppm, about 175 ppm, about 150 ppm, about 125 ppm, or about 100 ppm or less.
[0225] In certain embodiments, the beverage comprises brazzein (or an analog thereof) in an amount of about 1 ppm to about 30 ppm, more specifically, about 1 ppm to about 15 ppm or about 15 ppm to about 30 ppm, and RebM in an amount sufficient to provide less than about 8 SE, such as, for example, about 7.5SE, about 7.0SE, about 6.5SE, about 6SE, about 5.5SE, about 5.0SE, about 4.5SE, about 4.0SE, about 3.5SE, about 3.0SE, about 2.5SE, about 2.0SE, about 1.5SE, or about 1.0SE.
[0226] In another specific embodiment, the beverage comprises brazzein (or an analog thereof) in an amount of about 1 ppm to about 30 ppm, more specifically, about 1 ppm to about 15 ppm or about 15 ppm to about 30 ppm, and RebM in an amount of about 450 ppm or less, e.g., about 425 ppm, about 400 ppm, about 375 ppm, about 350 ppm, about 325 ppm, about 300 ppm, about 275 ppm, about 250 ppm, about 225 ppm, about 200 ppm, about 175 ppm, about 150 ppm, about 125 ppm, or about 100 ppm or less.
[0227] In another specific embodiment, the beverage comprises brazzein (or an analog thereof) in an amount of about 1 ppm to about 30 ppm, more specifically, about 1 ppm to about 15 ppm or about 15 ppm to about 30 ppm, and RebM in an amount of about 450 ppm or less, e.g., about 425 ppm, about 400 ppm, about 375 ppm, about 350 ppm, about 325 ppm, about 300 ppm, about 275 ppm, about 250 ppm, about 225 ppm, about 200 ppm, about 175 ppm, about 150 ppm, about 125 ppm, or about 100 ppm or less.
[0228] For example, the beverage comprises brazzein (or an analogue thereof) in an amount of about 1 ppm to about 30 ppm, and RebM80 in an amount of about 200 ppm to about 400 ppm. In a more specific embodiment, the beverage comprises brazzein (or an analogue thereof) in an amount of about 20 ppm to about 30 ppm, and RebM80 in an amount of about 300 to about 400 ppm. In an even more specific embodiment, the beverage comprises brazzein (or an analogue thereof) in an amount of about 25 ppm, and RebM80 in an amount of about 315 ppm.
[0229] The beverages of the present invention comprise brazzein (or an analog thereof) in an amount of about 1 ppm to about 50 ppm, and RebM80 in an amount of about 200 ppm to about 400 ppm. In a preferred embodiment, the beverages of the present invention taste similar to a beverage sweetened with RebM or RebM80 alone (wherein the beverages of the present invention and the beverages sweetened with RebM or RebM80 have similar sucrose equivalents). In a more specific embodiment, the beverage having a citric acid substrate comprises brazzein (or an analog thereof) in an amount of about 20 ppm to about 30 ppm, and RebM80 in an amount of about 300 ppm to about 400 ppm. In an even more specific embodiment, the beverage having a citric acid substrate comprises brazzein (or an analog thereof) in an amount of about 25 ppm, and RebM80 in an amount of about 315 ppm. In another more specific embodiment. The lemon-lime diet carbonated beverage comprises brazzein (or an analog thereof) in an amount of about 30 ppm to about 50 ppm, and RebM80 in an amount of about 150 ppm to about 350 ppm. In a more specific embodiment, the lemon-lime diet carbonated beverage comprises brazzein (or an analog thereof) in an amount of about 40 ppm, and RebM80 in an amount of about 210 ppm.
[0230] In certain embodiments, the beverage comprises brazzein (or an analog thereof) in an amount of about 10 ppm to about 25 ppm and RebM in an amount sufficient to provide less than about 8 SE, e.g., about 7.5SE, about 7.0SE, about 6.5SE, about 6SE, about 5.5SE, about 5.0SE, about 4.5SE, about 4.0SE, about 3.5SE, about 3.0SE, about 2.5SE, about 2.0SE, about 1.5SE, or about 1.0SE.
[0231] In another particular embodiment, the beverage comprises brazzein (or an analog thereof) in an amount of about 10 ppm to about 25 ppm and RebM in an amount of about 450 ppm or less, e.g., about 425 ppm, about 400 ppm, about 375 ppm, about 350 ppm, about 325 ppm, about 300 ppm, about 275 ppm, about 250 ppm, about 225 ppm, about 200 ppm, about 175 ppm, about 150 ppm, about 125 ppm, or about 100 ppm or less.
[0232] In another particular embodiment, the beverage comprises brazzein (or an analog thereof) in an amount of about 1 ppm to about 50 ppm and at least one additional sweetener (e.g., RebM, RebA, siamenoside I, mogroside IV), wherein the amount of the at least one additional sweetener is less than about 450 ppm, e.g., about 425 ppm, about 400 ppm, about 375 ppm, about 350 ppm, about 325 ppm, about 300 ppm, about 275 ppm, about 250 ppm, about 225 ppm, about 200 ppm, about 175 ppm, about 150 ppm, about 125 ppm, or about 100 ppm or less.
[0233] In certain embodiments, the beverage comprises brazzein (or an analog thereof) in an amount of about 1 ppm to about 100 ppm and Reb A in an amount sufficient to provide less than about 8 SE, e.g., about 7.5 SE, about 7.0 SE, about 6.5 SE, about 6 SE, about 5.5 SE, about 5.0 SE, about 4.5 SE, about 4.0 SE, about 3.5 SE, about 3.0 SE, about 2.5 SE, about 2.0 SE, about 1.5 SE, or about 1.0 SE.
[0234] In another specific embodiment, the beverage comprises brazzein (or an analog thereof) in an amount of about 1 ppm to about 30 ppm, more specifically, about 1 ppm to about 15 ppm or about 15 ppm to about 30 ppm, and RebA in an amount of less than about 450 ppm, e.g., about 425 ppm, about 400 ppm, about 375 ppm, about 350 ppm, about 325 ppm, about 300 ppm, about 275 ppm, about 250 ppm, about 225 ppm, about 200 ppm, about 175 ppm, about 150 ppm, about 125 ppm, or about 100 ppm or less.
[0235] In certain embodiments, the beverage comprises brazzein (or an analog thereof) in an amount of about 10 ppm to about 25 ppm and RebA in an amount sufficient to provide less than about 8 SE, e.g., about 7.5 SE, about 7.0 SE, about 6.5 SE, about 6 SE, about 5.5 SE, about 5.0 SE, about 4.5 SE, about 4.0 SE, about 3.5 SE, about 3.0 SE, about 2.5 SE, about 2.0 SE, about 1.5 SE, or about 1.0 SE.
[0236] In certain embodiments, the beverage comprises brazzein (or an analog thereof) in an amount of about 10 ppm to about 25 ppm and RebA in an amount of less than about 450 ppm, e.g., about 425 ppm, about 400 ppm, about 375 ppm, about 350 ppm, about 325 ppm, about 300 ppm, about 275 ppm, about 250 ppm, about 225 ppm, about 200 ppm, about 175 ppm, about 150 ppm, about 125 ppm, or about 100 ppm or less.
[0237] The ppm ratio of brazzein (or an analog thereof) to one or more steviol glycosides in the beverage can vary, hi one embodiment, the ppm ratio of brazzein (or an analog thereof) to one or more steviol glycosides is from about 1:2 to about 1:40, more specifically, from about 1:5 to about 1:35, and even more specifically, from about 1:10 to about 1:25.
[0238] In particular embodiments, the ppm ratio of brazzein (or an analog thereof) to one or more steviol glycosides is about 1:30 or less, more particularly about 1:25.
[0239] In one embodiment, the steviol glycoside is RebM and the ppm ratio of brazzein (or an analog thereof) to RebM is about 1:10 to about 1:20, more specifically, about 1:10, about 1:12, about 1:14, about 1:16, about 1:18, or about 1:20.
[0240] In another embodiment, the steviol glycoside is RebA and the ppm ratio of brazzein (or analog thereof) to RebA is about 1:40 or less, more specifically, about 1:20 to about 1:30, even more specifically, about 1:20, about 1:22, about 1:24, about 1:26, about 1:28, or about 1:30.
[0241] In another embodiment, the steviol glycoside is RebA and the ppm ratio of brazzein (or an analog thereof) to RebA is about 1:70 or less, more specifically, less than about 1:60, less than about 1:50, or less than about 1:40. In a particular embodiment, the ppm ratio of brazzein (or an analog thereof) to RebA is about 1:35.
[0242] In another embodiment, the steviol glycoside is RebA and the ppm ratio of brazzein (or an analog thereof) to RebA is greater than or equal to about 1:15, more specifically, greater than about 1:17, about 1:18, about 1:19, or about 1:20.
[0243] In another embodiment, the steviol glycoside is RebA and the ppm ratio of brazzein (or an analog thereof) to RebA is greater than or equal to about 1:10, more specifically, greater than about 1:12, about 1:14, or about 1:16.
[0244] In one embodiment, the beverage comprises brazzein (or an analogue thereof) and RebM, wherein the brazzein is present in an amount of about 15 ppm to about 30 ppm, more specifically about 20 ppm to about 25 ppm, and the RebM (e.g., RebM80) is present in an amount of about 300 ppm to about 350 ppm, more specifically about 315 ppm to about 325 ppm (i.e., the RebM provides about 8 SE). According to this embodiment, the ratio of brazzein to RebM is about 1:10 to about 1:20, more specifically about 1:0, 1:12, about 1:14, about 1:16, about 1:18, or about 1:20. In one embodiment, the amount of RebM provides about 8 sucrose equivalents (SE).
[0245] In one embodiment, the beverage comprises brazzein (or an analogue thereof) and RebM, wherein the brazzein is present in an amount of about 1 ppm to about 20 ppm, more specifically about 1 ppm to about 15 ppm, and the RebM is present in an amount of about 110 ppm to about 140 ppm, more specifically about 115 ppm, and even more specifically about 120 ppm. In a particular embodiment, the ppm ratio of brazzein to RebM is about 1:5 to about 1:10, more specifically about 1:7.
[0246] In one embodiment, the beverage comprises brazzein (or an analog thereof) and RebM, wherein the brazzein is present in an amount of about 1 ppm to about 15 ppm, more specifically, about 1 ppm to about 5 ppm, even more specifically, about 3 ppm, and the RebM is present in an amount of about 450 ppm to about 500 ppm, even more specifically, about 470 ppm to about 475 ppm, even more specifically, about 472 ppm. In a particular embodiment, the RebM is present in an amount providing greater than about 9 sucrose equivalents (SE).
[0247] In one embodiment, the beverage comprises brazzein (or an analog thereof) and RebA, wherein the brazzein is present in an amount of about 10 ppm to about 20 ppm, more specifically about 15 ppm to about 20 ppm, and the RebA is present in an amount of about 375 ppm to about 425 ppm, more specifically about 400 ppm. In one embodiment, the amount of RebA provides about 7SE. According to this embodiment, a ppm ratio of brazzein to RebA of about 1:20 ppm to about 1:30 has at least one improved sensory attribute (e.g., taste) compared to a ppm ratio of brazzein to RebA of about 1:20 ppm, about 1:22 ppm, about 1:24 ppm, about 1:26 ppm, about 1:28 ppm, or about 1:30 ppm.
[0248] In one embodiment, the beverage comprises brazzein (or an analogue thereof) and RebA, wherein the brazzein is present in an amount of about 5 ppm to about 15 ppm, more specifically about 10 ppm, and the RebA is present in an amount of about 325 ppm to about 375 ppm, more specifically about 350 ppm. In one embodiment, the amount of RebA provides about 6 to about 7 sucrose equivalents (SE). According to this embodiment, a ppm ratio of brazzein to RebA of about 1:30 has at least one improved sensory attribute compared to a ppm ratio of brazzein to RebA of about 1:70 or about 1:17.
[0249] In one embodiment, a beverage is provided comprising brazzein and RebA, wherein the amount of brazzein is from about 25 ppm to about 35 ppm, more specifically about 30 ppm, and the amount of RebA is from about 220 ppm to about 240 ppm, more specifically about 230 ppm. According to this embodiment, a ppm ratio of brazzein to RebA of greater than about 1:10 has at least one improved sensory attribute over a ppm ratio of brazzein to RebA of less than about 1:10 ppm. In certain embodiments, a ppm ratio of brazzein to RebA of about 1:12, about 1:14, about 1:16, or about 1:18 has at least one improved sensory attribute over a ppm ratio of brazzein of about 1:8, about 1:6, about 1:4, about 1:2, or about 1:1 ppm.
[0250] In one embodiment, a beverage is provided comprising brazzein and RebA, wherein the amount of brazzein is from about 50 ppm to about 70 ppm, more specifically about 60 ppm, and the amount of RebA is from about 100 ppm to about 130 ppm, more specifically about 120 ppm. According to this embodiment, the ppm ratio of brazzein to RebA is about 1:2.
[0251] In one embodiment, the beverage comprises about 300 ppm to about 350 ppm of RebA and about 10 ppm to about 50 ppm of brazzein. In a preferred embodiment, the beverage comprising RebA and brazzein has better tasting and / or positive synergistic effects compared to a beverage sweetened with RebA (wherein the beverage comprising RebA and brazzein and the beverage sweetened with RebA have the same sucrose equivalent).
[0252] In one embodiment, the beverage comprises about 30 ppm to about 50 ppm brazzein, about 300 ppm to about 450 ppm siamenoside I, and optionally about 50 ppm to about 100 ppm RebM80. In a preferred embodiment, the beverage tastes similar to or better than a control sweetened with siamenoside I or a control sweetened with RebM80 (wherein the beverage of the present invention and the control beverage sweetened with siamenoside I and / or RebM80 have the same sucrose equivalent). In a particular embodiment, the beverage comprises about 40 ppm to about 50 ppm brazzein, about 350 ppm to about 450 ppm siamenoside I, and no RebM80. In a more specific embodiment, the beverage comprises about 40 ppm to about 45 ppm brazzein, about 350 ppm to about 450 ppm siamenoside I, and no RebM80. In an even more specific embodiment, the beverage comprises about 45 ppm brazzein, about 410 ppm siamenoside I, and no RebM80. In another embodiment, the beverage comprises about 25 to about 30 ppm brazzein, about 300 ppm to about 400 ppm siamenoside I, and about 50 ppm to about 100 ppm RebM80. In a more specific embodiment, the beverage comprises about 30 ppm brazzein, about 350 ppm siamenoside I, and about 70 ppm RebM80.
[0253] In one embodiment, the beverage comprises about 30 to about 50 ppm brazzein and about 7 Brix to about 10 Brix high fructose corn syrup (HFCS). In a preferred embodiment, the beverage of the present invention tastes similar to or better than a HFCS-sweetened control (10 Brix). In a more specific embodiment, the beverage comprises about 35 ppm to about 45 ppm brazzein and about 7 Brix to about 9 Brix HFCS. In an even more specific embodiment, the beverage comprises about 40 ppm brazzein and about 8 Brix HFCS.
[0254] In one embodiment, the low calorie beverage comprises about 5 ppm to about 20 ppm brazzein and about 100 ppm to about 200 ppm RebM. In a preferred embodiment, the beverage of the present invention has a taste profile similar to a sucrose sweetened control (10 Brix). In a particular embodiment, the low calorie non-sparkling (non-carbonated) beverage comprises about 10 ppm to about 15 ppm brazzein and about 100 ppm to about 150 ppm RebM. In a more particular embodiment, the low calorie non-sparkling beverage comprises about 10 ppm to about 15 ppm brazzein and about 115 ppm RebM. In another particular embodiment, the low calorie carbonated beverage comprises about 20 ppm brazzein and about 100 to about 150 ppm RebM.
[0255] In one embodiment, the beverage comprises about 5 ppm to about 20 ppm brazzein and about 300 ppm to about 500 ppm A95. In a particular embodiment, the beverage comprises about 15 ppm to about 20 ppm brazzein and about 300 ppm to about 500 ppm A95. In a further embodiment, the beverage comprises about 15 ppm or about 20 ppm brazzein and about 400 ppm A95.
[0256] In one embodiment, the beverage's temporal profile, flavor profile, and / or taste profile is improved compared to a beverage that does not contain brazzein or that contains brazzein in an amount less than about 20 ppm, and even more specifically less than about 15 ppm. In particular embodiments, the beverage's temporal profile, flavor profile, and / or taste profile is more sugar-like. In one embodiment, the beverage has reduced sweetness lingering, reduced bitterness, reduced bitter aftertaste, reduced astringency, improved texture (e.g., greater fullness or body), and the like.
[0257] These beverages may further comprise additives including, but not limited to, carbohydrates, polyols, amino acids and their corresponding salts, polyamino acids and their corresponding salts, sugar acids and their corresponding salts, nucleotides, organic acids, inorganic acids, organic salts including organic acid salts and organic base salts, inorganic salts, bitter compounds, flavoring and flavoring ingredients, astringent compounds, proteins or protein hydrolysates, surfactants, emulsifiers, flavonoids, alcohols, polymers, and combinations thereof. Any suitable additive described herein may be used.
[0258] The beverage may further contain one or more functional ingredients as detailed above. Functional ingredients include, but are not limited to, vitamins, minerals, antioxidants, preservatives, glucosamine, polyphenols, and combinations thereof. Any suitable functional ingredient as described herein may be used.
[0259] It is contemplated that the pH of the sweetened composition, e.g., beverage, does not materially or adversely affect the taste of the sweetener. A non-limiting example of the pH range of the sweetenable composition can be from about 1.8 to about 8. Further examples include a pH range from about 2 to about 5. In a particular embodiment, the pH of the beverage is from about 3 to about 3.25.
[0260] The temperature of the beverage containing brazzein (or an analogue thereof) may range, for example, from about 4°C to about 100°C, such as from about 4°C to about 25°C.
[0261] The beverage may be a high-calorie beverage having approximately 120 calories per 8 ounce serving.
[0262] The beverage may be a medium calorie beverage having approximately 80 calories per 8 ounce serving.
[0263] The beverage may be a low-calorie beverage having about 40 calories per 8 ounce serving.
[0264] The beverage may be a zero-calorie beverage having less than 5 calories per 8 ounce serving.
[0265] In one embodiment, the beverage or beverage product has a low glycemic index. The glycemic index is a value assigned to a food based on how slowly or quickly the food causes an increase in blood glucose levels. Low glycemic index diet foods (including but not limited to beverages) aim to achieve a more beneficial effect on glycemic control in people with diabetes mellitus and can also provide metabolic benefits to the general population.
[0266] In certain embodiments, the beverage or beverage product has a glycemic index that is at least 10% lower than the glycemic index of a substantially similar product made using conventional sweeteners (e.g., sucrose-based sweeteners). Methods for testing the glycemic index of beverages are described, for example, as provided in Wolever, et al. Nutrition Research 23:621-629, 2003. In certain embodiments, the beverage or beverage product has a glycemic index (GI) of about 55 or less. In certain embodiments, the beverage or beverage product is a nutritional beverage having a low glycemic index.
[0267] In one embodiment, a beverage is disclosed comprising about 1 to about 30 ppm and less than about 500 ppm of one or more steviol glycosides, wherein the liquid substrate of the beverage is selected from the group consisting of water, phosphoric acid, phosphate buffer, citric acid, citrate buffer, carbon-treated water, and combinations thereof. The pH of the beverage may be about 3 to about 3.5. The beverage may further comprise additives, such as erythritol. The beverage may further comprise functional ingredients, such as vitamins.
[0268] Methods for Enhancing Temporal or Flavor Profiles Disclosed is a method for imparting a more sugar-like temporal, flavor, and / or taste profile to a consumable product (e.g., a beverage), comprising adding brazzein (or an analog thereof) or a brazzein-containing sweetener or flavor improving composition disclosed herein to the consumable product. The consumable product may be referred to as a sweetenable composition or a flavor improving composition.
[0269] Without being bound to any particular theory, it is believed that brazzein is able to bind to mucins in the oral cavity. Mucins are the main organic component of mucus, the slimy viscoelastic material that covers all mucosal surfaces. Structurally, mucins are high molecular weight epithelial glycoproteins with a high content of clustered oligosaccharides O-glycosidically linked to tandem repeat peptides rich in threonine, serine, and proline.
[0270] In the mouth, mucins coat hard and soft tissues. Several salivary mucins are known, including MUC5B, MUC7 (previously known as MG2), MUC19, MUC1, and MUC4. These can be classified into high (>1000 kDa) and low (200-300 kDa) molecular weight forms based on macromolecular characteristics. Salivary mucins are synthesized by mucous acinar cells in the paired submandibular (SMG) and sublingual (SLG) glands, as well as in a few salivary glands distributed throughout the palate and buccal mucosa.
[0271] The method may further include the addition of other sweeteners, additives, functional ingredients, and combinations thereof. Any sweetener, additive, or functional ingredient detailed herein may be used.
[0272] In one embodiment, a method of imparting a more sugar-like temporal or flavor profile to a consumable product (e.g., a beverage) comprises adding brazzein (or an analogue thereof) or a brazzein-containing sweetener or flavor improving composition to the consumable product, thereby imparting a more sugar-like temporal or flavor profile.
[0273] As used herein, "sugar-like" properties include any properties similar to those of sucrose, including, but not limited to, maximum response, flavor profile, temporal profile, taste profile, adaptation behavior, texture, concentration / response function, tastant / and flavor / sweetness interactions, distribution pattern selectivity, and temperature effect.
[0274] These attributes are the degree to which the taste of sucrose differs from that of brazzein (or its analogues). Of these, however, the flavor profile and the temporal profile are of particular importance. A single tasting of a sweet food or beverage can record the differences observed for sucrose and for brazzein (or its analogues) in (1) the attributes that constitute the flavor profile of the sweetener, and (2) the rate of sweetness onset and offset that constitute the temporal profile of the sweetener.
[0275] In one embodiment, the methods disclosed herein improve one or more sensory attributes of a consumable product compared to a consumable product that does not contain a sweetener composition or flavor improving composition disclosed herein. In certain embodiments, the improvement is measured by sensory testing. The sensory testing can be a taste test, a blind test, or a combination thereof. The sensory testing can use one or more of a variety of protocols. For example, the sensory testing can be the "triangle method" (following ISO requirements), or a combination thereof. The taste testing can be an average of multiple tests.
[0276] The taste test can be a screening test, an expert taste test, or a market research test. A screening test can be performed by at least 1, 2, 3, 4, 5, 6, 7, 8, or 9 tasters. An expert taste test can be performed by at least 10, 15, 20, 25, or 30 tasters. A market research test can be performed by at least 31, 40, 50, 60, 70, 80, 90, 100, 150, 200, 300, 400, or 500 tasters. In some cases, the tasters can be people with average taste perception, expert tasters, people who pass the taste test by correctly identifying foods or food components, or people who can identify the relative amounts of tastes or flavors (e.g., accurately juxtaposing different amounts of sugar (in water)).
[0277] In one embodiment, whether a composition has a more sugar-like taste is determined by an expert sensory panel tasting compositions comprising sugar and compositions comprising brazzein (or an analogue thereof) optionally in combination with at least one steviol (e.g., RebM, RebA) or HFCS (both with and without additives) and providing their impression of the similarity of the sweetener composition's properties (both with and without additives) to those comprising sugar. A suitable procedure for determining whether a composition has a more sugar-like taste is described in the embodiments described herein below.
[0278] In certain embodiments, a panel of evaluators is used to measure the sweetness perception reduction. Briefly, a panel of evaluators (usually 8 to 12 individuals) is trained to evaluate sweetness perception, measuring sweetness at several time points, from the time when the sample is first placed in the mouth to 3 minutes after it is exhaled. Using statistical analysis, the results are compared between the sample containing additives and the sample without additives. The reduction in score for the time point measured after the sample is removed from the mouth indicates that there is a reduction in sweetness perception.
[0279] The panel of raters can be trained using procedures well known to those of skill in the art. In certain embodiments, the panel of raters is trained using the Spectrum™ Descriptive Analysis Method (Melgaard et al, Sensory Evaluation Techniques, 3 rd Participants may be trained using the Taste Test (Taste Test, Vol. 11, No. 110, 2003). Desirably, the focus of the training should be on basic tastes; in particular, the perception and measurement of sweetness. To ensure accuracy and reproducibility of the results, each assessor should repeat the measurement of sweetness persistence decline about 3 to about 5 times per sample, taking at least a 5-minute break between each repeat and / or sample and thoroughly rinsing their mouth with water.
[0280] In general, the method for measuring sweetness includes placing a 10 mL sample in the mouth, holding the sample in the mouth for 5 seconds and gently mixing the sample in the mouth, rating the perceived sweetness at 5 seconds, spitting out the sample (do not swallow after spitting out the sample), rinsing with a mouthful of water (e.g., swishing the water around the mouth as if using a mouthwash) and spitting out the rinse, rating the perceived sweetness immediately after spitting out the rinse, waiting 45 seconds, and during that 45-second wait, identifying the time of maximum perceived sweetness and rating the sweetness at that time (moving the mouth and swallowing normally at any time), rating the sweetness after another 10 seconds, rating the sweetness after another 60 seconds (cumulatively 120 seconds after rinsing), and rating the sweetness after another 60 seconds (cumulatively 180 seconds after rinsing). Between samples, take a 5-minute break and thoroughly rinse your mouth with water.
[0281] In some embodiments, the temporal profile, flavor profile, and / or taste profile are evaluated in vitro, for example in a suitable quantitative manner, such as in vitro systems based on cell models overexpressing sweet and / or bitter taste receptors. In certain embodiments, the in vitro systems comprise the TAS1R2 / TAS1R3 receptors.
[0282] In one embodiment, the sweetener compositions, or flavor and / or taste improving compositions disclosed herein are capable of modifying one or more properties of a consumable product, including but not limited to texture, bitterness, bitter aftertaste, or sweetness duration.
[0283] Texture refers to the surface material aspects of a food or beverage that are responsible for the characteristic tactile sensations perceived inside the mouth, including the tongue, gums, and teeth. These can include, but are not limited to, astringency, viscosity, slipperiness, and mouth-coating. Texture is a fundamental sensory attribute that, together with taste and odor, determines the overall flavor of a consumer good.
[0284] In one embodiment, the brazzein (or analogues thereof) or brazzein-containing sweetener composition and / or flavor improving composition disclosed herein imparts an improved mouthfeel to a consumable product (e.g., a beverage) to which it is added, as compared to a conventional sweetener composition or flavor and / or taste improving composition. In one embodiment, "improved mouthfeel" can be determined by a taste panel consuming the beverage as compared to the same beverage without the taste improving composition or its active components. In certain embodiments, the mouthfeel is improved by about 5%, about 10%, about 15%, about 20%, or about 25% or more. In certain embodiments, the improved mouthfeel is characterized as improved fullness, body, or richness. In certain embodiments, the improved mouthfeel is characterized as a more molasses-like mouthfeel.
[0285] In another embodiment, the sweetener composition or flavor improving composition disclosed herein enhances (reduces) the bitterness of a consumable product (e.g., a beverage) to which it is added, as compared to a conventional sweetener composition or flavor and / or taste improving composition. This "enhanced bitterness" or "reduced bitterness" can be determined by a taste panel consuming the beverage as compared to the same beverage without the taste improving composition or its active components. In certain embodiments, the bitterness is reduced by about 5%, about 10%, about 15%, about 20%, or about 25% or more.
[0286] In another embodiment, the sweetener composition or flavor improving composition disclosed herein reduces the bitter aftertaste in a consumable product (e.g., a beverage) to which it is added, as compared to conventional sweetener compositions or flavor and / or taste improving compositions. This "reduced bitter aftertaste" can be determined by a taste panel consuming the beverage as compared to the same beverage without the taste improving composition or its active components. In certain embodiments, the bitter aftertaste is reduced by about 5%, about 10%, about 15%, about 20%, or about 25% or more.
[0287] In certain embodiments, the sweetener compositions or flavor improving compositions disclosed herein reduce the bitterness of a consumable product (e.g., a beverage) to which it is added, where the reduction is measured by a Metachronic VAS Score Profile for bitterness, and more specifically, the reduction is at least about 0.5 points, about 1 point, about 1.5 points, about 2.0 points, about 2.5 points, about 3.0 points, about 3.5 points, or about 4.0 points or more. In certain embodiments, the reduction is from about 0.5 to about 4.0 points, from about 1.0 to about 3.5 points, or from about 1.5 to about 3.0 points.
[0288] In further embodiments, the sweetener compositions and / or flavor improving compositions disclosed herein have an improved (reduced) sweetness lasting. In one embodiment, this "improved sweetness lasting" can be assessed by a taste panel consuming the beverage compared to the same beverage without the taste improving composition or its active components. In certain embodiments, the sweetness lasting is reduced by about 5%, about 10%, about 15%, about 20%, or about 25% or more.
[0289] In further embodiments, the flavor improving compositions disclosed herein provide a reduced sour taste. In one embodiment, this "reduced sour taste" can be assessed by a taste panel consuming the beverage compared to the same beverage without the taste improving composition or its active components. In certain embodiments, the sour taste is reduced by about 5%, about 10%, about 15%, about 20%, or about 25% or more. EXAMPLES
[0290] Working Example Example 1: Brazzein + RebM (sweetener composition) Brazzein and RebM80 were added to a citric acid solution and to lemon / lime diet soda, respectively, and the results are shown below in Tables I and II, respectively.
[0291] [Table 1]
[0292] [Table 2]
[0293] Example 2: RebA compared with RebA + brazzein (sweetener composition) RebA was compared to RebA + brazzein (in citric acid solution) as described, and the results are shown in Tables III and IV below.
[0294] [Table 3]
[0295] [Table 4]
[0296] These results suggest that the RebA + brazzein blend has a synergistic effect compared to RebA alone.
[0297] Example 3: Siamenoside I + Brazzein (Sweetener Composition) Brazzein, siamenoside I, and / or RebM80 were added to the citric acid simulant beverages and the results are shown in Table V below.
[0298] [Table 5]
[0299] These results suggest that siamenoside I blends with brazzein and / or RebM have a synergistic effect compared to RebM80 alone (sweetness quality).
[0300] Example 4: Brazzein + HFCS (Sweetener Composition) Brazzein and high fructose corn syrup (HFCS) were added to the citric acid simulant beverages, and the results are shown in Table V below:
[0301] [Table 6]
[0302] HFCS blends with brazzein provided similar taste (sweetness quality) as HFCS alone.
[0303] Example 5: Brazzein + RebM (flavor improving composition) RebM and brazzein were added to various beverages as described below. A sample of whole sugar was served as a control (10 Brix).
[0304] [Table 7]
[0305] [Table 8]
[0306] Example 6: Brazzein + RebM (flavor improving composition)
[0307] [Table 9]
[0308] Brazzein (1-15 ppm), with a RebM80 of 472 ppm, improves taste characteristics such as sourness and less sweetness, masks bitterness, and prolongs texture, richness, and full body.
[0309] Example 7: Brazzein + RebA95 (Taste-improving composition) "A95" refers to a steviol glycoside blend containing primarily RebD and RebM. Methods for obtaining A95 are provided in WO 2017 / 059414, which is incorporated herein by reference. An exemplary A95 blend is provided below:
[0310] [Table 10]
[0311] [Table 11]
[0312] Brazzein (5ppm~20ppm) with 400ppm A95 can improve texture and block bitterness and lingering.
Claims
1. A sweetener composition comprising: (i) brazzein or an analog thereof; and (ii) at least one additional sweetener selected from a mogroside sweetener and high fructose corn syrup.
2. The sweetener composition of claim 1, wherein the at least one additional sweetener comprises a mogroside sweetener.
3. The sweetener composition of claim 1, wherein the at least one additional sweetener comprises high fructose corn syrup.
4. 3. The sweetener composition of claim 2, wherein the mogroside sweetener is selected from siamenoside I and mogroside V.
5. A beverage or beverage product comprising the sweetener composition of claim 1, The beverage comprises a liquid substrate and the sweetener composition of claim 1 . The beverage product is a beverage concentrate, a beverage syrup, or a powdered beverage from which a neat beverage is prepared by adding water; Beverages or beverage products.
6. A beverage or beverage product according to claim 5, wherein the brazzein is present in an amount from 1 ppm to 50 ppm.
7. A beverage or beverage product according to claim 5, wherein the brazzein is present in an amount from 1 ppm to 40 ppm.
8. A beverage or beverage product according to claim 5, wherein the brazzein is present in an amount of from 1 ppm to 30 ppm.
9. 7. The beverage or beverage product of claim 6, wherein the beverage or beverage product has at least one improved sensory attribute compared to a beverage or beverage product not containing the sweetener composition, the sensory attribute being selected from the group consisting of temporal profile, flavor profile, taste, bitter aftertaste, sweetness linger, texture, and combinations thereof.
10. 10. The beverage or beverage product of claim 9, wherein the at least one improved sensory attribute is a reduced bitter aftertaste or improved texture.
11. 10. A beverage or beverage product according to claim 9, wherein the at least one improved sensory attribute is improved texture and the amount of brazzein is between 1 ppm and 40 ppm.
12. 7. The beverage or beverage product of claim 6, selected from low-calorie or no-calorie beverages or beverage products.
13. 7. The beverage or beverage product of claim 6, wherein the beverage is selected from the group consisting of cola, ginger ale, carbonated beverages, root beer, fruit juice, fruit-flavored juice, vegetable juice, vegetable-flavored juice, sports drinks, energy drinks, plant protein drinks, near-water drinks, teas, coffee, cocoa drinks, and beverages containing dairy ingredients.
14. 13. A method for enhancing at least one sensory characteristic of a beverage or beverage product, comprising adding the sweetener composition of claim 1 to a liquid substrate, thereby providing a beverage or beverage product having at least one improved sensory characteristic.
15. 15. The method of claim 14, wherein the enhanced sensory attributes are selected from the group consisting of temporal profile, flavor profile, taste, bitter aftertaste, sweetness linger, texture, and combinations thereof.
16. 16. The method of claim 15, wherein the improved sensory characteristic is reduced bitter aftertaste or improved texture.
17. 16. The method of claim 15, wherein the improved sensory property is improved texture and the amount of brazzein in the beverage or beverage product is in an amount from 1 ppm to 40 ppm.
18. 15. The method of claim 14, wherein brazzein is present in the beverage or beverage product in an amount from 1 ppm to 50 ppm.
19. 15. The method of claim 14, wherein the brazzein is present in the beverage or beverage product in an amount from 1 ppm to 40 ppm.
20. The sweetener composition of claim 1, wherein the brazzein analog differs from wild-type brazzein by at least one amino acid.
21. The sweetener composition of claim 20, wherein the brazzein analog has at least one of Asp40Lys, Glu41Ala, Lys42Ala, Asp50Lys, Tyr54Trp, Asp29Ala, Asp29Asn / Glu41Lys, and Asp29Lys / Glu41Lys.
22. The sweetener composition of claim 1, wherein the brazzein has the amino acid sequence of SEQ ID NO:
1.
23. The sweetener composition of claim 1, wherein the brazzein is pGlu-brazzein or des-pGlu1-brazzein.
24. The beverage or beverage product of claim 5, further comprising at least one organic acid additive which is a sodium, calcium, potassium, or magnesium salt of an organic acid.
25. The beverage or beverage product of claim 24, wherein the organic acid is selected from the group consisting of citric acid, malic acid, tartaric acid, fumaric acid, lactic acid, alginic acid, ascorbic acid, benzoic acid, and adipic acid.
26. The method of claim 14, wherein the at least one additional sweetener comprises a mogroside sweetener.
27. The method of claim 14, wherein the at least one additional sweetener comprises high fructose corn syrup.
28. The method of claim 14, wherein the mogroside sweetener is selected from siamenoside I and mogroside V.
29. The method of claim 14, wherein the brazzein analog differs from wild-type brazzein by at least one amino acid.
30. The brazzein analogue comprises Asp40Lys, Glu41Ala, Lys42A 30. The method of claim 29, having at least one of the following: la, Asp50Lys, Tyr54Trp, Asp29Ala, Asp29Asn / Glu41Lys, and Asp29Lys / Glu41Lys.
31. The method of claim 14, wherein the brazzein has the amino acid sequence of SEQ ID NO:
1.
32. The method of claim 14, wherein the brazzein is pGlu-brazzein or des-pGlu1-brazzein.