Preserved black tea beverage product

A preservative composition of volatile aroma compounds is used in black tea products to address the need for "clean label" preservatives, providing antifungal activity and extending shelf life while reducing synthetic preservatives and maintaining flavor.

JP7684218B2Active Publication Date: 2025-05-27UNILEVER IP HLDG BV
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Patent Information

Application Number
JP2021547503
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2019-02-14
Filing Date
2020-01-22
Publication Date
2025-05-27
Estimated Expiration
2040-01-22

AI Technical Summary

Technical Problem

There is a need for "clean label" preservatives that provide antifungal activity similar to sorbates, particularly in beverage products, while reducing the use of synthetic preservatives and maintaining the sensory properties of black tea products.

Method used

A preservative composition comprising at least three volatile aroma compounds, such as hexanal, E-2-hexenal, E-2-hexenol, E-linalool oxide, methanol, and methyl salicylate, is added to black tea products to inhibit microbial spoilage without affecting the flavor or organoleptic properties.

Benefits of technology

The preservative composition effectively inhibits the growth of fungi and extends the shelf life of black tea products, while allowing for reduced levels of synthetic preservatives, thus meeting consumer demands for "clean label" products.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to a black tea product that is a ready-to-drink beverage or beverage concentrate comprising a preservative composition, the preservative composition comprising at least three compounds selected from hexanal, E-2-hexenal, E-2-hexenol, E-linalool oxide, methanol, and methyl salicylate.
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Description

[Technical field]

[0001] The present invention relates to black tea products comprising a preservative composition, and in particular to such products being either ready-to-drink beverages or beverage concentrates. [Background technology]

[0002] Spoilage caused by various microorganisms is one of the causes of food waste. Spoilage is the process by which food deteriorates, reducing its suitability for consumption and ultimately rendering it inedible to humans.

[0003] Molds and / or yeasts growing on or within a food matrix can cause food spoilage. Bacteria can also cause food spoilage. During the process of bacterial breakdown of food, acids and metabolic products are usually produced, and even if the bacteria themselves are not harmful, the waste products can be unpleasant to taste or even harmful to health.

[0004] Consumers increasingly want their convenience foods to remain fresh and have a long shelf life. The addition of preservatives to food products (e.g. beverages, spreads, dressings, convenience foods, etc.) is a common practice in the food industry. The market for preservatives is expanding in response to consumer demand.

[0005] Many countries have regulations that prohibit the use of certain food additives, including some preservatives, in foods and beverages. Although such regulations can vary widely, there is a clear trend toward fewer and lower levels of chemical preservatives, especially synthetic chemical preservatives, in foods.

[0006] Preservatives frequently used in beverage products include sorbates and benzoates. Unfortunately, the use of such preservatives often can impair the flavor of certain beverages. Furthermore, some consumers consider these preservatives to be a type of chemical additive that should be avoided. In fact, there is an increasing consumer trend toward so-called "clean label" food products.

[0007] However, replacing existing preservatives with "clean label" alternatives is difficult. In particular, replacing sorbates is a challenge, as many of the "natural" alternatives do not have sufficient antifungal activity. [Prior art documents] [Non-patent literature]

[0008] [Non-Patent Document 1] "Tea: Cultivation to consumption" (edited by KC Wilson and MN Clifford, published in 1992) Summary of the Invention [Problem to be solved by the invention]

[0009] Thus, there is a need for "clean label" preservatives that would provide the beneficial qualities of sorbates, particularly in terms of antifungal activity. Similarly, beverage formulations that contain lower levels of synthetic preservatives would be desirable. [Means for solving the problem]

[0010] The inventors have discovered that certain volatile aroma compounds are effective in inhibiting the growth of food spoilage microorganisms, particularly fungi such as molds and yeasts, which are known to be common spoilage microorganisms in some beverage products.

[0011] In a first aspect, the present invention relates to a black tea product, being a ready-to-drink beverage or beverage concentrate, comprising a preservative composition, the preservative composition comprising at least three compounds, preferably at least four compounds, more preferably at least five compounds selected from hexanal, E-2-hexenal, E-2-hexenol, E-linalool oxide, methanol and methyl salicylate. Preferably, the preservative composition comprises E-2-hexenal and at least two compounds, more preferably at least three compounds, even more preferably at least four compounds selected from hexanal, E-2-hexenol, E-linalool oxide, methanol and methyl salicylate.

[0012] In a second aspect, the present invention provides a method for preparing a preserved black tea product comprising the step of adding a preservative composition to a black tea product, the black tea product being a ready-to-drink beverage or a beverage concentrate, the preservative composition comprising at least three compounds, preferably at least four compounds, more preferably at least five compounds selected from hexanal, E-2-hexenal, E-2-hexenol, E-linalool oxide, methanol and methyl salicylate. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0013] In a first aspect, the present invention relates to a black tea product, which is a ready-to-drink beverage or beverage concentrate, comprising a preservative composition.

[0014] As used herein, the term "black tea" refers to fully fermented tea, and "fermentation" refers to the oxidation and hydrolysis process that tea undergoes when certain endogenous enzymes and substrates are combined. During the so-called fermentation process, the colorless catechins in the leaves and / or stems are converted into a complex mixture of yellow / orange to dark brown polyphenolic substances. For example, black leaf tea can be produced from fresh tea raw materials by the processes of withering, maceration, fermentation and drying. A more detailed description of black tea production can be found in Chapter 14 of "Tea: Cultivation to consumption" (edited by KC Wilson and MN Clifford, published in 1992).

[0015] The black tea product will contain tea solids. As used herein, the term "tea solids" refers to the dry material obtained from the leaves of the plant Camellia sinensis var. sinensis and / or Camellia sinensis var. assamica. The tea solids may be provided by any suitable source, such as tea extract (preferably in powder form), compressed tea juice, etc. The skilled artisan will know how to obtain such raw materials. Since the tea product is a black tea product, the tea solids will be black tea solids (i.e., the tea solids will be the dry material obtained from fully fermented tea).

[0016] Tea is known to have certain antimicrobial properties in itself, however these properties (i.e. inhibition of yeast and mould growth) are only evident at concentrations of tea solids above 3%. At lower concentrations, typical for tea-based beverages (including tea concentrates), tea acts as a nutrient increasing the likelihood of microbial spoilage. The beverage preferably comprises from 0.01% to 3%, more preferably from 0.05% to 3%, most preferably from 0.1% to 2% tea solids by weight of the beverage.

[0017] As used herein, the term "beverage" refers to a substantially aqueous composition. The beverage may be in any form, e.g., ready-to-drink form or concentrated form. A "ready-to-drink beverage" refers to a drinkable composition suitable for human consumption and preferably contains at least 85% by weight, more preferably at least 90% by weight, and most preferably at least 95% by weight of water. A "beverage concentrate" refers to a beverage composition that typically requires dilution with an aqueous liquid (e.g., water, carbonated water, milk, etc.) before consumption, and thus this form typically has a higher solids content (and therefore a lower water content) than a ready-to-drink form. For example, before dilution, a beverage concentrate preferably contains 25 to 85% by weight, more preferably 40% to 80% by weight, and most preferably 50% to 75% by weight of water.

[0018] The black tea product comprises a preservative composition, the preservative composition comprising at least three compounds, preferably at least four compounds, more preferably at least five compounds selected from hexanal, E-2-hexenal, E-2-hexenol, E-linalool oxide, methanol and methyl salicylate. It is also possible for the preservative composition to comprise all six of hexanal, E-2-hexenal, E-2-hexenol, E-linalool oxide, methanol and methyl salicylate.

[0019] Without wishing to be bound by theory, the inventors believe that tea products that contain very low concentrations of preservative composition may be prone to microbial spoilage at an earlier time point.Therefore, in order to provide a product with extended shelf life, the total concentration of hexanal and E-2-hexenal and E-2-hexenol and E-linalool oxide and methanol and methyl salicylate in black tea products is preferably at least 10 ppm, more preferably at least 35 ppm, even more preferably at least 60 ppm, and most preferably at least 75 ppm.

[0020] A good preservative composition inhibits spoilage microorganisms without interfering with the sensory properties of black tea products. Without wishing to be bound by theory, the inventors believe that high concentrations of one or more volatile compounds in the preservative composition may impact the organoleptic properties of tea products (e.g., by introducing undesirable flavor notes). Thus, the total concentration of hexanal and E-2-hexenal and E-2-hexenol and E-linalool oxide and methanol and methyl salicylate in black tea products is preferably 5000 ppm or less, more preferably 3000 ppm or less, and most preferably 1500 ppm or less.

[0021] The inventors have found that high levels of linalool tend to limit the effectiveness of preservative compositions.Therefore, black tea products contain less than 60 ppm linalool, more preferably less than 30 ppm linalool, and even more preferably less than 15 ppm linalool.It is particularly preferred that preserved black tea beverage is substantially free of linalool.

[0022] Black tea products of the invention preferably have an acidic pH (i.e. a pH of less than 7). For example the products may have a pH (20°C) of from 2 to 6. In particular the pH (20°C) is preferably below 5, more preferably below 4.5, most preferably between 2 and 4.

[0023] To achieve an acidic pH, the preserved black tea beverage preferably comprises one or more acidulants. Suitable acidulants include organic acids such as citric acid, malic acid, lactic acid, tartaric acid, ascorbic acid, phosphoric acid, and their salts. Mixtures of one or more of these acidulants are also suitable. A particularly good residual flavour may be provided when the acidulant comprises citric acid and / or its salts. Mixtures of citric acid (and / or its salts), malic acid (and / or its salts) and ascorbic acid (and / or its salts) also provide good flavour. Typically, the concentration of the acidulant in the beverage will be from 0.001 to 1% by weight, more preferably from 0.01 to 0.5% by weight.

[0024] Some of the more commonly used preservatives when formulating beverages to be protected from spoilage are sorbates. As used herein, the term "sorbate" includes sorbic acid (E200) and its salts, including sodium sorbate (E201), potassium sorbate (E202) and calcium sorbate (E203). Sorbates are particularly effective antifungal agents, and finding a "natural" substitute has been a challenge. We have found that the preservative compositions of the present invention can be used to completely or partially replace sorbates in beverage products. For example, such preservative compositions may allow for reduced levels of sorbate to be used in ready-to-drink beverages or beverage concentrates (while still achieving the same anti-spoilage effect as conventional amounts of sorbate). A typical amount of potassium sorbate in a beverage product is 250 ppm to 1000 ppm. Thus, black tea products according to the invention preferably contain less than 200 ppm sorbate, more preferably less than 100 ppm sorbate, even more preferably less than 50 ppm sorbate and most preferably less than 10 ppm sorbate.

[0025] Benzoates represent another type of commonly used preservative, particularly in acidic foods such as soft drinks. We have found that the preservative composition of the present invention can be used to completely or partially replace benzoates in beverage products. For example, the preservative composition may allow for reduced levels of benzoate to be used in ready-to-drink beverages or beverage concentrates (while still achieving the same anti-spoilage effect as conventional amounts of sorbate). As used herein, the term "benzoate" includes benzoic acid (E210) as well as salts thereof, including sodium benzoate (E211), potassium benzoate (E212) and calcium benzoate (E213). A typical amount of sodium benzoate in a beverage is 150 ppm to 1000 ppm. Thus, black tea products according to the present invention preferably contain less than 500 ppm benzoate, more preferably less than 100 ppm benzoate, even more preferably less than 50 ppm benzoate, and most preferably less than 10 ppm benzoate.

[0026] It is particularly preferred that the black tea product is a flavored beverage, more preferably a fruit flavored beverage, most preferably a fruit flavored black tea beverage.Suitable flavors include natural or synthetic fruit flavors and / or natural or synthetic herbal flavors.Examples of fruit flavors include apple, apricot, blackcurrant, cherry, cranberry, grape, grapefruit, guava, kiwi, lemon, lime, lychee, mandarin, mango, nectarine, orange, peach, pear, pineapple, plum, passion fruit, raspberry and strawberry.Examples of herbal flavors include chamomile, chrysanthemum, elderflower, hawthorn, hibiscus, jasmine, yerba mate, mint (e.g. peppermint, spearmint), osmanthus, rose and verbena (e.g. lemon verbena).

[0027] Consumers prefer sweet tasting beverages, therefore, tea products preferably contain a nutritive sweetener, a non-nutritive sweetener, or a mixture thereof.

[0028] Non-nutritive sweeteners allow beverages to be formulated so that they still have a pleasant sweet taste despite their low energy content. Health-conscious consumers often prefer such beverages. Preferred examples of non-nutritive sweeteners include aspartame, saccharin, acesulfame K, glycyrrhizin, stevia-derived sweeteners (e.g., stevioside, rebaudioside A, rebaudioside C, dulcoside A, etc., with stevioside and / or rebaudioside being preferred examples), sucralose, and mixtures thereof. The most preferred non-nutritive sweeteners are acesulfame K, aspartame, sucralose, rebaudioside A, or mixtures thereof, due to their good flavor balance. The concentration of the non-nutritive sweetener will depend on the relative sweetness of the sweetener and the composition of the beverage. Typically, black tea products will contain non-nutritive sweeteners in an amount of from 0.00001 to 10%, more preferably from 0.001 to 1%, and most preferably from 0.01 to 0.1% by weight of the beverage.

[0029] On the other hand, consumers may prefer the perceived naturalness of nutritive sweeteners. Examples of nutritive sweeteners include glucose, sucrose, fructose and mixtures thereof. An example of a particularly preferred natural nutritive sweetener is honey.

[0030] Black tea products may have a high caloric content (e.g. an energy content of more than 100 kCal, preferably between 150 and 1000 kCal per 100 g of beverage) and such products preferably contain one or more nutritive sweeteners, optionally in combination with one or more non-nutritive sweeteners.

[0031] In a preferred aspect, the tea product is a low calorie beverage (e.g. having an energy content of less than 100 kCal per 100 g of beverage). It is particularly preferred that a serving of the tea beverage has a total energy content of less than 10 kCal, more preferably less than 5 kCal, most preferably less than 1 kCal. The low calorie beverage preferably contains one or more non-nutritive sweeteners.

[0032] Regardless of whether the black tea product is a ready-to-drink beverage or a beverage concentrate, the tea product is preferably packaged. Examples of suitable packaging containers include, but are not limited to, bottles, cans, cartons, pouches and sachets. For beverage concentrates, a particularly preferred packaging form is the bag-in-box (BiB) container. BiB containers typically include a bladder (e.g., a plastic bag or a bag made from layers of metallized film and / or vinyl) secured within a box (typically made from cardboard). Products packaged in this form can be stored stably at room temperature for several months. If the black tea product is a beverage concentrate, the product is preferably packaged in a bag-in-box container.

[0033] The tea product is preferably sanitized, for example by pasteurization or sterilization.

[0034] The black tea product may be produced in any convenient manner, but preferably the method according to the present invention is used.As set out above, a second aspect of the present invention relates to a method for preparing a preserved black tea product, comprising the step of adding a preservative composition to a black tea product, which is a ready-to-drink beverage or beverage concentrate, wherein the preservative composition comprises at least three compounds, preferably at least four compounds, more preferably at least five compounds selected from hexanal, E-2-hexenal, E-2-hexenol, E-linalool oxide, methanol and methyl salicylate.

[0035] The present process is preferably used for preparing a tea product as defined above and therefore the preferred technical features described for the tea product also apply mutatis mutandis to the present process.

[0036] Preferably the process includes the additional step of packaging the tea product and / or the additional step of pasteurising or sterilising the tea product. It is particularly preferred that the process involves a step of sanitisation, which involves heating the tea product at a temperature of between 60 and 100°C for a time of between 1 and 20 minutes.

[0037] As used herein, the term "comprising" encompasses the terms "consisting essentially of" and "consisting of." When the term "comprising" is used, the listed steps or options need not be exhaustive. Except in the examples and comparative experiments, or unless otherwise expressly indicated, all numerical values ​​should be understood to be modified by the word "about." As used herein, the indefinite article "a" or "an" and its corresponding definite article "the" mean at least one, or one or more, unless otherwise expressly indicated.

[0038] Unless otherwise indicated, numerical ranges expressed in the format "from x to y" are understood to include x and y. When specifying any range of values ​​and amounts, any particular upper value or amount may be associated with any particular lower value or amount. All percentages and ratios contained herein are calculated by weight unless otherwise indicated.

[0039] Various features of the invention referred to in individual sections above apply mutatis mutandis to other sections, as appropriate. Thus, features specified in one section may be combined with features specified in other sections, as appropriate. Any section headings are added for convenience only and are not intended to limit the disclosure in any way.

[0040] The following examples are intended to illustrate the invention and are not intended to limit the invention to those examples per se. EXAMPLES

[0041] Combinations of fragrance molecules were tested for growth inhibition of several common fungal spoilage microorganisms.

[0042] Cold-filled non-preserved peach flavoured tea concentrate was used as the medium, containing black tea extract powder (8.4 g / L), flavour (5.04 g / L), sucrose (444 g / L), citric acid (11.7 g / L), ascorbic acid (1.2 g / L) and water (balance).

[0043] The media was spiked with either an inoculum consisting of a cell suspension of two yeasts (Candida parapsilosis and Zygosaccharomyces bailii) or two molds (Paecilomyces variotti and Neosartorya fischeri). In both cases, the media was spiked at a level of approximately 1000 cfu / ml. For each time point, all samples and controls were prepared in triplicate.

[0044] Samples were incubated at 25°C and incubation times ranged from 1 to 12 weeks. At each time point, serial dilutions of each sample and control were plated on OMEA plates. The dilutions were at the MRD and a minimum of 3 dilutions were plated for each sample and control at each time point. Plates were incubated at 25°C for 3 to 5 days and visually inspected for growth of spoilage organisms.

[0045] Example 1 Fragrance composition stock solutions were prepared. Table 1 summarizes the fragrance compounds present in four such fragrance composition stock solutions (samples 1 to 4). The concentrations of compounds (if present) in each fragrance composition stock solution were as follows: methanol (12900 ppm), E-2-hexenal (6280 ppm), linalool (3170 ppm), Z-3-hexenol (1070 ppm), E-linalool oxide (973 ppm), methyl salicylate (833 ppm), hexanal (509 ppm), E-2-hexenol (492 ppm), acetaldehyde (365 ppm), Z-2-penten-1-ol (344 ppm), 1-penten-3-ol (251 ppm), 1-penten-3-one (107 ppm).

[0046] [Table 1]

[0047] For fungal growth inhibition tests, the appropriate stock solution was diluted in medium (i.e., unpreserved peach flavored tea concentrate) so that the medium contained 2% (by volume) of the aroma composition of interest. Appropriate controls were included with each test. These controls were as follows:

[0048] Control 1: Positive control (i.e., medium spiked with inoculum and not containing any aroma composition); Control 2: Negative control (i.e., non-spiked medium containing 2% of the aroma composition), and Control 3: Sterile control (i.e., non-spiked medium without any aroma composition).

[0049] The results of the fungal growth inhibition tests are summarized in Table 2. Data are from 1:10 serial dilutions and are the average of triplicate samples. For controls, the positive control (Control 1) resulted in >300 cfu / ml at all time points, regardless of the inoculum used. Both the negative control (Control 2) and the sterile control (Control 3) resulted in <1 cfu / ml at all time points (data not included in Table 2).

[0050] [Table 2]

[0051] All six samples containing hexanal, E-2-hexenal, E-2-hexenol, E-linalool oxide, methanol and methyl salicylate (i.e., samples 1, 2, 4 and 5) showed at least some antifungal activity against both yeast and mold, whereas sample 3 (linalool only) showed no antifungal activity against yeast or mold.

[0052] It can be seen that the samples containing the six compounds listed and linalool (i.e., samples 1 and 5) are less effective as long-term antifungals, being most effective for periods of less than one month. In contrast, the samples containing the six compounds listed but not linalool (i.e., samples 2 and 4) show long-term antifungal activity, with sample 4 showing antifungal activity against both yeast and mold for at least 12 weeks.

[0053] Example 2 The antifungal properties of the six compounds in sample 5 were further investigated. Table 3 summarizes 15 additional fragrance composition stock solutions (samples A to O) that contain one or two of these compounds. The concentrations of the compounds (if present) in each fragrance composition stock solution were as follows: methanol (12900 ppm), E-2-hexenal (6280 ppm), E-linalool oxide (973 ppm), methyl salicylate (833 ppm), hexanal (509 ppm), E-2-hexenol (492 ppm).

[0054] [Table 3]

[0055] Again, the appropriate stock solution was diluted in medium (i.e., unpreserved peach flavored tea concentrate) such that the medium contained 2% (by volume) of the aroma composition of interest. A yeast inoculum was used in this test. Appropriate controls (positive, negative and sterile controls) were included. The positive control resulted in >300 cfu / ml at all time points, while both the negative and sterile controls resulted in <1 cfu / ml at all time points.

[0056] All samples containing only one compound (i.e., samples A, G, and L) had results >300 cfu / ml even after one week. Among the samples containing two compounds, only samples E, I, J, and K showed any appreciable antifungal activity after one week. None of the samples containing two compounds showed significant antifungal activity after two weeks. It was therefore hypothesized that the presence of at least three compounds is required for antifungal activity.

[0057] Example 3 The antifungal properties of the further combination of compounds in sample 5 were investigated. Table 4 summarizes three further fragrance composition stock solutions (samples 6 to 8) containing three of these compounds. The concentrations of the compounds (if present) in each fragrance composition stock solution were as follows: E-2-hexenal (628000 ppm), E-linalool oxide (973 ppm), methyl salicylate (833 ppm), hexanal (509 ppm).

[0058] [Table 4]

[0059] Again, the appropriate stock solution was diluted in medium (i.e., non-preserved peach flavored tea concentrate) such that the medium contained 2% (by volume) of the aroma composition of interest. The medium was spiked with either a yeast inoculum or a mold inoculum. Appropriate controls (positive, negative and sterile controls) were included. Regardless of the inoculum used, the positive control resulted in >300 cfu / ml at all time points, while both the negative and sterile controls resulted in <10 cfu / ml at all time points.

[0060] Samples 6 to 8 all demonstrated antifungal activity (i.e., <10 cfu / ml) after 6 weeks, confirming the hypothesis that antifungal activity requires the presence of at least three compounds.

Claims

1. 1. A method for preparing a preserved black tea product, comprising the step of adding a preservative composition to a black tea product that is a ready-to-drink beverage or a beverage concentrate, the black tea product containing less than 15 ppm linalool, the preservative composition comprising at least three compounds selected from hexanal, E-2-hexenal, E-2-hexenol, E-linalool oxide, methanol and methyl salicylate, and the preservative composition is free of linalool.

2. 10. The method of claim 1 including the additional step of packaging the preserved black tea product.

3. 3. A method according to claim 1 or 2, comprising the additional step of pasteurising or sterilising the preserved black tea product.

Citation Information

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