Compositions containing amino acids and methods of using such compositions to treat sarcopenia

A combination of specific amino acids and vitamin B6 addresses the lack of effective treatments for sarcopenia, enhancing muscle mass and function by correcting nutrient deficiencies.

JP7789007B2Active Publication Date: 2025-12-19SOCIETE DES PRODUITS NESTLE SA
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Patent Information

Application Number
JP2022552639
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-04-01
Filing Date
2021-04-01
Publication Date
2025-12-19
Estimated Expiration
2041-04-01

AI Technical Summary

Technical Problem

There are no effective pharmacological agents for treating sarcopenia, and existing treatments like anabolic steroids have significant side effects, while exercise-based interventions face poor patient compliance.

Method used

A composition comprising specific ratios and concentrations of amino acids, particularly aromatic amino acids, combined with vitamin B6, is used to improve skeletal muscle mass and function, addressing the synergistic association between low nutrient concentrations and muscle decline.

Benefits of technology

The composition effectively prevents and treats declines in skeletal muscle mass and function, particularly in elderly individuals, offering a therapeutic and preventive effect on sarcopenia.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The composition contains one or more aromatic amino acids and, optionally, vitamin B6. The composition can be an oral nutritional composition, such as a dietary supplement, an oral nutritional supplement, a food product, or a food for special medical purposes (FSMP). The composition can be in the form of a powder, a powder stick, a capsule, or a solution. The composition can be administered orally or intravenously to an individual in need thereof for the prevention and / or treatment of sarcopenia, the prevention and / or treatment of declines in skeletal muscle mass, lean muscle mass, skeletal muscle strength, and / or skeletal muscle function, and / or the improvement of skeletal muscle mass, lean muscle mass, skeletal muscle strength, and / or skeletal muscle function.
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Description

[Technical Field]

[0001]

[0001] The present disclosure generally relates to compositions containing one or more aromatic amino acids, and further to methods of preparing and using such compositions. The compositions may further comprise vitamin B6 in an amount effective to increase functional vitamin B6, where functional vitamin B6 is defined as the ratio of hydroxykynurenine (HK) / xanthurenic acid (XA), i.e., the ratio of the substrate:product pair for kynurenine aminotransferase catalyzed by vitamin B6. [Background technology]

[0002]

[0002] Sarcopenia, or the age-related weakening of skeletal muscle tissue, is one of the most important causes of functional decline and loss of independence in older adults. Sarcopenia is defined as the involuntary loss of skeletal muscle mass and strength with aging. Evidence suggests that the decline in skeletal muscle mass and strength begins as early as the 30s and continues linearly, with up to 50% of that mass lost by the 70s. Given that muscle mass accounts for approximately 40% of body weight, pathological changes to this important, metabolically active tissue can have serious consequences for older adults. The impact of sarcopenia is often severe in older adults, as sarcopenic muscle loss and functional decline can in turn contribute to many adverse health outcomes, including decreased function, disability, frailty, and potentially reduced autonomy. Sarcopenia is also associated with acute and chronic pathologies, increased insulin resistance, fatigue, falls, and mortality. In chronic conditions, sarcopenia is associated with rheumatic diseases, particularly rheumatoid arthritis (RA) in women, among many other diseases.

[0003]

[0003] Sarcopenia is a multifactorial syndrome associated with pathophysiological changes such as impaired neuromuscular transmission, altered excitation-contraction coupling, reduced regenerative capacity associated with stem cell depletion, impaired mitochondrial and energy metabolism in muscle fibers, and marbled fat and fibrosis in skeletal muscles. Therefore, the pathogenesis of this syndrome is complex and not fully understood, but reduced physical activity, hormonal decline in anabolic hormones (e.g., androgens, IGF-1), and malnutrition and / or malnutrition play important roles.

[0004]

[0004] Age-related physiological and morphological changes in skeletal muscle are characterized by an overall decrease in the size and number of skeletal muscle fibers (predominantly type 2 or fast-twitch fibers) and a significant infiltration of fibrous and adipose tissue into skeletal muscle.

[0005]

[0005] While age-related changes in the body clearly contribute to the progression of sarcopenia, it is becoming increasingly clear that other factors, such as lack of exercise due to injury or illness, obesity, and fat infiltration into skeletal muscle, also lead to a decline in muscle quality and an accelerated loss of lean body mass.

[0006]

[0006] Decreased physical activity is thought to increase the likelihood of sarcopenia, and therefore, increased physical activity may be beneficial in combating the condition. Indeed, resistance exercise is associated with increased protein synthesis in skeletal muscle. However, exercise as a treatment is often associated with poor patient compliance.

[0007]

[0007] Currently, there are no pharmacological agents approved for the treatment of sarcopenia. Although numerous growth hormones have been tested in this regard, the effects of these hormones have been minimal. Furthermore, although anabolic steroids can increase muscle mass and strength, they are associated with numerous side effects, including an increased risk of prostate cancer.

[0008]

[0008] The inventors have identified an increasing need for solutions for preventing and / or treating declines in skeletal muscle mass, lean muscle mass, skeletal muscle strength, and / or skeletal muscle function in individuals in need thereof, for example, for the treatment of sarcopenia in elderly individuals, as well as an increasing need for improvement of skeletal muscle mass, lean muscle mass, skeletal muscle strength, and / or skeletal muscle function in individuals in need thereof.

[0009] [Summary of the Invention]

[0009] As described in the experimental examples disclosed hereinafter, the present inventors surprisingly found that muscle loss and / or impaired muscle function were strongly associated with low concentrations of certain nutrients (particularly some amino acids and vitamin B6), and propose that a composition comprising a combination of amino acids, particularly at specific concentrations and / or in specific ratios thereof, can be used to improve skeletal muscle mass, skeletal lean muscle mass, skeletal muscle strength, and / or skeletal muscle function in individuals in need thereof. The present inventors also surprisingly found that the composition is advantageous in preventing and / or treating declines in skeletal muscle mass, skeletal lean muscle mass, skeletal muscle strength, and / or skeletal muscle function due to various reasons, such as aging, obesity, and physical inactivity due to injury or disease, for example, in the treatment of sarcopenia in elderly people. Furthermore, the inventors have surprisingly found that there is a statistically significant synergistic association between low concentrations of various amino acids and functional vitamin B6 and a decline in muscle mass and / or muscle function, and therefore propose that these nutrients have a preventive and / or therapeutic effect on declines in skeletal muscle mass, skeletal lean muscle mass, skeletal muscle grip strength, and / or skeletal muscle function in individuals in need of these nutrients, and / or improve skeletal muscle mass, skeletal lean muscle mass, skeletal muscle grip strength, and / or skeletal muscle function, for example, for the treatment of sarcopenia in elderly individuals.

[0010]

[0010] As described in the experimental examples later in this specification, combinations of vitamin B6 with one or more amino acids (e.g., one or more aromatic amino acids such as tryptophan (Trp), tyrosine (Tyr), phenylalanine (Phe), and / or histidine (His)), particularly at specific concentrations and / or in specific ratios, unexpectedly show a statistically significant synergistic association between low concentrations of various amino acids and vitamin B6 and reduced muscle mass and / or muscle function, thus suggesting an effect of these nutrients on preventing and / or treating reduced skeletal muscle mass, skeletal lean muscle mass, skeletal muscle strength, and / or skeletal muscle function in individuals in need of these nutrients, and / or improving skeletal muscle mass, skeletal lean muscle mass, skeletal muscle strength, and / or skeletal muscle function, particularly for the treatment of sarcopenia in elderly individuals.

[0011]

[0011] In one aspect of the present disclosure, a composition comprises one or more amino acids, preferably one or more aromatic amino acids, preferably in a total amount therapeutically effective for at least one of the physiological benefits disclosed herein. In one embodiment, the composition further comprises vitamin B6 in an amount effective to increase functional vitamin B6, where functional vitamin B6 is defined as the hydroxykynurenine (HK) / xanthurenic acid (XA) ratio, the substrate:product pair ratio of kynurenine aminotransferase catalyzed by vitamin B6. The composition may comprise vitamin B6 in an amount of 1.0-12.0 mg per 300 kcal of energy and / or in a daily dosage of 1.0-25.0 mg per day. In one embodiment, the composition comprises one or more aromatic amino acids in a daily dosage of 0.5-20.0 g per day.

[0012]

[0012] In another aspect of the present disclosure, a composition comprises a combination of vitamin B6 and one or more aromatic amino acids, preferably in a therapeutically effective amount with respect to at least one of the physiological benefits disclosed herein. Preferably, the vitamin B6 is provided in an amount effective to increase functional vitamin B6 (defined as the hydroxykynurenine (HK) / xanthurenic acid (XA) ratio, the substrate:product pair ratio of kynurenine aminotransferase catalyzed by vitamin B6). In one embodiment, the one or more aromatic amino acids are selected from the group consisting of Trp, Phe, Tyr, and His. In one embodiment, the composition further comprises at least one of an EAA and / or BCAA, e.g., lysine (Lys), methionine (Met), leucine (Leu), valine (Val), threonine (Thr), a combination of essential amino acids (EAA), and a combination of branched-chain amino acids (BCAA).

[0013] In one embodiment, the composition may include vitamin B6 in an amount of 1.0 to 12.0 mg per 300 kcal of energy and / or in a daily dosage of 1.0 to 25.0 mg per day. The composition may include one or more amino acids in a total daily dosage of 0.5 to 20.0 g per day.

[0014] In one embodiment, the composition comprises a combination of vitamin B6 and a plurality of aromatic amino acids in an effective amount to increase functional vitamin B6, preferably in an amount that is therapeutically effective with respect to at least one of the physiological benefits disclosed herein. The plurality of aromatic amino acids may include at least Trp, Tyr, Phe, and His. The composition may comprise a total daily dosage of the plurality of aromatic amino acids in the composition, which may be 0.5 to 20.0 g per day, preferably 3.0 to 20.0 g per day. In one embodiment, the composition comprises at least one combination selected from the group consisting of (i) vitamin B6 and Trp, (ii) vitamin B6 and Tyr, (iii) vitamin B6 and Phe, (iv) vitamin B6 and Thre, (v) vitamin B6 and Met, (vi) vitamin B6 and Lys, and (vii) vitamin B6 and a plurality of essential amino acids (EAA), wherein the vitamin B6 is provided in an effective amount to increase functional vitamin B6.

[0015] In one embodiment, the composition is in the form of a solid powder, a powder stick, a capsule, or a solution. The composition may be a food supplement, a medical food, a nutritional composition, for example an oral nutritional composition.

[0016] In another aspect of the present disclosure, there is provided a method of preparing a composition, which may include combining vitamin B6 with one or more amino acids, preferably in an amount of the resulting combination that is therapeutically effective with respect to at least one of the physiological benefits disclosed herein.

[0017]

[0017] In another aspect of the present disclosure, a dietary supplement comprises a therapeutically effective amount of any of the compositions disclosed herein. In one embodiment, the dietary supplement is an oral nutritional supplement (ONS). The dietary supplement can be in the form of a solid powder, a powder stick, a capsule, or a solution. In one embodiment, the dietary supplement comprises vitamin B6 in an amount effective to increase functional vitamin B6, such as 1.0-6.0 mg of vitamin B6 per 300 kcal of energy in the supplement, and / or a daily dose of 1.0-25 mg of vitamin B6. The dietary supplement can include one or more amino acids, with a total daily dose of one or more aromatic amino acids of 0.5-20.0 g.

[0018]

[0018] In another aspect of the present disclosure, a food product comprises any of the compositions disclosed herein. In one embodiment, the food product is a food for special medical purposes (FSMP). The food product can include vitamin B6 in an amount effective to increase functional vitamin B6, preferably in an amount of 1.0 to 6.0 mg per 300 kcal of energy and / or in a daily dosage of 1.0 to 25 mg. In one embodiment, the food product includes one or more amino acids in a total daily dosage of one or more aromatic amino acids of 0.5 to 20.0 g.

[0019] In one embodiment, the food product further comprises one or more additional ingredients, such as lipids, proteins, carbohydrates, vitamins, minerals, or any combination thereof.

[0020]

[0020] In another aspect of the present disclosure, a kit comprises a therapeutically effective amount of any of the compositions disclosed herein. In one embodiment, the kit is configured for oral administration of the composition. For example, the kit can comprise at least two capsules, with a first capsule comprising vitamin B6 (preferably functional vitamin B6) and a second capsule comprising one or more amino acids. In one embodiment, the kit comprises vitamin B6 in a first capsule in an amount of 1.0 to 6.0 mg per 300 kcal of energy and / or in a daily dosage of 1 to 1.0 to 25 mg. In one embodiment, the kit comprises one or more amino acids in a second capsule for a total daily dosage of 0.5 to 20.0 g of one or more aromatic amino acids.

[0021]

[0021] In another aspect of the present disclosure, there is provided a method for preventing and / or treating declines in skeletal muscle mass, skeletal lean muscle mass, skeletal muscle grip strength, and / or skeletal muscle function and / or improving skeletal muscle mass, skeletal lean muscle mass, skeletal muscle grip strength, and / or skeletal muscle function. The method comprises administering to an individual in need thereof a therapeutically effective amount of a combination of vitamin B6 and one or more amino acids in an amount effective to increase functional vitamin B6. In one embodiment, administration is by oral administration. In another embodiment, administration is by intravenous administration.

[0022]

[0022] The present invention also relates to a method for treating or preventing sarcopenia and / or restoring and / or correcting a nutritional deficiency in a subject. In one embodiment, the subject has been identified as having sarcopenia or is at high risk of developing sarcopenia.

[0023] In one embodiment, the subject is a human subject.

[0024] In one embodiment, the human subject is elderly. In one embodiment, the human subject is elderly.

[0025] In one embodiment, the subject is a companion animal, preferably a dog. [Brief explanation of the drawings]

[0026]

[0026] [Figure 1] Figure 1 shows the partial effect plot of the relationship between muscle mass measured by D3 creatine dilution method and serum total aromatic amino acid (AAA) concentration for different levels of serum functional vitamin B6 (defined as the ratio of hydroxykynurenine (HK) / xanthurenic acid (XA)) at mean age.The interaction term between functional vitamin B6 and AAA is significant, and in fact, the line representing the relationship between muscle mass and AAA concentration for increasing levels of functional vitamin B6 at a given age has an increasing slope in Example 1 disclosed herein. [Figure 2] Figure 1 shows the partial effect plot of the relationship between muscle mass measured by D3 creatine dilution method and serum tryptophan concentration for different levels of serum functional vitamin B6 (HK / XA) at average age.The interaction term between functional vitamin B6 and tryptophan (Trp) is significant, and in fact, the line representing the relationship between muscle mass and tryptophan concentration for increasing levels of functional vitamin B6 at a given age has an increasing slope in Example 1 disclosed herein. [Figure 3] Figure 1 shows the partial effect plot of the relationship between muscle mass measured by D3 creatine dilution method and serum isoleucine concentration for different levels of serum functional vitamin B6 (HK / XA) at average age.The interaction term between functional vitamin B6 and isoleucine (Ile) is not significant, and in fact, the line representing the relationship between muscle mass and isoleucine concentration for different levels of functional vitamin B6 at the same age has the same slope in Example 1 disclosed herein. [Figure 4]Figure 1 shows the partial effect plot of the association between walking speed and serum tryptophan concentration for different levels of serum functional vitamin B6 (HK / XA) at mean age.The interaction term between functional vitamin B6 and tryptophan is significant, and in fact, the line representing the association between muscle mass and tryptophan concentration for increasing levels of functional vitamin B6 at a given age has an increasing slope in Example 1 disclosed herein. [Figure 5] Boxplots of serum concentrations of vitamin B6 (PLP) are shown for subjects who reported taking a multivitamin supplement and those who did not (Wilcoxon test p-value 1.7 10^-35). [Figure 6] Boxplots of serum concentrations of functional vitamin B6 (HK / XA) are shown for subjects who reported taking a multivitamin supplement and those who did not (Wilcoxon test p-value 2.5 10^-3). [Figure 7] Scatter plot of serum concentrations of vitamin B6 (PLP) and functional vitamin B6 (HK / XA) - Spearman's rank correlation (coefficient) 0.31; p-value = 6.21 10^-3. DETAILED DESCRIPTION OF THE INVENTION

[0027]

[0033] definition

[0034] Some definitions are provided below. However, definitions may be found in the "Embodiments" section below, and the heading "Definitions" above does not imply that such disclosure in the "Embodiments" section is not a definition.

[0028]

[0035] All percentages stated herein are by weight of the total weight of the composition unless otherwise stated. When pH is referred to herein, the value corresponds to the pH measured at 25°C using standard equipment.

[0029]

[0036] As used herein, "about," "approximately," and "substantially" are understood to refer to numbers within a range of numerical values, e.g., within -10% to +10% of the referenced number, preferably within -5% to +5% of the referenced number, more preferably within -1% to +1% of the referenced number, and most preferably within -0.1% to +0.1% of the referenced number.

[0030]

[0037] All numerical ranges herein should be understood to include all integers or fractions within that range. Furthermore, these numerical ranges should be construed to support claims directed to any number or subset of numbers within that range. For example, a disclosure of 1 to 10 should be construed to support ranges of 1 to 8, 3 to 7, 1 to 9, 3.6 to 4.6, 3.5 to 9.9, etc.

[0031]

[0038] As used in this disclosure and the appended claims, the singular forms "a," "an," and "the" include plural references unless the context clearly dictates otherwise. Thus, for example, reference to "a component" or "the component" includes two or more components.

[0032]

[0039] The terms "comprise," "comprises," and "comprising" should be interpreted as inclusive rather than exclusive. Similarly, the terms "include," "including," "containing," and "having" should all be interpreted as inclusive unless the context clearly prohibits such an interpretation. Further in this regard, the above terms specify the presence of stated features, but do not exclude the presence of additional or further features.

[0033]

[0040] Nevertheless, the compositions and methods disclosed herein may lack any element not specifically disclosed herein. Thus, disclosure of an embodiment using the term "comprising" is (i) a disclosure of an embodiment having the identified components or steps, and also having additional components or steps, (ii) a disclosure of an embodiment "consisting essentially of" the identified components or steps, and (iii) a disclosure of an embodiment "consisting of" the identified components or steps. Any embodiment disclosed herein can be combined with any other embodiment disclosed herein.

[0034]

[0041] The term "and / or" used in the context of "X and / or Y" should be interpreted as "X" or "Y" or "X and Y". Similarly, "at least one of X or Y" should be interpreted as "X" or "Y" or "X and Y". For example, "at least one of Trp or Phe" should be interpreted as "Trp" or "Phe", or "both Trp and Phe".

[0035]

[0042] As used herein, the terms "example" and "such as," particularly when followed by a list of terms, are merely exemplary and illustrative and should not be considered exclusive or exhaustive.

[0036]

[0043] A "subject" or "individual" is a mammal, preferably a human. As used herein, an "effective amount" is an amount that prevents a deficiency, treats a disease or medical condition in an individual, or more generally, alleviates symptoms, manages the progression of a disease, or provides a nutritional, physiological, or medical benefit to the individual.

[0037]

[0044] The terms "treatment" and "treating" include both prophylactic or preventative treatment (treatment that prevents and / or delays the onset of a targeted pathological condition or disorder) and curative, therapeutic, or disease-modifying treatment, including, for example, therapeutic measures to cure, delay, alleviate symptoms, and / or halt the progression of a diagnosed pathological condition or disorder, as well as treatment of patients at risk of or suspected of having a disease, and patients who are unwell or have been diagnosed with a disease or medical condition. The terms "treatment" and "treating" do not necessarily imply treating a subject until fully recovered. The terms "treatment" and "treating" also refer to maintaining and / or promoting the health of individuals who do not have a disease but who may be susceptible to the development of an ill-health condition. The terms "treatment" and "treating" are also intended to include the synergism or otherwise enhancement of one or more primary preventative or therapeutic measures. By way of non-limiting example, the treatment / therapy may be performed by the patient, a caregiver, a doctor, a nurse, or another medical professional.

[0038]

[0045] As used herein, the term "unit dosage form" refers to physically discrete units suitable as dosage units for human and animal subjects, each unit containing a predetermined quantity of a composition disclosed herein in an amount sufficient to produce the desired effect, together with a therapeutically effective diluent, carrier, or vehicle. The specifications for the unit dosage form depend on the particular compound used, the effect to be achieved, and the pharmacodynamics associated with each compound in the host.

[0039]

[0046] "Kit" means that the components of the kit are physically associated in or with one or more containers and are considered a single unit for manufacture, distribution, sale, or use. Containers include, but are not limited to, bags, boxes, cartons, bottles, packaging of any type or design or material, overwrap, shrink wrap, attached components (e.g., stapled or glued), or combinations thereof.

[0040]

[0047] The term "substantially free" when used in reference to a particular component means that any component present constitutes less than about 2.0% by weight, e.g., less than about 1.0% by weight, preferably less than about 0.5% by weight, or more preferably less than about 0.1% by weight.

[0041]

[0048] The term "food for special medical purposes (FSMP)" refers to a formula food that has been specially processed and prepared to meet the special nutritional or dietary needs of people with dietary restrictions, digestive and absorption disorders, metabolic disorders, or specific diseases. Such foods are used alone or in combination with other foods under the guidance of a physician or clinical nutritionist. FSMPs are special dietary foods, not medicines, but are not usually consumed by the average person. FSMPs are specially developed by clinicians and nutritionists based on scientific evidence from extensive medical research.

[0042]

[0049] The term "oral nutritional supplement (ONS)" refers to a sterile liquid, semisolid, or powder that provides macronutrients and micronutrients. ONS are widely used within emergency community health settings for individuals who cannot meet their nutritional requirements through oral diet alone.

[0043]

[0050] The term "Dietary Reference Intakes (DRIs)" is a collective term intended for the general public and health professionals. DRIs include a set of at least four categories of nutrient-based reference values, including Recommended Dietary Allowances (RDAs), Adequate Intakes (AIs), Tolerable Upper Intake Levels (ULs), and Estimated Average Requirement (EARs), each with its own special use.

[0044]

[0051] The term "Estimated Average Requirement (EAR)" refers to the intake level of a nutrient that meets the needs of 50 percent of the population in that age group. Because this amount does not meet the needs of the other half of the population, the EAR would need to be increased by approximately 20% to reach the Recommended Dietary Allowance (RDA).

[0045]

[0052] The term "Recommended Dietary Allowance (RDA)" refers to the average daily dietary intake level of a nutrient that the Food and Nutrition Board of the Institute of Medicine considers sufficient to meet the needs of 97.5% of healthy individuals in each age group and sex group. The above definition means that this intake level would cause a harmful nutrient deficiency in only 2.5% of people. The RDA is calculated based on the EAR and is usually about 20% higher than the EAR.

[0046]

[0053] The term "Recommended Dietary Intake (RDI)" or "Recommended Daily Intake" as used herein refers to the average daily intake level of a particular nutrient that is likely to meet the nutrient requirements of 97-98% of healthy individuals in a particular age group or gender group.

[0047]

[0054] The term "Adequate Intake (AI)" refers to an estimate of the intake level of a healthy population when an RDA or EAR has not been established, but the established amount is somewhat less firmly believed to be adequate for everyone in a demographic group.

[0048]

[0055] The term "Tolerable Upper Intake Level (UL)" refers to the highest level of daily nutrient intake that is likely to be safe and not cause adverse effects in 97.5% of healthy individuals in each age group and gender group. ULs warn against excessive intake of nutrients (such as vitamin A) that can be harmful in large amounts. The above definition means that this intake level would cause a harmful nutrient excess in only 2.5% of people.

[0049]

[0056] The term "Acceptable Macronutrient Distribution Range (AMDR)" refers to a range of intakes specified as a percentage of total energy intake. The AMDR is used for energy sources such as fat and carbohydrates.

[0050]

[0057] As used herein, the term "amino acid" includes amino acids in their free form, amino acids in molecules of 2 to 20 amino acids (referred to herein as "peptides"), and also longer chains of amino acids. Small peptides, chains of 2 to 10 amino acids, are suitable for the present compositions, either alone or in combination with other proteins. The "free form" of an amino acid is the monomeric form of the amino acid.

[0051]

[0058] Each amino acid disclosed herein can be present in a composition as the sole amino acid or as a mixture of one or more amino acids, e.g., one or more (i) peptides containing the amino acid, (ii) longer chain amino acids containing the amino acid, or (iii) free amino acids. For example, disclosure of a "composition comprising an aromatic amino acid" constitutes disclosure of aromatic amino acids only in free form, aromatic amino acids only bound to other amino acids, and mixtures of aromatic amino acids in free form and aromatic amino acids bound to other amino acids. In embodiments in which the referenced amino acid is in free form, the composition may optionally be substantially free of proteins containing the referenced amino acid. Similarly, in embodiments in which the referenced amino acid is in a peptide, the composition may optionally be substantially free of the free form of the referenced amino acid.

[0052]

[0059] The term "essential amino acids (EAA)" or indispensable amino acids as used herein refers to amino acids that cannot be synthesized de novo by organisms at a rate that meets their needs and therefore must be provided in the diet. Of the 21 amino acids common to all living organisms, nine are considered essential in the human diet, including phenylalanine, valine, threonine, tryptophan, methionine, leucine, isoleucine, lysine, and histidine. Six other amino acids are considered conditionally essential in the human diet: arginine, cysteine, glycine, glutamine, proline, and tyrosine. Six amino acids are non-essential (not essential) in the human diet; these six non-essential amino acids are alanine, aspartic acid, asparagine, glutamic acid, serine, and selenocysteine.

[0053]

[0060] The term "aromatic amino acid (AAA)" refers to an amino acid that contains an aromatic ring. Examples of aromatic amino acids include phenylalanine (symbol Phe or F); tryptophan (symbol Trp or W); tyrosine (symbol Tyr or Y); and histidine (symbol His or H).

[0054]

[0061] The term "branched-chain amino acid (BCAA)" refers to an amino acid with an aliphatic side chain that has a branch (a central carbon atom attached to three or more carbon atoms). The three proteinogenic BCAAs are leucine (Leu or L), isoleucine (Ile or I), and valine (Val or V). A non-proteinogenic BCAA is 2-aminoisobutyric acid.

[0055]

[0062] As used herein, "vitamin B6" may include one or more of pyridoxine (PN), pyridoxal 5'-phosphate (PLP), pyridoxine 5'-phosphate (P5P), pyridoxal (PL), pyridoxamine (PM), pyridoxamine 5'-phosphate (PMP), 4-pyridoxic acid, and pyritinol. In preferred embodiments, at least a portion of any vitamin B6 is PN. At least a portion of vitamin B6 can be PLP. Absorbed pyridoxamine is converted to PMP by pyridoxal kinase, and PMP is further converted to PLP by pyridoxamine phosphate transaminase or pyridoxine 5'-phosphate oxidase, which also catalyzes the conversion of PNP to PLP. [2] Pyridoxine 5'-phosphate oxidase depends on flavin mononucleotide (FMN) as a cofactor, generated from riboflavin (vitamin B2). Functional B6 is defined as the level of biological activity of PLP assessed by the ratio of the substrate:product pair hydroxykynurenine (HK) / xanthurenic acid (XA) of kynurenine aminotransferase catalyzed by PLP.

[0056]

[0063] As used herein, sarcopenia is characterized by one or more of the following: loss of muscle mass, loss of muscle strength, and loss of physical performance. More preferably, sarcopenia is assessed by two or more of the following: loss of muscle mass, loss of muscle strength, and loss of physical performance. Most preferably, sarcopenia is assessed by loss of muscle mass, loss of muscle strength, and loss of physical performance. All of these can be measured by methods well known to those skilled in the art.

[0057]

[0064] Muscle mass can be measured by CT (computed tomography), DXA (dual-energy x-ray absorptiometry), MRI (magnetic resonance imaging) or D3 creatine dilution.

[0058]

[0065] Muscle strength can be measured by grip strength (eg, using handheld dynamometry) or knee extension strength (eg, using quadriceps torque measurement).

[0059]

[0066] Physical performance can be measured by walking speed, SPPB, 400m walk test, TUG (time up and go) test, or stair climbing test.

[0060]

[0067] Sarcopenia can be diagnosed in subjects based on the definition of AWGSOP (Asian Working Group for Sarcopenia in Older People), as described, for example, in Chen et al. (2014) "Sarcopenia in Asia: Consensus Report of the Asian Working Group for Sarcopenia" (Journal of the American Medical Directors Association 15, 95-101). Muscle mass loss can generally be measured by a decrease in appendicular lean mass (ALM index) normalized to the square of height, specifically an ALM index of less than 7.00 kg / m² for men and less than 5.40 kg / m² for women. Decreased physical performance can generally be measured by a decrease in walking speed, specifically a walking speed of less than 0.8 m / s. Muscle strength loss can generally be measured by a decrease in grip strength, specifically a grip strength of less than 26 kg for men and less than 18 kg for women.

[0061]

[0068] Sarcopenia can be diagnosed in a subject based on the definition of EWGSOP (European Working Group for Sarcopenia in Older People), as described, for example, in Cruz-Jentoft et al., 2010, "Sarcopenia: European consensus on definition and diagnosis: Report of the European Working Group on Sarcopenia in Older People" (Age Ageing 39, 412-423). Muscle mass loss can generally be measured by a decrease in appendicular lean mass (ALM index) normalized to the square of height, specifically an ALM index of less than 7.23 kg / m for men and less than 5.67 kg / m for women. Physical performance loss can generally be measured by a decrease in walking speed, specifically a walking speed of less than 0.8 m / s. Muscle strength loss can generally be measured by a decrease in grip strength, specifically a grip strength of less than 30 kg for men and less than 20 kg for women.

[0062]

[0069] Sarcopenia can be diagnosed in subjects based on the definition of the Foundation for the National Institutes of Health (FNIH), as described, for example, in Studenski et al. (2014), "The FNIH sarcopenia project: rationale, study description, conference recommendations, and final estimates" (J Gerontol A Biol Sci Med Sci. 69(5):547-558). Low muscle mass can generally be based on low appendicular lean mass (ALM) normalized to body mass index (BMI; kg / m²), specifically, an ALM-to-BMI ratio of less than 0.789 for men and less than 0.512 for women. Decreased physical performance can generally be based on walking speed, specifically, a walking speed of less than 0.8 m / s. Decreased muscle strength can generally be based on reduced grip strength, specifically, a grip strength of less than 26 kg for men and less than 16 kg for women. Muscle weakness can also generally be measured by a reduced grip strength to body mass index, specifically a grip strength to body mass index of less than 1.00 for men and less than 0.56 for women.

[0063]

[0070] Another approach to measuring muscle mass is the D3 creatine dilution method. This method is gaining wider acceptance as a robust standard and a potential future alternative to DXA. The D3 creatine dilution method has been previously described, for example, in Clark et al. (2014) "Total body skeletal muscle mass: estimation by creatine (methyl-d3) dilution in humans" (J Appl Physiol (1985). 2014 Jun 15;116(12):1605-13) and Stimpson et al. (2013) "Longitudinal changes in total body creatine pool size and skeletal muscle mass using the D3-creatine dilution method" (J Cachexia Sarcopenia Muscle. Jun 25).

[0064]

[0071] Embodiment

[0072] One aspect of the present disclosure is a composition comprising one or more aromatic amino acids, particularly at a specific concentration and / or a specific ratio. In one embodiment, the amino acids are selected from the group consisting of Trp, Phe, Tyr, His, and a combination of aromatic amino acids. A composition comprising one or more aromatic amino acids is advantageous for preventing and / or treating declines in skeletal muscle mass, skeletal lean muscle mass, skeletal muscle strength, and / or skeletal muscle function due to various reasons, such as aging and physical inactivity due to injury or disease, and / or for improving skeletal muscle mass, skeletal lean muscle mass, skeletal muscle strength, and / or skeletal muscle function, for example, for treating sarcopenia in the elderly.

[0065]

[0073] Non-limiting examples of the one or more amino acids include Trp, Phe, Tyr, His, and combinations thereof. In one embodiment, the composition comprises one or more amino acids in a total daily dose of 0.5 to 20.0 g of the one or more aromatic amino acids.

[0066]

[0074] Non-limiting examples of compositions include a single amino acid. For example, the single amino acid can be one of the aromatic amino acids: Trp, Phe, Tyr, and His.

[0067]

[0075] In one embodiment, the composition further comprises an amount of vitamin B6 that increases functional vitamin B6 (defined as the ratio of the substrate:product pair hydroxykynurenine (HK) / xanthurenic acid (XA) of kynurenine aminotransferase catalyzed by vitamin B6), e.g., an amount of 1.0 to 12.0 mg per 300 Kcal of energy and / or a daily dosage of 1.0 to 25.0 mg.

[0068]

[0076] In another aspect of the present disclosure, a composition comprises a therapeutically effective amount of a combination of vitamin B6 in an amount effective to increase functional vitamin B6 and a plurality of aromatic amino acids, preferably in a therapeutically effective amount for at least one of the physiological benefits disclosed herein. The aromatic amino acids may include at least Trp, Tyr, Phe, and His. For example, the composition may include at least one combination selected from the group consisting of (i) vitamin B6 and Trp, (ii) vitamin B6 and Tyr, (iii) vitamin B6 and Phe, and (iv) vitamin B6 and His.

[0069]

[0077] The composition may be a nutritional composition, for example an oral nutritional composition.

[0070]

[0078] Another aspect of the present disclosure is a method of preparing a composition, which may include combining a therapeutically effective amount of a combination of aromatic amino acids and vitamin B6 with one or more essential amino acids (EAA) and one or more branched chain amino acids (BCAA), preferably in an amount of the combination that is therapeutically effective for at least one of the physiological benefits disclosed herein.

[0071]

[0079] Another aspect of the present disclosure is a dietary supplement comprising a therapeutically effective amount of any of the compositions disclosed herein, e.g., an oral dietary supplement. The dietary supplement may be in the form of a solid powder, powder stick, capsule, or solution. Preferably, the dietary supplement comprises vitamin B6 in an amount effective to increase functional vitamin B6, preferably in an amount of 1.0-12.0 mg per 300 kcal of energy and / or in a daily dosage of 1.0-25.0 mg per 300 kcal of energy. In one embodiment, the dietary supplement comprises one or more amino acids, with a total daily dosage of one or more aromatic amino acids of 0.5-20.0 g.

[0072]

[0080] Another aspect of the present disclosure is a capsule containing any of the compositions disclosed herein, e.g., a composition comprising vitamin B6 and one or more aromatic amino acids. In one embodiment, the capsule contains a therapeutically effective amount of a combination of vitamin B6 and one or more aromatic amino acids effective to increase functional vitamin B6, preferably the one or more amino acids are selected from the group consisting of Trp, Phe, Tyr, His, and all aromatic amino acids (AAA). In one embodiment, the capsule contains vitamin B6 (e.g., functional vitamin B6) in an amount of 1.0 to 25.0 mg of vitamin B6 per capsule, or preferably 5.0 to 10.0 mg of vitamin B6 per capsule.

[0073]

[0081] In one embodiment, the capsule contains a combination of vitamin B6 and Trp (e.g., a combination of functional vitamin B6 and Trp). For example, the amount of vitamin B6 in the capsule may be 1.0 to 7.0 mg per capsule, preferably about 6.7 mg per capsule. The amount of Trp in the capsule may be 0.1 to 1.0 g per capsule, preferably about 0.5 g per capsule.

[0074]

[0082] In another embodiment, the capsule contains a combination of vitamin B6 and Tyr (e.g., functional vitamin B6 and Tyr). For example, the Tyr in the capsule may be 0.1 to 2.0 g per capsule, preferably about 1.0 g per capsule.

[0075]

[0083] In another embodiment, the capsule contains a combination of vitamin B6 and Phe (e.g., functional vitamin B6 and Phe). For example, the Phe in the capsule can be 0.05 to 1.5 g per capsule, preferably about 1.0 g per capsule.

[0076]

[0084] In another embodiment, the capsule contains a combination of vitamin B6 and His (e.g., functional vitamin B6 and His). For example, the amount of His in the capsule may be 0.1 to 1.5 g per capsule, preferably 0.5 to 1.5 g per capsule.

[0077]

[0085] Another aspect of the present disclosure is a food product comprising any of the compositions disclosed herein, e.g., a food for special medical purposes (FSMP). The composition may comprise a combination of vitamin B6 (in an amount effective to increase functional vitamin B6) and one or more aromatic amino acids. The one or more aromatic amino acids may be selected from the group consisting of Trp, Phe, Tyr, His, and combinations of aromatic amino acids. In one embodiment, vitamin B6 is present in the FSMP in an amount of about 0.1 to about 0.5 mg per 100 Kcal of energy, preferably about 0.50 mg per 100 Kcal of energy. In one embodiment, the one or more amino acids are present in the FSMP in a total amount of 0.1 to 5.0 g per day.

[0078]

[0086] In one embodiment of the FSMP, the one or more aromatic amino acids include Trp. The daily dosage of Trp in the FSMP can be 0.5 to 2.0 g / day, preferably 0.8 to 1.2 g / day. In one embodiment, the one or more amino acids include Tyr. The daily dosage of Tyr in the FSMP can be 1.0 to 6.0 g / day, preferably about 2.8 g / day. In one embodiment, the one or more amino acids include Phe. The daily dosage of Phe in the FSMP can be 1.0 to 6.0 g / day, preferably about 4.7 g / day. In one embodiment, the one or more amino acids include His. The daily dosage of His in the FSMP can be 1.0 to 4.0 g / day, preferably about 1.6 g / day. In one embodiment, the one or more amino acids include a combination of aromatic amino acids (AAA). The daily dosage of the total amount of AAA in the FSMP can be 2.0 to 20 g / day, preferably 9.0 to 11.0 g / day.

[0079]

[0087] Another aspect of the present disclosure is a kit comprising a therapeutically effective amount of any of the compositions disclosed herein. In one embodiment, the kit is configured for oral administration of the composition. For example, the kit can be in the form of two capsules, where the first capsule contains an amount of vitamin B6 effective to increase functional vitamin B6, and the second capsule contains one or more aromatic amino acids. The one or more aromatic amino acids can be selected from the group consisting of Trp, Phe, Tyr, His, and combinations thereof.

[0080]

[0088] Another aspect of the present disclosure is a method for preventing and / or treating a decline in skeletal muscle mass, skeletal lean muscle mass, skeletal muscle grip strength, and / or skeletal muscle function, and / or improving skeletal muscle mass, skeletal lean muscle mass, skeletal muscle grip strength, and / or skeletal muscle function. The method comprises administering a therapeutically effective amount of any of the compositions disclosed herein to an individual in need thereof. Non-limiting examples of such administration include oral administration and intravenous administration. In one embodiment, the administration is oral administration. In one embodiment, the method comprises administering a therapeutically effective amount of a combination of vitamin B6 and one or more amino acids to an individual in need thereof.

[0081]

[0089] In another embodiment, the method comprises administering to an individual in need thereof a therapeutically effective amount of a combination of vitamin B6, at least one aromatic amino acid, and one or more EAAs and / or BCAAs in an amount effective to increase functional vitamin B6. In one embodiment, the one or more amino acids are selected from the group consisting of Lys, Met, Thr, Leu, Ile, Val, a combination of aromatic amino acids (AAA), a combination of essential amino acids (EAA), a combination of branched-chain amino acids (BCAA), and combinations thereof.

[0082]

[0090] In one embodiment, the method comprises administering to an individual in need thereof a therapeutically effective amount of a combination of vitamin B6 in an amount effective to increase functional vitamin B6 and one or more aromatic amino acids. The one or more aromatic amino acids may be selected from the group consisting of Trp, Phe, Tyr, His, and combinations thereof. In one embodiment, the one or more amino acids are a combination of all aromatic amino acids (AAA), and the total AAA dosage is 3.0-20.0 g / day. The daily dosages of Trp, Tyr, Phe, and His may be 0.2-3.0 g / day, 1.5-8.8 g / day, 1.5-10.7 g / day, and 0.9-5.6 g / day, respectively.

[0083]

[0091] In one embodiment, the daily dosage of vitamin B6 is 1.0 to 12.0 mg / 300 Kcal or 1.0 to 25.0 mg / day, and / or the daily dosage of vitamin B6 is 1.0 to 12.0 mg / 300 Kcal or 1.0 to 25.0 mg / day.

[0084]

[0092] In one embodiment, the method comprises administering to an individual in need thereof a therapeutically effective amount of a combination of vitamin B6 in an amount effective to increase functional vitamin B6 and a single aromatic amino acid. The single aromatic amino acid may be selected from the group consisting of Trp, Phe, Tyr, and His. In one embodiment, the single aromatic amino acid is Trp, and the daily dosage of Trp may be 0.2-3.0 g / day. In one embodiment, the single aromatic amino acid is Tyr, and the daily dosage of Tyr may be 1.5-8.8 g / day. In one embodiment, the single aromatic amino acid is Phe, and the daily dosage of Phe may be 1.5-10.7 g / day. In one embodiment, the single aromatic amino acid is His, and the daily dosage of His may be 1.0-5.6 g / day.

[0085]

[0093] In one embodiment, the method comprises administering to an individual in need thereof a therapeutically effective amount of a combination of vitamin B6 and Met.

[0086]

[0094] In another embodiment, the method comprises administering to an individual in need thereof a therapeutically effective amount of a combination of vitamin B6 and Lys.

[0087]

[0095] In another embodiment, the method comprises administering to an individual in need thereof a food supplement comprising a therapeutically effective amount of any of the compositions disclosed herein.

[0088]

[0096] In another embodiment, the method comprises administering to an individual in need thereof a food product comprising a therapeutically effective amount of any of the compositions disclosed herein.

[0089]

[0097] In one embodiment, the method includes providing a kit to an individual in need thereof, the kit including a therapeutically effective amount of a combination of vitamin B6 and one or more amino acids in an amount effective to increase functional vitamin B6. For example, the kit is preferably configured for oral administration. In one embodiment, the kit includes two capsules, a first capsule containing vitamin B6 and a second capsule containing one or more amino acids.

[0090]

[0098] Preferred daily dosages for oral administration of each of the components of the compositions, food supplements, food products, and kits disclosed in the present disclosure may be as follows:

[0091]

[0099] For example, in the case of supplements in capsules,

[0100] Vitamin B6: 50 mg per capsule and 1-2 capsules per day: up to 100 mg / day

[0101] Tryptophan:Trp+VitB6: 2 capsules provide 6.7mg of B6 and 1g of Trp. Up to 6 capsules = 20.1g of B6 and 3g of Trp.

[0102] Tyrosine: 1g per capsule, maximum 4 capsules = 4g

[0103] Phenylalanine: Phe 1g / capsule, maximum 4 capsules / day = 4g / day

[0104] BCAA Capsules: 2 capsules = 1.2g BCAA = 600mg Leu, 300mg Ileu, and 300mg Val, max 2 capsules = 2.4g BCAA

[0105] BCAA powder: 3g BCAA=1500mg Leu+750mg Ileu +750mg Val

[0106] EAA: A complete list of EAAs, but at a low level.

[0092]

[0107] As another example, for an oral nutritional supplement (ONS) product, 1 serving = 200 mL and 300 Kcal.

[0108] Vitamin B6: 1.1 mg / 200 mL in 2 servings

[0109] Tryptophan: 0.5g / 2 servings / day + food intake = 1.5g / day

[0110] Tyrosine: 0.39g / 100g, so 1.6g / 2 servings / day

[0111] Phenylalanine: 0.41g / 100g, so 1.6g / 2 servings

[0112] Histidine: 0.23g / 100g, so 0.9g / 2 servings / day

[0093]

[0113] Another example is for general products:

[0114] Vitamin B6: 1-12mg / 300kcal / serving

[0115] Tryptophan: 0.5-2g / 2 servings, resulting in a total dietary intake of 1.5-3g / day

[0116] Tyrosine: 1.5-6g / 2 servings, resulting in a total dietary intake of 4.3-8.8g / day

[0117] Phenylalanine: 1.5-6g / 2 servings, thus a maximum total dietary intake of 10.7g / day

[0118] Histidine: 1-4g / 2 servings, thus a maximum total dietary intake of 5.6g / day

[0119] Total Aromatic AA: Maximum dose: 20g / day (sum of individual AAs) [Example]

[0094]

[0121] The following non-limiting examples demonstrate the unexpected effectiveness of compositions further comprising aromatic amino acids, and optionally vitamin B6, in preventing and / or treating declines in skeletal muscle mass, strength, and / or muscle function.

[0095] Example 1

[0122] Studies have investigated the synergistic effects between vitamin B6 or functional vitamin B6 and various amino acids.

[0123] Participant Selection: Between 2000 and 2002, 5,994 ambulatory, community-dwelling men aged 65 years or older who had not undergone bilateral total hip replacement were enrolled in the MrOS, a multicenter cohort study of aging and osteoporosis. The study was approved by the Institutional Review Board at each participating center, and all participants provided written informed consent. Between 2014 and 2016, 2,786 survivors were contacted to participate in a follow-up visit.

[0096]

[0124] Based on random sampling within the cohort, or low grip strength, slow walking speed, DXA (ALM / ht 2 Five hundred twenty-nine participants were selected based on increasing disability based on low lean mass (D3Cr / weight) and low muscle mass (D3Cr / weight) measured by the D3 creatine dilution method. Participants with stroke or Parkinson's disease, participants taking oral corticosteroids, and participants receiving androgen suppression therapy were not eligible for inclusion in the analysis.

[0097]

[0125] Measurements: Grip strength (kg) was assessed by analyzing the maximum value from two trials for each hand using a Jamar handheld dynamometer. Walking speed (m / s) was determined by timing the participant's completion of a 6-meter course at their usual pace and averaging the two trials. Skeletal muscle mass was estimated using the D3 creatine dilution method described above. To account for variations in total muscle mass due to body size, D3Cr muscle mass was divided by height squared. Appendicular lean mass (ALM) was assessed by whole-body DXA scan (Hologic 4500 scanner, Waltham, MA). To account for differences in body size, ALM was divided by height squared.

[0098]

[0126] Vitamin B6 and kynurenine: pyridoxal 5'-phosphate, 3-hydroxykynurenine, and xanthurenic acid were measured by LC-MS / MS by mixing serum samples with labeled internal standards, resolving the analytes with a gradient mobile phase on a C8 liquid chromatography column, and detecting using electrospray ionization tandem mass spectrometry as described by Midttun (2009).

[0099]

[0127] Amino acids: Aromatic amino acids (phenylalanine, tyrosine, tryptophan, histidine) and branched-chain amino acids (valine, isoleucine, leucine) were measured in serum by ultra-performance liquid chromatography tandem mass spectrometry (UPLC-MS / MS).

[0100]

[0128] Briefly, 50 μL of sample was precipitated with 10 μL of internal standard and 140 μL of MeOH + 0.1% formic acid, then derivatized with borate buffer pH 8.8 and derivatization reagent, followed by a 1:50 dilution with 0.55 g / L aqueous ammonium formate in 0.1% FA. Using an Acquity UPLC System (Waters, Milford, MA, USA), 10 μL of sample was injected via a Waters AccQtag Ultra C18 1.7 μm 2.1 × 100 mm column into a TQ-XS Waters (Milford, MA, USA) mass spectrometer equipped with an ESI+ source. The capillary voltage was 1.5 kV, the desolvation temperature was 600°C, the desolvation flow rate was 1000 L / h, the cone flow rate was 250 L / h, the nitrogen nebulizer was 7.0 Bar, and the source temperature was 120°C. Cone voltage and collision energy (argon) were adjusted independently for each amino acid.

[0101]

[0129] statistical analysis

[0130] We fitted a multiple linear regression model described by Equation 1 and Equation 2.

[0102]

number

[0103]

number

[0104] where y is muscle mass (D3 creatine / height²) or a measure of walking speed or grip strength, age is the age at the time of the blood measurement, vitB6 is functional vitamin B6 estimated as the ratio between xanthurenic acid and hydroxykynurenine, aa is the sum of aromatic amino acids (AromAA) or one of the aromatic amino acids (Trp, Phe, Tyr, His) or one of the branched-chain amino acids (Leu, Ile, Val), and ε is a normally distributed error with mean 0. All nutrients were log-transformed and scaled, and age was scaled.

[0105]

[0131] We tested whether the model represented by Equation 2, which includes an interaction term between vitamin B6 and a target amino acid (or the sum of a group of amino acids), fits the experimental data better than the simpler model represented by Equation 1, which does not include an interaction term.In other words, we tested whether the effects of vitamin B6 and the target amino acid are non-additive, i.e., the coefficient of the interaction term is not 0, and therefore the effect of the amino acid on the response variable differs depending on the level of vitamin B6 (and the effect of vitamin B6 on the response variable differs depending on the level of the target amino acid).Specifically, we tested whether the interaction term c4 is not different from 0, i.e., whether the effects of vitamin B6 and the target amino acid are additive (c4 is not significantly different from 0), or alternatively, whether the interaction between vitamin B6 and the target amino acid is synergistic with the effect of the modified amino acid depending on the level of vitamin B6 (c4 is significantly different from 0).

[0106]

[0132] result

[0133] The inventors conducted an empirical study and reported the likelihood ratio tests comparing the two models represented by Equation 1 and Equation 2 in Tables 2 to 4 below. The likelihood ratio test compares the likelihood of the two models represented by Equation 1 and Equation 2, and if the more complex model fits the data significantly better (likelihood ratio test p-value < 0.1), it suggests that the interaction term is relevant, and the simpler model without the interaction term can be rejected.

[0107]

[0134] Non-additive or synergistic: If the model represented by Equation 1 is rejected and the model represented by Equation 2 is retained, and the likelihood ratio test p-value is <0.1 and the sign of the interaction coefficient c4 is positive, then the combination of the two components increases muscle mass, strength, and / or function in individuals requiring one or both components to a greater extent than the additive effects of either component alone or each of the two components alone. Specifically, if the combination of two components (vitamin B6 and an amino acid) results in a positive interaction coefficient c4 with a p-value less than 0.1, then the combination of the two components increases muscle mass, strength, and / or function in individuals requiring one or both components to a greater extent than the additive effects of either component alone or each of the two components alone.

[0108]

[0135] Additivity or Indifference: If the model represented by Equation 1 is not rejected, i.e., retained, and the likelihood ratio test p-value is >0.1, then the combination does not have a significant increase in muscle mass, muscle strength, and / or muscle function in an individual in need thereof from the additive effect of each of the two components alone. Specifically, if the combination of two components results in a P-value greater than 0.1 for the interaction coefficient c4, then the combination does not have a significant increase in muscle mass, muscle function, muscle strength, and / or physical performance in an individual in need thereof from the additive effect of each of the two components alone.

[0109]

[0136] Antagonism: If the combination of components results in a negative interaction coefficient c4 with a P value less than 0.1, then the combination of the two components reduces the effectiveness of one or both of the two components alone.

[0110]

[0137] Tables 2-4 below show likelihood ratio tests for multiple regression models with or without interaction terms between functional vitamin B6 and amino acids for the following outcome variables: muscle mass (D3 creatine / height^2), lean muscle mass (ALM / height^2), walking speed, and muscle grip strength. In both models, the inventors surprisingly found that the test results clearly showed a synergistic effect between functional vitamin B6 and one or a combination of aromatic amino acids (P value < 0.1). A P value of less than 0.1 indicates the presence of a synergistic effect between the components, and a lower P value indicates the strongest synergistic effect between the two components.

[0111]

[0138] Specifically, as shown in Tables 2-4, the combination of functional vitamin B6 and aromatic amino acids resulted in a P value of 0.0175 for the outcome variable of muscle mass (D3 creatine / height^2), a P value of 0.0342 for the outcome variable of walking speed, and a P value of 0.0316 for the outcome variable of grip strength. These test results clearly demonstrated that the combination of vitamin B6 and aromatic amino acids improved each of muscle mass, walking speed, and grip strength more than the effects of each of the two components alone and the additive effects of the two components alone.

[0112]

[0139] As shown in Tables 2 to 4, the combination of functional vitamin B6 and aromatic amino acids resulted in a P value of 0.0102 for the muscle mass outcome variable (D3 creatine / height^2), a P value of 0.0006 for the walking speed outcome variable, and a P value of 0.3369 for the grip strength outcome variable. These test results clearly demonstrated that the combination of functional vitamin B6 and Trp improved muscle mass and walking speed more than the effects of each of the two components alone and the additive effects of the two components alone.

[0113]

[0140] As shown in Tables 2-4, the combination of functional vitamin B6 and Phe resulted in a P value of 0.0561 for the outcome variable of muscle mass (D3 creatine / height^2), a P value of 0.1567 for the outcome variable of walking speed, and a P value of 0.0109 for the outcome variable of grip strength. These test results clearly demonstrated that the combination of functional vitamin B6 and Phe improved muscle mass and muscle grip strength more than the effects of either of the two components alone and the additive effects of the two components alone.

[0114]

[0141] As shown in Tables 2 to 4, the combination of functional vitamin B6 and Tyr resulted in a P value of 0.0343 for the outcome variable of muscle mass (D3 creatine / height^2), a P value of 0.0573 for the outcome variable of walking speed, and a P value of 0.0353 for the outcome variable of grip strength. These test results clearly demonstrated that the combination of functional vitamin B6 and Tyr improved each of muscle mass, walking speed, and grip strength more than the effects of each of the two components alone and the additive effects of the two components alone.

[0115]

[0142] From the test results in Tables 2 to 4, the present inventors surprisingly found a strong synergistic effect between the combination of functional vitamin B6 and aromatic amino acids in improving muscle mass, walking speed, and grip strength. The present inventors also surprisingly found a strong synergistic effect between functional vitamin B6 and Trp in improving muscle mass and walking speed, between functional vitamin B6 and Phe in improving muscle mass and grip strength, and between functional vitamin B6 and Tyr in improving muscle mass, walking speed, and grip strength.

[0116]

[0143] From the test results in Tables 2 to 4, the inventors also found that there was no significant synergistic effect between functional vitamin B6 and any of the branched-chain amino acids Leu, Ile, and Val, and further found that there was no significant synergistic effect between functional vitamin B6 and the aromatic amino acid His in the concentration range tested.

[0117]

[0144] Table 2. Likelihood ratio tests for multiple regression models with and without interaction terms between functional vitamin B6 and amino acids. Outcome variable: muscle mass (D3 creatine / height^2).

[0118] [Table 1]

[0119]

[0145] Table 3. Likelihood ratio tests for multiple regression models with and without interaction terms between functional vitamin B6 and amino acids. Outcome variable: walking speed.

[0120] [Table 2]

[0121]

[0146] Table 4. Likelihood ratio tests for multiple regression models with and without interaction terms between functional vitamin B6 and amino acids. Outcome variable: muscle grip strength.

[0122] [Table 3]

[0123]

[0147] Figures 1-4 provide visual representations of the selected model using partial effects plots. These plots were generated by plotting the prediction of the outcome variable from the fitted model for various values ​​of the predictor of interest (here, a single amino acid), while holding other predictors constant at their mean values ​​or any relevant values. The partial effects plot in Figure 1 shows the association between muscle mass and total aromatic amino acid (AAA) concentrations for different levels of functional vitamin B6 at mean age. The interaction term between functional vitamin B6 and AAA is significant, and indeed, the line representing the association between muscle mass and aromatic AA concentrations for increasing levels of functional vitamin B6 at a fixed age has an increasing slope.

[0124]

[0148] The partial effects plot in Figure 2 shows the association between muscle mass and tryptophan (Trp) for different levels of functional vitamin B6 at mean age. The interaction term between functional vitamin B6 and tryptophan is significant, and indeed the line representing the association between muscle mass and tryptophan concentration for increasing levels of functional vitamin B6 at a given age has an increasing slope.

[0125]

[0149] The partial effects plot in Figure 3 shows the association between muscle mass and isoleucine concentration for different levels of functional vitamin B6 at mean age. The interaction term between functional vitamin B6 and isoleucine is not significant, and in fact, the lines representing the association between muscle mass and isoleucine concentration for different levels of functional vitamin B6 at the same age have the same slope.

[0126]

[0150] The partial effects plot in Figure 4 shows the association between walking speed and tryptophan concentration for different levels of functional vitamin B6 at mean age. The interaction term between functional vitamin B6 and tryptophan is significant, and indeed the line representing the association between muscle mass and tryptophan concentration for increasing levels of functional vitamin B6 at a given age has an increasing slope.

[0127]

[0151] The box plot in Figure 5 shows serum vitamin B6 (PLP) levels per category of subjects reporting a multivitamin supplement hypothesis, with a Wilcoxon rank-sum test p-value of 2.4*10^-39. The box represents the IQR, and the median is shown as a bar within the box. The whiskers represent 1.5 times the IQR (3rd quartile to 1st quartile), and outliers are shown as circles. This example demonstrates that oral vitamin supplementation increases serum vitamin B6 levels.

[0128]

[0152] Figure 6: Boxplot showing serum functional vitamin B6 (HK / XA) levels per category of subjects reporting a multivitamin supplement hypothesis, with a Wilcoxon rank-sum test p-value of 0.0039. Boxes represent the IQR, and the median is shown as a bar within the box. Whiskers represent 1.5 times the IQR (3rd quartile to 1st quartile), with outliers shown as circles. This example demonstrates that oral vitamin supplementation increases functional vitamin B6 levels.

[0129]

[0153] Figure 7: Association between functional vitamin B6 (HK / XA) and vitamin B6 (PLP), Spearman's rank correlation (coefficient) rho=0.31, p-value=6.3*10^-13. The blue line represents the local regression (loess method), and the gray shaded area indicates the 95% CI. This example demonstrates that increasing serum vitamin B6 levels increases functional vitamin B6 levels.

[0130]

[0154] Various changes and modifications to the presently preferred embodiments disclosed herein will be apparent to those skilled in the art. Such changes and modifications can be made without departing from the spirit and scope of the inventive subject matter and without diminishing its intended advantages. Accordingly, such changes and modifications are intended to be covered by the appended claims.

Claims

1. One or more aromatic amino acids (AAA) and vitamin B6 in a therapeutically effective amount, the one or more aromatic amino acids are in free form; the one or more aromatic amino acids include at least one selected from the group consisting of tryptophan (Trp), phenylalanine (Phe), tyrosine (Tyr), and combinations thereof; A unit dosage form of a composition for preventing and / or treating sarcopenia or improving skeletal muscle mass, skeletal muscle lean mass, skeletal muscle strength, and / or skeletal muscle function.

2. 2. The unit dosage form of claim 1, wherein the one or more aromatic amino acids include tyrosine (Tyr).

3. 2. The unit dosage form of claim 1, wherein the one or more aromatic amino acids further comprise histidine (His).

4. 2. The unit dosage form of claim 1, wherein the one or more aromatic amino acids are a combination of aromatic amino acids (AAA) of Trp, Phe, Tyr, and His, and the daily dosage of total AAA, the Trp, the Tyr, the Phe, and the His is 3.0-20.0 g / day, 0.2-3.0 g / day, 1.5-8.8 g / day, 1.5-10.7 g / day, and 0.9-5.6 g / day, respectively.

5. 10. The unit dosage form of claim 1, further comprising an EAA and / or BCAA selected from the group consisting of methionine (Met), lysine (Lys), valine (Val), leucine (Leu), isoleucine (Ile), threonine (Thr), and combinations thereof.

6. 10. The unit dosage form of claim 1, comprising an amount of vitamin B6 effective to increase functional vitamin B6.

7. 7. The unit dosage form of claim 6, wherein vitamin B6 is in an amount of 1.0 to 12.0 mg per 300.0 Kcal of energy of the composition, or 1.0 to 25.0 mg per day.

8. 10. The unit dosage form of claim 1, wherein the composition is an oral nutritional composition, a dietary supplement, an oral nutritional supplement, a medical food, a food supplement, a food product, or a food for special medical purposes (FSMP).

9. 10. The unit dosage form of claim 1, wherein the composition is in the form of a solid powder, a powder stick, a capsule, or a solution.

10. A kit for preventing and / or treating and / or ameliorating sarcopenia, improving skeletal muscle mass, improving lean mass, improving muscle strength and / or improving skeletal muscle function, comprising a therapeutically effective amount of one or more aromatic amino acids and vitamin B6; the one or more aromatic amino acids are in free form; The kit, wherein the one or more aromatic amino acids comprise at least one selected from the group consisting of tryptophan (Trp), phenylalanine (Phe), tyrosine (Tyr), and combinations thereof.

11. The kit of claim 10 , wherein the one or more aromatic amino acids include tyrosine (Tyr).

12. 11. The kit of claim 10, wherein the kit comprises at least two capsules, the at least two capsules comprising a first capsule comprising the vitamin B6, and the at least two capsules further comprising a second capsule comprising the one or more aromatic amino acids.

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