SMOKABIVEN PERIPHERAL EMULSION FOR INFUSION
Glucose/Alanine/Arginine/Glycine/Histidine/Isoleucine/Leucine/Lysine/Methionine/Phenylalanine/Proline/Serine/Taurine/Threonine/Tryptophan/Tyrosine/Valine/Calcium chloride (as dihydrate)
What it does
Alanine is an amino acid that plays a role in protein production and energy metabolism.
Commonly used for: supporting muscle health, aiding recovery after exercise, providing energy
Read more in plain English ↓Plain-language summary for general understanding - not medical advice. Always follow your pharmacist/doctor.
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Sourcing - Kenya onlyRegistration & product details
Source: Food and Drugs Authority · fetched 2026-04-18 08:33:00 · updated 2026-09-25 04:00:11
Drug Interactions
1Pharmacodynamic Warnings
Tryptophan appears in TABLE 13: Drugs that cause serotonin syndrome
Unknown (1)
Levodopa - decreases concentration
Tryptophan greatly decreases the concentration of levodopa.
Data from BNF 85 (British National Formulary). This is not a substitute for professional medical advice. Matched via: exact
About alanine
Alanine is an amino acid that plays a role in protein production and energy metabolism.
What it treats
- supporting muscle health
- aiding recovery after exercise
- providing energy
How it works
Alanine helps the body produce proteins and can be used as a source of energy during physical activity.
Who it's for
People looking to support muscle health or enhance recovery after exercise.
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
About arginine
Arginine is an amino acid that helps with various bodily functions, including blood flow and immune support.
What it treats
- heart disease
- erectile dysfunction
- high blood pressure (hypertension)
- sickle cell disease
How it works
Arginine helps produce nitric oxide, which widens blood vessels and improves blood flow.
Who it's for
Arginine is for adults who may need support for heart health, blood circulation, or sexual function.
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
About glucose
Glucose is a simple sugar that provides energy to the body.
What it treats
- low blood sugar (hypoglycemia)
- energy supplement
How it works
Glucose quickly raises blood sugar levels, providing immediate energy.
Who it's for
People who need quick energy, especially those with low blood sugar.
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
About glycine
Glycine is an amino acid that plays a role in various bodily functions.
What it treats
- supporting mood and mental health
- helping with sleep issues
- aiding muscle recovery
How it works
Glycine helps to build proteins in the body and can have a calming effect on the brain.
Who it's for
Glycine may be suitable for adults looking to improve their mood, sleep, or muscle recovery.
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
About histidine
Histidine is an amino acid that plays a role in various bodily functions and is important for growth and tissue repair.
What it treats
- nutritional support
- growth issues
- tissue repair
How it works
Histidine helps the body produce proteins and enzymes that are essential for many physiological processes.
Who it's for
Histidine may be beneficial for individuals needing extra nutritional support, such as those recovering from illness or surgery.
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
About isoleucine
Isoleucine is an essential amino acid that helps in building proteins and is important for muscle health.
What it treats
- muscle growth
- muscle repair
- nutritional support
How it works
Isoleucine helps your body produce proteins, which are necessary for growth and health, especially in muscles.
Who it's for
It is suitable for people needing extra protein support, such as athletes or those recovering from surgery.
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
About leucine
Leucine is an essential amino acid that helps the body build proteins and is important for muscle health.
What it treats
- muscle growth
- muscle repair
- nutrition support
How it works
Leucine helps stimulate protein synthesis in the body, which is essential for building and repairing muscles.
Who it's for
Leucine is beneficial for athletes, bodybuilders, and anyone looking to improve muscle health.
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
About lysine
Lysine is an essential amino acid that helps your body build proteins and supports immune function.
What it treats
- to support the treatment of cold sores (herpes simplex)
- to promote muscle recovery and growth
- to improve overall health and wellness
How it works
Lysine helps the body produce proteins and supports various bodily functions, including the immune system.
Who it's for
Lysine is for people looking to boost their protein intake, support immune health, or manage cold sores.
Cautions
- • Consult a healthcare professional if you have kidney issues.
- • May cause gastrointestinal discomfort in some individuals.
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
About methionine
Methionine is an amino acid that plays a role in various body functions, including making proteins and supporting metabolism.
What it treats
- liver disease
- certain types of depression
- cognitive disorders
How it works
Methionine helps in the production of important substances in the body, such as proteins and antioxidants.
Who it's for
Methionine may be used by adults and children who need support for liver health or specific mental health conditions.
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
About phenylalanine
Phenylalanine is an amino acid that helps in the production of proteins in the body.
What it treats
- Phenylketonuria (PKU)
- Dietary supplement
How it works
Phenylalanine is used by the body to create proteins, which are important for growth and repair of tissues.
Who it's for
This is mainly for people with phenylketonuria (PKU) who need to manage their phenylalanine levels.
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
About proline
Proline is an amino acid that plays a vital role in protein synthesis and is important for various bodily functions.
What it treats
- promoting healing
- supporting muscle health
- nutritional supplementation
How it works
Proline helps the body build proteins, which are essential for growth and repair of tissues.
Who it's for
Proline is suitable for individuals looking to improve their recovery, support their muscles, or enhance their nutritional intake.
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
About serine
Serine is an amino acid that plays a role in building proteins and supporting various body functions.
What it treats
- supporting protein synthesis
- neurotransmitter function
- muscle metabolism
How it works
Serine helps in the creation of proteins and other important molecules in the body.
Who it's for
It is used by individuals needing support for their protein intake or metabolic processes.
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
About taurine
Taurine is an amino acid that supports various bodily functions.
What it treats
- heart health
- eye health
- brain function
- muscle performance
How it works
Taurine helps regulate water and mineral levels in the blood and supports the function of the heart and muscles.
Who it's for
Taurine is for individuals looking to support their overall health, especially in relation to the heart and muscles.
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
About threonine
Threonine is an amino acid that is important for the body's protein production.
What it treats
- supporting protein synthesis
- promoting muscle growth
- aiding in the production of antibodies
How it works
Threonine helps the body build proteins which are essential for various functions including muscle development and immune response.
Who it's for
Threonine is suitable for individuals needing extra support in protein intake, such as athletes or those with specific dietary needs.
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
About tryptophan
Tryptophan is an amino acid that helps the body produce serotonin, a chemical that can affect mood and sleep.
What it treats
- depression
- anxiety
- insomnia
- mood disorders
How it works
Tryptophan is converted in the body to serotonin, which helps improve mood and regulate sleep.
Who it's for
Adults looking for support with mood and sleep issues.
Cautions
- • Be careful if taking other medications that can lead to serotonin syndrome, a serious condition caused by too much serotonin.
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
About tyrosine
Tyrosine is an amino acid that helps the body produce important substances like neurotransmitters and hormones.
What it treats
- stress
- depression
- attention deficit hyperactivity disorder (ADHD)
- phenylketonuria (PKU)
How it works
Tyrosine is a building block for proteins and is involved in making brain chemicals that affect mood and mental function.
Who it's for
Tyrosine may be suitable for those experiencing stress, mood disorders, or certain metabolic conditions.
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
About valine
Valine is an essential amino acid that the body needs for growth and tissue repair.
What it treats
- muscle recovery
- supporting immune function
How it works
Valine helps build proteins and is important for energy production in muscles.
Who it's for
This is for individuals needing extra support for muscle health or recovery, especially athletes.
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
Clinical monograph: Glucose
BNF-referencedGlucose is a simple sugar and a vital carbohydrate that serves as the primary energy source for human cells. It is essential for various metabolic processes, providing energy through glycolysis and subsequent pathways. Glucose is utilized by nearly all tissues and plays a crucial role in maintaining energy homeostasis in the body. It can be administered orally or intravenously and is commonly used in clinical settings for fluid and electrolyte management.
Indications
- Fluid and electrolyte imbalances
- Hypoglycemia
- Nutritional supplementation
- Diabetic emergencies
Dosage
Children: Refer to the BNF for Children for appropriate paediatric dosing guidelines.
Adults: The dosage varies based on the clinical condition and specific formulation used. For intravenous administration, consult product literature for precise dosing.
Mechanism of action
Glucose supplies energy to tissues by undergoing glycolysis, which begins with its phosphorylation by hexokinase to form glucose 6-phosphate. This activates glucose for breakdown, ultimately generating ATP and NADH. The aerobic metabolism of glucose can yield up to 36 ATP molecules. Glucose also serves as a precursor for other biomolecules and regulates various physiological processes including gene transcription and hormone secretion.
Pharmacodynamics
Glucose is an obligatory energy source for cellular activities and plays a significant role in metabolic signaling. It is oxidized to yield energy through glycolysis, the citric acid cycle, and oxidative phosphorylation. Glucose can be converted into fat for energy storage and is stored as glycogen in the liver and muscles. Its administration increases blood glucose levels and stimulates insulin secretion, particularly through oral routes that activate gut incretin hormones.
Pharmacokinetics
Glucose is rapidly absorbed from the gastrointestinal tract or directly into the bloodstream when administered intravenously. It is distributed widely throughout the body and metabolized primarily in tissues requiring energy. The body maintains glucose homeostasis through regulatory mechanisms involving insulin and glucagon. Excess glucose can be stored as glycogen or converted to triglycerides for long-term energy storage.
Adverse effects
- Hyperglycemia
- Increased osmolarity
- Fluid overload
- Electrolyte imbalances
Interactions
- Insulin - may require dose adjustments
Precautions
- Use with caution in patients with diabetes mellitus
- Monitor blood glucose levels in patients receiving parenteral glucose
- Adjust dosage in renal impairment
Pregnancy
Glucose is generally considered safe in pregnancy; however, monitoring is advised, especially in diabetic patients.
Breast-feeding
Glucose is considered safe during breastfeeding, as it is a natural sugar found in breast milk.
Storage
Store at room temperature, away from light. Avoid freezing.
Formulations
- Glucose 5% solution for infusion
- Glucose 10% solution for infusion
- Glucose 0.9% solution for injection
- Glucose sodium chloride combination solutions
AI-synthesized from BNF references - general information only, not a substitute for professional medical advice or the current BNF. Verify doses with a pharmacist.
Clinical monograph: Arginine
BNF-referencedArginine is an amino acid used primarily as a dietary supplement in the management of urea cycle disorders, particularly in cases of hyperammonaemia due to various enzymatic deficiencies.
Indications
- Urea cycle disorders
- Hyperammonaemia types I and II
- Citrullinaemia
- Arginosuccinic aciduria
- Deficiency of N-acetyl glutamate synthetase
- Acute hyperammonaemia in carbamylphosphate synthetase deficiency
- Acute hyperammonaemia in ornithine transcarbamylase deficiency
Dosage
Children: Neonate: 100–300 mg/kg daily in 3–4 divided doses; Child (body-weight up to 40 kg): 6 mg/kg/hour; Child (body-weight 40 kg and above): 4 mg/kg/hour.
Adults: Refer to BNF for specific dosing based on condition; typically administered as 5–50 mg/kg twice daily, adjusted according to plasma ammonia concentration.
Mechanism of action
Arginine serves as a substrate for the synthesis of nitric oxide (NO), a crucial signaling molecule, and contributes to the urea cycle, facilitating the detoxification of ammonia in the liver.
Pharmacodynamics
As a precursor for nitric oxide, arginine plays a vital role in vasodilation and modulating blood flow. It also aids in protein synthesis and supports metabolic processes in the body.
Pharmacokinetics
Arginine is absorbed from the gastrointestinal tract and is distributed throughout the body. It undergoes hepatic metabolism, primarily via the urea cycle, and its half-life is influenced by renal function.
Pregnancy
Use only if clearly needed; consult specialist.
Breast-feeding
Use with caution; benefits should outweigh risks.
Storage
Store in a cool, dry place away from direct sunlight.
Formulations
- L-Arginine 500 mg tablets
- L-Arginine 1 gram tablets
- L-Arginine powder for solution
- L-Arginine 500 mg capsules
- L-Arginine 21% concentrate for solution for infusion
AI-synthesized from BNF references - general information only, not a substitute for professional medical advice or the current BNF. Verify doses with a pharmacist.
Clinical monograph: Tryptophan
BNF-referencedTryptophan is an essential amino acid that serves as a precursor for serotonin and melatonin. It plays a crucial role in protein synthesis and the production of various neurotransmitters. Tryptophan is utilized for its potential therapeutic effects in treating conditions such as depression and insomnia by enhancing serotonin levels in the brain. It may also aid in reducing anxiety, chronic pain, and impulsivity.
Indications
- Depression
- Insomnia
- Anxiety
- Chronic pain
- Obsessive-compulsive disorder
- Seasonal affective disorder
Dosage
Children: Refer to the BNF for Children for appropriate dosing information.
Adults: Initially, 10-25 mg three times a day, increased as necessary to a maximum of 6 g per day.
Mechanism of action
Tryptophan undergoes catabolism, where it is converted into kynurenine, which then leads to the formation of kynurenic acid, known for its antiexcitotoxic and anticonvulsant properties. Additionally, tryptophan is a precursor for serotonin, influencing mood regulation and sleep cycles. Enhanced serotonin turnover linked to tryptophan can inhibit thyroid-stimulating hormone (TSH) and stimulate prolactin release.
Pharmacodynamics
Tryptophan is vital for the synthesis of proteins, enzymes, and muscle tissue. It is also essential for niacin production and acts as a natural relaxant, alleviating insomnia and reducing anxiety and depression. The amino acid has shown promise in pain relief, treatment of obsessive-compulsive disorders, and may support immune function, thereby reducing the risk of cardiac spasms.
Pharmacokinetics
Tryptophan is absorbed in the gastrointestinal tract, with peak plasma concentrations typically occurring within 1-2 hours after ingestion. It is metabolized primarily in the liver, with a portion converted to serotonin. The elimination half-life of tryptophan varies but is typically within a few hours. Tryptophan can cross the blood-brain barrier, influencing central nervous system functions.
Contra-indications
- History of eosinophilia myalgia syndrome following use of tryptophan
- Severe hepatic impairment
Adverse effects
- Asthenia
- Dizziness
- Drowsiness
- Dry mouth
- Hyperglycaemia
- Hyperhidrosis
- Hypotension
- Jaundice
- Mood alteration
- Nausea
- Oedema
- Rash
- Suicidal behaviours
- Convulsions
- Respiratory failure
- Cardiac conduction defects
- Myalgia
- Headache
- Hypothermia
- Eosinophilia
Interactions
- Tryptophan may decrease the concentration of levodopa
Precautions
- Close monitoring for signs of suicidal thoughts, particularly in vulnerable populations
- Elderly patients should be started on lower doses with close monitoring for side effects
- Treatment should be discontinued if manic symptoms occur
Pregnancy
Use only if potential benefit outweighs risk, as no information is available.
Breast-feeding
The amount secreted into breast milk is too small to be harmful, but avoid use due to lack of data.
Storage
Store in a cool, dry place away from light. Keep out of reach of children.
Formulations
- Tablets (25 mg, 50 mg)
- Capsules
- Oral suspension
- Oral solution
AI-synthesized from BNF references - general information only, not a substitute for professional medical advice or the current BNF. Verify doses with a pharmacist.
Clinical monograph: Glycine
BNF-referencedGlycine is a non-essential amino acid that plays a significant role in various physiological processes, including neurotransmission and immune function. It acts as an inhibitory neurotransmitter in the central nervous system by binding to specific receptors. Glycine is also involved in the synthesis of proteins, hormones, and other biomolecules, contributing to metabolic processes. In clinical practice, glycine is primarily used in irrigation solutions during urological surgeries.
Indications
- Bladder irrigation during urological surgery
- Irrigation for transurethral resection of the prostate gland
- Irrigation for bladder tumors
Dosage
Children: Refer to the BNF for Children for pediatric dosing guidelines.
Adults: Refer to the product literature for specific dosing information.
Mechanism of action
Glycine binds to strychnine-sensitive and strychnine-insensitive glycine receptors in the central nervous system. The strychnine-sensitive receptor is a chloride channel that enhances inhibitory neurotransmission. This action may contribute to glycine's potential antispastic effects. Additionally, glycine potentiates NMDA receptor-mediated neurotransmission, which may have implications in managing certain neurological conditions, such as neuroleptic-resistant negative symptoms in schizophrenia.
Pharmacodynamics
Glycine plays a crucial role in various biological functions, including energy metabolism and immune response. It is involved in hormone synthesis and helps in modulating neurotransmitter release, particularly in inhibitory pathways. Glycine's ability to enhance chloride conductance in neurons contributes to its antispastic properties and its potential to mitigate oxidative stress in immune responses.
Pharmacokinetics
Glycine is absorbed readily in the gastrointestinal tract and is utilized by the body for protein synthesis and other metabolic functions. The distribution of glycine in the body is widespread, as it is present in various tissues. Glycine is metabolized in the liver and other tissues, with excretion primarily occurring via the kidneys. The pharmacokinetics of glycine can be influenced by factors such as age, renal function, and overall health status.
Adverse effects
- Fluid overload
- Electrolyte imbalance
- Nausea
- Vomiting
- Headache
- Hypotension
Precautions
- Monitor for signs of fluid overload during irrigation
- Use caution in patients with pre-existing electrolyte imbalances
- Careful consideration in patients with renal impairment
Pregnancy
Glycine is generally considered safe for use during pregnancy when used as an irrigation solution, but risks should be discussed with a healthcare provider.
Breast-feeding
Glycine is likely safe during breastfeeding, but limited data is available. Consultation with a healthcare professional is advisable.
Storage
Store in a cool, dry place. Protect from light. Do not freeze.
Formulations
- Glycine 1.5% irrigation solution 3 litre Easyflow bags
- Glycine 1.5% irrigation solution 1 litre Flowfusor bottles
- Glycine 1.5% irrigation solution 1 litre Easyflow bags
- Glycine 1.5% irrigation solution 2 litre Flowfusor bottles
AI-synthesized from BNF references - general information only, not a substitute for professional medical advice or the current BNF. Verify doses with a pharmacist.
Clinical monograph: alanine
BNF-referencedL-Alanine is a non-essential amino acid that plays a significant role in various metabolic processes. It is abundant in plasma and is produced from pyruvate through transamination. This amino acid is crucial for energy production in muscle tissues, the brain, and the central nervous system. Additionally, L-Alanine contributes to sugar and acid metabolism, enhances immune function, and is involved in the Alanine-Glucose cycle, which is vital for maintaining blood sugar levels during prolonged physical activity.
Indications
- Nutritional supplementation
- Support for muscle metabolism
- Enhancement of immune function
Dosage
Children: Refer to the BNF for Children for appropriate paediatric dosing guidelines.
Adults: Refer to the BNF for specific dosing information as it varies based on clinical indications.
Mechanism of action
L-Alanine is synthesized from pyruvate via transamination. It serves as an energy source for muscle cells and is significant in the Alanine-Glucose cycle, where it is converted to glucose in the liver. This process is pivotal for regulating blood sugar levels, especially during extended exercise, when branched-chain amino acids (BCAAs) are used for energy and their nitrogen portions are utilized to form L-Alanine.
Pharmacodynamics
L-Alanine is an important energy source for muscle tissue, the brain, and the central nervous system. It strengthens the immune system by facilitating the production of antibodies and plays a role in the metabolism of sugars and organic acids, which are essential for various physiological functions.
Pharmacokinetics
L-Alanine is readily available in the plasma as a free amino acid. It is involved in several metabolic pathways, including biotin metabolism and tRNA charging. The metabolism of L-Alanine primarily occurs in the liver, where it can be converted into glucose, thus participating in the body's energy homeostasis.
Pregnancy
There are no known specific contraindications for the use of alanine during pregnancy; however, it should be used under medical supervision.
Breast-feeding
There is limited data on the effects of alanine during breastfeeding, and it is advised to consult a healthcare provider before use.
Storage
Store in a cool, dry place away from direct sunlight and moisture.
Formulations
- L-Alanine powder
- L-Alanine capsules
- L-Alanine tablets
AI-synthesized from BNF references - general information only, not a substitute for professional medical advice or the current BNF. Verify doses with a pharmacist.
Clinical monograph: histidine
BNF-referencedHistidine is an essential amino acid that plays a crucial role in various physiological processes, including protein synthesis and the production of histamine, a key mediator in immune responses. It is also involved in the chelation of metal ions such as copper, iron, and zinc. Histidine is known for its potential immunomodulatory and antioxidant properties, which may be beneficial in conditions like rheumatoid arthritis and certain allergic diseases.
Indications
- Rheumatoid arthritis
- Allergic diseases
- Peptic ulcers
- Anemia
Dosage
Children: Refer to BNF for Children for specific paediatric dosing recommendations.
Adults: Refer to BNF for specific dosing information based on condition and individual patient factors.
Mechanism of action
The specific actions of supplemental L-histidine are not completely understood, but it is known that L-histidine serves as a precursor for histamine through the process of decarboxylation. Histamine is associated with immunomodulatory and antioxidant effects, which may help in conditions such as rheumatoid arthritis by activating suppressor T cells and reducing reactive oxygen species production in immune cells. Additionally, L-histidine can chelate metals that participate in oxidative reactions, potentially protecting tissues from oxidative damage.
Pharmacodynamics
Histidine is essential for the synthesis of proteins and is found in high concentrations in hemoglobin. Its metabolites, including histamine, play significant roles in immune response regulation and oxidative stress management. A deficiency in histidine can lead to various health issues, including impaired hearing and reduced immune function.
Pharmacokinetics
Histidine is readily absorbed in the intestines and distributed throughout the body. It undergoes metabolic conversion primarily in the liver, where it is transformed into histamine and other metabolites. The elimination of histidine occurs through various metabolic pathways, and it is excreted in urine primarily as metabolites.
Pregnancy
Histidine is generally regarded as safe during pregnancy when consumed in food. However, the safety of high-dose supplementation has not been established.
Breast-feeding
Histidine is considered safe during breastfeeding in dietary amounts. The effects of high-dose supplementation are not well studied.
Storage
Store in a cool, dry place, away from direct sunlight. Keep out of reach of children.
Formulations
- L-histidine capsules
- L-histidine powder
AI-synthesized from BNF references - general information only, not a substitute for professional medical advice or the current BNF. Verify doses with a pharmacist.
Clinical monograph: isoleucine
BNF-referencedIsoleucine is an essential branched-chain amino acid (BCAA) that plays a critical role in human nutrition and metabolism. It cannot be synthesized by the body and must be obtained from dietary sources. Isoleucine is involved in various metabolic processes including protein synthesis, energy production, and regulation of blood sugar levels. It contributes to muscle repair and growth, making it particularly important for athletes and individuals engaging in regular exercise.
Indications
- Protein deficiency
- Muscle wasting conditions
- Nutritional support in sports and exercise
- Metabolic disorders involving branched-chain amino acids
Dosage
Children: Refer to BNF for Children for appropriate dosing based on age and clinical condition.
Adults: Refer to BNF for appropriate dosing based on clinical condition and dietary requirements.
Mechanism of action
Isoleucine catabolism begins with a transamination reaction involving BCAA aminotransferase and a-ketoglutarate, leading to the formation of different a-keto acids. The catabolism of isoleucine results in the production of acetylCoA and propionylCoA, indicating that it has both glucogenic and ketogenic properties. This process utilizes common enzymes with valine and leucine, allowing for efficient energy production through ATP generation.
Pharmacodynamics
Isoleucine, along with other BCAAs, is vital for synthesizing various biochemical components in the body. These include neurotransmitters and other molecules that enhance alertness and cognitive function. Isoleucine also plays a significant role in muscle metabolism, promoting recovery and reducing muscle soreness after intense physical activity.
Pharmacokinetics
As an amino acid, isoleucine is absorbed through the gastrointestinal tract and enters the bloodstream, where it can be utilized by tissues. It has a relatively short half-life and is rapidly taken up by muscle tissue, especially during exercise. The metabolism of isoleucine primarily occurs in the liver and muscle. Its catabolic pathways generate intermediates that enter various metabolic cycles, contributing to energy production and the synthesis of other important biomolecules.
Adverse effects
- Gastrointestinal discomfort
- Diarrhea
- Nausea
- Fatigue
Precautions
- Use with caution in patients with metabolic disorders affecting amino acid metabolism
- Monitor for potential gastrointestinal side effects
Pregnancy
Isoleucine is classified as an essential amino acid and is generally considered safe for use during pregnancy, but consultation with a healthcare provider is advised.
Breast-feeding
Isoleucine is naturally present in breast milk and is considered safe when used appropriately during breastfeeding.
Storage
Store in a cool, dry place away from direct sunlight. Keep out of reach of children.
Formulations
- Tablets
- Capsules
- Powder for oral solution
AI-synthesized from BNF references - general information only, not a substitute for professional medical advice or the current BNF. Verify doses with a pharmacist.
Clinical monograph: leucine
BNF-referencedLeucine is an essential branched-chain amino acid (BCAA) that plays a crucial role in protein metabolism, particularly in muscle tissue. It cannot be synthesized by the human body and must be obtained through dietary sources. Leucine is involved in various metabolic processes, including energy regulation, blood sugar control, and muscle repair. It is essential for the production of growth hormone and may aid in the prevention of muscle protein breakdown during periods of stress or trauma.
Indications
- Nutritional supplementation for muscle recovery
- Support for athletes in muscle growth and repair
- Management of conditions associated with protein metabolism
- Potential therapeutic use in phenylketonuria
Dosage
Children: Refer to BNF for Children for appropriate dosing guidelines according to age and clinical condition.
Adults: Refer to BNF for appropriate dosing guidelines based on individual needs and therapeutic goals.
Mechanism of action
Leucine undergoes catabolism primarily in muscle tissue, yielding acetyl-CoA and acetoacetyl-CoA. This process begins with a transamination reaction facilitated by branched-chain amino acid aminotransferase, followed by oxidation through branched-chain alpha-keto acid dehydrogenase. The breakdown of leucine contributes to ATP generation and serves as a source of energy. Leucine also influences signaling pathways related to protein synthesis and muscle growth.
Pharmacodynamics
Leucine is recognized for its role in regulating blood sugar levels, promoting muscle growth and repair, and enhancing recovery from injuries. It is vital for the synthesis of proteins and the production of growth hormone. Leucine also helps prevent muscle protein degradation, which is particularly beneficial during physical stress or trauma. Additionally, it may support metabolic functions in individuals with specific genetic disorders such as phenylketonuria.
Pharmacokinetics
Leucine is absorbed in the gastrointestinal tract and transported via the bloodstream to various tissues, especially muscle. The metabolism of leucine occurs primarily in muscle tissue, with the end products entering various metabolic pathways. The kinetics of leucine involve its incorporation into proteins, catabolism, and its role in signaling pathways related to muscle metabolism. The half-life and clearance rates are not well-defined due to its classification as an essential amino acid and the variability in individual metabolism.
Pregnancy
Leucine is an essential amino acid and is generally considered safe during pregnancy; however, it is important to consult with a healthcare provider for personalized advice.
Breast-feeding
Leucine is present in breast milk and is considered safe during breastfeeding, but it is advisable to discuss with a healthcare professional before supplementation.
Storage
Store in a cool, dry place away from direct sunlight. Keep out of reach of children.
Formulations
- Powder
- Capsules
- Tablets
AI-synthesized from BNF references - general information only, not a substitute for professional medical advice or the current BNF. Verify doses with a pharmacist.
Clinical monograph: lysine
BNF-referencedLysine is an essential amino acid that plays a crucial role in various physiological processes, including protein synthesis, calcium absorption, and the production of antibodies, hormones, and enzymes. It is particularly noted for its potential in inhibiting the replication of the herpes simplex virus when present in higher ratios relative to L-arginine. Lysine deficiency can lead to a range of health issues such as fatigue, irritability, and reproductive problems.
Indications
- Herpes simplex virus infections
- Lysine deficiency
Dosage
Children: Refer to the BNF for Children for specific dosage recommendations.
Adults: Refer to the BNF for specific dosage recommendations.
Mechanism of action
Lysine inhibits the viral replication of the herpes simplex virus by altering the amino acid ratio in the tissue culture media. A higher concentration of L-lysine compared to L-arginine has been shown to reduce viral growth and cytopathogenicity. Additionally, lysine facilitates calcium absorption from the small intestine and is involved in protein synthesis through its role in the tRNA charging process, linking amino acids to their corresponding tRNA for translation.
Pharmacodynamics
Lysine ensures adequate calcium absorption and is involved in the formation of collagen, essential for bone, cartilage, and connective tissues. It aids in the production of various biological molecules, including antibodies, hormones, and enzymes. Deficiency in lysine can manifest as tiredness, inability to concentrate, irritability, and other health issues.
Pharmacokinetics
Lysine is absorbed in the small intestine and is transported in the bloodstream to various tissues, where it participates in protein synthesis and other metabolic processes. The metabolism of lysine involves its degradation and utilization in various biosynthetic pathways.
Adverse effects
- Gastrointestinal upset
- Diarrhea
- Nausea
- Abdominal pain
Precautions
- Use with caution in individuals with kidney disease
- Consult a healthcare professional before use if pregnant or breastfeeding
Pregnancy
Safety in pregnancy has not been established. Consult a healthcare professional before use.
Breast-feeding
Lysine is generally considered safe in breastfeeding, but consult a healthcare professional before use.
Storage
Store in a cool, dry place away from direct sunlight. Keep out of reach of children.
Formulations
- Oral tablet
- Oral capsule
- Powder for oral solution
AI-synthesized from BNF references - general information only, not a substitute for professional medical advice or the current BNF. Verify doses with a pharmacist.
Clinical monograph: methionine
BNF-referencedMethionine is an essential amino acid that plays a critical role in various metabolic processes, including protein synthesis, detoxification, and antioxidant defense. It serves as a precursor to other important biomolecules, including L-cysteine and S-adenosylmethionine, contributing to cellular functions such as methylation and sulfur metabolism. Methionine is also involved in the synthesis of lecithin, which is significant for liver health and cholesterol metabolism. Additionally, methionine has potential protective effects against hepatotoxic agents, including acetaminophen.
Indications
- Methionine deficiency
- Hepatotoxicity prevention
- Cholesterol management
Mechanism of action
The mechanism of the possible anti-hepatotoxic activity of L-methionine is not entirely clear. It is thought that metabolism of high doses of acetaminophen in the liver leads to decreased levels of hepatic glutathione and increased oxidative stress. L-methionine serves as a precursor to L-cysteine, which has antioxidant properties and is a precursor to glutathione. The antioxidant activity of L-methionine and its metabolites likely contribute to its potential anti-hepatotoxic effects. Methionine also exhibits free-radical scavenging activity and chelating ability due to its sulfur content.
Pharmacodynamics
L-Methionine functions as a primary supplier of sulfur, which is essential for preventing hair, skin, and nail disorders. It aids in lowering cholesterol levels by enhancing the liver's production of lecithin, reducing liver fat, and protecting kidney function. Methionine acts as a natural chelating agent for heavy metals and helps regulate ammonia formation, contributing to ammonia-free urine and reduced bladder irritation. Furthermore, it influences hair follicles and promotes hair growth, in addition to its potential protective effects against hepatotoxins like acetaminophen.
Pharmacokinetics
Methionine is absorbed from the gastrointestinal tract and is distributed throughout the body, where it is utilized in protein synthesis and converted into other metabolites, such as S-adenosylmethionine and L-cysteine. The metabolism of methionine involves several pathways, including transsulfuration to cysteine and incorporation into proteins. The renal clearance of methionine is significant, as it is involved in the regulation of nitrogen balance and the formation of ammonia.
Adverse effects
- Nausea
- Vomiting
- Abdominal pain
- Allergic reactions
Precautions
- Use with caution in patients with liver disease
- Monitor for allergic reactions in sensitive individuals
Pregnancy
There is insufficient evidence to determine the safety of methionine during pregnancy. Consult a healthcare provider before use.
Breast-feeding
It is not known whether methionine is excreted in human milk. Caution is advised when administering to breastfeeding women.
Storage
Store in a cool, dry place away from direct sunlight. Keep out of reach of children.
Formulations
- Oral tablets
- Powder for oral solution
AI-synthesized from BNF references - general information only, not a substitute for professional medical advice or the current BNF. Verify doses with a pharmacist.
Clinical monograph: phenylalanine
BNF-referencedPhenylalanine is an essential amino acid that plays a vital role in the synthesis of proteins and the production of important neurotransmitters, including norepinephrine and dopamine. It is implicated in various physiological processes, including mood regulation, cognitive function, and the stimulation of melanin production in the skin. Due to its significance in neurotransmitter synthesis, phenylalanine may hold potential therapeutic benefits for conditions such as depression and vitiligo.
Indications
- Depression
- Cognitive deficits
- Attention Deficit Hyperactivity Disorder (ADHD)
- Vitiligo
Dosage
Children: Refer to the BNF for Children for age-appropriate dosing.
Adults: Refer to the BNF for specific dosing guidelines.
Mechanism of action
The antidepressant effects of L-phenylalanine are thought to arise from its role as a precursor in synthesizing norepinephrine and dopamine. These neurotransmitters are associated with mood elevation and cognitive enhancement. Additionally, L-phenylalanine may stimulate melanin production, although the exact mechanism for this activity is not well understood. The amino acid is involved in protein synthesis through its interaction with transfer RNA (tRNA) and messenger RNA (mRNA), facilitating the translation process essential for generating specific proteins.
Pharmacodynamics
L-phenylalanine is utilized by the brain to produce norepinephrine, a neurotransmitter that enhances alertness, reduces hunger, and may exhibit antidepressant properties. Its influence on neurotransmitter levels is crucial for maintaining mood and cognitive functions, while also potentially improving memory and overall mental clarity.
Pharmacokinetics
Phenylalanine is absorbed from the gastrointestinal tract and is transported to various tissues, where it is incorporated into proteins or converted to other compounds, such as tyrosine. The metabolism of phenylalanine involves its conversion via the enzyme phenylalanine hydroxylase, which transforms it into tyrosine, a precursor for neurotransmitters. The elimination half-life and excretion pathway details remain unspecified, with further research required to delineate these aspects.
Pregnancy
There are no well-controlled studies in pregnant women, hence phenylalanine should be used during pregnancy only if the potential benefit justifies the potential risk to the fetus.
Breast-feeding
L-phenylalanine is excreted in breast milk. Caution is advised when administering to nursing mothers.
Storage
Store in a cool, dry place away from direct sunlight. Keep out of reach of children.
Formulations
- L-Phenylalanine tablets
- L-Phenylalanine capsules
- L-Phenylalanine powder
AI-synthesized from BNF references - general information only, not a substitute for professional medical advice or the current BNF. Verify doses with a pharmacist.
Clinical monograph: proline
BNF-referencedProline is a non-essential amino acid that plays a crucial role in the synthesis of proteins, particularly collagen. It is abundant in connective tissues and is involved in various metabolic processes. Proline contributes to the structural integrity of skin, cartilage, and tendons, making it vital for tissue repair and overall musculoskeletal health.
Indications
- Support for connective tissue health
- Muscle repair
- Joint and tendon function
- Skin health maintenance
- Cardiovascular support
Dosage
Children: Refer to BNF for Children for appropriate dosing guidance.
Adults: Refer to BNF for appropriate dosing guidance.
Mechanism of action
Proline is glycogenic, and in the kidney, it is oxidized to form L-Glutamic acid via L-Proline oxidase. L-Glutamic acid and L-Ornithine can be converted back to L-Proline through L-Glutamic acid-gamma-semialdehyde. This metabolic pathway underscores its role in amino acid metabolism and collagen synthesis.
Pharmacodynamics
L-Proline is a major amino acid in cartilage, playing a significant role in maintaining skin elasticity and facilitating the repair of muscle and connective tissue damage. It is essential for the immune system and contributes to the structural functions of joints and tendons. Furthermore, L-Proline supports heart muscle function, thereby promoting cardiovascular health.
Pharmacokinetics
L-Proline is metabolized primarily in the liver and kidneys. Its absorption occurs in the gastrointestinal tract following dietary intake. Once absorbed, it participates in various metabolic pathways, including proline metabolism and tRNA charging, which are crucial for protein synthesis.
Pregnancy
Safety during pregnancy has not been established. Consult a healthcare provider before use.
Breast-feeding
Safety during breastfeeding has not been established. Consult a healthcare provider before use.
Storage
Store in a cool, dry place away from direct sunlight.
Formulations
- Powder
- Capsules
- Tablets
AI-synthesized from BNF references - general information only, not a substitute for professional medical advice or the current BNF. Verify doses with a pharmacist.
Clinical monograph: serine
BNF-referencedL-Serine is a non-essential amino acid that plays a vital role in various biological processes, including cell growth, development, and the synthesis of proteins, enzymes, and muscle tissue. It is also involved in the metabolism of fats and fatty acids, and contributes to the production of antibodies. L-Serine is produced endogenously in the body from common intermediates and can also be obtained from dietary sources.
Dosage
Children: Refer to specific guidelines for paediatric dosing; no standard paediatric dosing provided.
Adults: Refer to specific guidelines as per clinical context; no standard adult dosing provided.
Mechanism of action
L-Serine plays a crucial role in cellular proliferation. It is converted to glycine by serine hydroxymethyltransferase, which provides one-carbon units necessary for the synthesis of purine bases adenine and guanine, essential components of DNA and RNA. Additionally, this conversion supports the production of deoxythymidine monophosphate, a pyrimidine nucleotide critical for DNA synthesis.
Pharmacodynamics
As a nutritionally non-essential amino acid, L-Serine is essential for the production of proteins and enzymes. It aids in the metabolism of fats and fatty acids and is a precursor for antibody production. L-Serine's roles extend beyond metabolic functions; it is also utilized in cosmetic formulations for its moisturizing properties.
Pharmacokinetics
L-Serine is synthesized in the body and can be absorbed from dietary sources. It is distributed throughout the body tissues where it participates in various metabolic pathways, including amino acid biosynthesis and the production of secondary metabolites. The exact pharmacokinetic parameters such as absorption rate, half-life, and excretion pathways are not well-documented in the provided sources.
Pregnancy
Serine is generally considered safe during pregnancy as it is a non-essential amino acid that the body can synthesize. However, pregnant women should consult healthcare professionals before supplementation.
Breast-feeding
Serine is also regarded as safe during breastfeeding, but it is advisable for nursing mothers to seek medical guidance before taking any supplements.
Storage
Store in a cool, dry place away from direct sunlight. Keep out of reach of children.
AI-synthesized from BNF references - general information only, not a substitute for professional medical advice or the current BNF. Verify doses with a pharmacist.
Clinical monograph: taurine
BNF-referencedTaurine is a sulfur-containing amino acid that plays a crucial role in various physiological processes. It is commonly found in high concentrations in the brain, heart, and skeletal muscles. Taurine acts as a dietary supplement to provide nutritional support, particularly in individuals with deficiencies. It is involved in the formation of bile salts, regulation of cell volume, modulation of intracellular calcium levels, and offers cytoprotection for the central nervous system.
Indications
- Nutritional supplementation in adults and children
- Management of conditions related to taurine deficiency
- Support in metabolic disorders
Dosage
Children: Refer to BNF for Children for specific dosing guidelines.
Adults: Refer to BNF for specific dosing guidelines.
Mechanism of action
Taurine functions by replacing missing nutrients in the body. It serves as a substrate for bile salt formation, regulates cell volume, modulates intracellular calcium levels, and provides cytoprotection in the central nervous system.
Pharmacodynamics
Taurine supplements are well-tolerated and serve as a nitrogen source for nutritional support. The administration of taurine regulates plasma amino acid concentrations, nitrogen balance, weight, and serum protein levels to normalize values and enhance overall nutritional status.
Pharmacokinetics
Taurine is absorbed from the gastrointestinal tract and is distributed widely in the body, particularly in tissues with high metabolic activity. It is excreted primarily through urine. The pharmacokinetics may vary based on dietary intake and individual metabolic rates.
Pregnancy
Taurine is generally considered safe during pregnancy, but consult a healthcare provider before use.
Breast-feeding
Taurine is thought to be safe during breastfeeding, but it is advisable to consult a healthcare provider.
Storage
Store in a cool, dry place away from direct sunlight.
Formulations
- Dietary supplements containing taurine
AI-synthesized from BNF references - general information only, not a substitute for professional medical advice or the current BNF. Verify doses with a pharmacist.
Clinical monograph: threonine
BNF-referencedThreonine is an essential amino acid that plays a crucial role in several metabolic processes within the body. It is a precursor to glycine and serine and is important for maintaining protein balance. Threonine supports the formation of collagen, elastin, and tooth enamel, contributing to proper growth and repair of tissues. It also aids in liver function and helps in preventing fat accumulation in the liver, thus acting as a lipotropic agent.
Indications
- Essential amino acid supplementation
- Support for liver function
- Improvement of protein synthesis
- Support in the formation of collagen and elastin
- Aid in digestive health
Dosage
Children: Refer to BNF for Children for appropriate dosage guidelines.
Adults: Refer to BNF for appropriate dosage guidelines.
Mechanism of action
L-Threonine acts as a precursor to the amino acids glycine and serine. It aids in protein synthesis by binding with transfer RNA (tRNA) in the cytoplasm, facilitating the translation of messenger RNA (mRNA) into specific proteins. Threonine's role in lipotropic function helps control fat build-up in the liver and enhances nutrient absorption.
Pharmacodynamics
L-Threonine is essential for maintaining proper protein balance in the body. It supports the synthesis of critical structural proteins and plays a role in metabolic functions related to liver health. Threonine also aids in the formation of collagen and elastin, which are vital for skin and connective tissue integrity.
Pharmacokinetics
Threonine is absorbed in the intestines and utilized by various tissues throughout the body. As an essential amino acid, it cannot be synthesized by the body and must be obtained from dietary sources. Once absorbed, threonine is incorporated into proteins or converted into other metabolites as needed for various physiological functions.
Pregnancy
Threonine is generally considered safe during pregnancy as it is an essential amino acid required for fetal development.
Breast-feeding
Threonine is also considered safe during breastfeeding, as it is essential for protein synthesis and overall growth in infants.
Storage
Store in a cool, dry place away from direct sunlight. Keep out of reach of children.
AI-synthesized from BNF references - general information only, not a substitute for professional medical advice or the current BNF. Verify doses with a pharmacist.
Clinical monograph: tyrosine
BNF-referencedTyrosine is a nonessential amino acid produced in the body through the hydroxylation of phenylalanine. It plays a crucial role in protein synthesis and is a precursor for important neurotransmitters including norepinephrine and dopamine. Tyrosine is involved in various physiological processes, including the production of melanin and thyroid hormones. Its supplementation is associated with mood elevation, improved cognitive function, and stress reduction.
Indications
- Depression
- Cognitive enhancement
- Stress management
- Hypothyroidism
- Chronic fatigue
- Narcolepsy
Dosage
Children: Refer to the BNF for Children for appropriate paediatric dosing guidelines.
Adults: Refer to the prescribing information for specific dosing recommendations based on clinical indication.
Mechanism of action
Tyrosine is synthesized from phenylalanine and serves as a precursor for the neurotransmitters norepinephrine and dopamine. By elevating levels of these neurotransmitters in the brain, tyrosine is thought to exert antidepressant effects, improving mood and cognitive function.
Pharmacodynamics
As a nonessential amino acid, tyrosine is critical for synthesizing proteins, enzymes, and muscle tissue. It is linked to mood elevation and has potential antidepressant properties. Tyrosine supplementation may enhance memory and mental alertness, while deficiencies can lead to issues such as hypothyroidism and low blood pressure.
Pharmacokinetics
Tyrosine is absorbed in the intestine and transported to tissues where it is utilized in the synthesis of proteins and neurotransmitters. Its bioavailability can be affected by dietary intake of phenylalanine and other amino acids. The metabolism of tyrosine involves various pathways, including its conversion into neurotransmitters and involvement in the synthesis of melanin and thyroid hormones.
Adverse effects
- Nausea
- Headache
- Fatigue
- Gastrointestinal upset
- Heartburn
- Joint pain
Interactions
- MAO inhibitors may enhance the effects and side effects of tyrosine
- Thyroid medications may interact with tyrosine supplementation
Precautions
- Use with caution in individuals with hyperthyroidism
- Caution in patients with a history of melanoma or other skin cancers due to tyrosine's role in melanin production
Pregnancy
Tyrosine supplementation should be avoided during pregnancy unless prescribed by a healthcare provider.
Breast-feeding
Consult a healthcare provider before using tyrosine while breastfeeding.
Storage
Store in a cool, dry place away from direct sunlight.
Formulations
- Capsules
- Tablets
- Powder for oral solution
AI-synthesized from BNF references - general information only, not a substitute for professional medical advice or the current BNF. Verify doses with a pharmacist.
Clinical monograph: valine
BNF-referencedValine is an essential branched-chain amino acid (BCAA) vital for various physiological functions. It cannot be synthesized by the human body and must be obtained through dietary sources. Valine plays a crucial role in muscle metabolism, tissue repair, and energy production. It is also involved in the stimulation of growth hormone production and the regulation of blood sugar levels. Given its importance, deficiencies in valine can lead to growth impairment, neuropathy, and anemia.
Indications
- Supplementation for muscle growth and recovery
- Support in exercise and athletic performance
- Management of deficiencies in essential amino acids
- Potential support in metabolic disorders related to BCAA catabolism
Dosage
Children: Refer to the BNF for Children for
Adults: Refer to the BNF for specific dosing recommendations, as dosages can vary based on the condition being treated and the formulation used.
Mechanism of action
Valine's catabolism begins in muscle tissue, where it undergoes transamination catalyzed by a single branched-chain amino acid aminotransferase. The process yields different alpha-keto acids that are further oxidized by branched-chain alpha-keto acid dehydrogenase to produce CoA derivatives, with propionyl-CoA being the principal product. This pathway concludes with the generation of metabolic intermediates essential for energy production and biosynthesis.
Pharmacodynamics
L-valine exhibits stimulant activity that supports muscle growth and tissue repair. It is a precursor in the penicillin biosynthetic pathway and has been shown to enhance energy levels, increase endurance, and facilitate muscle recovery. Valine is necessary for optimal growth in infants and children, and it helps maintain nitrogen balance in adults. Supplementation is recommended in conjunction with isoleucine and leucine in a 2:1:2 ratio for maximum efficacy.
Pharmacokinetics
Valine is absorbed in the gastrointestinal tract and its bioavailability is influenced by dietary factors and the presence of other amino acids. The metabolism of valine primarily occurs in skeletal muscle, where it is catabolized to yield energy. Valine is incorporated into proteins during translation and is excreted primarily in the urine as part of metabolic waste. The half-life and elimination of valine are not extensively documented due to its classification as an amino acid rather than a conventional drug.
Adverse effects
- Neuropathic obstacles
- Anaemia
Precautions
- Supplemental valine should be combined with isoleucine and leucine at a respective milligram ratio of 2:1:2.
Pregnancy
Valine is an essential amino acid necessary for fetal development, but supplementation should be monitored.
Breast-feeding
Valine is present in breast milk and is important for infant growth; however, excessive supplementation should be avoided.
Storage
Store in a cool, dry place away from direct sunlight.
Formulations
- Powder
- Capsules
- Tablets
AI-synthesized from BNF references - general information only, not a substitute for professional medical advice or the current BNF. Verify doses with a pharmacist.
Molecular reference: Arginine
PubChem CID 6322Molecular formula: C6H14N4O2
Mechanism of action
Many of supplemental L-arginine's activities, including its possible anti-atherogenic actions, may be accounted for by its role as the precursor to nitric oxide or NO. NO is produced by all tissues of the body and plays very important roles in the cardiovascular system, immune system and nervous system. NO is formed from L-arginine via the enzyme nitric oxide synthase or synthetase (NOS), and the effects of NO are mainly mediated by 3,'5' -cyclic guanylate or cyclic GMP. NO activates the enzyme guanylate cyclase, which catalyzes the synthesis of cyclic GMP from guanosine triphosphate or GTP. Cyclic GMP is converted to guanylic acid via the enzyme cyclic GMP phosphodiesterase. NOS is a heme-containing enzyme with some sequences similar to cytochrome P-450 reductase. Several isoforms of NOS exist, two of which are constitutive and one of which is inducible by immunological stimuli. The constitutive NOS found in the vascular endothelium is designated eNOS and that present in the brain, spinal cord and peripheral nervous system is designated nNOS. The form of NOS induced by immunological or inflammatory stimuli is known as iNOS. iNOS may be expressed constitutively in select tissues such as lung epithelium. All the nitric oxide synthases use NADPH (reduced nicotinamide adenine dinucleotide phosphate) and oxygen (O2) as cosubstrates, as well as the cofactors FAD (flavin adenine dinucleotide), FMN (flavin mononucleotide), tetrahydrobiopterin and heme. Interestingly, ascorbic acid appears to enhance NOS activity by increasing intracellular tetrahydrobiopterin. eNOS and nNOS synthesize NO in response to an increased concentration of calcium ions or in some cases in response to calcium-independent stimuli, such as shear stress. In vitro studies of NOS indicate that the Km of the enzyme for L-arginine is in the micromolar range. The concentration of L-arginine in endothelial cells, as well as in other cells, and in plasma is in the millimolar range. What this means is that, under physiological conditions, NOS is saturated with its L-arginine substrate. In other words, L-arginine would not be expected to be rate-limiting for the enzyme, and it would not appear that supraphysiological levels of L-arginine which could occur with oral supplementation of the amino acid^would make any difference with regard to NO production. The reaction would appear to have reached its maximum level. However, in vivo studies have demonstrated that, under certain conditions, e.g. hypercholesterolemia, supplemental L-arginine could enhance endothelial-dependent vasodilation and NO production.
Pharmacodynamics
Studies have shown that is has improved immune responses to bacteria, viruses and tumor cells; promotes wound healing and regeneration of the liver; causes the release of growth hormones; considered crucial for optimal muscle growth and tissue repair.
Biological pathways
Source: PubChem (NCBI) · pathways from PathBank, Reactome, WikiPathways & PharmGKB.
Molecular reference: Glucose
PubChem CID 5793Molecular formula: C6H12O6
Mechanism of action
Glucose supplies most of the energy to all tissues by generating energy molecules ATP and NADH during a series of metabolism reactions called glycolysis. Glycolysis can be divided into two main phases where the preparatory phase is initiated by the phosphorylation of glucose by hexokinase to form glucose 6-phosphate. The addition of the high-energy phosphate group activates glucose for the subsequent breakdown in later steps of glycolysis and is the rate-limiting step. Products end up as substrates for following reactions, to ultimately convert C6 glucose molecule into two C3 sugar molecules. These products enter the energy-releasing phase where the total of 4ATP and 2NADH molecules are generated per one glucose molecule. The total aerobic metabolism of glucose can produce up to 36 ATP molecules. These energy-producing reactions of glucose are limited to D-glucose as L-glucose cannot be phosphorylated by hexokinase. Glucose can act as precursors to generate other biomolecules such as vitamin C. It plays a role as a signaling molecule to control glucose and energy homeostasis. Glucose can regulate gene transcription, enzyme activity, hormone secretion, and the activity of glucoregulatory neurons. The types, number, and kinetics of glucose transporters expressed depends on the tissues and fine-tunes glucose uptake, metabolism, and signal generation to preserve cellular and whole body metabolic integrity. Vascular calcification is a hallmark of type 2 diabetes. Glucose stimulates calcification in culture of vascular smooth muscle cells (VSMCs) but the underlying mechanisms remain obscure. We observed that high glucose levels stimulated mouse and human VSMC trans-differentiation into chondrocytes, with increased levels of Sox9, type II collagen, glycosaminoglycan and Runx2 expression, and increased alkaline phosphatase activity and mineralization. These effects were associated with increased expression of IL-1beta, which stimulated alkaline phosphatase and calcification, suggesting that glucose induces chondrocyte differentiation of VSMCs, possibly through IL-1beta activation.
Pharmacodynamics
Blood glucose is an obligatory energy source for humans involved in various cellular activities, and it also acts as a signaling molecule for diverse glucose-sensing molecules and proteins. Glucose undergoes oxidation into carbon dioxide, water, and yields energy molecules in the process of glycolysis and subsequent citric cycle and oxidative phosphorylation. Glucose is readily converted into fat in the body which can be used as a source of energy as required. Under a similar conversion into storage of energy, glucose is stored in the liver and muscles as glycogen. Glucose stores are mobilized in a regulated manner, depending on the tissues' metabolic demands. Oral glucose tablets or injections serve to increase the supply of glucose and oral glucose administration is more effective in stimulating insulin secretion because it stimulates the incretin hormones from the gut, which promotes insulin secretion.
Biological pathways
Source: PubChem (NCBI) · pathways from PathBank, Reactome, WikiPathways & PharmGKB.
Molecular reference: Glycine
PubChem CID 750Molecular formula: C2H5NO2
Mechanism of action
In the CNS, there exist strychnine-sensitive glycine binding sites as well as strychnine-insensitive glycine binding sites. The strychnine-insensitive glycine-binding site is located on the NMDA receptor complex. The strychnine-sensitive glycine receptor complex is comprised of a chloride channel and is a member of the ligand-gated ion channel superfamily. The putative antispastic activity of supplemental glycine could be mediated by glycine's binding to strychnine-sensitive binding sites in the spinal cord. This would result in increased chloride conductance and consequent enhancement of inhibitory neurotransmission. The ability of glycine to potentiate NMDA receptor-mediated neurotransmission raised the possibility of its use in the management of neuroleptic-resistant negative symptoms in schizophrenia. Animal studies indicate that supplemental glycine protects against endotoxin-induced lethality, hypoxia-reperfusion injury after liver transplantation, and D-galactosamine-mediated liver injury. Neutrophils are thought to participate in these pathologic processes via invasion of tissue and releasing such reactive oxygen species as superoxide. In vitro studies have shown that neutrophils contain a glycine-gated chloride channel that can attenuate increases in intracellular calcium and diminsh neutrophil oxidant production. This research is ealy-stage, but suggests that supplementary glycine may turn out to be useful in processes where neutrophil infiltration contributes to toxicity, such as ARDS. HYPERPOLARIZATION OF MOTONEURONS PRODUCED BY IONTOPHORETIC APPLICATION OF GLYCINE IS RELATIVELY TRANSIENT BUT APPROACHES THE EQUILIBRIUM POTENTIAL FOR THE INDIRECTLY ACTIVATED INHIBITORY POSTSYNAPTIC POTENTIAL...TESTS WITH GABA... INDICATE SIMILAR ELECTROPHYSIOLOGICAL EFFECTS & SIMILAR INCR IN CL- CONDUCTANCE. MAJOR EVIDENCE THAT FAVORS GLYCINE AS MEDIATOR OF INTRASPINAL POSTSYNAPTIC INHIBITION IS THE SELECTIVE ANTAGONISM OF ITS EFFECTS BY STRYCHNINE. ... GLYCINE ALSO APPEARS TO BE MOST LIKELY TRANSMITTER FOR INHIBITORY INTERNEURONS IN RETICULAR FORMATION BUT NOT IN CUNEATE NUCLEUS.
Pharmacodynamics
Helps trigger the release of oxygen to the energy requiring cell-making process; Important in the manufacturing of hormones responsible for a strong immune system.
Biological pathways
Source: PubChem (NCBI) · pathways from PathBank, Reactome, WikiPathways & PharmGKB.
Molecular reference: Tryptophan
PubChem CID 6305Molecular formula: C11H12N2O2
Mechanism of action
A number of important side reactions occur during the catabolism of tryptophan on the pathway to acetoacetate. The first enzyme of the catabolic pathway is an iron porphyrin oxygenase that opens the indole ring. The latter enzyme is highly inducible, its concentration rising almost 10-fold on a diet high in tryptophan. Kynurenine is the first key branch point intermediate in the pathway. Kynurenine undergoes deamniation in a standard transamination reaction yielding kynurenic acid. Kynurenic acid and metabolites have been shown to act as antiexcitotoxics and anticonvulsives. A second side branch reaction produces anthranilic acid plus alanine. Another equivalent of alanine is produced further along the main catabolic pathway, and it is the production of these alanine residues that allows tryptophan to be classified among the glucogenic and ketogenic amino acids. The second important branch point converts kynurenine into 2-amino-3-carboxymuconic semialdehyde, which has two fates. The main flow of carbon elements from this intermediate is to glutarate. An important side reaction in liver is a transamination and several rearrangements to produce limited amounts of nicotinic acid, which leads to production of a small amount of NAD<sup>+</sup> and NADP<sup>+</sup>. Findings indicate that enhanced rates of serotonin turnover produced by (L)-tryptophan and physical restraint are associated with inhibition of thyroid-stimulating hormone (TSH) and stimulation of prolactin release from anterior pituitary in rats. L-Tryptophan, an indispensable amino acid, serves as a precursor for several small molecules of functional significance including the vitamin niacin, the neurotransmitter serotonin, the metabolite tryptamine, and the pineal hormone melatonin. Increases in tryptophan have been shown to increase synthesis of the neurotransmitters in brain, blood, and other body organs. Amino acids are selected for protein synthesis by binding with transfer RNA (tRNA) in the cell cytoplasm. The information on the amino acid sequence of each individual protein is contained in the sequence of nucleotides in the messenger RNA (mRNA) molecules, which are synthesized in the nucleus from regions of DNA by the process of transcription. The mRNA molecules then interact with various tRNA molecules attached to specific amino acids in the cytoplasm to synthesize the specific protein by linking together individual amino acids; this process, known as translation, is regulated by amino acids (e.g., leucine), and hormones. Which specific proteins are expressed in any particular cell and the relative rates at which the different cellular proteins are synthesized, are determined by the relative abundances of the different mRNAs and the availability of specific tRNA-amino acid combinations, and hence by the rate of transcription and the stability of the messages. From a nutritional and metabolic point of view, it is important to recognize that protein synthesis is a continuing process that takes place in most cells of the body. In a steady state, when neither net growth nor protein loss is occurring, protein synthesis is balanced by an equal amount of protein degradation. The major consequence of inadequate protein intakes, or diets low or lacking in specific indispensable amino acids relative to other amino acids (often termed limiting amino acids), is a shift in this balance so that rates of synthesis of some body proteins decrease while protein degradation continues, thus providing an endogenous source of those amino acids most in need. /Amino acids/ The mechanism of intracellular protein degradation, by which protein is hydrolyzed to free amino acids, is more complex and is not as well characterized at the mechanistic level as that of synthesis. A wide variety of different enzymes that are capable of splitting peptide bonds are present in cells. However, the bulk of cellular proteolysis seems to be shared between two multienzyme systems: the lysosomal and prote
Pharmacodynamics
Tryptophan is critical for the production of the body's proteins, enzymes and muscle tissue. It is also essential for the production of niacin, the synthesis of the neurotransmitter serotonin and melatonin. Tryptophan supplements can be used as natural relaxants to help relieve insomnia. Tryptophan can also reduce anxiety and depression and has been shown to reduce the intensity of migraine headaches. Other promising indications include the relief of chronic pain, reduction of impulsivity or mania and the treatment of obsessive or compulsive disorders. Tryptophan also appears to help the immune system and can reduce the risk of cardiac spasms. Tryptophan deficiencies may lead to coronary artery spasms. Tryptophan is used as an essential nutrient in infant formulas and intravenous feeding. Tryptophan is marketed as a prescription drug (Tryptan) for those who do not seem to respond well to conventional antidepressants. It may also be used to treat those afflicted with seasonal affective disorder (a winter-onset depression). Tryptopan serves as the precursor for the synthesis of serotonin (5-hydroxytryptamine, 5-HT) and melatonin (N-acetyl-5-methoxytryptamine).
Biological pathways
Source: PubChem (NCBI) · pathways from PathBank, Reactome, WikiPathways & PharmGKB.
Molecular reference: alanine
PubChem CID 5950Molecular formula: C3H7NO2
Mechanism of action
L-Alanine is a non-essential amino acid that occurs in high levels in its free state in plasma. It is produced from pyruvate by transamination. It is involved in sugar and acid metabolism, increases immunity, and provides energy for muscle tissue, brain, and the central nervous system. BCAAs are used as a source of energy for muscle cells. During prolonged exercise, BCAAs are released from skeletal muscles and their carbon backbones are used as fuel, while their nitrogen portion is used to form another amino acid, Alanine. Alanine is then converted to Glucose by the liver. This form of energy production is called the Alanine-Glucose cycle, and it plays a major role in maintaining the body's blood sugar balance.
Pharmacodynamics
Is an important source of energy for muscle tissue, the brain and central nervous system; strengthens the immune system by producing antibodies; helps in the metabolism of sugars and organic acids.
Biological pathways
Source: PubChem (NCBI) · pathways from PathBank, Reactome, WikiPathways & PharmGKB.
Molecular reference: histidine
PubChem CID 6274Molecular formula: C6H9N3O2
Mechanism of action
Since the actions of supplemental L-histidine are unclear, any postulated mechanism is entirely speculative. However, some facts are known about L-histidine and some of its metabolites, such as histamine and trans-urocanic acid, which suggest that supplemental L-histidine may one day be shown to have immunomodulatory and/or antioxidant activities. Low free histidine has been found in the serum of some rheumatoid arthritis patients. Serum concentrations of other amino acids have been found to be normal in these patients. L-histidine is an excellent chelating agent for such metals as copper, iron and zinc. Copper and iron participate in a reaction (Fenton reaction) that generates potent reactive oxygen species that could be destructive to tissues, including joints. L-histidine is the obligate precursor of histamine, which is produced via the decarboxylation of the amino acid. In experimental animals, tissue histamine levels increase as the amount of dietary L-histidine increases. It is likely that this would be the case in humans as well. Histamine is known to possess immunomodulatory and antioxidant activity. Suppressor T cells have H2 receptors, and histamine activates them. Promotion of suppressor T cell activity could be beneficial in rheumatoid arthritis. Further, histamine has been shown to down-regulate the production of reactive oxygen species in phagocytic cells, such as monocytes, by binding to the H2 receptors on these cells. Decreased reactive oxygen species production by phagocytes could play antioxidant, anti-inflammatory and immunomodulatory roles in such diseases as rheumatoid arthritis. This latter mechanism is the rationale for the use of histamine itself in several clinical trials studying histamine for the treatment of certain types of cancer and viral diseases. In these trials, down-regulation by histamine of reactive oxygen species formation appears to inhibit the suppression of natural killer (NK) cells and cytotoxic T lymphocytes, allowing these cells to be more effective in attacking cancer cells and virally infected cells.
Pharmacodynamics
Is found abundantly in hemoglobin; has been used in the treatment of rheumatoid arthritis, allergic diseases, ulcers and anemia. A deficiency can cause poor hearing.
Biological pathways
Source: PubChem (NCBI) · pathways from PathBank, Reactome, WikiPathways & PharmGKB.
Molecular reference: isoleucine
PubChem CID 6306Molecular formula: C6H13NO2
Mechanism of action
(Applies to Valine, Leucine and Isoleucine) This group of essential amino acids are identified as the branched-chain amino acids, BCAAs. Because this arrangement of carbon atoms cannot be made by humans, these amino acids are an essential element in the diet. The catabolism of all three compounds initiates in muscle and yields NADH and FADH2 which can be utilized for ATP generation. The catabolism of all three of these amino acids uses the same enzymes in the first two steps. The first step in each case is a transamination using a single BCAA aminotransferase, with a-ketoglutarate as amine acceptor. As a result, three different a-keto acids are produced and are oxidized using a common branched-chain a-keto acid dehydrogenase, yielding the three different CoA derivatives. Subsequently the metabolic pathways diverge, producing many intermediates. The principal product from valine is propionylCoA, the glucogenic precursor of succinyl-CoA. Isoleucine catabolism terminates with production of acetylCoA and propionylCoA; thus isoleucine is both glucogenic and ketogenic. Leucine gives rise to acetylCoA and acetoacetylCoA, and is thus classified as strictly ketogenic. There are a number of genetic diseases associated with faulty catabolism of the BCAAs. The most common defect is in the branched-chain a-keto acid dehydrogenase. Since there is only one dehydrogenase enzyme for all three amino acids, all three a-keto acids accumulate and are excreted in the urine. The disease is known as Maple syrup urine disease because of the characteristic odor of the urine in afflicted individuals. Mental retardation in these cases is extensive. Unfortunately, since these are essential amino acids, they cannot be heavily restricted in the diet; ultimately, the life of afflicted individuals is short and development is abnormal The main neurological problems are due to poor formation of myelin in the CNS. Amino acids are selected for protein synthesis by binding with transfer RNA (tRNA) in the cell cytoplasm. The information on the amino acid sequence of each individual protein is contained in the sequence of nucleotides in the messenger RNA (mRNA) molecules, which are synthesized in the nucleus from regions of DNA by the process of transcription. The mRNA molecules then interact with various tRNA molecules attached to specific amino acids in the cytoplasm to synthesize the specific protein by linking together individual amino acids; this process, known as translation, is regulated by amino acids (e.g., leucine), and hormones. Which specific proteins are expressed in any particular cell and the relative rates at which the different cellular proteins are synthesized, are determined by the relative abundances of the different mRNAs and the availability of specific tRNA-amino acid combinations, and hence by the rate of transcription and the stability of the messages. From a nutritional and metabolic point of view, it is important to recognize that protein synthesis is a continuing process that takes place in most cells of the body. In a steady state, when neither net growth nor protein loss is occurring, protein synthesis is balanced by an equal amount of protein degradation. The major consequence of inadequate protein intakes, or diets low or lacking in specific indispensable amino acids relative to other amino acids (often termed limiting amino acids), is a shift in this balance so that rates of synthesis of some body proteins decrease while protein degradation continues, thus providing an endogenous source of those amino acids most in need. /Protein synthesis/ The mechanism of intracellular protein degradation, by which protein is hydrolyzed to free amino acids, is more complex and is not as well characterized at the mechanistic level as that of synthesis. A wide variety of different enzymes that are capable of splitting peptide bonds are present in cells. However, the bulk of cellular proteolysis seems to be shared between two multienzyme systems: the
Pharmacodynamics
They provide ingredients for the manufacturing of other essential biochemical components in the body, some of which are utilized for the production of energy, stimulants to the upper brain and helping you to be more alert.
Biological pathways
Source: PubChem (NCBI) · pathways from PathBank, Reactome, WikiPathways & PharmGKB.
Molecular reference: leucine
PubChem CID 6106Molecular formula: C6H13NO2
Mechanism of action
This group of essential amino acids are identified as the branched-chain amino acids, BCAAs. Because this arrangement of carbon atoms cannot be made by humans, these amino acids are an essential element in the diet. The catabolism of all three compounds initiates in muscle and yields NADH and FADH2 which can be utilized for ATP generation. The catabolism of all three of these amino acids uses the same enzymes in the first two steps. The first step in each case is a transamination using a single BCAA aminotransferase, with a-ketoglutarate as amine acceptor. As a result, three different a-keto acids are produced and are oxidized using a common branched-chain a-keto acid dehydrogenase, yielding the three different CoA derivatives. Subsequently the metabolic pathways diverge, producing many intermediates. The principal product from valine is propionylCoA, the glucogenic precursor of succinyl-CoA. Isoleucine catabolism terminates with production of acetylCoA and propionylCoA; thus isoleucine is both glucogenic and ketogenic. Leucine gives rise to acetylCoA and acetoacetylCoA, and is thus classified as strictly ketogenic. There are a number of genetic diseases associated with faulty catabolism of the BCAAs. The most common defect is in the branched-chain a-keto acid dehydrogenase. Since there is only one dehydrogenase enzyme for all three amino acids, all three a-keto acids accumulate and are excreted in the urine. The disease is known as Maple syrup urine disease because of the characteristic odor of the urine in afflicted individuals. Mental retardation in these cases is extensive. Unfortunately, since these are essential amino acids, they cannot be heavily restricted in the diet; ultimately, the life of afflicted individuals is short and development is abnormal The main neurological problems are due to poor formation of myelin in the CNS. The mechanism of intracellular protein degradation, by which protein is hydrolyzed to free amino acids, is more complex and is not as well characterized at the mechanistic level as that of synthesis. A wide variety of different enzymes that are capable of splitting peptide bonds are present in cells. However, the bulk of cellular proteolysis seems to be shared between two multienzyme systems: the lysosomal and proteasomal systems. The lysosome is a membrane-enclosed vesicle inside the cell that contains a variety of proteolytic enzymes and operates mostly at acid pH. Volumes of the cytoplasm are engulfed (autophagy) and are then subjected to the action of the protease enzymes at high concentration. This system is thought to be relatively unselective in most cases, although it can also degrade specific intracellular proteins. The system is highly regulated by hormones such as insulin and glucocorticoids, and by amino acids. The second system is the ATP-dependent ubiquitin-proteasome system, which is present in the cytoplasm. The first step is to join molecules of ubiquitin, a basic 76-amino acid peptide, to lysine residues in the target protein. Several enzymes are involved in this process, which selectively targets proteins for degradation by a second component, the proteasome. Dietary leucine transported into the brain parenchyma serves several functions. Most prominent is the role of leucine as a metabolic precursor of fuel molecules, alpha-ketoisocaproate and ketone bodies. As alternatives to glucose, these compounds are forwarded by the producing astrocytes to the adjacent neural cells. Leucine furthermore participates in the maintenance of the nitrogen balance in the glutamate/glutamine cycle pertinent to the neurotransmitter glutamate. Leucine also serves as a regulator of the activity of some enzymes important for brain energy metabolism. Another role of leucine as an informational molecule is in mTOR signaling that participates in the regulation of food ingestion. The importance of leucine for brain function is stressed by the fact that inborn errors in its metabolism cause metabolic dis
Pharmacodynamics
An essential amino acid. (Claim) Leucine helps with the regulation of blood-sugar levels, the growth and repair of muscle tissue (such as bones, skin and muscles), growth hormone production, wound healing as well as energy regulation. It can assist to prevent the breakdown of muscle proteins that sometimes occur after trauma or severe stress. It may also be beneficial for individuals with phenylketonuria - a condition in which the body cannot metabolize the amino acid phenylalanine
Biological pathways
Source: PubChem (NCBI) · pathways from PathBank, Reactome, WikiPathways & PharmGKB.
Molecular reference: lysine
PubChem CID 5962Molecular formula: C6H14N2O2
Mechanism of action
Proteins of the herpes simplex virus are rich in L-arginine, and tissue culture studies indicate an enhancing effect on viral replication when the amino acid ratio of L-arginine to lysine is high in the tissue culture media. When the ratio of L-lysine to L-arginine is high, viral replication and the cytopathogenicity of herpes simplex virus have been found to be inhibited. L-lysine may facilitate the absorption of calcium from the small intestine. Amino acids are selected for protein synthesis by binding with transfer RNA (tRNA) in the cell cytoplasm. The information on the amino acid sequence of each individual protein is contained in the sequence of nucleotides in the messenger RNA (mRNA) molecules, which are synthesized in the nucleus from regions of DNA by the process of transcription. The mRNA molecules then interact with various tRNA molecules attached to specific amino acids in the cytoplasm to synthesize the specific protein by linking together individual amino acids; this process, known as translation, is regulated by amino acids (e.g., leucine), and hormones. Which specific proteins are expressed in any particular cell and the relative rates at which the different cellular proteins are synthesized, are determined by the relative abundances of the different mRNAs and the availability of specific tRNA-amino acid combinations, and hence by the rate of transcription and the stability of the messages. From a nutritional and metabolic point of view, it is important to recognize that protein synthesis is a continuing process that takes place in most cells of the body. In a steady state, when neither net growth nor protein loss is occurring, protein synthesis is balanced by an equal amount of protein degradation. The major consequence of inadequate protein intakes, or diets low or lacking in specific indispensable amino acids relative to other amino acids (often termed limiting amino acids), is a shift in this balance so that rates of synthesis of some body proteins decrease while protein degradation continues, thus providing an endogenous source of those amino acids most in need. /Amino acids/ The mechanism of intracellular protein degradation, by which protein is hydrolyzed to free amino acids, is more complex and is not as well characterized at the mechanistic level as that of synthesis. A wide variety of different enzymes that are capable of splitting peptide bonds are present in cells. However, the bulk of cellular proteolysis seems to be shared between two multienzyme systems: the lysosomal and proteasomal systems. The lysosome is a membrane-enclosed vesicle inside the cell that contains a variety of proteolytic enzymes and operates mostly at acid pH. Volumes of the cytoplasm are engulfed (autophagy) and are then subjected to the action of the protease enzymes at high concentration. This system is thought to be relatively unselective in most cases, although it can also degrade specific intracellular proteins. The system is highly regulated by hormones such as insulin and glucocorticoids, and by amino acids. The second system is the ATP-dependent ubiquitin-proteasome system, which is present in the cytoplasm. The first step is to join molecules of ubiquitin, a basic 76-amino acid peptide, to lysine residues in the target protein. Several enzymes are involved in this process, which selectively targets proteins for degradation by a second component, the proteasome. /Amino acids/
Pharmacodynamics
Insures the adequate absorption of calcium; helps form collagen ( which makes up bone cartilage & connective tissues); aids in the production of antibodies, hormones & enzymes. Recent studies have shown that Lysine may be effective against herpes by improving the balance of nutrients that reduce viral growth. A deficiency may result in tiredness, inability to concentrate, irritability, bloodshot eyes, retarded growth, hair loss, anemia & reproductive problems.
Biological pathways
Source: PubChem (NCBI) · pathways from PathBank, Reactome, WikiPathways & PharmGKB.
Molecular reference: methionine
PubChem CID 6137Molecular formula: C5H11NO2S
Mechanism of action
The mechanism of the possible anti-hepatotoxic activity of L-methionine is not entirely clear. It is thought that metabolism of high doses of acetaminophen in the liver lead to decreased levels of hepatic glutathione and increased oxidative stress. L-methionine is a precursor to L-cysteine. L-cysteine itself may have antioxidant activity. L-cysteine is also a precursor to the antioxidant glutathione. Antioxidant activity of L-methionine and metabolites of L-methionine appear to account for its possible anti-hepatotoxic activity. Recent research suggests that methionine itself has free-radical scavenging activity by virtue of its sulfur, as well as its chelating ability. Amino acids are selected for protein synthesis by binding with transfer RNA (tRNA) in the cell cytoplasm. The information on the amino acid sequence of each individual protein is contained in the sequence of nucleotides in the messenger RNA (mRNA) molecules, which are synthesized in the nucleus from regions of DNA by the process of transcription. The mRNA molecules then interact with various tRNA molecules attached to specific amino acids in the cytoplasm to synthesize the specific protein by linking together individual amino acids; this process, known as translation, is regulated by amino acids (e.g., leucine), and hormones. Which specific proteins are expressed in any particular cell and the relative rates at which the different cellular proteins are synthesized, are determined by the relative abundances of the different mRNAs and the availability of specific tRNA-amino acid combinations, and hence by the rate of transcription and the stability of the messages. From a nutritional and metabolic point of view, it is important to recognize that protein synthesis is a continuing process that takes place in most cells of the body. In a steady state, when neither net growth nor protein loss is occurring, protein synthesis is balanced by an equal amount of protein degradation. The major consequence of inadequate protein intakes, or diets low or lacking in specific indispensable amino acids relative to other amino acids (often termed limiting amino acids), is a shift in this balance so that rates of synthesis of some body proteins decrease while protein degradation continues, thus providing an endogenous source of those amino acids most in need. /Protein synthesis/ The mechanism of intracellular protein degradation, by which protein is hydrolyzed to free amino acids, is more complex and is not as well characterized at the mechanistic level as that of synthesis. A wide variety of different enzymes that are capable of splitting peptide bonds are present in cells. However, the bulk of cellular proteolysis seems to be shared between two multienzyme systems: the lysosomal and proteasomal systems. The lysosome is a membrane-enclosed vesicle inside the cell that contains a variety of proteolytic enzymes and operates mostly at acid pH. Volumes of the cytoplasm are engulfed (autophagy) and are then subjected to the action of the protease enzymes at high concentration. This system is thought to be relatively unselective in most cases, although it can also degrade specific intracellular proteins. The system is highly regulated by hormones such as insulin and glucocorticoids, and by amino acids. The second system is the ATP-dependent ubiquitin-proteasome system, which is present in the cytoplasm. The first step is to join molecules of ubiquitin, a basic 76-amino acid peptide, to lysine residues in the target protein. Several enzymes are involved in this process, which selectively targets proteins for degradation by a second component, the proteasome. /Protein degradation/ Methionine dependence, the inability of cells to grow when the amino acid methionine is replaced in culture medium by its metabolic precursor homocysteine, is characteristic of many cancer cell lines and some tumors in situ. Most cell lines proliferate normally under these conditions. The methionine dependent t
Pharmacodynamics
L-Methionine is a principle supplier of sulfur which prevents disorders of the hair, skin and nails; helps lower cholesterol levels by increasing the liver's production of lecithin; reduces liver fat and protects the kidneys; a natural chelating agent for heavy metals; regulates the formation of ammonia and creates ammonia-free urine which reduces bladder irritation; influences hair follicles and promotes hair growth. L-methionine may protect against the toxic effects of hepatotoxins, such as acetaminophen. Methionine may have antioxidant activity.
Biological pathways
Source: PubChem (NCBI) · pathways from PathBank, Reactome, WikiPathways & PharmGKB.
Molecular reference: phenylalanine
PubChem CID 6140Molecular formula: C9H11NO2
Mechanism of action
The supposed antidepressant effects of L-phenylalanine may be due to its role as a precursor in the synthesis of the neurotransmitters norepinephrine and dopamine. Elevated brain norepinephrine and dopamine levels are thought to be associated with antidepressant effects. The mechanism of L-phenylalanine's possible antivitiligo activity is not well understood. It is thought that L-phenylalanine may stimulate the production of melanin in the affected skin Amino acids are selected for protein synthesis by binding with transfer RNA (tRNA) in the cell cytoplasm. The information on the amino acid sequence of each individual protein is contained in the sequence of nucleotides in the messenger RNA (mRNA) molecules, which are synthesized in the nucleus from regions of DNA by the process of transcription. The mRNA molecules then interact with various tRNA molecules attached to specific amino acids in the cytoplasm to synthesize the specific protein by linking together individual amino acids; this process, known as translation, is regulated by amino acids (e.g., leucine), and hormones. Which specific proteins are expressed in any particular cell and the relative rates at which the different cellular proteins are synthesized, are determined by the relative abundances of the different mRNAs and the availability of specific tRNA-amino acid combinations, and hence by the rate of transcription and the stability of the messages. From a nutritional and metabolic point of view, it is important to recognize that protein synthesis is a continuing process that takes place in most cells of the body. In a steady state, when neither net growth nor protein loss is occurring, protein synthesis is balanced by an equal amount of protein degradation. The major consequence of inadequate protein intakes, or diets low or lacking in specific indispensable amino acids relative to other amino acids (often termed limiting amino acids), is a shift in this balance so that rates of synthesis of some body proteins decrease while protein degradation continues, thus providing an endogenous source of those amino acids most in need. /Amino acids/ The mechanism of intracellular protein degradation, by which protein is hydrolyzed to free amino acids, is more complex and is not as well characterized at the mechanistic level as that of synthesis. A wide variety of different enzymes that are capable of splitting peptide bonds are present in cells. However, the bulk of cellular proteolysis seems to be shared between two multienzyme systems: the lysosomal and proteasomal systems. The lysosome is a membrane-enclosed vesicle inside the cell that contains a variety of proteolytic enzymes and operates mostly at acid pH. Volumes of the cytoplasm are engulfed (autophagy) and are then subjected to the action of the protease enzymes at high concentration. This system is thought to be relatively unselective in most cases, although it can also degrade specific intracellular proteins. The system is highly regulated by hormones such as insulin and glucocorticoids, and by amino acids. The second system is the ATP-dependent ubiquitin-proteasome system, which is present in the cytoplasm. The first step is to join molecules of ubiquitin, a basic 76-amino acid peptide, to lysine residues in the target protein. Several enzymes are involved in this process, which selectively targets proteins for degradation by a second component, the proteasome. /Amino acids/
Pharmacodynamics
Used by the brain to produce Norepinephrine, a chemical that transmits signals between nerve cells and the brain; keeps you awake and alert; reduces hunger pains; functions as an antidepressant and helps improve memory.
Biological pathways
Source: PubChem (NCBI) · pathways from PathBank, Reactome, WikiPathways & PharmGKB.
Molecular reference: proline
PubChem CID 145742Molecular formula: C5H9NO2
Mechanism of action
Glycogenic, by L-Proline oxidase in the kidney, it is ring-opened and is oxidized to form L-Glutamic acid. L-Ornithine and L-Glutamic acid are converted to L-Proline via L-Glutamic acid-gamma-semialdehyde. It is contained abundantly in collagen, and is intimately involved in the function of arthrosis and chordae.
Pharmacodynamics
L-Proline is a major amino acid found in cartilage and is important for maintaining youthful skin as well as repair of muscle, connective tissue and skin damage. It is also essential for the immune system, and for necessary balance of this formula. It is an essential component of collagen and is important for proper functioning of joints and tendons. L-Proline is extremely important for the proper functioning of joints and tendons. Helps maintain and strengthen heart muscles.
Biological pathways
Source: PubChem (NCBI) · pathways from PathBank, Reactome, WikiPathways & PharmGKB.
Molecular reference: serine
PubChem CID 5951Molecular formula: C3H7NO3
Mechanism of action
L-Serine plays a role in cell growth and development (cellular proliferation). The conversion of L-serine to glycine by serine hydroxymethyltransferase results in the formation of the one-carbon units necessary for the synthesis of the purine bases, adenine and guanine. These bases when linked to the phosphate ester of pentose sugars are essential components of DNA and RNA and the end products of energy producing metabolic pathways, ATP and GTP. In addition, L-serine conversion to glycine via this same enzyme provides the one-carbon units necessary for production of the pyrimidine nucleotide, deoxythymidine monophosphate, also an essential component of DNA.
Pharmacodynamics
Serine is classified as a nutritionally non-essential amino acid. Serine is critical for the production of the body's proteins, enzymes and muscle tissue. Serine is needed for the proper metabolism of fats and fatty acids. It also helps in the production of antibodies. Serine is used as a natural moisturizing agent in some cosmetics and skin care products. The main source of essential amino acids is from the diet, non-essential amino acids are normally synthesize by humans and other mammals from common intermediates.
Biological pathways
Source: PubChem (NCBI) · pathways from PathBank, Reactome, WikiPathways & PharmGKB.
Molecular reference: taurine
PubChem CID 1123Molecular formula: C2H7NO3S
Mechanism of action
The diet supplements containing taurine function by replacing the missing nutriments in the body. Taurine, as a single agent, presents different functions like substrate for formation of bile salts, cell volume regulation, modulation of intracellular calcium, cytoprotection of central nervous system, etc.
Pharmacodynamics
The diet supplements containing taurine are formulated as a well-tolerated nitrogen source for nutritional support. Administration of diet supplements regulates the level of plasma amino acid concentration, nitrogen balance, weight and serum protein concentration to reach normal values, thus improving the nutritional status.
Biological pathways
Source: PubChem (NCBI) · pathways from PathBank, Reactome, WikiPathways & PharmGKB.
Molecular reference: threonine
PubChem CID 6288Molecular formula: C4H9NO3
Mechanism of action
L-Threonine is a precursor to the amino acids glycine and serine. It acts as a lipotropic in controlling fat build-up in the liver. May help combat mental illness and may be very useful in indigestion and intestinal malfunctions. Also, threonine prevents excessive liver fat. Nutrients are more readily absorbed when threonine is present. Amino acids are selected for protein synthesis by binding with transfer RNA (tRNA) in the cell cytoplasm. The information on the amino acid sequence of each individual protein is contained in the sequence of nucleotides in the messenger RNA (mRNA) molecules, which are synthesized in the nucleus from regions of DNA by the process of transcription. The mRNA molecules then interact with various tRNA molecules attached to specific amino acids in the cytoplasm to synthesize the specific protein by linking together individual amino acids; this process, known as translation, is regulated by amino acids (e.g., leucine), and hormones. Which specific proteins are expressed in any particular cell and the relative rates at which the different cellular proteins are synthesized, are determined by the relative abundances of the different mRNAs and the availability of specific tRNA-amino acid combinations, and hence by the rate of transcription and the stability of the messages. From a nutritional and metabolic point of view, it is important to recognize that protein synthesis is a continuing process that takes place in most cells of the body. In a steady state, when neither net growth nor protein loss is occurring, protein synthesis is balanced by an equal amount of protein degradation. The major consequence of inadequate protein intakes, or diets low or lacking in specific indispensable amino acids relative to other amino acids (often termed limiting amino acids), is a shift in this balance so that rates of synthesis of some body proteins decrease while protein degradation continues, thus providing an endogenous source of those amino acids most in need. /Protein synthesis/ The mechanism of intracellular protein degradation, by which protein is hydrolyzed to free amino acids, is more complex and is not as well characterized at the mechanistic level as that of synthesis. A wide variety of different enzymes that are capable of splitting peptide bonds are present in cells. However, the bulk of cellular proteolysis seems to be shared between two multienzyme systems: the lysosomal and proteasomal systems. The lysosome is a membrane-enclosed vesicle inside the cell that contains a variety of proteolytic enzymes and operates mostly at acid pH. Volumes of the cytoplasm are engulfed (autophagy) and are then subjected to the action of the protease enzymes at high concentration. This system is thought to be relatively unselective in most cases, although it can also degrade specific intracellular proteins. The system is highly regulated by hormones such as insulin and glucocorticoids, and by amino acids. The second system is the ATP-dependent ubiquitin-proteasome system, which is present in the cytoplasm. The first step is to join molecules of ubiquitin, a basic 76-amino acid peptide, to lysine residues in the target protein. Several enzymes are involved in this process, which selectively targets proteins for degradation by a second component, the proteasome. /Protein degradation/
Pharmacodynamics
L-Threonine is an essential amino acid that helps to maintain the proper protein balance in the body. It is important for the formation of collagen, elastin, and tooth enamel, and aids liver and lipotropic function when combined with aspartic acid and methionine.
Biological pathways
Source: PubChem (NCBI) · pathways from PathBank, Reactome, WikiPathways & PharmGKB.
Molecular reference: tyrosine
PubChem CID 6057Molecular formula: C9H11NO3
Mechanism of action
Tyrosine is produced in cells by hydroxylating the essential amino acid phenylalanine. This relationship is much like that between cysteine and methionine. Half of the phenylalanine required goes into the production of tyrosine; if the diet is rich in tyrosine itself, the requirements for phenylalanine are reduced by about 50%. The mechanism of L-tyrosine's antidepressant activity can be accounted for by the precursor role of L-tyrosine in the synthesis of the neurotransmitters norepinephrine and dopamine. Elevated brain norepinephrine and dopamine levels are thought to be associated with antidepressant effects.
Pharmacodynamics
Tyrosine is a nonessential amino acid synthesized in the body from phenylalanine. Tyrosine is critical for the production of the body's proteins, enzymes and muscle tissue. Tyrosine is a precursor to the neurotransmitters norepinephrine and dopamine. It can act as a mood elevator and an anti-depressant. It may improve memory and increase mental alertness. Tyrosine aids in the production of melanin and plays a critical role in the production of thyroxin (thyroid hormones). Tyrosine deficiencies are manifested by hypothyroidism, low blood pressure and low body temperature. Supplemental tyrosine has been used to reduce stress and combat narcolepsy and chronic fatigue.
Biological pathways
Source: PubChem (NCBI) · pathways from PathBank, Reactome, WikiPathways & PharmGKB.
Molecular reference: valine
PubChem CID 6287Molecular formula: C5H11NO2
Mechanism of action
(Applies to Valine, Leucine and Isoleucine) This group of essential amino acids are identified as the branched-chain amino acids, BCAAs. Because this arrangement of carbon atoms cannot be made by humans, these amino acids are an essential element in the diet. The catabolism of all three compounds initiates in muscle and yields NADH and FADH2 which can be utilized for ATP generation. The catabolism of all three of these amino acids uses the same enzymes in the first two steps. The first step in each case is a transamination using a single BCAA aminotransferase, with a-ketoglutarate as amine acceptor. As a result, three different a-keto acids are produced and are oxidized using a common branched-chain a-keto acid dehydrogenase, yielding the three different CoA derivatives. Subsequently the metabolic pathways diverge, producing many intermediates. The principal product from valine is propionylCoA, the glucogenic precursor of succinyl-CoA. Isoleucine catabolism terminates with production of acetylCoA and propionylCoA; thus isoleucine is both glucogenic and ketogenic. Leucine gives rise to acetylCoA and acetoacetylCoA, and is thus classified as strictly ketogenic. There are a number of genetic diseases associated with faulty catabolism of the BCAAs. The most common defect is in the branched-chain a-keto acid dehydrogenase. Since there is only one dehydrogenase enzyme for all three amino acids, all three a-keto acids accumulate and are excreted in the urine. The disease is known as Maple syrup urine disease because of the characteristic odor of the urine in afflicted individuals. Mental retardation in these cases is extensive. Unfortunately, since these are essential amino acids, they cannot be heavily restricted in the diet; ultimately, the life of afflicted individuals is short and development is abnormal The main neurological problems are due to poor formation of myelin in the CNS. Amino acids are selected for protein synthesis by binding with transfer RNA (tRNA) in the cell cytoplasm. The information on the amino acid sequence of each individual protein is contained in the sequence of nucleotides in the messenger RNA (mRNA) molecules, which are synthesized in the nucleus from regions of DNA by the process of transcription. The mRNA molecules then interact with various tRNA molecules attached to specific amino acids in the cytoplasm to synthesize the specific protein by linking together individual amino acids; this process, known as translation, is regulated by amino acids (e.g., leucine), and hormones. Which specific proteins are expressed in any particular cell and the relative rates at which the different cellular proteins are synthesized, are determined by the relative abundances of the different mRNAs and the availability of specific tRNA-amino acid combinations, and hence by the rate of transcription and the stability of the messages. From a nutritional and metabolic point of view, it is important to recognize that protein synthesis is a continuing process that takes place in most cells of the body. In a steady state, when neither net growth nor protein loss is occurring, protein synthesis is balanced by an equal amount of protein degradation. The major consequence of inadequate protein intakes, or diets low or lacking in specific indispensable amino acids relative to other amino acids (often termed limiting amino acids), is a shift in this balance so that rates of synthesis of some body proteins decrease while protein degradation continues, thus providing an endogenous source of those amino acids most in need. /Amino acids/ The mechanism of intracellular protein degradation, by which protein is hydrolyzed to free amino acids, is more complex and is not as well characterized at the mechanistic level as that of synthesis. A wide variety of different enzymes that are capable of splitting peptide bonds are present in cells. However, the bulk of cellular proteolysis seems to be shared between two multienzyme systems: the lysoso
Pharmacodynamics
L-valine is a branched-chain essential amino acid (BCAA) that has stimulant activity. It promotes muscle growth and tissue repair. It is a precursor in the penicillin biosynthetic pathway. Valine is one of three branched-chain amino acids (the others are leucine and isoleucine) that enhance energy, increase endurance, and aid in muscle tissue recovery and repair. This group also lowers elevated blood sugar levels and increases growth hormone production. Supplemental valine should always be combined with isoleucine and leucine at a respective milligram ratio of 2:1:2. It is an essential amino acid found in proteins; important for optimal growth in infants and for growth in children and nitrogen balance in adults. The lack of L-valine may influence the growth of body, cause neuropathic obstacle, anaemia. It has wide applications in the field of pharmaceutical and food industry.
Biological pathways
Source: PubChem (NCBI) · pathways from PathBank, Reactome, WikiPathways & PharmGKB.
This drug in other countries
The same active ingredient registered across other registries we cover - including different brands.
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