Registered Kenya · PPB

374-MULTIVITAMIN INJECTABLE EMULSION

VITAMIN A PROPIONATE/VIT. D3/VIT E/VIT. B1/VIT. B2/VIT. PP/VIT. B6/VIT. B12/DEXPANTHENOL/MESO-INOSITOL/DL METHIONINE/CHOLINE CITRATE/MAGNESIUM SULPHATE HEPTAHYDRATE/COBALT CHLORIDE/CUPRIC SULPHATE/ZINC SULPHATE/MAGANESE SULPHATE /C

V2000/0136 50000IU/25000IU/1MG nervous system INN generic

What it does

Choline is a nutrient important for various bodily functions, including brain health and liver function.

Commonly used for: supporting brain health, helping with liver function

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Plain-language summary for general understanding - not medical advice. Always follow your pharmacist/doctor.

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Registration & product details

Registration no.
V2000/0136
Registration date
-
Expiry date
-
Status
Registered
Active ingredient
VITAMIN A PROPIONATE/VIT. D3/VIT E/VIT. B1/VIT. B2/VIT. PP/VIT. B6/VIT. B12/DEXPANTHENOL/MESO-INOSITOL/DL METHIONINE/CHOLINE CITRATE/MAGNESIUM SULPHATE HEPTAHYDRATE/COBALT CHLORIDE/CUPRIC SULPHATE/ZINC SULPHATE/MAGANESE SULPHATE /C
Dosage form
50000IU/25000IU/1MG
Strength
-
Pack size
-
Therapeutic class
-
ATC class (WHO)
N02BA - Salicylic acid and derivatives
Drug group
NERVOUS SYSTEM
RxNorm RxCUI
2449
Manufacturer / MAH
Medina Chemicals
Applicant / LTR
-
Country of origin
FOREIGN
Manufacturer location
ICD ROAD , OPPOSITE HIFADHI HOUSE, Nairobi, Kenya

Source: Pharmacy and Poisons Board · fetched 2026-01-28 22:10:57 · updated 2026-03-23 04:56:09

Disclaimer: This information is sourced from Pharmacy and Poisons Board (Kenya). Always consult a qualified healthcare professional before using any medication.

About choline

Choline is a nutrient important for various bodily functions, including brain health and liver function.

What it treats

  • supporting brain health
  • helping with liver function

How it works

Choline helps produce important substances in the body, like phospholipids, which are essential for cell membranes.

Who it's for

Choline can be beneficial for people needing support for cognitive function and liver health.

AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.

About cobalt

Cobalt is a trace element important for the body, particularly in producing red blood cells and maintaining nerve health.

What it treats

  • Vitamin B12 deficiency
  • Anemia (low red blood cell count)
  • Neuropathy (nerve damage)

How it works

Cobalt is a key part of vitamin B12, which helps in the formation of red blood cells and supports the proper functioning of the nervous system.

Who it's for

Cobalt is generally used for individuals with specific nutritional deficiencies or certain types of anemia.

Cautions

  • • Excessive intake may lead to toxicity.
  • • Consult a healthcare provider if you have kidney problems.

AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.

About cupric

Cupric is a form of copper used for various health purposes, including treating certain deficiencies.

What it treats

  • copper deficiency
  • anemia (low red blood cells)

How it works

Cupric helps your body maintain healthy levels of copper, which is important for making red blood cells and supporting various bodily functions.

Who it's for

This is for people who have low copper levels or specific health conditions that require additional copper.

AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.

About dexpanthenol

Dexpanthenol is a vitamin B5 derivative used to help heal and soothe the skin.

What it treats

  • skin irritation
  • dry skin
  • wound healing

How it works

Dexpanthenol helps to moisturize the skin and promotes the healing process.

Who it's for

It is suitable for anyone needing relief from skin issues or support for skin healing.

AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.

About heptahydrate

Heptahydrate is a substance used in various medicinal products.

What it treats

  • treatment of certain conditions related to hydration
  • used in pharmaceutical formulations

How it works

Heptahydrate helps to maintain or restore hydration in the body.

Who it's for

This substance is generally used for individuals needing hydration support.

AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.

About maganese

Manganese is a mineral that the body needs in small amounts for various functions, including bone health and metabolism.

What it treats

  • bone health
  • metabolism support

How it works

Manganese helps in the production of enzymes that play a role in breaking down carbohydrates and fats, and it supports bone formation.

Who it's for

Manganese may be used by people looking to support their bone health and metabolism.

AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.

About meso-inositol

Meso-inositol is a natural substance that may help support metabolic health and improve insulin sensitivity.

What it treats

  • polycystic ovary syndrome (PCOS)
  • metabolic syndrome
  • insulin resistance

How it works

Meso-inositol helps in the process of insulin signaling, which can improve the body's ability to use sugar and regulate hormones.

Who it's for

This is for individuals, particularly women, who may have conditions like PCOS or issues with insulin levels.

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 retinol

Retinol is a form of vitamin A that helps improve skin health and appearance.

What it treats

  • acne
  • wrinkles
  • dry skin
  • psoriasis

How it works

Retinol promotes skin cell turnover, helping to clear up acne and reduce signs of aging.

Who it's for

Adults looking to improve their skin quality or treat specific skin conditions.

AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.

About vit

Vitamin supplements are used to provide essential nutrients that may be missing from your diet.

What it treats

  • vitamin deficiency
  • poor diet
  • boosting overall health

How it works

Vitamins help your body function properly and support overall health by aiding in various biological processes.

Who it's for

People who may not get enough vitamins from their food, including those with dietary restrictions, certain health conditions, or increased nutrient needs.

Cautions

  • • Consult a healthcare professional before starting any vitamin supplement, especially if you are pregnant, breastfeeding, or have underlying health conditions.

AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.

Clinical monograph: choline

BNF-referenced

Choline is an essential nutrient that plays a critical role in various biological processes, particularly in the maintenance of cell membrane integrity, neurotransmitter synthesis, and lipid metabolism. It is a precursor of acetylcholine, a neurotransmitter vital for nerve conduction and cognitive function. Choline also contributes to the synthesis of phosphatidylcholine and sphingomyelin, important phospholipids in cellular membranes. Inadequate choline intake can lead to several health issues, including liver dysfunction and neurological disorders.

Indications

  • Choline deficiency
  • Support in liver function
  • Neurological health, including cognitive function
  • Fat metabolism disorders

Dosage

Children: Refer to the BNF for Children for specific dosing guidelines.

Adults: Refer to the BNF for specific dosing guidelines.

Mechanism of action

Choline is a major component of phosphatidylcholine, which is essential for maintaining cell membrane integrity, facilitating information flow, and intracellular communication. It is involved in the synthesis of acetylcholine, a key neurotransmitter in the central nervous system. Choline deficiency can lead to apoptosis by affecting cell membrane composition and increasing ceramide levels, which activates apoptotic pathways. Additionally, choline is a precursor to betaine, which helps regulate homocysteine levels, thus reducing cardiovascular risks.

Pharmacodynamics

Choline is crucial for proper nerve conduction in the central nervous system as it is a precursor for acetylcholine. It supports liver function, gallbladder regulation, and lipid metabolism. Adequate choline levels are associated with the prevention of excessive fat accumulation in the liver and may mitigate conditions such as Parkinsonism and tardive dyskinesia. Deficiencies can lead to serious health problems, including liver dysfunction and stunted growth.

Pharmacokinetics

Choline is absorbed in the intestines and distributed throughout the body, where it is utilized in various metabolic pathways. The liver plays a central role in choline metabolism, converting it into phosphatidylcholine and other metabolites. The half-life and excretion pathways of choline are not well defined but are influenced by dietary intake, physiological state, and individual metabolism.

Interactions

  • corticosteroids+cholinesalicylate: Unknown (decreases concentration)

Pregnancy

Choline is generally considered safe during pregnancy, as it is essential for fetal development, particularly for brain development and function. However, it is important to adhere to recommended dietary allowances.

Breast-feeding

Choline is important during breastfeeding as it supports infant brain development. Adequate intake is recommended for nursing mothers.

Storage

Store in a cool, dry place, away from direct sunlight and moisture. 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: cobalt

BNF-referenced

Cobalt is a trace element essential for human health, primarily as a component of vitamin B12 (cobalamin), which plays a crucial role in the formation of red blood cells and maintenance of the nervous system. It is involved in various metabolic processes, particularly in the synthesis of myelin and the metabolism of fatty acids and amino acids. Cobalt is naturally found in certain foods and is also available as a dietary supplement.

Indications

  • Vitamin B12 deficiency
  • Megaloblastic anemia
  • Neuropathy
  • Erythropoiesis stimulation

Dosage

Children: Refer to the BNF for Children for specific dosing guidance.

Adults: Refer to the BNF for specific dosing guidance.

Mechanism of action

Cobalt functions as a key component in the structure of vitamin B12, which is necessary for the normal functioning of cells. It acts as a cofactor in enzymatic reactions, particularly in the metabolism of homocysteine to methionine and in the synthesis of nucleic acids. Cobalt also plays a role in the regulation of erythropoiesis (production of red blood cells) and contributes to the overall cellular metabolism.

Pharmacodynamics

Cobalt is crucial for various biochemical processes, including DNA synthesis and the metabolism of carbohydrates, fats, and proteins. It is primarily known for its role in hematopoiesis and neurological function. Adequate levels of cobalt are essential for preventing megaloblastic anemia, a condition characterized by the production of large, abnormal red blood cells due to impaired DNA synthesis.

Pharmacokinetics

Cobalt is absorbed in the gastrointestinal tract, with better absorption occurring when dietary intake is adequate. Once absorbed, it is distributed throughout the body, particularly in the liver, kidneys, and bone marrow. Cobalt is primarily excreted through the urine. The half-life of cobalt in the body can vary based on the form and the physiological state of the individual. Excess cobalt can lead to toxicity, particularly affecting the thyroid and causing cardiomyopathy.

Pregnancy

Cobalt is classified as a trace element necessary for human health, but excessive exposure may pose risks. Consult specific resources for detailed guidance.

Breast-feeding

Cobalt is excreted in breast milk. The effects on the nursing infant are not well established.

Storage

Store in a cool, dry place, away from direct sunlight and moisture.

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: cupric

Cupric, commonly known as copper(II) or cupric ion, is a trace element essential for various physiological functions in the human body. It plays a crucial role in the formation of red blood cells, maintaining healthy bones, blood vessels, and nerves, and is involved in the functioning of the immune system. Copper is also a cofactor for several enzymes critical for metabolic processes.

Indications

  • Copper deficiency
  • Menkes disease
  • Wilson disease
  • Osteoporosis prevention
  • Anemia treatment

Dosage

Children: Refer to established pediatric guidelines for specific dosing based on the condition being treated and individual patient needs.

Adults: Refer to established guidelines for specific dosing based on the condition being treated and individual patient needs.

Mechanism of action

Cupric ions participate in numerous enzymatic reactions as a cofactor. They are involved in the electron transport chain and are essential for oxidative phosphorylation. Copper is known to activate enzymes such as cytochrome c oxidase, which facilitates cellular respiration, and superoxide dismutase, which helps in the detoxification of superoxide radicals, contributing to antioxidant defense mechanisms.

Pharmacodynamics

Cupric has important roles in iron metabolism and the synthesis of collagen and elastin. It contributes to the stabilization of protein structures and assists in the enzymatic functions that protect cells from oxidative stress. The bioavailability of copper is influenced by dietary intake and interactions with other trace elements, notably zinc and iron.

Pharmacokinetics

Cupric is absorbed in the gastrointestinal tract, primarily in the stomach and small intestine. The absorption rate can vary based on dietary factors and the presence of other minerals. Once absorbed, copper is transported in the bloodstream bound to ceruloplasmin and other proteins. It is stored mainly in the liver, brain, and muscles, and is excreted primarily through bile. The half-life of copper in the body is variable, reflecting its dynamic role in metabolism.

Contra-indications

  • Hypersensitivity to cupric compounds
  • Wilson's disease
  • Severe hepatic impairment

Adverse effects

  • Gastrointestinal disturbances including nausea and vomiting
  • Diarrhea
  • Abdominal pain
  • Metallic taste
  • Kidney damage with excessive doses
  • Hepatotoxicity

Interactions

  • May reduce the absorption of tetracycline antibiotics
  • Ascorbic acid may enhance the absorption of copper
  • Zinc and iron may compete with copper for absorption

Precautions

  • Use with caution in patients with gastrointestinal disorders
  • Monitor liver function in patients receiving high doses
  • Assess for signs of copper toxicity, especially with prolonged use

Pregnancy

Copper is an essential trace element and is generally considered safe during pregnancy; however, supplementation should be monitored and tailored to individual needs.

Breast-feeding

Copper is excreted in breast milk, and normal dietary intake is considered safe; excessive supplementation should be avoided.

Storage

Store in a cool, dry place away from light. Keep out of reach of children.

Formulations

  • Copper sulfate
  • Copper gluconate
  • Copper chloride
  • Copper acetate

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: dexpanthenol

BNF-referenced

Dexpanthenol is an alcohol derivative of pantothenic acid, an essential component of the B complex vitamins. It plays a crucial role in maintaining the integrity of epithelial tissues and is involved in various metabolic processes. Dexpanthenol is primarily used for its topical applications in dermatology, promoting wound healing and providing moisture to the skin.

Indications

  • Wound healing
  • Skin moisturizing
  • Epithelial protection
  • Treatment of skin irritations
  • Topical anti-inflammatory treatment

Dosage

Children: Refer to BNF for Children for specific dosing recommendations based on age and condition.

Adults: Topical application as needed, typically applied to the affected area 1 to 3 times daily.

Mechanism of action

Dexpanthenol is enzymatically converted to pantothenic acid, a precursor of coenzyme A. This coenzyme acts as a cofactor in numerous enzymatic reactions critical for protein metabolism, particularly in epithelial cells. Topically, dexpanthenol enhances fibroblast proliferation and accelerates re-epithelialization in wound healing. It also functions as a moisturizer and has anti-inflammatory properties. Additionally, it increases the availability of coenzyme A for synthesizing acetylcholine, which is essential for maintaining intestinal tone and peristalsis.

Pharmacodynamics

Dexpanthenol, through its active form pantothenic acid, contributes to various biochemical pathways, particularly those involving the synthesis of coenzyme A. This coenzyme facilitates the transfer of acetyl groups necessary for the synthesis of acetylcholine, a neurotransmitter that regulates parasympathetic nervous system functions, including gastrointestinal motility. Enhanced levels of acetylcholine promote normal intestinal functions, while a deficiency may lead to decreased peristalsis.

Pharmacokinetics

Dexpanthenol is readily absorbed when applied topically, and it is metabolized to pantothenic acid, which is then incorporated into various metabolic pathways. The pharmacokinetics of dexpanthenol, including its distribution, metabolism, and elimination, are influenced by the route of administration. Its efficacy in promoting wound healing is attributed to its ability to penetrate the skin and exert effects at the cellular level.

Pregnancy

Dexpanthenol is generally considered safe during pregnancy; however, its use should be based on a risk-benefit assessment by a healthcare provider.

Breast-feeding

Dexpanthenol is excreted in breast milk in small amounts. Caution is advised when administered to breastfeeding women, and its use should be evaluated in terms of potential benefits and risks.

Storage

Store at room temperature, away from light and moisture. Keep out of reach of children.

Formulations

  • Topical solution
  • Cream
  • Ointment

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: hepta

BNF-referenced

Heptachlor is a polychlorinated cyclodiene insecticide, primarily used for pest control. It has been largely discontinued in many countries due to its toxicity and environmental persistence. Heptachlor is known to affect the central nervous system of insects and can have significant implications for human and environmental health.

Dosage

Children: Refer to BNF for Children for specific dosing guidance, as heptachlor usage is largely restricted.

Adults: Refer to BNF for specific dosing information, as heptachlor is not commonly used in clinical settings due to safety concerns.

Mechanism of action

Heptachlor mimics the action of picrotoxin, inhibiting gamma-aminobutyric acid (GABA)-stimulated chloride uptake, which leads to nerve excitation in insects. It competes for binding sites in the brain, causing central nervous system stimulation and resulting in increased transmitter release. This mechanism can lead to increased excitability and potentially toxic effects in target organisms.

Pharmacodynamics

As a neurotoxic agent, heptachlor causes hyperactivity and central nervous system stimulation in insects. Its effects on GABA receptors disrupt normal inhibitory neurotransmission, resulting in uncontrolled neuronal firing. While primarily studied in insects, similar mechanisms may be inferred in higher organisms, including potential neurotoxic effects in humans.

Pharmacokinetics

Heptachlor is lipophilic, leading to significant bioaccumulation in organisms and environmental persistence. It is metabolized in the liver to heptachlor epoxide, which is the more toxic form. The elimination half-life varies but can be prolonged due to its fat solubility and tendency to accumulate in fatty tissues.

Pregnancy

Heptachlor is classified as a category B drug. Animal studies have not shown any harm to the fetus, but there are no adequate and well-controlled studies in pregnant women. Use only if clearly needed.

Breast-feeding

It is not known if heptachlor is excreted in human milk. Caution should be exercised when administering heptachlor to a nursing mother.

Storage

Store in a cool, dry place, away from direct sunlight. Keep container tightly closed and 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: heptahydrate

Heptahydrate, commonly referred to as heptahydrate salts, refers to a class of compounds that contain seven molecules of water in their crystalline structure. These compounds are used in various pharmaceutical formulations and can influence the solubility and bioavailability of the active ingredients. The presence of water molecules can also impact the stability and shelf-life of the drug formulation.

Dosage

Children: Refer to specific formulation guidelines for pediatric dosing, as heptahydrate is generally used in conjunction with other active ingredients.

Adults: Refer to specific formulation guidelines for dosing, as heptahydrate is typically a component rather than an active agent.

Mechanism of action

Heptahydrate itself does not have a specific pharmacological action as it is generally a structural component in formulations. However, the active ingredients in heptahydrate formulations may exert their effects through various mechanisms depending on their specific pharmacology.

Pharmacodynamics

Pharmacodynamics of heptahydrate salts is largely influenced by the active pharmaceutical ingredients they are combined with. The presence of water molecules can enhance solubility, thereby improving the absorption and overall efficacy of the drug when administered. The hydration state can also play a role in the release profile of the drug from solid dosage forms.

Pharmacokinetics

The pharmacokinetics of heptahydrate formulations depend on the specific active ingredient they harbor. The dissolution rate can be affected by the hydration state, leading to variations in absorption rates. Generally, the pharmacokinetic profile would include absorption, distribution, metabolism, and excretion characteristics of the active pharmaceutical ingredients rather than the heptahydrate component itself.

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: maganese

Manganese is an essential trace mineral that plays a critical role in various physiological processes, including bone formation, blood clotting, and immune function. It is a cofactor for several important enzymes, including manganese superoxide dismutase, which protects cells from oxidative stress. Manganese is naturally present in many foods, particularly in whole grains, nuts, and leafy vegetables.

Indications

  • Manganese deficiency
  • Osteoporosis prevention
  • Bone health maintenance
  • Antioxidant support

Dosage

Children: Refer to specific pediatric guidelines for manganese supplementation, considering dietary intake and individual health needs.

Adults: Refer to established guidelines for manganese supplementation, as specific dosing can vary based on dietary intake and individual health status.

Mechanism of action

Manganese functions primarily as a cofactor for several enzymes, including arginase, pyruvate carboxylase, and manganese superoxide dismutase (MnSOD). These enzymes are involved in critical biological processes such as amino acid metabolism, gluconeogenesis, and the detoxification of reactive oxygen species. MnSOD, in particular, converts superoxide radicals into hydrogen peroxide and oxygen, thereby mitigating oxidative damage to cells.

Pharmacodynamics

Manganese is required for the normal functioning of several enzyme systems. It participates in the metabolism of carbohydrates, amino acids, and lipids. Additionally, manganese is involved in the synthesis of glycosylated proteins and is essential for the activity of certain antioxidant enzymes. Its deficiency can lead to impaired growth, skeletal deformities, and reproductive issues.

Pharmacokinetics

Manganese is absorbed primarily in the small intestine and is transported in the bloodstream bound to transferrin and albumin. The distribution of manganese in the body is primarily to the liver, kidneys, pancreas, and bones. The half-life of manganese in the body is variable, typically ranging from several days to weeks, depending on dietary intake and individual metabolism. Excess manganese is primarily excreted through bile and feces.

Adverse effects

  • Nausea
  • Vomiting
  • Abdominal pain
  • Diarrhea
  • Metallic taste
  • Neurological effects (with excessive exposure)

Interactions

  • Calcium supplements may interfere with manganese absorption
  • Iron supplements may reduce manganese absorption
  • Antacids may decrease the absorption of manganese

Precautions

  • Monitor for signs of toxicity, especially in patients with liver disease
  • Use with caution in patients with a history of psychiatric disorders

Pregnancy

Manganese is essential for fetal development, but excessive intake should be avoided due to potential toxicity.

Breast-feeding

Manganese is secreted in breast milk; however, normal dietary intake is generally considered safe.

Storage

Store in a cool, dry place, protected from light.

Formulations

  • Oral supplements (tablets, capsules)
  • Intravenous formulations (for specific medical conditions)

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: mesoinositol

BNF-referenced

Mesoinositol, a cyclic sugar alcohol, is a naturally occurring isomer of inositol that plays a crucial role in cellular processes, particularly in signal transduction and as a precursor for various phosphoinositides. It is involved in the metabolism of carbohydrates and fats, and is essential for cellular signaling pathways.

Indications

  • Insulin resistance
  • Polycystic ovary syndrome (PCOS)
  • Metabolic syndrome
  • Diabetes management

Dosage

Children: Refer to the BNF for Children for specific dosing recommendations.

Adults: Refer to the BNF for specific dosing recommendations.

Mechanism of action

Mesoinositol functions primarily as a second messenger in cellular signaling. It is integral to the phosphoinositide signaling pathway, where it participates in the synthesis of inositol phosphates, which are critical for the regulation of various cellular processes including glucose uptake, insulin signaling, and cell growth. The conversion of mesoinositol to phosphoinositides facilitates the activation of various kinases and other signaling molecules.

Pharmacodynamics

Mesoinositol modulates insulin sensitivity and glucose metabolism, making it relevant in conditions such as insulin resistance and polycystic ovary syndrome (PCOS). It contributes to cellular signaling pathways that regulate metabolic processes, impacting lipid metabolism and overall energy homeostasis. Its effects are mediated through the modulation of second messengers and phosphorylation cascades.

Pharmacokinetics

The pharmacokinetics of mesoinositol include its absorption, distribution, metabolism, and excretion. Upon oral administration, mesoinositol is rapidly absorbed in the gastrointestinal tract. It is distributed throughout the body tissues, and its metabolism involves conversion to various inositol phosphates. The elimination half-life and specific metabolic pathways require further investigation, as detailed data are limited.

Pregnancy

There are no well-controlled studies in pregnant women. Consult a healthcare professional before use.

Breast-feeding

It is not known whether mesoinositol is excreted in human breast milk. Caution is advised.

Storage

Store in a cool, dry place, away from direct light. 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: methionine

BNF-referenced

Methionine 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: retinol

BNF-referenced

Retinol, also known as Vitamin A, is a fat-soluble vitamin essential for various physiological functions including vision, epithelial differentiation, growth, and immune function. It is critical for the synthesis of rhodopsin, a photoreceptor protein in the retina that enables vision in low-light conditions. Retinol acts through nuclear retinoid receptors to influence gene expression and is vital for maintaining healthy skin and mucous membranes.

Indications

  • Vitamin A deficiency
  • Night blindness
  • Impaired wound healing
  • Epithelial disorders

Dosage

Children: Refer to BNF for Children for specific paediatric dosing information.

Adults: Refer to BNF for specific adult dosing information.

Mechanism of action

Retinol is converted in the retina to 11-cis-retinal, which is crucial for the conversion of light into neural signals necessary for vision. It binds to opsin in rhodopsin, facilitating the isomerization to all-trans-retinal upon exposure to light, thus triggering visual signaling. Additionally, retinol interacts with retinoic acid receptors (RARs) and retinoid-X receptors (RXRs) as transcription factors, modulating gene expression related to cellular differentiation and growth.

Pharmacodynamics

Vitamin A is effective in treating Vitamin A deficiency, which can lead to vision impairment and other health issues. It plays a critical role in various biological processes including vision, cellular differentiation, reproduction, and immune system function. Its deficiency can cause symptoms such as night blindness and impaired wound healing, while adequate levels support growth and development.

Pharmacokinetics

Retinol is absorbed from the gastrointestinal tract and stored in the liver, where it can be mobilized as needed. It undergoes metabolism primarily in the liver, where it is converted to retinal and retinoic acid, the active forms of Vitamin A. The elimination half-life varies, but retinol is generally excreted in urine and bile. The bioavailability can be affected by dietary fat intake.

Adverse effects

  • Nausea
  • Vomiting
  • Headache
  • Dizziness
  • Fatigue
  • Irritability
  • Dry skin
  • Peeling of skin
  • Itching
  • Blurred vision

Precautions

  • Use with caution in patients with liver disease due to potential hepatotoxicity.
  • Monitor for signs of vitamin A toxicity, especially in patients on high doses or prolonged therapy.
  • Caution in patients with a history of alcohol abuse, as it may exacerbate liver conditions.

Pregnancy

Retinol should be used with caution during pregnancy due to the risk of teratogenic effects. High doses of vitamin A can lead to fetal malformations.

Breast-feeding

Retinol is generally considered safe during breastfeeding, but excessive intake should be avoided to prevent potential adverse effects on the infant.

Storage

Store in a cool, dry place away from light. Keep out of reach of children.

Formulations

  • Capsules
  • Tablets
  • Oral solutions
  • Topical preparations

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: choline

PubChem CID 305

Molecular formula: C5H14NO+

Mechanism of action

Choline is a major part of the polar head group of phosphatidylcholine. Phosphatidylcholine's role in the maintenance of cell membrane integrity is vital to all of the basic biological processes: information flow, intracellular communication and bioenergetics. Inadequate choline intake would negatively affect all these processes. Choline is also a major part of another membrane phospholipid, sphingomyelin, also important for the maintenance of cell structure and function. It is noteworthy and not surprising that choline deficiency in cell culture causes apoptosis or programmed cell death. This appears to be due to abnormalities in cell membrane phosphatidylcholine content and an increase in ceramide, a precursor, as well as a metabolite, of sphingomyelin. Ceramide accumulation, which is caused by choline deficiency, appears to activate Caspase, a type of enzyme that mediates apoptosis. Betaine or trimethylglycine is derived from choline via an oxidation reaction. Betaine is one of the factors that maintains low levels of homocysteine by resynthesizing L-methionine from homocysteine. Elevated homocysteine levels are a significant risk factor for atherosclerosis, as well as other cardiovascular and neurological disorders. Acetylcholine is one of the major neurotransmitters and requires choline for its synthesis. Adequate acetylcholine levels in the brain are believed to be protective against certain types of dementia, including Alzheimer's disease.

Pharmacodynamics

This compound is needed for good nerve conduction throughout the CNS (central nervous system) as it is a precursor to acetylcholine (ACh). Choline is also needed for gallbladder regulation, liver function and lecithin (a key lipid) formation. Choline also aids in fat and cholesterol metabolism and prevents excessive fat build up in the liver. Choline has been used to mitigate the effects of Parkinsonism and tardive dyskinesia. Choline deficiencies may result in excessive build-up of fat in the liver, high blood pressure, gastric ulcers, kidney and liver dysfunction and stunted growth.

Source: PubChem (NCBI) · pathways from PathBank, Reactome, WikiPathways & PharmGKB.

Molecular reference: dexpanthenol

PubChem CID 131204

Molecular formula: C9H19NO4

Mechanism of action

Dexpanthenol is an alcohol derivative of pantothenic acid, a component of the B complex vitamins and an essential component of a normally functioning epithelium. Dexpanthenol is enzymatically cleaved to form pantothenic acid, which is an essential component of Coenzyme A, which acts as a cofactor in many enzymatic reactions that are important for protein metabolism in the epithelium. Dermatological effects of the topical use of dexpanthenol include increased fibroblast proliferation and accelerated re-epithelialization in wound healing. Furthermore, it acts as a topical protectant, moisturizer, and has demonstrated anti-inflammatory properties. This alcohol ... is said to increase the amount of coenzyme A available for the synthesis of acetylcholine. Increased formation of acetylcholine is thought to increase peristalsis and intestinal tone. ... To test the functional effect of pantothenate on dermal fibroblasts, cells were cultured and in vitro proliferation tests were performed using a standardized scratch test procedure. For all three donors analyzed, a strong stimulatory effect of pantothenate at a concentration of 20 ug/mL on the proliferation of cultivated dermal fibroblasts was observed. To study the molecular mechanisms resulting in the proliferative effect of pantothenate, gene expression was analyzed in dermal fibroblasts cultivated with 20 ug/mL of pantothenate compared with untreated cells using the GeneChip Human Exon 1.0 ST Array. A number of significantly regulated genes were identified including genes coding for interleukin (IL)-6, IL-8, Id1, HMOX-1, HspB7, CYP1B1 and MARCH-II. Regulation of these genes was subsequently verified by quantitative real-time polymerase chain reaction analysis. Induction of HMOX-1 expression by pantothenol and pantothenic acid in dermal cells was confirmed on the protein level using immunoblots. Functional studies revealed the enhanced suppression of free radical formation in skin fibroblasts cultured with panthenol. In conclusion, these studies provided new insight in the molecular mechanisms linked to the stimulatory effect of pantothenate and panthenol on the proliferation of dermal fibroblasts. /Calcium pantotenate/ ... Pantothenic acid, pantothenol and other derivatives ... are precursors of CoA /that/ protect cells and whole organs against peroxidative damage by increasing the content of cell glutathione...

Pharmacodynamics

Pantothenic acid is a precursor of coenzyme A, which serves as a cofactor for a variety of enzyme-catalyzed reactions involving transfer of acetyl groups. The final step in the synthesis of acetylcholine consists of the choline acetylase transfer of acetyl group from acetylcoenzyme A to choline. Acetylcholine is the neurohumoral transmitter in the parasympathetic system and as such maintains the normal functions of the intestine. Decrease in acetylcholine content would result in decreased peristalsis and in extreme cases adynamic ileus.

Source: PubChem (NCBI) · pathways from PathBank, Reactome, WikiPathways & PharmGKB.

Molecular reference: hepta

PubChem CID 3589

Molecular formula: C10H5Cl7

Mechanism of action

EVIDENCE INDICATES THAT CYCLODIENE-TYPE-INSECTICIDES, EG, HEPTACHLOR EPOXIDE, MIMIC ACTION OF PICROTOXININ. THESE INSECTICIDES INHIBIT THE GAMMA-AMINOBUTYRIC ACID-STIMULATED CHLORIDE UPTAKE IN COXAL MUSCLE OF AMERICAN COCKROACH, & DIRECTLY COMPETE AGAINST LABELED DIHYDROPICROTOXININ FOR BINDING IN THE RAT BRAIN SYNAPTOSOMES. MOREOVER, SEVERAL CYCLODIENE RESISTANT INSECT STRAINS ARE RESISTANT TO PICROTOXININ. THIS CROSS-RESISTANCE IS SPECIFIC TO PICROTOXININ & DOES NOT EXTEND TO OTHER NEUROEXCITANTS. THESE INSECTICIDES, LIKE PICROTOXININ, CAUSE CENTRAL NERVOUS EXCITATION BY STIMULATING TRANSMITTER RELEASE. THESE RESULTS INDICATE THAT SOME OF THE NERVE EXCITATION SYMPTOMS THAT INSECTICIDES CAUSE ARE LIKELY DUE TO THEIR INTERACTION WITH PICROTOXININ RECEPTOR. HEPTACHLOR WAS EVALUATED FOR GENOTOXICITY & EPIGENETIC MEMBRANE EFFECTS. IT WAS NON-GENOTOXIC IN ARLHGPRT MUTAGENESIS ASSAY IN WHICH THE GENOTOXIC CARCINOGENS 7,12-DIMETHYLBENZ(A)ANTHRACENE & BENZO(A)PYRENE INDUCED SIGNIFICANT INCR IN MUTANT INCIDENCE. HEPTACHLOR INHIBITED INTERCELLULAR COMMUNICATION BETWEEN CULTURED LIVER CELLS, A PROPERTY DEMONSTRATED BY MANY TUMOR PROMOTING AGENTS, WHEREAS, BENZO(A)PYRENE DID NOT PRODUCE THIS EPIGENETIC EFFECT. The actions of the polychlorocycloalkane insecticide heptachlor, and its epoxide metabolite, were examined on GABA receptors in insects and vertebrates. Electrophysiological experiments on the cell body of the cockroach (Periplaneta americana) fast coxal depressor motor neuron (Df), and GABA-activated (36) Cl- uptake experiments on microsacs perpared from cockroach ventral nerve cords showed that both heptachlor and heptachlor epoxide blocked functional GABA receptors. The block appeared to be non-competitive and was voltage-independent over the membrane potential range -75 mV to -110 mV. There was no significant difference between the potencies of heptachlor and heptachlor epoxide in the functional assays for insect GABA receptors. Both compounds inhibited (35)S-t-butylbicyclophosphorothionate binding in insects and vertebrates. The findings provide further evidence for block of an insect GABA receptor/Cl- channel by the cyclodiene class of polychlorocycloalkanes, and reveal differences in the insecticide (35)S-t-butylbicyclophosphorothionate binding site interactions of insects and vertebrates. The effects of heptachlor on oxidative phosphorylation and electron transport in male Donryu rat liver mitochondria were investigated. The effects of 50 uM heptachlor on the respiratory activity of isolated liver mitochondria was tested in the presence of added succinate as a substrate. The effects of 100 uM heptachlor was tested in the presence of three kinds of substrates: succinate, beta-hydroxybutylate, and ascorbate plus N,N,N'N'-tetramethylphenylene-diamine. Heptachlor at 50 uM greatly inhibited the state 3 respiration, but inhibited the state 4 respiration hardly at all. The inhibition was released by 2,4-dinitrophenol. The higher dose suppressed state 3 and state 4 respiration almost completely with succinate as substrate. The findings suggest that the function of the electron transport system was also suppressed by the higher heptachlor dose even without oxidative phosphorylation.

Source: PubChem (NCBI) · pathways from PathBank, Reactome, WikiPathways & PharmGKB.

Molecular reference: methionine

PubChem CID 6137

Molecular 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.

Source: PubChem (NCBI) · pathways from PathBank, Reactome, WikiPathways & PharmGKB.

Molecular reference: retinol

PubChem CID 445354

Molecular formula: C20H30O

Mechanism of action

Vision:Vitamin A (all-<i>trans</i> retinol) is converted in the retina to the 11-<i>cis</i>-isomer of retinaldehyde or 11-<i>cis</i>-retinal. 11-<i>cis</i>-retinal functions in the retina in the transduction of light into the neural signals necessary for vision. 11-<i>cis</i>-retinal, while attached to opsin in rhodopsin is isomerized to all-<i>trans</i>-retinal by light. This is the event that triggers the nerve impulse to the brain which allows for the perception of light. All-<i>trans</i>-retinal is then released from opsin and reduced to all-<i>trans</i>-retinol. All-<i>trans</i>-retinol is isomerized to 11-<i>cis</i>-retinol in the dark, and then oxidized to 11-<i>cis</i>-retinal. 11-<i>cis</i>-retinal recombines with opsin to re-form rhodopsin. Night blindness or defective vision at low illumination results from a failure to re-synthesize 11-<i>cis</i> retinal rapidly. Epithelial differentiation: The role of Vitamin A in epithelial differentiation, as well as in other physiological processes, involves the binding of Vitamin A to two families of nuclear retinoid receptors (retinoic acid receptors, RARs; and retinoid-X receptors, RXRs). These receptors function as ligand-activated transcription factors that modulate gene transcription. When there is not enough Vitamin A to bind these receptors, natural cell differentiation and growth are interrupted. Topical vitamin A can reverse the impairment of wound healing seen in patients receiving corticosteroids, perhaps by restoring the normal inflammatory reaction in the wound. The possibility has been suggested that systemic vitamin A could inhibit the anti-inflammatory effect of systemic corticosteroids. Retinol arrested proliferation of cultured neuroblastoma cells at concentrations of 50 um. A correlation existed between inhibition of growth and inhibition of ornithine decarboxylase in both neuroblastoma cells and glioma cells with retinol. In rats exptl-hypervitaminosis A has been shown ... to produce severe damage of the retina, mainly in the pigment epithelium according to electron microscopy. Alcohol dehydrogenase activity was shown to disappear in the pigment epithelium and visual cells ... . /The authors/ have shown that in an experimental cell culture system consisting of carcinogen-treated 10T1/2 cells, both retinoids and all dietary carotenoids examined can reversibly inhibit neoplastic transformation in the post-initiation phase of carcinogenesis. This activity strongly correlates with their ability to increase gap junctional intercellular communication by up-regulating the expression of the gene CX43 (connexin43). Connexins comprise the structural unit of gap junctions, organelles which allow direct transfer of signals, nutrients and waste products between contacting cells. CX43 is the most widely expressed member of the gap junction family of genes, and we have demonstrated that its expression is strongly down-regulated in human cancers and in several premalignant conditions. When several human tumour cell lines were genetically engineered to conditionally express CX43 under the influence of a tetracycline promoter, their neoplastic phenotype was strongly attenuated. Specifically, induced cells were inhibited from growing in an anchorage-independent manner and, additionally, growth as xenografts in immunocompromised animals was also strongly attenuated. Growth inhibition in suspension was associated both with increased G(1) cell-cycle arrest and with increased apoptosis. /The authors/ propose a model whereby junctional communication allows the transfer of growth inhibitory signals from normal to neoplastic cells and that retinoids and carotenoids, by increasing signal transfer, act to prevent cancer.

Pharmacodynamics

Vitamin A is effective for the treatment of Vitamin A deficiency. Vitamin A refers to a group of fat-soluble substances that are structurally related to and possess the biological activity of the parent substance of the group called all-<i>trans</i> retinol or retinol. Vitamin A plays vital roles in vision, epithelial differentiation, growth, reproduction, pattern formation during embryogenesis, bone development, hematopoiesis and brain development. It is also important for the maintenance of the proper functioning of the immune system.

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.