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(vitamin · DailyMed)
Registered Zambia · ZAMRA

Multivitamin Injection, 100ml

Thiamine HCl 10 mg + Riboflavin Sodium Phosphate 5mg + Vitamin A Palmitate 15000 IU + Vitamin D3 1000 IU + Vitamin E Acetate 20 IU + Nicotinamide 35 mg + D-Panthenol 25 mg

332/757V Solution for Injection alimentary tract and metabolism INN generic

What it does

Cholecalciferol is a form of vitamin D that helps maintain healthy bones and teeth.

Commonly used for: vitamin D deficiency, rickets, osteomalacia

Read more in plain English ↓

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

Ask about this medicine

Answers come only from this medicine's registration record, BNF monograph and interaction data - not medical advice.

Medicine sourcing is available in Kenya only. We don't sell or dispense medicines - licensed pharmacies do.

Sourcing - Kenya only

Registration & product details

Registration no.
332/757V
Registration date
2026-03-02
Expiry date
2031-03-01
Status
Registered/Compliant
Active ingredient
Thiamine HCl 10 mg + Riboflavin Sodium Phosphate 5mg + Vitamin A Palmitate 15000 IU + Vitamin D3 1000 IU + Vitamin E Acetate 20 IU + Nicotinamide 35 mg + D-Panthenol 25 mg
Strength
-
Pack size
-
Therapeutic class
-
ATC class (WHO)
A11CC - Vitamin D and analogues
RxNorm RxCUI
2418
Manufacturer / MAH
Bimeda
Applicant / LTR
Bimeda Zambia Limited
Country of origin
China

Source: Zambia Medicines Regulatory Authority · fetched 2026-03-12 00:06:50 · updated 2026-10-01 03:40:47

Drug Interactions

7
Check interactions

Severe (2)

Vitamin - increases risk of vitamin a toxicity

TretinoinispredictedtoincreasetheriskofvitaminAtoxicity whengivenwithvitaminA.Avoid.rStudy Ribavirin e

Severe Study

Vitamin - increases risk of vitamin a toxicity

Retinoids(tretinoin)arepredictedtoincreasetheriskof vitaminAtoxicitywhengivenwithvitaminA.Avoid.r Study VitaminDsubstances . . . . . alfacalcidol.calcipotri..ol calcitriol colecalciferol ergocalcifero

Severe Study

Moderate (1)

Vitamin - increases risk of toxicity

Retinoids (bexarotene) are predicted to increase the risk of toxicity when given with vitamin A. Adjust dose.

Moderate Theoretical

Unknown (4)

Vitamin - decreases effects

Carbamazepine is predicted to decrease the effects of vitamin D substances.

Unknown Study

Vitamin - increases exposure

Cobicistat is predicted to increase the exposure to vitamin D substances (paricalcitol).

Unknown Study

Vitamin - increases exposure

Idelalisib is predicted to increase the exposure to vitamin D substances (paricalcitol).

Unknown Study

Vitamin - increases exposure

Clarithromycin is predicted to increase the exposure to vitamin D substances (paricalcitol).

Unknown Study

Data from BNF 85 (British National Formulary). This is not a substitute for professional medical advice. Matched via: exact

Disclaimer: This information is sourced from Zambia Medicines Regulatory Authority (Zambia). Always consult a qualified healthcare professional before using any medication.

About cholecalciferol

Cholecalciferol is a form of vitamin D that helps maintain healthy bones and teeth.

What it treats

  • vitamin D deficiency
  • rickets
  • osteomalacia

How it works

Cholecalciferol helps your body absorb calcium and phosphorus, which are essential for strong bones.

Who it's for

It is suitable for individuals who need to boost their vitamin D levels, especially those with limited sun exposure.

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

About d-panthenol

D-panthenol is a form of vitamin B5 that helps to moisturize and soothe the skin.

What it treats

  • dry skin
  • skin irritation
  • wound healing

How it works

D-panthenol works by attracting and holding moisture in the skin, which helps to keep it hydrated and promotes healing.

Who it's for

D-panthenol is suitable for anyone looking to improve skin hydration and soothe irritation.

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

About nicotinamide

Nicotinamide is a form of vitamin B3 that helps maintain healthy skin and supports various body functions.

What it treats

  • acne (acne vulgaris)
  • skin conditions
  • dry skin
  • certain types of dermatitis

How it works

Nicotinamide helps improve skin health by reducing inflammation and promoting cell repair.

Who it's for

It is suitable for people looking to improve their skin condition or reduce acne.

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

About palmitate

Palmitate is a vitamin supplement that helps support overall health.

What it treats

  • Vitamin deficiency
  • General health support

How it works

Palmitate works by providing essential nutrients that may be lacking in the diet.

Who it's for

Palmitate is for individuals who need extra vitamins for their health.

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

About riboflavin

Riboflavin, also known as Vitamin B2, is essential for energy production and helps maintain healthy skin, eyes, and nerve functions.

What it treats

  • Vitamin B2 deficiency
  • Mouth sores
  • Migraines

How it works

Riboflavin helps the body convert food into energy and supports various cellular functions.

Who it's for

Riboflavin is suitable for individuals who may not get enough Vitamin B2 from their diet or have specific health conditions.

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

About thiamine

Thiamine, also known as vitamin B1, is a nutrient that helps convert food into energy and supports the nervous system.

What it treats

  • thiamine deficiency
  • Wernicke-Korsakoff syndrome
  • beriberi

How it works

Thiamine helps the body use carbohydrates for energy and is essential for the proper functioning of the nervous system.

Who it's for

Thiamine is for people who have low levels of vitamin B1 or certain conditions that increase the need for it.

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

About tocopherol

Tocopherol is a form of vitamin E, an antioxidant that helps protect cells from damage.

What it treats

  • skin health
  • antioxidant support
  • nutritional supplement

How it works

It helps protect your body from harmful substances by neutralizing free radicals.

Who it's for

It is suitable for people looking to support their overall health and skin condition.

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

About vitamin

Vitamins are essential nutrients that support various bodily functions and overall health.

What it treats

  • nutritional deficiency
  • general health maintenance

How it works

Vitamins support normal bodily functions, including metabolism, immune function, and cell repair.

Who it's for

Anyone needing to improve their nutrient intake or maintain good health.

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

Clinical monograph: Nicotinamide

BNF-referenced

Nicotinamide, also known as niacinamide, is a form of vitamin B3 that is involved in numerous biological processes including energy metabolism and DNA repair. It is primarily utilized topically for the treatment of skin conditions such as papulopustular rosacea and inflammatory acne vulgaris. Nicotinamide is known for its anti-inflammatory properties and its ability to improve skin barrier function, making it beneficial for various dermatological conditions.

Indications

  • Papulopustular rosacea
  • Inflammatory acne vulgaris

Dosage

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

Adults: For papulopustular rosacea, apply daily for up to 4 months. The treatment course may be repeated; discontinue if no improvement is observed after 3 months. For inflammatory acne vulgaris, apply twice daily, reduced to once daily or alternate days if irritation occurs.

Mechanism of action

Nicotinamide exhibits anti-inflammatory effects by inhibiting the release of pro-inflammatory cytokines and enhancing the barrier function of the skin. It is also involved in the NAD salvage pathway, which is essential for maintaining cellular energy levels and promoting cell repair mechanisms. Additionally, nicotinamide contributes to the synthesis of coenzymes involved in metabolic processes, including the conversion of niacin into NAD+.

Pharmacodynamics

Nicotinamide is known for its ability to improve skin hydration and reduce transepidermal water loss. It has been shown to decrease the appearance of acne lesions and rosacea by modulating inflammatory responses and accelerating cell turnover. Its antioxidant properties also help to protect the skin from oxidative stress and UV damage.

Pharmacokinetics

When applied topically, nicotinamide is absorbed through the skin layers, with minimal systemic absorption. Its peak plasma concentrations are generally low, and the drug has a half-life that varies depending on the route of administration. The metabolism of nicotinamide occurs primarily in the liver, where it is converted into its active forms, including NAD+. The elimination route is via the kidneys, with metabolites excreted in urine.

Contra-indications

  • Pregnancy
  • Severe acne involving large areas
  • Severe skin reactions

Adverse effects

  • Sunburn
  • Skin reactions (common or very common)
  • Cheilitis
  • Eyelid oedema
  • Flushing
  • Dry skin
  • Eye irritation
  • Photosensitivity reactions
  • Transient skin pigmentation changes

Interactions

  • Clindamycin
  • Topical retinoids
  • Abrasive cleaners
  • Comedogenic cosmetics

Precautions

  • Avoid exposure to UV light, including sunlight and sunlamps
  • Wash hands immediately after use
  • Avoid contact with eyes and mucous membranes
  • Use moisturizers to reduce the risk of skin irritation
  • Discontinue treatment if severe irritation occurs

Pregnancy

Avoid use during pregnancy due to potential risks, as limited information is available regarding toxicity.

Breast-feeding

Amount of drug in milk after topical application is probably too small to be harmful; ensure infant does not come in contact with treated areas.

Storage

Store at room temperature away from moisture and light.

Formulations

  • Cream
  • Gel
BNF 85 (British National Formulary) p.1415 BNF for Children 2019-2020 p.804 PubChem / pathway

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: Riboflavin

BNF-referenced

Riboflavin, also known as vitamin B2, is a water-soluble vitamin crucial for various biochemical functions in the body. It plays a pivotal role in energy production through the metabolism of fats, carbohydrates, and proteins. Additionally, riboflavin is essential for red blood cell formation, maintaining skin health, and supporting overall growth and reproduction. It has antioxidant properties and is involved in the prevention of certain eye disorders, including cataracts.

Indications

  • Vitamin B2 deficiency
  • Isoniazid-induced neuropathy (prophylaxis and treatment)
  • Metabolic diseases
  • Cystathioninuria
  • Homocystinuria
  • Wilson's disease
  • Prevention of penicillamine-induced neuropathy

Mechanism of action

Riboflavin acts as a precursor to flavin mononucleotide (FMN) and flavin adenine dinucleotide (FAD), which are essential coenzymes in various enzymatic reactions. It binds to riboflavin hydrogenase, riboflavin kinase, and riboflavin synthase, facilitating the production of FMN and FAD. These coenzymes are critical for normal tissue respiration and energy metabolism, influencing hydrogen transport in oxidative enzyme systems such as cytochrome C reductase and succinic dehydrogenase. Moreover, riboflavin contributes to the antioxidant activity by aiding in the production of reduced glutathione, a key antioxidant in the body.

Pharmacodynamics

Riboflavin is an easily absorbed, water-soluble micronutrient that supports energy production by assisting in the metabolism of fats, carbohydrates, and proteins. It is vital for red blood cell formation, antibody production, and regulating growth and reproduction. The vitamin plays a significant role in maintaining healthy skin, nails, and hair, as well as supporting thyroid activity. Riboflavin also has therapeutic implications in preventing or treating various eye disorders, including cataracts.

Pharmacokinetics

Riboflavin is rapidly absorbed in the gastrointestinal tract, with its bioavailability influenced by dietary intake. It is primarily excreted through urine, with excess intake leading to bright yellow urine, which is a harmless side effect. The vitamin does not accumulate in the body, necessitating regular dietary intake to maintain adequate levels.

Adverse effects

  • Urine discolouration
  • Peripheral neuritis

Precautions

  • With intravenous use, risk of cardiovascular collapse; resuscitation facilities must be available and monitor closely.

Pregnancy

Crosses the placenta but no adverse effects reported; information at high doses limited.

Breast-feeding

Present in breast milk but no adverse effects reported; information at high doses limited.

Storage

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

Formulations

  • 100 mg modified-release tablets
  • 50 mg capsules
  • 100 mg capsules
  • 100 mg tablets
  • Oral solution
BNF for Children 2019-2020 p.672 PubChem / pathway

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: Thiamine

BNF-referenced

Thiamine, also known as vitamin B1, is a water-soluble vitamin that is essential for carbohydrate metabolism and plays a critical role in energy production. It acts as a coenzyme in several biochemical pathways, particularly in the conversion of pyruvate to acetyl-CoA and in the pentose phosphate pathway. Thiamine deficiency can lead to serious health issues, including Wernicke-Korsakoff syndrome, beriberi, and other neurological disorders. Thiamine is found in various foods such as whole grains, legumes, nuts, and meat.

Indications

  • Vitamin B1 deficiency
  • Wernicke-Korsakoff syndrome
  • Beriberi
  • Isoniazid-induced neuropathy (prophylaxis and treatment)
  • Severe depletion or malabsorption of vitamins B and C

Dosage

Adults: For vitamin deficiency: 25–100 mg daily. For severe deficiency: 200–300 mg daily in divided doses. For

Mechanism of action

Thiamine functions primarily as a precursor for several phosphorylated active forms, which act as coenzymes in metabolic pathways. It reduces intracellular protein glycation by redirecting glycolytic flux and supports the synthesis of nucleic acids necessary for cell survival and proliferation. Additionally, thiamine has been shown to inhibit glucose-induced proliferation of endothelial cells, thus possibly playing a role in the modulation of vascular health.

Pharmacodynamics

Thiamine exhibits antioxidant properties and contributes to erythropoiesis, cognitive function, and mood regulation. It has protective effects against oxidative stress, particularly in neuronal tissues, where deficiency can lead to neuronal death due to increased free radical production. Thiamine also modulates glucose metabolism, influencing smooth muscle cell proliferation and potentially impacting the progression of atherosclerosis.

Pharmacokinetics

Thiamine is rapidly absorbed from the gastrointestinal tract, primarily in the jejunum, and is distributed throughout the body, with higher concentrations found in the liver, heart, and brain. It is excreted in urine, and its half-life is relatively short. The vitamin is converted into active forms within tissues, including thiamine diphosphate (TDP), which is the coenzyme form involved in carbohydrate metabolism. The body does not store significant amounts of thiamine, making regular dietary intake essential.

Adverse effects

  • Allergic reactions
  • Anaphylaxis (rare)
  • Gastrointestinal disturbances

Precautions

  • Facilities for treating anaphylaxis should be available when parenteral thiamine is administered
  • Use with caution in patients with a history of hypersensitivity to thiamine

Pregnancy

Thiamine crosses the placenta but no adverse effects have been reported. Information regarding high doses is limited.

Breast-feeding

Severely thiamine-deficient mothers should avoid breast-feeding as thiamine is present in breast milk.

Storage

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

Formulations

  • Thiamine hydrochloride 20 mg/ml oral solution
  • Thiamine hydrochloride 50 mg tablets
  • Thiamine hydrochloride 100 mg modified-release tablets
  • Thiamine hydrochloride oral suspension
BNF 85 (British National Formulary) p.1217 BNF for Children 2019-2020 p.672 PubChem / pathway

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: cholecalciferol

BNF-referenced

Cholecalciferol, also known as vitamin D3, is a fat-soluble vitamin essential for maintaining normal serum calcium and phosphorus levels. It is naturally synthesized in the skin upon exposure to sunlight and can also be obtained from certain dietary sources. Cholecalciferol is crucial for bone health, as it aids in the absorption of calcium and phosphorus from the gut and supports bone mineralization. Deficiency in vitamin D can lead to conditions such as rickets in children and osteomalacia in adults, characterized by weakened bones and skeletal deformities.

Indications

  • Vitamin D deficiency
  • Rickets
  • Osteomalacia
  • Osteoporosis
  • Hypoparathyroidism

Dosage

Adults: The usual adult dose for vitamin D deficiency is 800 to 2000 IU daily, depending on the severity of deficiency and clinical condition. Higher doses may be used under medical supervision.

Mechanism of action

Cholecalciferol is converted to its active forms, 25-hydroxyvitamin D in the liver and 1,25-dihydroxyvitamin D in the kidneys. These metabolites enhance the intestinal absorption of calcium and phosphorus, increase serum calcium levels, and mobilize these minerals from bone. This process is regulated by parathyroid hormone, which influences calcium and phosphate metabolism, particularly in the kidneys.

Pharmacodynamics

The pharmacodynamics of cholecalciferol involve its conversion to active metabolites that play a significant role in calcium and phosphorus homeostasis. The metabolites facilitate intestinal absorption of these minerals, promote bone mineralization, and influence renal reabsorption. The onset of action occurs within 10 to 24 hours following administration, as metabolic activation is required for its biological effects.

Pharmacokinetics

Cholecalciferol is absorbed in the gastrointestinal tract, and its absorption is enhanced by the presence of dietary fats. It is transported in the bloodstream bound to vitamin D-binding protein. Once in the liver, it undergoes hydroxylation to form 25-hydroxyvitamin D, which is further converted in the kidneys to the active form, 1,25-dihydroxyvitamin D. The elimination half-life of cholecalciferol varies, typically spanning several days, and it is primarily excreted in bile and urine.

Adverse effects

  • Hypercalcemia
  • Hypercalciuria
  • Nausea
  • Vomiting
  • Constipation
  • Weakness
  • Fatigue

Interactions

  • May enhance the effects of thiazide diuretics, leading to increased risk of hypercalcemia
  • Anticonvulsants may increase metabolism of vitamin D, leading to reduced effectiveness
  • Cholestyramine may reduce absorption of vitamin D

Precautions

  • Monitor serum calcium levels in patients with renal impairment
  • Caution in patients with a history of hypercalcemia or hyperparathyroidism
  • Use with caution in patients taking other medications that affect calcium metabolism

Pregnancy

Cholecalciferol can be used during pregnancy if indicated, as vitamin D is essential for fetal bone development.

Breast-feeding

Cholecalciferol is excreted in breast milk, but is generally considered safe during breastfeeding.

Storage

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

Formulations

  • Capsules
  • Tablets
  • Liquid formulations

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: dpanthenol

BNF-referenced

Dexpanthenol is an alcohol derivative of pantothenic acid, a crucial component of the B complex vitamins. It plays an essential role in maintaining a normally functioning epithelium and is involved in the synthesis of coenzyme A. Dexpanthenol is utilized topically for its skin healing properties, including enhancing fibroblast proliferation and re-epithelialization, making it beneficial in wound healing. Additionally, it serves as a moisturizer and has anti-inflammatory effects.

Indications

  • Topical treatment of skin wounds
  • Moisturizing dry skin
  • Management of minor burns
  • Soothing irritations and inflammation of the skin

Dosage

Children: Refer to the BNF for Children for specific dosing

Adults: Apply to the affected area as needed, following the specific product instructions.

Mechanism of action

Dexpanthenol is enzymatically converted to pantothenic acid, which is integral to the formation of coenzyme A. This coenzyme acts as a cofactor in numerous enzymatic reactions, particularly those related to protein metabolism in epithelial tissues. The topical application of dexpanthenol promotes fibroblast proliferation and accelerates wound healing through enhanced re-epithelialization. It also increases the availability of coenzyme A for acetylcholine synthesis, which can enhance intestinal motility by improving peristalsis.

Pharmacodynamics

Dexpanthenol, through its conversion to pantothenic acid, plays a vital role in the synthesis of coenzyme A, which is necessary for various metabolic processes, including the transfer of acetyl groups. It directly influences the production of acetylcholine, the neurotransmitter responsible for parasympathetic nervous system functions, which include maintaining normal intestinal activity. A deficiency in acetylcholine can lead to reduced peristalsis and conditions such as adynamic ileus.

Pharmacokinetics

Dexpanthenol is well absorbed when applied topically. It penetrates the skin effectively, reaching the underlying tissues where it can exert its biological effects. The metabolism of dexpanthenol involves its conversion to pantothenic acid, which further participates in the synthesis of coenzyme A. The elimination half-life and extent of systemic absorption vary based on the formulation and route of administration, but topical use typically results in low systemic exposure.

Adverse effects

  • Skin irritation
  • Allergic reactions

Precautions

  • Use with caution in patients with known allergies to dexpanthenol or related compounds.

Pregnancy

Dexpanthenol is generally considered safe for use during pregnancy, but it is advisable to consult a healthcare provider before use.

Breast-feeding

Dexpanthenol is considered safe during breastfeeding, but consult a healthcare provider for specific recommendations.

Storage

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

Formulations

  • Topical cream
  • Topical ointment
  • Topical 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: palmitate

BNF-referenced

Palmitate, or palmitic acid, is a saturated fatty acid with the molecular formula C16H32O2. It is a key intermediate in lipid metabolism, playing a crucial role in the synthesis and degradation of fatty acids. Palmitate is produced during lipogenesis and serves as a precursor for longer-chain fatty acids. It has various biological roles, including energy storage and cell membrane structure. Palmitate's metabolism can influence insulin secretion and has been implicated in metabolic disorders such as diabetes.

Mechanism of action

Excessive palmitoylcarnitine formation and exhausted L-carnitine stores lead to energy depletion, which, along with attenuated acetylcholine synthesis and oxidative stress, are main mechanisms behind palmitate-induced neuronal loss. High levels of palmitate exposure are suggested to contribute to diabetic neuropathy and gastrointestinal dysregulation. Additionally, palmitate negatively regulates acetyl-CoA carboxylase, thereby preventing further palmitate generation.

Pharmacodynamics

Palmitate is the first fatty acid generated during lipogenesis and serves as a precursor for the synthesis of longer fatty acids. The presence of palmitate inhibits acetyl-CoA carboxylase, reducing the conversion of acetyl-ACP to malonyl-ACP, which subsequently decreases the synthesis of new palmitate. This feedback mechanism is crucial for maintaining lipid homeostasis within the body.

Pharmacokinetics

Palmitate is absorbed from dietary sources and can also be synthesized endogenously in the liver and adipose tissue. Once in circulation, it is transported via chylomicrons or albumin. The metabolism of palmitate occurs primarily in the mitochondria through fatty acid oxidation, generating acetyl-CoA, which can enter the citric acid cycle for energy production. The overall kinetics of palmitate are influenced by dietary intake, metabolic demand, and hormonal regulation.

Pregnancy

Palmitate is classified as a category C drug. Animal reproduction studies have not been conducted, and there are no adequate and well-controlled studies in pregnant women. It should be used during pregnancy only if the potential benefit justifies the potential risk to the fetus.

Breast-feeding

There are no data on the excretion of palmitate in human milk. Caution should be exercised when administering to nursing mothers.

Storage

Store at room temperature, away from light and moisture. Keep the container tightly closed.

Formulations

  • Palmitate 500 mg softgel
  • Palmitate 1000 mg softgel

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: thiaminehydrochloride

Thiamine hydrochloride, also known as vitamin B1, is a water-soluble vitamin that plays a critical role in carbohydrate metabolism and is essential for the proper functioning of the nervous system. It is involved in the decarboxylation of alpha-keto acids and the hexose monophosphate shunt, which are vital processes for energy production from carbohydrates.

Indications

  • Thiamine deficiency
  • Wernicke's encephalopathy
  • Beriberi
  • Alcoholism-related complications
  • Certain metabolic disorders

Dosage

Children: Refer to BNF for Children for appropriate dosing information.

Adults: Refer to established clinical guidelines or BNF for specific dosing recommendations.

Mechanism of action

Thiamine is a coenzyme for several important enzymatic reactions, including the pyruvate dehydrogenase complex and alpha-ketoglutarate dehydrogenase. It is essential for converting carbohydrates into energy, facilitating the metabolism of glucose, and maintaining normal nerve function.

Pharmacodynamics

Thiamine deficiency leads to impaired carbohydrate metabolism, which can result in neurological and cardiovascular dysfunction. Supplementation with thiamine helps restore normal metabolic function and can alleviate symptoms associated with deficiency, such as Wernicke's encephalopathy and Beriberi. It also plays a role in the synthesis of neurotransmitters and in maintaining myelin integrity.

Pharmacokinetics

Thiamine is readily absorbed from the gastrointestinal tract, with peak plasma concentrations occurring within 1-2 hours after oral administration. It is distributed throughout the body, primarily in the liver, kidneys, and heart. Thiamine is metabolized in the liver to its active form, thiamine pyrophosphate. It has a biological half-life of about 9-18 days and is excreted primarily in the urine. Excess thiamine is excreted, making toxicity rare.

Adverse effects

  • Allergic reactions
  • Hypersensitivity reactions
  • Gastrointestinal disturbances

Interactions

  • May interact with certain diuretics, leading to altered thiamine levels

Precautions

  • Use with caution in patients with renal impairment
  • Monitor patients with a history of thiamine deficiency

Pregnancy

Thiamine is considered safe during pregnancy, as it is an essential nutrient.

Breast-feeding

Thiamine is excreted in breast milk, but supplementation is generally considered safe for breastfeeding mothers.

Storage

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

Formulations

  • Thiamine hydrochloride injection
  • Thiamine hydrochloride oral tablets
  • Thiamine hydrochloride 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: tocopherol

BNF-referenced

Tocopherol, commonly known as vitamin E, is a fat-soluble antioxidant that plays a critical role in protecting cell membranes from oxidative stress. It is primarily found in various dietary sources, including nuts, seeds, and green leafy vegetables. Tocopherol acts by donating hydrogen atoms to free radicals, thereby neutralizing their harmful effects and preventing cellular damage.

Indications

  • Prevention of vitamin E deficiency
  • Antioxidant therapy
  • Support in conditions related to oxidative stress

Dosage

Children: Refer to BNF for Children for specific dosage guidelines.

Adults: Refer to BNF for specific dosage guidelines.

Mechanism of action

Tocopherol acts as a radical scavenger, primarily functioning as an antioxidant for lipid bilayers. It donates hydrogen atoms to free radicals, trapping them and preventing cellular damage. Its effectiveness is influenced by its location within the membrane and its interaction with cytosolic reductants like ascorbate. Tocopherol can trap multiple radicals, including alkyl and peroxy radicals.

Pharmacodynamics

The antioxidant properties of tocopherol lead to significant pharmacodynamic effects, including the inhibition of cell death through modulation of protein kinase C (PKC). Tocopherol also exhibits anti-inflammatory effects, which can be attributed to its influence on cytokines, prostaglandins, prostanoids, and thromboxanes. These interactions may contribute to its protective effects in various pathological conditions.

Pharmacokinetics

Tocopherol is absorbed in the intestines and its bioavailability can be influenced by dietary fat intake. It is transported in the plasma primarily bound to lipoproteins. Tocopherol is stored in adipose tissue and the liver, and its elimination occurs through bile and urine. The half-life of tocopherol can vary depending on the individual's nutritional status and other factors.

Pregnancy

Tocopherol is generally considered safe during pregnancy, but it is advisable to consult a healthcare provider before use.

Breast-feeding

Tocopherol is excreted in breast milk, and while it is considered safe, a healthcare provider should be consulted for specific recommendations.

Storage

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

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: vitamin

BNF-referenced

Vitamins are organic compounds that are essential for various metabolic processes in the body. They play crucial roles in maintaining health, supporting the immune system, and promoting growth and development. Different vitamins have specific functions, and they are required in varying amounts depending on age, sex, and physiological conditions.

Indications

  • Vitamin deficiency syndromes (e.g., scurvy for vitamin C deficiency, rickets for vitamin D deficiency)
  • Support for immune function
  • Antioxidant support
  • Bone health maintenance
  • Vision health
  • Energy metabolism support

Dosage

Children: Refer to the BNF for Children for specific vitamin dosing guidelines, which depend on age and nutritional requirements.

Adults: Refer to specific vitamin guidelines as dosage varies significantly depending on the type of vitamin and individual needs.

Mechanism of action

Vitamins function primarily as coenzymes or precursors for coenzymes in enzymatic reactions. For instance, B vitamins are involved in energy metabolism, while vitamins A, C, D, E, and K support various physiological functions including vision, antioxidant activity, calcium regulation, and blood clotting. Each vitamin has a unique mechanism of action based on its structure and role in the body.

Pharmacodynamics

Vitamins exert their effects at the cellular level, influencing metabolic pathways, gene expression, and immune responses. For example, vitamin D regulates calcium and phosphate homeostasis, while vitamin A is crucial for vision and immune function. Deficiencies in vitamins can lead to a range of disorders, highlighting their importance in maintaining health.

Pharmacokinetics

The pharmacokinetics of vitamins vary widely. Fat-soluble vitamins (A, D, E, and K) are stored in liver and adipose tissues and can be released into circulation as needed. Water-soluble vitamins (B-complex and C) are not stored and must be consumed regularly, with excess amounts excreted in urine. Absorption rates, half-lives, and distribution can also differ based on the specific vitamin and individual metabolic factors.

Interactions

  • tretinoin+vitamin: Severe (increases risk of vitamin toxicity)
  • retinoids+vitamin: Severe (increases risk of vitamin toxicity)
  • retinoids+vitamin: Moderate (increases risk of toxicity)
  • carbamazepine+vitamin: Unknown (decreases effects)
  • cobicistat+vitamin: Unknown (increases exposure)
  • vitamin D substances+digoxin: Unknown (increases risk of toxicity)
  • idelalisib+vitamin: Unknown (increases exposure)
  • clarithromycin+vitamin: Unknown (increases exposure)

Pregnancy

Consult healthcare professional before use. Vitamin supplementation during pregnancy should be carefully managed to avoid hypervitaminosis.

Breast-feeding

Consult healthcare professional before use. Some vitamins can pass into breast milk and may affect the infant.

Storage

Store in a cool, dry place, away from direct sunlight. Ensure it is kept out of reach of children.

Formulations

  • {'name': 'Vitamin A', 'form': 'Capsule', 'strength': '10000 IU'}
  • {'name': 'Vitamin D', 'form': 'Tablet', 'strength': '1000 IU'}
  • {'name': 'Vitamin E', 'form': 'Softgel', 'strength': '400 IU'}

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: Riboflavin

PubChem CID 493570

Molecular formula: C17H20N4O6

Mechanism of action

Binds to riboflavin hydrogenase, riboflavin kinase, and riboflavin synthase. Riboflavin is the precursor of flavin mononucleotide (FMN, riboflavin monophosphate) and flavin adenine dinucleotide (FAD). The antioxidant activity of riboflavin is principally derived from its role as a precursor of FAD and the role of this cofactor in the production of the antioxidant reduced glutathione. Reduced glutathione is the cofactor of the selenium-containing glutathione peroxidases among other things. The glutathione peroxidases are major antioxidant enzymes. Reduced glutathione is generated by the FAD-containing enzyme glutathione reductase. Riboflavin is converted to 2 coenzymes, flavin mononucleotide (FMN) and flavin adenine dinucleotide (FAD), which are necessary for normal tissue respiration. Riboflavin is also required for activation of pyridoxine, conversion of tryptophan to niacin, and may be involved in maintaining erythrocyte integrity. Riboflavin functions as the coenzyme for flavin adenine dinucleotide (FAD) and flavin mononucleotide (FMN), which primarily influence hydrogen transport in oxidative enzyme systems (eg, cytochrome C reductase, succinic dehydrogenase, xanthine oxidase). Two active forms of riboflavin exist ... coenzyme flavin mononucleotide (FMN) and coenzyme flavin adenine dinucleotide (FAD). They are formed by reaction of riboflavin with 1 and 2 molecules of ATP as follow: riboflavin + ATP = riboflavin-P (FMN) + ADP; FMN + ATP = riboflavin-ADP (FAD) + PP. Riboflavin is a water-soluble, yellow, fluorescent compound. The primary form of the vitamin is as an integral component of the coenzymes flavin mononucleotide (FMN) and flavin-adenine dinucleotide (FAD). It is in these bound coenzyme forms that riboflavin functions as a catalyst for redox reactions in numerous metabolic pathways and in energy production. ... The redox reactions in which flavocoenzymes participate include flavoprotein-catalyzed dehydrogenations that are both pyridine nucleotide (niacin) dependent and independent, reactions with sulfur-containing compounds, hydroxylations, oxidative decarboxylations (involving thiamin as its pyrophosphate), dioxygenations, and reduction of oxygen to hydrogen peroxide. There are obligatory roles of flavocoenzymes in the formation of some vitamins and their coenzymes. For example, the biosynthesis of two niacin-containing coenzymes from tryptophan occurs via FAD-dependent kynurenine hydroxylase, an FMN-dependent oxidase catalyzes the conversion of the 5'-phosphates of vitamin B6 to coenzymic pyridoxal 5'-phosphate, and an FAD-dependent dehydrogenase reduces 5,10-methylene-tetrahydrofolate to the 5'-methyl product that interfaces with the B12-dependent formation of methionine from homocysteine and thus with sulfur amino acid metabolism. For more Mechanism of Action (Complete) data for Riboflavin (7 total), please visit the HSDB record page.

Pharmacodynamics

Riboflavin or vitamin B2 is an easily absorbed, water-soluble micronutrient with a key role in maintaining human health. Like the other B vitamins, it supports energy production by aiding in the metabolising of fats, carbohydrates, and proteins. Vitamin B2 is also required for red blood cell formation and respiration, antibody production, and for regulating human growth and reproduction. It is essential for healthy skin, nails, hair growth and general good health, including regulating thyroid activity. Riboflavin also helps in the prevention or treatment of many types of eye disorders, including some cases of cataracts.

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

Molecular reference: Thiamine

PubChem CID 1130

Molecular formula: C12H17N4OS+

Mechanism of action

It is thought that the mechanism of action of thiamine on endothelial cells is related to a reduction in intracellular protein glycation by redirecting the glycolytic flux. Thiamine is mainly the transport form of the vitamin, while the active forms are phosphorylated thiamine derivatives. Natural derivatives of thiamine phosphate, such as thiamine monophosphate (ThMP), thiamine diphosphate (ThDP), also sometimes called thiamine pyrophosphate (TPP), thiamine triphosphate (ThTP), and thiamine triphosphate (AThTP), that act as coenzymes in addition to their each unique biological functions. Metabolic control analysis predicts that stimulators of transketolase enzyme synthesis such as thiamin (vitamin B-1) support a high rate of nucleic acid ribose synthesis necessary for tumor cell survival, chemotherapy resistance, and proliferation. Metabolic control analysis also predicts that transketolase inhibitor drugs will have the opposite effect on tumor cells. This may have important implications in the nutrition and future treatment of patients with cancer.

Pharmacodynamics

Thiamine is a vitamin with antioxidant, erythropoietic, cognition-and mood-modulatory, antiatherosclerotic, putative ergogenic, and detoxification activities. Thiamine has been found to protect against lead-induced lipid peroxidation in rat liver and kidney. Thiamine deficiency results in selective neuronal death in animal models. The neuronal death is associated with increased free radical production, suggesting that oxidative stress may play an important early role in brain damage associated with thiamine deficiency. Thiamine plays a key role in intracellular glucose metabolism and it is thought that thiamine inhibits the effect of glucose and insulin on arterial smooth muscle cell proliferation. Inhibition of endothelial cell proliferation may also promote atherosclerosis. Endothelial cells in culture have been found to have a decreased proliferative rate and delayed migration in response to hyperglycemic conditions. Thiamine has been shown to inhibit this effect of glucose on endothelial cells.

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

Molecular reference: cholecalciferol

PubChem CID 5280795

Molecular formula: C27H44O

Mechanism of action

Most individuals naturally generate adequate amounts of vitamin D through ordinary dietary intake of vitamin D (in some foods like eggs, fish, and cheese) and natural photochemical conversion of the vitamin D3 precursor 7-dehydrocholesterol in the skin via exposure to sunlight. Conversely, vitamin D deficiency can often occur from a combination of insufficient exposure to sunlight, inadequate dietary intake of vitamin D, genetic defects with endogenous vitamin D receptor, or even severe liver or kidney disease. Such deficiency is known for resulting in conditions like rickets or osteomalacia, all of which reflect inadequate mineralization of bone, enhanced compensatory skeletal demineralization, resultant decreased calcium ion blood concentrations, and increases in the production and secretion of parathyroid hormone. Increases in parathyroid hormone stimulate the mobilization of skeletal calcium and the renal excretion of phosphorus. This enhanced mobilization of skeletal calcium leads towards porotic bone conditions. Ordinarily, while vitamin D3 is made naturally via photochemical processes in the skin, both itself and vitamin D2 can be found in various food and pharmaceutical sources as dietary supplements. The principal biological function of vitamin D is the maintenance of normal levels of serum calcium and phosphorus in the bloodstream by enhancing the efficacy of the small intestine to absorb these minerals from the diet. At the liver, vitamin D3 or D2 is hydroxylated to 25-hydroxyvitamin D and then finally to the primary active metabolite 1,25-dihydroxyvitamin D in the kidney via further hydroxylation. This final metabolite binds to endogenous vitamin d receptors, which results in a variety of regulatory roles - including maintaining calcium balance, the regulation of parathyroid hormone, the promotion of the renal reabsorption of calcium, increased intestinal absorption of calcium and phosphorus, and increased calcium and phosphorus mobilization of calcium and phosphorus from bone to plasma to maintain balanced levels of each in bone and the plasma. In particular, calcitriol interacts with vitamin D receptors in the small intestine to enhance the efficiency of intestinal calcium and phosphorous absorption from about 10-15% to 30-40% and 60% increased to 80%, respectively. Furthermore, calcitriol binds with vitamin D receptors in osteoblasts to stimulate a receptor activator of nuclear factor kB ligand (or RANKL) which subsequently interacts with receptor activator of nuclear factor kB (NFkB) on immature preosteoclasts, causing them to become mature bone-resorbing osteoclasts. Such mature osteoclasts ultimately function in removing calcium and phosphorus from bone to maintain blood calcium and phosphorus levels. Moreover, calcitriol also stimulates calcium reabsorption from the glomerular filtrate in the kidneys. Additionally, it is believed that when calcitriol binds with nuclear vitamin D receptors, that this bound complex itself binds to retinoic acid X receptor (RXR) to generate a heterodimeric complex that consequently binds to specific nucleotide sequences in the DNA called vitamin D response elements. When bound, various transcription factors attach to this complex, resulting in either up or down-regulation of the associated gene's activity. It is thought that there may be as much as 200 to 2000 genes that possess vitamin D response elements or that are influenced indirectly to control a multitude of genes across the genome. It is in this way that cholecalciferol is believed to function in regulating gene transcription associated with cancer risk, autoimmune disorders, and cardiovascular disease linked to vitamin D deficiency. In fact, there has been some research to suggest calcitriol may also be able to prevent malignancies by inducing cellular maturation and inducing apoptosis and inhibiting angiogenesis, exhibit anti-inflammatory effects by inhibiting foam cell formation and promoting angiogenesis in en

Pharmacodynamics

The in vivo synthesis of the predominant two biologically active metabolites of vitamin D occurs in two steps. The first hydroxylation of vitamin D3 cholecalciferol (or D2) occurs in the liver to yield 25-hydroxyvitamin D while the second hydroxylation happens in the kidneys to give 1, 25-dihydroxyvitamin D. These vitamin D metabolites subsequently facilitate the active absorption of calcium and phosphorus in the small intestine, serving to increase serum calcium and phosphate levels sufficiently to allow bone mineralization. Conversely, these vitamin D metabolites also assist in mobilizing calcium and phosphate from bone and likely increase the reabsorption of calcium and perhaps also of phosphate via the renal tubules. There exists a period of 10 to 24 hours between the administration of cholecalciferol and the initiation of its action in the body due to the necessity of synthesis of the active vitamin D metabolites in the liver and kidneys. It is parathyroid hormone that is responsible for the regulation of such metabolism at the level of the kidneys.

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

Molecular reference: d-panthenol

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: palmitate

PubChem CID 985

Molecular formula: C16H32O2

Mechanism of action

... Excessive palmitoylcarnitine formation and exhausted L-carnitine stores leading to energy depletion, attenuated acetylcholine synthesis and oxidative stress to be main mechanisms behind PA-induced neuronal loss.High PA exposure is suggested to be a factor in causing diabetic neuropathy and gastrointestinal dysregulation. ... First phase insulin release response was lost in these islets. FFAs slightly increased the insulin output of normal fresh pancreas beta-cells. However, chronic exposure to FFAs resulted in loss of first phase insulin release and blunted insulin secretion response to various levels of D-glucose stimulation.

Pharmacodynamics

Palmitic acid is the first fatty acid produced during lipogenesis (fatty acid synthesis) and from which longer fatty acids can be produced. Palmitate negatively feeds back on acetyl-CoA carboxylase (ACC) which is responsible for converting acetyl-ACP to malonyl-ACP on the growing acyl chain, thus preventing further palmitate generation

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

Molecular reference: tocopherol

PubChem CID 14986

Molecular formula: C28H48O2

Mechanism of action

Tocopherol acts as a radical scavenger. It mainly acts as an antioxidant for lipid bilayers. Tocopherol's functions depend on the H-atom donating ability, location, and movement within the membrane, as well as the efficiency in the radical recycling by some cytosolic reductants such as ascorbate. Tocopherol actions are related to the trap of radicals, and it has been shown that even in the absence of substituents in the ortho-positions, tocopherol can trap more than two radicals. The type of radicals available for tocopherol are alkyl and peroxy.

Pharmacodynamics

The antioxidant effects of tocopherol can be translated into different changes at the pharmacodynamic level. In vitro studies have shown that this antioxidant activity can produce modification in protein kinase C (PKC) which will later be translated into an inhibition of cell death. Some other derivate effects are the anti-inflammatory properties of tocopherol which can be related to the modulation of cytokines or prostaglandins, prostanoids and thromboxanes.

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

Molecular reference: vitamin

PubChem CID 266052

Molecular formula: C14H15NO7

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.