biotin reference
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(biotin · DailyMed)
Valid Ghana · FDA Ghana

RELIFE H​ ​SOFTGELS

Vit A/Vit D3/Vit B1/Vit B2/Vit B6/Vit B12/Vit C/Vit E/Biotin/Vit B3/Vit B5/Vit B9/Calcium/Phosphorus/Iron/Copper/Magnesium/Potassium/Zinc/Iodine/Manganese/Selenium/Chromium/Molybdenum

FDA/SD.255-050741 Vit A/Vit D3/Vit B1/Vit B2/Vit B6/Vit B12/Vit C/Vit E/Biotin/Vit B3/Vit B5/Vit B9/Calcium/Phosphorus/Iron/Copper/Magnesium/Potassium/Zinc/Iodine/Manganese/Selenium/Chromium/Molybdenum 2500iu/400iu/1.2mg/1.6mg/2mg/3mcg/60mg/10mg/100mcg/18mg/4mg/400mcg/100mg/77mg/12mg/2mg/30mg/4mg/15mg/140mcg/3mg/50mcg/200mcg/250mcg alimentary tract and metabolism INN generic

What it does

Biotin is a vitamin that helps support healthy hair, skin, and nails.

Commonly used for: brittle nails, hair loss, skin health

Read more in plain English ↓

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

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

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Sourcing - Kenya only

Registration & product details

Registration no.
FDA/SD.255-050741
Registration date
2025-05-15
Expiry date
2030-06-01
Status
Valid
Active ingredient
Vit A/Vit D3/Vit B1/Vit B2/Vit B6/Vit B12/Vit C/Vit E/Biotin/Vit B3/Vit B5/Vit B9/Calcium/Phosphorus/Iron/Copper/Magnesium/Potassium/Zinc/Iodine/Manganese/Selenium/Chromium/Molybdenum
Strength
2500iu/400iu/1.2mg/1.6mg/2mg/3mcg/60mg/10mg/100mcg/18mg/4mg/400mcg/100mg/77mg/12mg/2mg/30mg/4mg/15mg/140mcg/3mg/50mcg/200mcg/250mcg
Pack size
-
Therapeutic class
-
ATC class (WHO)
A11HA - Other plain vitamin preparations
RxNorm RxCUI
1588
Manufacturer / MAH
Asoj Soft Caps
Country of origin
-
Manufacturer location
Halol - Vadodara Rd, Halol, Khandiwada, Gujarat 391510, India

Source: Food and Drugs Authority · fetched 2026-04-18 08:33:00 · updated 2026-09-29 04:00:09

Disclaimer: This information is sourced from Food and Drugs Authority (Ghana). Always consult a qualified healthcare professional before using any medication.

About biotin

Biotin is a vitamin that helps support healthy hair, skin, and nails.

What it treats

  • brittle nails
  • hair loss
  • skin health

How it works

Biotin helps the body convert food into energy and is important for the health of hair, skin, and nails.

Who it's for

Biotin is suitable for individuals looking to improve the strength of their nails and hair health.

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

About chromium

Chromium is a mineral that may help with blood sugar control and improve insulin sensitivity.

What it treats

  • type 2 diabetes
  • high blood sugar
  • metabolic syndrome

How it works

Chromium helps your body use insulin effectively, which can lower blood sugar levels.

Who it's for

It is typically used by people with type 2 diabetes or those looking to manage their blood sugar.

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

About copper

Copper is a mineral that is essential for various bodily functions, playing a role in the formation of red blood cells and maintaining healthy bones and nerves.

What it treats

  • copper deficiency
  • anemia
  • bone health
  • nerve health

How it works

Copper helps the body create red blood cells and supports the proper functioning of nerves and bones.

Who it's for

Copper supplements may be recommended for individuals with low copper levels or certain health conditions that affect copper absorption.

Cautions

  • • Excessive copper intake can be harmful.
  • • People with certain health conditions should consult a healthcare provider before use.

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

About iodine

Iodine is a vital mineral that helps the body produce thyroid hormones, which are essential for metabolism and overall health.

What it treats

  • prevention of iodine deficiency
  • supporting thyroid health
  • treatment of certain thyroid disorders

How it works

Iodine is necessary for the production of thyroid hormones, which help regulate many body functions including growth, metabolism, and energy levels.

Who it's for

Iodine is recommended for people who need to boost their iodine levels, such as those with certain dietary restrictions or thyroid issues.

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

About manganese

Manganese is a trace mineral important for many bodily functions, including bone formation and metabolism.

What it treats

  • nutritional support
  • bone health

How it works

Manganese helps the body use certain nutrients and is involved in the formation of connective tissue, bones, and blood-clotting factors.

Who it's for

Adults and children who may have low manganese levels due to dietary deficiencies.

Cautions

  • • Excessive intake can lead to toxicity.
  • • Consult a healthcare provider if you have liver problems.

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

About molybdenum

Molybdenum is a trace element important for various bodily functions.

What it treats

  • molybdenum deficiency
  • supporting enzyme functions

How it works

Molybdenum helps the body by supporting enzymes that are involved in processing certain substances.

Who it's for

It is for individuals who may not get enough molybdenum from their diet.

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

About phosphorus

Phosphorus is an essential mineral important for bone health and energy production in the body.

What it treats

  • bone health
  • energy production
  • cell function

How it works

Phosphorus helps build and maintain strong bones and teeth and plays a key role in how the body uses carbohydrates and fats.

Who it's for

Phosphorus is used by individuals needing to improve their phosphorus levels, such as those with certain dietary deficiencies.

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

About selenium

Selenium is a mineral that is important for various bodily functions, including supporting the immune system and maintaining healthy cells.

What it treats

  • supports immune health
  • promotes healthy cell function
  • may help prevent certain diseases

How it works

Selenium acts as an antioxidant, helping to protect cells from damage caused by free radicals.

Who it's for

Selenium is for people who need support for their immune system or those who have low levels of this mineral.

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: Biotin

BNF-referenced

Biotin, also known as vitamin H, is a water-soluble B-vitamin that plays a crucial role in carbohydrate, fat, and protein metabolism. It is involved in the synthesis of fatty acids and glucose, and is essential for normal physiological functions.

Indications

  • Isolated carboxylase defects
  • Defects of biotin metabolism
  • Prevention of deficiency in complete biliary obstruction

Dosage

Children: Neonate: Initially 10 mg once daily, adjusted according to response; maintenance 5–20 mg daily. Child: Initially 10 mg once daily, adjusted according to response; maintenance 5–20 mg daily, higher doses may be required.

Adults: For adults, the dosing may vary based on the condition being treated. General guidance is to refer to the BNF for specific dosing recommendations.

Mechanism of action

Biotin acts as a coenzyme for carboxylase enzymes, facilitating critical metabolic processes including gluconeogenesis, fatty acid synthesis, and amino acid catabolism.

Pharmacodynamics

Biotin is essential for the carboxylation of substrates in metabolic pathways, influencing energy metabolism and the synthesis of important biomolecules. It supports normal growth and development.

Pharmacokinetics

Biotin is absorbed in the intestine and is widely distributed in body tissues. It is not stored in large amounts, with excess being excreted in urine. The half-life and specific pharmacokinetic parameters can vary based on individual metabolism and dietary intake.

Adverse effects

  • Rough skin
  • Dry hair
  • Enlarged liver
  • Increases in erythrocyte sedimentation rate
  • Increased serum calcium
  • Increased serum alkaline phosphatase concentration

Precautions

  • Excessive doses may be teratogenic
  • High levels of vitamin A may cause birth defects

Pregnancy

No information available.

Breast-feeding

No information available.

Formulations

  • Tablet
  • Oral suspension
  • Oral solution
  • Solution for injection
BNF for Children 2019-2020 p.671 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: Selenium

BNF-referenced

Selenium is a trace element essential for human health, playing a crucial role in various biological processes. It is primarily incorporated into selenoproteins, which are vital for antioxidant defense, thyroid hormone metabolism, and immune function. Selenium deficiency can lead to several health issues, including impaired immune response and increased oxidative stress.

Indications

  • Selenium deficiency
  • Supportive therapy in conditions requiring antioxidant support
  • Potential adjunct in cancer prevention strategies

Dosage

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

Adults: Initially 100–500 micrograms daily, adjusted according to response and serum levels.

Mechanism of action

Selenium is metabolized to selenophosphate and selenocysteine, which are essential for the synthesis of selenoproteins. This process involves the incorporation of selenium into proteins through a specialized tRNA that recognizes the RNA sequence UGA, which is facilitated by SECIS structures and SBP-2 proteins. Key selenoproteins, like glutathione peroxidases, help protect cells from oxidative damage, thus playing a significant role in reducing the risk of diseases such as atherosclerosis and certain cancers.

Pharmacodynamics

Selenium is incorporated into various selenoproteins that perform essential functions, including antioxidant activity, redox balance, and regulation of thyroid hormones. Its role in antioxidant defense mechanisms is particularly important for protecting cells against reactive oxygen species (ROS). Selenium supplementation has been linked to improved immune function and potential cancer prevention.

Pharmacokinetics

Selenium is absorbed through the gastrointestinal tract, and its bioavailability can vary based on the source and form of selenium. Once absorbed, it is distributed to various tissues, where it is incorporated into selenoproteins. Selenium is primarily excreted through urine, and its half-life can depend on dietary intake and individual metabolism. Selenium status can be assessed through blood levels of selenoproteins and selenium itself.

Adverse effects

  • Nausea
  • Anaemia
  • Aplastic anaemia
  • Skin reactions
  • Gastrointestinal disorders

Precautions

  • Selenium supplementation should not be given unless there is good evidence of deficiency.
  • Use caution in patients with a history of hypersensitivity to selenium or its compounds.

Pregnancy

Limited information is available regarding selenium supplementation during pregnancy. Consult specialist sources for guidance.

Breast-feeding

Limited information is available; the effect of selenium on copper levels in milk is conflicting, and its impact on the infant is unknown.

Storage

After opening, store in a refrigerator (2–8°C).

Formulations

  • Tablets (e.g., L-Selenomethionine 200 micrograms, SelenoPrecise 100 micrograms)
  • Capsules (e.g., Trientine dihydrochloride 250 mg)
  • Injection solutions (e.g., Sodium selenite 50 micrograms per 1 ml)
BNF 85 (British National Formulary) p.1207 BNF 85 (British National Formulary) p.1417 BNF for Children 2019-2020 p.805 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: chromium

BNF-referenced

Chromium is an essential trace mineral that plays a critical role in carbohydrate, fat, and protein metabolism. It is particularly known for its involvement in enhancing insulin sensitivity and glucose metabolism. Chromium is often utilized as a dietary supplement for managing conditions related to insulin resistance, such as type 2 diabetes. It also contributes to the regulation of blood lipid levels, thereby playing a potential role in cardiovascular health.

Indications

  • Type 2 diabetes mellitus
  • Insulin resistance
  • Impaired glucose tolerance
  • Metabolic syndrome
  • Hyperlipidemia

Dosage

Children: Refer to the BNF for Children for specific dosage recommendations suitable for pediatric patients.

Adults: Refer to the BNF for specific dosage recommendations based on the condition being treated.

Mechanism of action

Chromium enhances insulin signaling by upregulating insulin receptor-mediated pathways. It affects downstream effector molecules after insulin binds to its receptor, leading to the activation of phosphatidylinositol 2-kinase (PI3K) and protein kinase B (Akt). This process promotes the translocation of glucose transporter-4 (Glut4) to the cell membrane, facilitating increased glucose uptake. Additionally, chromium can promote GLUT-4 transporter translocation independently of insulin receptor activity under insulin-resistant conditions and aids in cholesterol efflux by increasing membrane fluidity.

Pharmacodynamics

Trivalent chromium is essential for the glucose tolerance factor, which activates insulin-mediated pathways. It enhances insulin binding to cells, increases the density of insulin receptors, and activates insulin receptor kinase, all of which contribute to improved insulin sensitivity. Chromium deficiency can lead to impaired glucose metabolism, and supplementation can normalize glucose tolerance in individuals exhibiting diabetic-like characteristics due to deficiency.

Pharmacokinetics

Chromium absorption occurs primarily in the intestines, but its bioavailability is influenced by various dietary factors, such as the presence of other minerals and vitamins. The mineral is transported in the bloodstream bound to transferrin and is predominantly stored in the liver, spleen, and bone. The elimination of chromium occurs mainly through urine, with small amounts excreted in feces. The half-life and exact metabolic pathways for chromium can vary based on its form and the individual's nutritional status.

Pregnancy

Chromium is generally considered safe during pregnancy when taken in appropriate amounts, but it is advisable to consult a healthcare provider.

Breast-feeding

Chromium is excreted in breast milk, and while it is deemed safe in moderate amounts, consultation with a healthcare provider is recommended.

Storage

Store in a cool, dry place away from 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: copper

BNF-referenced

Copper is an essential trace element that plays a crucial role in various biological processes, including the functioning of enzymes and the formation of connective tissue. It is an important cofactor for many oxidase enzymes and has antioxidant properties. Copper deficiency can lead to serious health conditions such as Occipital Horn Syndrome and Menke's disease, which are associated with impaired development and neurological impairment. In addition, copper is used in certain contraceptive devices, where it reduces sperm viability and motility, thereby preventing fertilization.

Indications

  • Copper deficiency
  • Occipital Horn Syndrome
  • Menke's disease
  • Contraception (via copper IUD)

Dosage

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

Adults: Refer to the relevant clinical guidelines and BNF for specific dosing information.

Mechanism of action

Copper is absorbed from the gastrointestinal tract via high affinity copper uptake proteins and low affinity copper uptake proteins, likely being reduced to the Cu1+ form prior to transport. Inside enterocytes, it binds to the copper transport protein ATOX1, which facilitates its transport to copper transporting ATPase-1 on the Golgi membrane for incorporation into the Golgi apparatus. Once in systemic circulation, copper binds primarily to ceruloplasmin, albumin, and alpha 2-macroglobulin. It acts as a cofactor in a variety of oxidase enzymes and also influences sperm motility when released from copper IUDs, contributing to its contraceptive effect.

Pharmacodynamics

Copper is essential for the activity of many enzymes and plays a vital role in processes such as iron metabolism, neurotransmitter synthesis, and antioxidant defense. Copper ions, particularly when released from intrauterine devices, have been shown to decrease sperm viability, thereby impacting fertility.

Pharmacokinetics

Copper is absorbed from the gut and is predominantly transported in the plasma bound to proteins such as ceruloplasmin and albumin. The absorption efficiency can vary; however, a significant portion of dietary copper is usually absorbed. The body regulates copper levels through hepatic excretion and storage mechanisms, ensuring homeostasis. Excess copper can lead to toxicity, while deficiency results in various health issues.

Pregnancy

Copper is considered essential during pregnancy, but excessive intake should be avoided due to potential toxicity.

Breast-feeding

Copper is excreted in breast milk, and adequate maternal intake is important for infant development.

Storage

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

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: iodine

BNF-referenced

Iodine (I2) is a trace element essential for the synthesis of thyroid hormones. It is crucial for normal thyroid function and is involved in various metabolic processes. Iodine supplementation is often used to prevent and treat iodine deficiency disorders, including goiter and hypothyroidism, particularly in areas where dietary intake is insufficient.

Indications

  • Iodine deficiency
  • Goiter
  • Hypothyroidism
  • Thyroiditis
  • Fibrocystic breast disease

Dosage

Children: Refer to the BNF for Children for appropriate dosing guidelines based on age and weight.

Adults: Refer to the BNF for appropriate dosing guidelines based on condition and clinical judgment.

Mechanism of action

Molecular iodine inhibits the induction and promotion of carcinogenesis in mammary tissues and has shown beneficial effects in fibrocystic breast disease. It temporarily decreases thyroid hormone production through the acute Wolff-Chaikoff effect, followed by a return to normal hormone synthesis due to down regulation of the sodium-iodide symport. This mechanism can lead to a transient hypothyroid state in some individuals with underlying thyroid conditions.

Pharmacodynamics

Iodine is vital for the synthesis of thyroid hormones thyroxine (T4) and triiodothyronine (T3). It affects the metabolism of amine-derived hormones and plays a role in amino acid metabolism. The acute excess of iodide can lead to decreased circulating levels of T4 and T3 in susceptible individuals, while most people can escape this effect and maintain normal thyroid function.

Pharmacokinetics

Iodine is absorbed primarily in the gastrointestinal tract and is distributed throughout the body, particularly in the thyroid gland, where it is concentrated for hormone synthesis. The kidney plays a significant role in the excretion of excess iodine. The half-life of iodine in the body varies and can be influenced by dietary intake and underlying health conditions.

Adverse effects

  • Hypothyroidism
  • Hyperthyroidism
  • Iodine allergy
  • Gastrointestinal disturbances

Interactions

  • Thyroid hormones
  • Antithyroid drugs
  • Lithium
  • Diuretics

Precautions

  • Use with caution in patients with thyroid dysfunction
  • Monitor thyroid function periodically during treatment
  • Pregnant or breastfeeding women should consult a healthcare provider before use

Pregnancy

Iodine is essential for fetal thyroid hormone synthesis, but excessive iodine intake should be avoided.

Breast-feeding

Iodine is excreted in breast milk; consult a healthcare provider regarding supplementation.

Storage

Store in a cool, dry place away from light.

Formulations

  • Iodine solution
  • Iodine tincture
  • Potassium iodide tablets

AI-synthesized from BNF references - general information only, not a substitute for professional medical advice or the current BNF. Verify doses with a pharmacist.

Clinical monograph: manganese

BNF-referenced

Manganese is a trace mineral that is essential for human health, playing a critical role in various physiological processes. It is involved in the formation of connective tissue, bones, blood clotting factors, and sex hormones. Additionally, manganese is a cofactor for several important enzymes, including those involved in metabolism and antioxidant defense. It is found in foods such as nuts, seeds, whole grains, and leafy vegetables.

Indications

  • Manganese deficiency
  • Bone health and development
  • Antioxidant support
  • Enzyme cofactor in metabolic processes

Dosage

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

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

Mechanism of action

Manganese serves as a cofactor for several enzymes, including manganese superoxide dismutase (MnSOD), which protects cells from oxidative stress by catalyzing the dismutation of superoxide radicals into oxygen and hydrogen peroxide. It also participates in the activation of enzymes involved in carbohydrate, fat, and protein metabolism.

Pharmacodynamics

Manganese plays a role in various biochemical pathways, particularly in the metabolism of amino acids, cholesterol, glucose, and carbohydrates. It is crucial for bone formation and the maintenance of cartilage. Manganese also aids in the synthesis of glycosyltransferases, which are important for the formation of glycoproteins and proteoglycans.

Pharmacokinetics

Manganese is absorbed primarily in the small intestine, with absorption efficiency influenced by dietary factors and the presence of competing minerals. It is transported in the bloodstream bound to proteins such as alpha-2-macroglobulin and transferrin. Manganese is stored in the liver, pancreas, and bones, and is excreted primarily through bile and to a lesser extent in urine. Its half-life in the human body is not well defined due to its trace nature and variable absorption.

Pregnancy

Manganese is classified as a dietary mineral that is essential for human health, but excessive intake should be avoided during pregnancy as it may affect fetal development.

Breast-feeding

Manganese is present in breast milk, and normal dietary intake is considered safe during breastfeeding. However, excessive supplementation should be avoided.

Storage

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

BNF-referenced

Molybdenum is a trace element essential for human health, primarily functioning as a cofactor for various enzymes involved in the metabolism of sulfur-containing amino acids, purines, and the detoxification of sulfites. It plays a critical role in processes such as the catabolism of certain amino acids and the synthesis of uric acid.

Indications

  • Molybdenum deficiency
  • Support for enzymatic functions related to sulfur metabolism
  • Potential use in metabolic disorders associated with sulfite toxicity

Dosage

Children: Refer to specific guidelines for dosing, as molybdenum is typically obtained from dietary sources and supplementation is uncommon.

Adults: Refer to specific guidelines for dosing, as molybdenum is typically obtained from dietary sources and supplementation is uncommon.

Mechanism of action

Molybdenum serves as a cofactor for several important enzymes, including sulfite oxidase, which converts sulfite to sulfate, and xanthine oxidase, which is involved in purine metabolism. These enzymatic reactions are crucial for the detoxification of sulfites and the metabolism of nitrogenous compounds.

Pharmacodynamics

Molybdenum is vital for the activity of enzymes that contribute to the metabolism of sulfur-containing amino acids, purine degradation, and the detoxification of harmful compounds. Its deficiency can lead to metabolic disorders, highlighting its importance in enzymatic processes within the body.

Pharmacokinetics

Molybdenum is absorbed mainly in the small intestine, and its absorption may be influenced by dietary factors. Once absorbed, it is distributed throughout the body and is predominantly found in the liver, kidneys, and bones. The half-life of molybdenum and its excretion primarily through the urine is not well characterized, but excess amounts are generally eliminated by the body.

Pregnancy

Molybdenum is an essential trace element required for normal human metabolism. Adequate intake during pregnancy is important, but excessive amounts may be harmful. Consultation with a healthcare provider is advised.

Breast-feeding

Molybdenum is secreted in breast milk, and adequate intake is important for the nursing infant. Mothers should ensure they meet recommended dietary allowances.

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: phosphorus

BNF-referenced

Phosphorus is an essential element that plays a critical role in various biological processes, including bone mineralization, energy metabolism, and cellular signaling. It is a key component of nucleic acids, ATP, and phospholipids, contributing to cellular structure and function. Deficiency or excess of phosphorus can lead to metabolic disturbances, impacting bone health and energy production.

Indications

  • Phosphorus deficiency
  • Bone health maintenance
  • Nutritional supplementation
  • Metabolic bone diseases

Dosage

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

Adults: Refer to the BNF for specific dosing information.

Mechanism of action

Phosphorus decreases the absorption of intercellular calcified cartilage matrix by osteoclasts in the metaphyseal region of growing bones. This results in the formation of 'phosphorus bands' of increased bone density and thickness. Additionally, exposure to white phosphorus impairs protein synthesis by damaging the rough and smooth endoplasmic reticulum, leading to an accumulation of triglycerides in the liver and resulting in hepatic steatosis and fibrosis.

Pharmacodynamics

Phosphorus is vital for the formation of hydroxyapatite in bone, which is necessary for maintaining bone density and strength. It also plays a significant role in energy transfer through ATP and in cellular signaling pathways. The balance of phosphorus in the body is tightly regulated, as both deficiency and excess can lead to serious health issues, including bone disorders and metabolic dysfunctions.

Pharmacokinetics

Phosphorus is absorbed primarily in the intestines, with bioavailability influenced by dietary factors. It is distributed throughout the body and is predominantly found in bones and teeth. Phosphorus is excreted mainly via the kidneys, with regulation occurring through various hormonal mechanisms, including parathyroid hormone and calcitriol. The half-life can vary depending on dietary intake and individual metabolism.

Pregnancy

Phosphorus is generally regarded as safe during pregnancy when consumed in appropriate dietary amounts. However, excessive phosphorus intake should be avoided as it may lead to complications.

Breast-feeding

Phosphorus is excreted in breast milk, but it is essential for the health of both the mother and the infant. Supplementation should be considered carefully.

Storage

Store in a tightly closed container, 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.

Molecular reference: Biotin

PubChem CID 171548

Molecular formula: C10H16N2O3S

Mechanism of action

Biotin is necessary for the proper functioning of enzymes that transport carboxyl units and fix carbon dioxide, and is required for various metabolic functions, including gluconeogenesis, lipogenesis, fatty acid biosynthesis, propionate metabolism, and catabolism of branched-chain amino acids. In human tissues biotin is a cofactor for the enzymatic carboxylation of four substrates: pyruvate, acetyl coenzyme A (CoA), propionyl CoA, and beta-methylcrotonyl CoA. As such, it plays an important role in both carbohydrate and fat metabolism. Carbon dioxide fixation occurs in a two-step reaction, the first involving binding of carbon dioxide to the biotin moiety of the holoenzyme, and the second involving transfer of the biotin-bound carbon dioxide to an appropriate acceptor. Biotin functions in carbon dioxide fixation reactions in intermediate metabolism, transferring the carboxyl group to acceptor molecules. It acts similarly in decarboxylation reactions. Biotin is essential in human metabolism for its part in the previously described enzymatic steps, in catalyzing deamination of amino acids, and in oleic acid synthesis. Biotin is a cofactor for the enzymatic carboxylation of pyruvate, acetyl coenzyme A (CoA), propionyl CoA, and beta-methylcrotonyl CoA, and, therefore, plays an important role in carbohydrate and fat metabolism. Protein folding in the endoplasmic reticulum (ER) depends on Ca2+; uptake of Ca2+ into the ER is mediated by sarco/endoplasmic reticulum Ca2+-ATPase 3 (SERCA3). The 5'-flanking region of the SERCA3 gene (ATP2A3) contains numerous binding sites for the transcription factors Sp1 and Sp3. Biotin affects the nuclear abundance of Sp1 and Sp3, which may act as transcriptional activators or repressors. Here we determined whether biotin affects the expression of the SERCA3 gene and, thus, protein folding in human lymphoid cells. Jurkat cells were cultured in media containing 0.025 nmol/L biotin (denoted "deficient") or 10 nmol/L biotin ("supplemented"). The transcriptional activity of the full-length human SERCA3 promoter was 50% lower in biotin-supplemented cells compared to biotin-deficient cells. Biotin-dependent repressors bind to elements located 731 to 1312 bp upstream from the transcription start site in the SERCA3 gene. The following suggest that low expression of SERCA3 in biotin-supplemented cells impaired folding of secretory proteins in the ER, triggering unfolded protein response: (i) sequestration of Ca2+ in the ER decreased by 14 to 24% in response to biotin supplementation; (ii) secretion of interleukin-2 into the extracellular space decreased by 75% in response to biotin supplementation; (iii) the nuclear abundance of stress-induced transcription factors increased in response to biotin supplementation; and (iv) the abundance of stress-related proteins such ubiquitin activating enzyme 1, growth arrest and DNA damage 153 gene, X-box binding protein 1 and phosphorylated eukaryotic translation initiation factor 2alpha increased in response to biotin supplementation. Collectively, this study suggests that supplements containing pharmacological doses of biotin may cause cell stress by impairing protein folding in the ER. Evidence is emerging that biotin participates in processes other than classical carboxylation reactions. Specifically, novel roles for biotin in cell signaling, gene expression, and chromatin structure have been identified in recent years. Human cells accumulate biotin by using both the sodium-dependent multivitamin transporter and monocarboxylate transporter 1. These transporters and other biotin-binding proteins partition biotin to compartments involved in biotin signaling: cytoplasm, mitochondria, and nuclei. The activity of cell signals such as biotinyl-AMP, Sp1 and Sp3, nuclear factor (NF)-kappaB, and receptor tyrosine kinases depends on biotin supply. Consistent with a role for biotin and its catabolites in modulating these cell signals, greater than 2000 biotin-dependent genes have

Pharmacodynamics

Biotin is a water-soluble B-complex vitamin which is composed of an ureido ring fused with a tetrahydrothiophene ring, which attaches a valeric acid substituent at one of its carbon atoms. Biotin is used in cell growth, the production of fatty acids, metabolism of fats, and amino acids. It plays a role in the Kreb cycle, which is the process in which energy is released from food. Biotin not only assists in various metabolic chemical conversions, but also helps with the transfer of carbon dioxide. Biotin is also helpful in maintaining a steady blood sugar level. Biotin is often recommended for strengthening hair and nails. Consequenty, it is found in many cosmetic and health products for the hair and skin. Biotin deficiency is a rare nutritional disorder caused by a deficiency of biotin. Initial symptoms of biotin deficiency include: Dry skin, Seborrheic dermatitis, Fungal infections, rashes including erythematous periorofacial macular rash, fine and brittle hair, and hair loss or total alopecia. If left untreated, neurological symptoms can develop, including mild depression, which may progress to profound lassitude and, eventually, to somnolence; changes in mental status, generalized muscular pains (myalgias), hyperesthesias and paresthesias. The treatment for biotin deficiency is to simply start taking some biotin supplements. A lack of biotin in infants will lead to a condition called seborrheic dermatitis or "cradle cap". Biotin deficiencies are extremely rare in adults but if it does occur, it will lead to anemia, depression, hair loss, high blood sugar levels, muscle pain, nausea, loss of appetite and inflamed mucous membranes.

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

Molecular reference: Selenium

PubChem CID 6326970

Molecular formula: Se

Mechanism of action

Selenium is first metabolized to selenophosphate and selenocysteine. Selenium incorporation is genetically encoded through the RNA sequence UGA. This sequence is recognized by RNA ste loop structures called selenocysteine inserting sequences (SECIS). These structures require the binding of SECIS binding proteins (SBP-2) to recognize selenocystiene. The specialized tRNA is first bound to a serine residue which is then enzymatically processed to a selylcysteyl-tRNA by selenocystiene sythase using selenophosphate as a selenium donor. Other unidentified proteins are required as part of the binding of this tRNA to the ribosome. Selenoproteins appear to be necessary for life as mice with the specialized tRNA gene knocked out exhibited early embryonic lethality. The most important selenoproteins seem to be the glutathione peroxidases and thioredoxin reductases which are part of the body's defenses againts reactive oxygen species (ROS). The importance of selenium in these anti-oxidant proteins has been implicated in the reduction of atherosclerosis by preventing the oxidation of low density lipoprotein. Selenium supplementation is also being investigated in the prevention of cancer and has been suggested to be beneficial to immune function. Converging data from epidemiological, ecological, and clinical studies have shown that selenium (Se) can decrease the risk for some types of human cancers. Induction of apoptosis is considered an important cellular event that can account for the cancer preventive effects of Se. Prior to occurrence of apoptosis, Se compounds alter the expression and/or activities of signaling molecules, mitochondria-associated factors, transcriptional factors, tumor suppressor genes, and cellular reduced glutathione. Mechanistic studies have demonstrated that the methylselenol metabolite pool has many desirable attributes of chemoprevention, whereas the hydrogen selenide pool with excess of selenoprotein synthesis can lead to DNA single-strand breaks. To elucidate the effects of Se on cytotoxic events, it should be remembered that the chemical forms and the dose of Se, and the experimental system used, are determinants of its biological activities. This mini-review focuses on elucidation of the molecular mechanisms of cancer prevention by Se with the apoptotic approach. /Selenium/ Selenium status can also influence thyroid hormone function via the deiodinase enzymes. Selenium is a critical component of the deiodinase enzymes, including iodothyronine 5'-deiodinases, which convert the prohormone thyroxine (T4) to the active circulating form, triiodothyronine (T3). Selenium is also a component of GPX, the main enzyme responsible for protecting thyroid cells against oxidative damage. GPX is involved in the detoxification of hydrogen peroxide, which is produced in the thyroid during the conversion of T4 to T3. /Selenium/ Selenium readily substitutes for sulfur in biomolecules and in many biochemical reactions, especially when the concentration of selenium is high and the concentration of sulfur is low in the organism. Inactivation of the sulfhydryl enzymes necessary for oxidative reactions in cellular respiration, through effects on mitochondrial and microsomal electron transport, might contribute to acute selenium toxicity. Selenium may have a role in hepatic heme metabolism that is related to GPX or lipid peroxidation. Selenocysteine is specifically found in some proteins (e.g., glutathione peroxidase); selenomethionine appears to randomly substitute for methionine in protein synthesis. This appears to be an additional mechanism for intermediate- or chronic-duration toxicity. Skin, hair, and nail damage are significant indicators of chronic selenium overexposure. The mechanism causing these integumentary effects is unclear, but could be related to the high selenium concentrations in these tissues as a consequence of the substitution of selenium for sulfur in certain amino acids, including the disulfide bridges that pr

Pharmacodynamics

Selenium is incorporated into many different selenoproteins which serve various functions throughout the body.

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

Molecular reference: chromium

PubChem CID 23976

Molecular formula: Cr

Mechanism of action

Chromium is an essential nutrient involved in the metabolism of glucose, insulin and blood lipids. Its role in potentiating insulin signalling cascades has been implicated in several studies. Chromium upregulates insulin-stimulated insulin signal transduction via affecting effector molecules downstream of the insulin receptor (IR). IR-mediated signalling pathway involves phoshorylation of multiple intracellular domains and protein kinases, and downstream effector molecules. Upon activation by ligands, intracellular β-subunit of IR autophosphorylates and activates tyrosine kinase domain of the IR, followed by activation and phosphorylation of regulatory proteins and downstream signalling effectors including phosphatidylinositol 2-kinase (PI3K). PI3K activates further downstream reaction cascades to activate protein kinase B (Akt) to ultimately promote translocation of glucose transporter-4 (Glut4)-vesicles from the cytoplasm to the cell surface and regulate glucose uptake. Chromium enhances the kinase activity of insulin receptor β and increases the activity of downstream effectors, pI3-kinase and Akt. Under insulin-resistant conditions, chromium also promotes GLUT-4 transporter translocation that is independent of activity of IR, IRS-1, PI3-kinase, or Akt; chromium mediates cholesterol efflux from the membranes via increasing fluidity of the membrane by decreasing the membrane cholesterol and upregulation of sterol regulatory element-binding protein. As a result, intracellular GLUT-4 transporters are stimulated to translocate from intracellular to the plasma membrane, leading to enhanced glucose uptake in muscle cells. Chromium attenuates the activity of PTP-1B _in vitro,_ which is a negative regulator of insulin signaling. It also alleviates ER stress that is observed to be elevated the suppression of insulin signaling. ER stress is thought to activate c-Jun N-terminal kinase (JNK), which subsequently induces serine phosphorylation of IRS and aberration of insulin signalling. Transient upregulation of AMPK by chromium also leads to increased glucose uptake. While the toxicity of metals and metalloids, like arsenic, cadmium, mercury, lead and chromium, is undisputed, the underlying molecular mechanisms are not entirely clear. General consensus holds that proteins are the prime targets; heavy metals interfere with the physiological activity of specific, particularly susceptible proteins, either by forming a complex with functional side chain groups or by displacing essential metal ions in metalloproteins. Recent studies have revealed an additional mode of metal action targeted at proteins in a non-native state; certain heavy metals and metalloids have been found to inhibit the in vitro refolding of chemically denatured proteins, to interfere with protein folding in vivo and to cause aggregation of nascent proteins in living cells. Apparently, unfolded proteins with motile backbone and side chains are considerably more prone to engage in stable, pluridentate metal complexes than native proteins with their well-defined 3D structure. By interfering with the folding process, heavy metal ions and metalloids profoundly affect protein homeostasis and cell viability. This review describes how heavy metals impede protein folding and promote protein aggregation, how cells regulate quality control systems to protect themselves from metal toxicity and how metals might contribute to protein misfolding disorders.

Pharmacodynamics

Trivalent chromium is part of glucose tolerance factor, an essential activator of insulin-mediated reactions. Chromium helps to maintain normal glucose metabolism and peripheral nerve function. Chromium increases insulin binding to cells, increases insulin receptor density and activates insulin receptor kinase leading to enhanced insulin sensitivity. In chromium deficiency, intravenous administration of chromium resulted in normalization of the glucose tolerance curve from the diabetic-like curve typical of chromium deficiency.

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

Molecular reference: copper

PubChem CID 23978

Molecular formula: Cu

Mechanism of action

Copper is absorbed from the gut via high affinity copper uptake protein and likely through low affinity copper uptake protein and natural resistance-associated macrophage protein-2. It is believed that copper is reduced to the Cu1+ form prior to transport. Once inside the enterocyte, it is bound to copper transport protein ATOX1 which shuttles the ion to copper transporting ATPase-1 on the golgi membrane which take up copper into the golgi apparatus. Once copper has been secreted by enterocytes into the systemic circulation it remain largely bound by ceruloplasmin (65-90%), albumin (18%), and alpha 2-macroglobulin (12%). Copper is an essential element in the body and is incorporated into many oxidase enzymes as a cofactor. It is also a component of zinc/copper super oxide dismutase, giving it an anti-oxidant role. Copper defiency occurs in Occipital Horn Syndrome and Menke's disease both of which are associated with impaired development of connective tissue due to the lack of copper to act as a cofactor in protein-lysine-6-oxidase. Menke's disease is also associated with progressive neurological impairment leading to death in infancy. The precise mechanisms of the effects of copper deficiency are vague due to the wide range of enzymes which use the ion as a cofactor. Copper appears to reduce the viabilty and motility of spermatozoa. This reduces the likelihood of fertilization with a copper IUD, producing copper's contraceptive effect. The exact mechanism of copper's effect on sperm are unknown. The reason for the less severe reaction when the foreign body is at a distance from the retina has been proposed to be ... that near the retina & its blood vessels there is greater oxygen tension than at a distance, which causes metallic copper to oxidize to toxic copper compounds more rapidly close to or in contact with the retina than at a distance. Furthermore, the abscess formation that is characteristic of copper undergoing oxidation close to the retina & choroiod can be attributed to attraction of polymorphonuclear leukocytes from these nearby vascular tissues, which become heavily infiltrated. Liquefaction & disorganization of the vitreous body has been explained on the basis of copper catalysis of oxidation of ascorbic acid, leading to depolymerization of the hyaluronic acid of the vitreous humor. Changes in protein & hexosamine content have also been related to decrease in viscosity of the vitreous humor. Increased content of amino acids in the vitreous humor has been consistent with proteolysis of the vitreous body, but decreased concentration in the aqueous humor has suggested suppression of secretion of amino acids by the ciliary body under the influence of copper.

Pharmacodynamics

Copper is incorporated into many enzymes throughout the body as an essential part of their function. Copper ions are known to reduce fertility when released from copper-containing IUDs.

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

Molecular reference: iodine

PubChem CID 807

Molecular formula: I2

Mechanism of action

Molecular iodine is known to inhibit the induction and promotion of N-methyl-n-nitrosourea-induced mammary carcinogenesis, to regress 7,12-dimethylbenz(a)anthracene-induced breast tumors in rats.It has also been shown to have beneficial effects in fibrocystic human breast disease. An acute iodide excess (above the preexisting dietary intake) transiently decreases the production of thyroid hormones in the thyroid gland; this is referred to as the acute Wolff-Chaikoff effect. In normal people, this is followed by a return to normal levels of hormone synthesis, referred to as escape from the acute Wolff-Chaikoff effect, without a significant change in circulating hormone levels. Escape is thought to be the result of down regulation of the sodium-iodide symport (NIS), the iodide transporter in the thyroid gland, resulting in a decrease in the intrathyroidal iodine and the resumption of normal hormone synthesis. An acute or chronic excess of iodide can also decrease circulating T4 and T3 levels and induce a hypothyroid state in some people who have underlying thyroid disorders. These effects are the result of a failure to escape from the acute Wolff-Chaikoff effect. Most people who experience iodine-induced hypothyroidism recover when the excess iodine intake is discontinued.

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

Molecular reference: manganese

PubChem CID 23930

Molecular formula: Mn

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

Molecular reference: molybdenum

PubChem CID 23932

Molecular formula: Mo

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

Molecular reference: phosphorus

PubChem CID 5462309

Molecular formula: P

Mechanism of action

Phosphorus apparently decreases the absorption of intercellular calcified cartilage matrix by osteoclasts, in the metaphyseal region of growing bones. Administration of phosphorus to growing animals or children produces "phosphorus bands" of increased bone density and thickness that are visible grossly or from radiograms. The "phosphorus bands" are observed in the metaphyseal region of growing bones, and represent areas of decreased absorption of the calcified cartilage matrix. Exposure to white phosphorus has been shown to damage the rough endoplasmic reticulum and cause a disaggregation of polyribosomes. This damage results in impairment of protein synthesis, in particular, a decrease in the synthesis of the apolipoprotein portion of very low density lipoproteins (VLDL), which are required for the transport of triglycerides. A significant decrease in protein synthesis has been detected as early as 3 hours after oral exposure. The smooth endoplasmic reticulum is also involved in the formation of the VLDLs, and damage to the smooth endoplasmic reticulum also impairs the formation of VLDLs. The net result of these ultrastructural changes is an accumulation of triglycerides in the liver. This results in steatosis and fibrosis, which is one of the mechanisms involved in the hepatotoxicity of white phosphorus. The mechanism behind the damage to the endoplasmic reticulum is not known; also, it is not known whether white phosphorus itself or a metabolite of white phosphorus is the damaging agent. In addition to these damages, white phosphorus or a metabolite causes damage to the mitochondria and nuclei in the livers of animals orally exposed to white phosphorus. The damage to the mitochondria may impair the cell's ability to produce ATP, thus resulting in necrosis of the cell. Fatty infiltration and/or cellular damage has also been observed in the kidney, brain, and heart. It is possible that white phosphorus (or a metabolite) also impairs the ability of cells in these organs to produce ATP. The mitochondrial damage may also inhibit fatty acid oxidation (also contributing to the decreased availability of ATP) which could result in an accumulation of fat in the organs.

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

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