Calvitam Egg Liquid
Calcium 400 mg,Phosphorous 200 mg,Purified Water q.s ml,Vitamin B12 20 mcg,Vitamin D3 1600 IU
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.
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Sourcing - Kenya onlyRegistration & product details
Source: Zambia Medicines Regulatory Authority · fetched 2026-03-12 00:07:32 · updated 2026-09-24 03:39:42
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 cyanocobalamin
Cyanocobalamin is a form of vitamin B12 that is important for maintaining healthy nerve cells and producing red blood cells.
What it treats
- vitamin B12 deficiency
- pernicious anemia
- certain types of anemia
How it works
It helps in the production of red blood cells and supports the nervous system.
Who it's for
It is for people who have low levels of vitamin B12, including those with certain dietary restrictions or absorption issues.
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
About phosphorous
Phosphorus is a mineral important for the health of bones and teeth, and it plays a role in energy production in the body.
What it treats
- bone health
- tooth health
- energy production
How it works
Phosphorus helps build and maintain strong bones and teeth, and is essential for energy transfer in the body's cells.
Who it's for
People who need to boost their phosphorus levels for bone and dental health.
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
About purified
Purified ingredients are often used in various medicines to ensure safety and effectiveness by removing impurities.
What it treats
- various medical conditions
How it works
Purified ingredients help in delivering the intended effects of the medicine without the risk of contaminants.
Who it's for
People who need medications with safe and effective ingredients.
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
Clinical monograph: Cyanocobalamin
BNF-referencedCyanocobalamin, commonly known as vitamin B12, is a water-soluble vitamin essential for various bodily functions, including DNA synthesis, red blood cell formation, and neurological function. It plays a crucial role in the metabolism of fatty acids and amino acids. Deficiency in vitamin B12 can lead to megaloblastic anemia and neurological disorders.
Mechanism of action
Cyanocobalamin serves as a cofactor for methionine synthase and L-methylmalonyl-CoA mutase enzymes. Methionine synthase is essential for the synthesis of purines and pyrimidines that form DNA. L-methylmalonyl-CoA mutase is involved in the degradation of propionate, crucial for fat and protein metabolism. The lack of vitamin B12 results in the accumulation of methylmalonyl CoA, contributing to neurological manifestations. Additionally, it is vital for the synthesis of methionine from homocysteine, and its deficiency can lead to functional folate deficiency, which impacts red blood cell formation.
Pharmacodynamics
Cyanocobalamin corrects vitamin B12 deficiency and alleviates symptoms and laboratory abnormalities associated with pernicious anemia, such as megaloblastic indices, gastrointestinal lesions, and neurological damage. It is essential for growth, cell reproduction, hematopoiesis, nucleoprotein, and myelin synthesis. The drug significantly impacts fat and carbohydrate metabolism, as well as protein synthesis. Rapidly dividing cells, such as those in the bone marrow, have a high demand for vitamin B12. Parenteral administration of cyanocobalamin can quickly reverse the anemia and gastrointestinal symptoms of vitamin B12 deficiency, while also preventing the progression of related neurological damage.
Pharmacokinetics
Cyanocobalamin is absorbed in the intestine, primarily in the ileum, via specific transport mechanisms that may be impaired in individuals with intrinsic factor deficiency (as seen in pernicious anemia). Once absorbed, it is widely distributed in body tissues, with significant concentrations found in the liver, kidneys, and heart. The vitamin is stored in the liver, where it can be released into circulation as needed. Cyanocobalamin undergoes conversion to its active forms, methylcobalamin and adenosylcobalamin, which are utilized in various metabolic processes. The elimination half-life is variable, but it is generally excreted via urine as metabolites
Adverse effects
- Abdominal distension
- Decreased appetite
- Flatulence
- Nausea
Interactions
- Folic acid may interact with cyanocobalamin, especially in cases of megaloblastic anemia caused by folate deficiency.
Precautions
- Should not be given alone for pernicious anemia.
- Use caution in patients with Leber's disease, as it may worsen optic atrophy.
Pregnancy
Cyanocobalamin is essential during pregnancy as it helps prevent neural tube defects. It is advised that females of childbearing potential take 5 mg of folic acid daily before conception and throughout pregnancy.
Breast-feeding
Cyanocobalamin is generally considered safe during breastfeeding, but it is advised to monitor the infant for any adverse effects.
Storage
Store in a cool, dry place, away from direct sunlight. Protect from moisture.
Formulations
- Tablet: 1000 micrograms
- Tablet: 500 micrograms
- Tablet: 100 micrograms
- Oral solution: 50 micrograms per ml
- Solution for injection: 1000 micrograms per ml
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-referencedCholecalciferol, 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: phosphorous
BNF-referencedPhosphorus is an essential element that plays a critical role in various biological processes, including bone mineralization and energy metabolism. It is a key component of nucleic acids, ATP, and phospholipids, making it vital for cellular function and structural integrity. Adequate phosphorus levels are necessary for normal growth and development, especially in children.
Indications
- Hypophosphatemia
- Bone disorders (e.g., osteomalacia, rickets)
- Nutritional supplementation in deficiency states
Dosage
Children: Refer to BNF for Children for specific paediatric dosing guidance based on the condition being treated.
Adults: Refer to BNF for specific adult dosing guidance based on the condition being treated.
Mechanism of action
Phosphorus decreases the absorption of intercellular calcified cartilage matrix by osteoclasts in the metaphyseal region of growing bones, leading to increased bone density and thickness, observable as 'phosphorus bands' on radiographs. Additionally, exposure to white phosphorus damages the rough and smooth endoplasmic reticulum, impairing protein synthesis and lipid transport, particularly affecting the synthesis of very low-density lipoproteins (VLDL) and causing hepatic steatosis and fibrosis.
Pharmacodynamics
Phosphorus is involved in bone metabolism and energy transfer within cells. It contributes to the structural framework of bones and teeth, and its role in ATP formation is crucial for energy metabolism. The balance of phosphorus with calcium and vitamin D is essential for maintaining bone health and preventing disorders such as osteomalacia and rickets.
Pharmacokinetics
Phosphorus is absorbed in the gastrointestinal tract, with absorption rates affected by factors such as dietary composition and the presence of other minerals. It is distributed throughout body tissues, particularly in bones and teeth. Phosphorus is primarily excreted through the kidneys, and its serum levels are regulated by hormonal influences, including parathyroid hormone and calcitriol.
Pregnancy
Phosphorus is essential for fetal development; however, excessive intake should be avoided. Consult healthcare professionals for appropriate supplementation.
Breast-feeding
Phosphorus is secreted in breast milk; adequate maternal intake is important for infant health. Consult healthcare professionals for guidance.
Storage
Store in a cool, dry place, away from direct sunlight and moisture. Ensure it is kept 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: purified
Purified refers to a substance that has been processed to remove impurities, contaminants, or unwanted substances, resulting in a more concentrated and effective form of the original compound. In pharmacology, purified compounds are often used to enhance therapeutic efficacy and reduce adverse effects. The purification process can apply to a variety of substances, including drugs, biological products, and chemical compounds.
Dosage
Children: Refer to specific drug formulations and product labels as purified substances can vary widely in their use and dosing.
Adults: Refer to specific drug formulations and product labels as purified substances can vary widely in their use and dosing.
Mechanism of action
The mechanism of action for purified compounds varies widely depending on the specific substance. Generally, purified drugs exert their effects by interacting with specific biological targets, such as receptors, enzymes, or ion channels, leading to a desired therapeutic effect. This interaction can involve binding to receptors to activate or inhibit signaling pathways, modulating enzymatic activity, or altering physiological processes.
Pharmacodynamics
Pharmacodynamics describes the effects of a drug on the body and the relationship between drug concentration and effect. For purified drugs, this can involve dose-response relationships and the time course of their action. The purified form often enhances potency and reduces variability in response among patients, which can lead to more predictable therapeutic outcomes. The overall effect is determined by the drug's affinity for its target, the efficacy of the drug-receptor interaction, and the downstream signaling pathways activated as a result of this interaction.
Pharmacokinetics
Pharmacokinetics involves the absorption, distribution, metabolism, and excretion (ADME) of a drug. For purified substances, absorption can be more efficient due to the absence of impurities that may affect solubility or stability. Distribution may also be enhanced, leading to higher bioavailability. Metabolism can be influenced by the structure of the purified compound, as it may be metabolized more readily by liver enzymes. Excretion typically occurs through the kidneys or liver, depending on the molecular characteristics of the purified drug.
Pregnancy
Consult with a healthcare professional, as the safety of purified forms of medications during pregnancy may vary depending on the specific substance.
Breast-feeding
Consult with a healthcare professional, as the safety of purified forms of medications during breastfeeding may vary depending on the specific substance.
Storage
Store in a cool, dry place, away from light and moisture, and 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.
Molecular reference: Cyanocobalamin
PubChem CID 166596686Molecular formula: C63H88CoN14O14P
Mechanism of action
Vitamin B12 serves as a cofactor for _methionine synthase_ and _L-methylmalonyl-CoA mutase_ enzymes. Methionine synthase is essential for the synthesis of purines and pyrimidines that form DNA. L-methylmalonyl-CoA mutase converts L-methylmalonyl-CoA to _succinyl-CoA_ in the degradation of propionate, an important reaction required for both fat and protein metabolism. It is a lack of vitamin B12 cofactor in the above reaction and the resulting accumulation of methylmalonyl CoA that is believed to be responsible for the neurological manifestations of B12 deficiency. Succinyl-CoA is also necessary for the synthesis of hemoglobin. In tissues, vitamin B12 is required for the synthesis of _methionine_ from homocysteine. Methionine is required for the formation of S-adenosylmethionine, a methyl donor for nearly 100 substrates, comprised of DNA, RNA, hormones, proteins, as well as lipids. Without vitamin B12, tetrahydrofolate cannot be regenerated from 5-methyltetrahydrofolate, and this can lead to functional folate deficiency,. This reaction is dependent on methylcobalamin (vitamin B12) as a co-factor and is also dependent on folate, in which the methyl group of methyltetrahydrofolate is transferred to homocysteine to form _methionine_ and _tetrahydrofolate_. Vitamin B12 incorporates into circulating folic acid into growing red blood cells; retaining the folate in these cells. A deficiency of vitamin B12 and the interruption of this reaction leads to the development of megaloblastic anemia.
Pharmacodynamics
**General effects** Cyanocobalamin corrects vitamin B12 deficiency and improves the symptoms and laboratory abnormalities associated with pernicious anemia (megaloblastic indices, gastrointestinal lesions, and neurologic damage). This drug aids in growth, cell reproduction, hematopoiesis, nucleoprotein, and myelin synthesis. It also plays an important role in fat metabolism, carbohydrate metabolism, as well as protein synthesis. Cells that undergo rapid division (for example, epithelial cells, bone marrow, and myeloid cells) have a high demand for vitamin B12. **Parenteral cyanocobalamin effects** The parenteral administration of vitamin B12 rapidly and completely reverses the megaloblastic anemia and gastrointestinal symptoms of vitamin B12 deficiency. Rapid parenteral administration of vitamin B12 in deficiency related neurological damage prevents the progression of this condition. **Nasal spray effects** In 24 vitamin B12 deficient patients who were already stabilized on intramuscular (IM) vitamin B12 therapy, single daily doses of intranasal cyanocobalamin for 8 weeks lead to serum vitamin B12 concentrations that were within the target therapeutic range (>200 ng/L).
Source: PubChem (NCBI) · pathways from PathBank, Reactome, WikiPathways & PharmGKB.
Molecular reference: cholecalciferol
PubChem CID 5280795Molecular 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.
Biological pathways
Source: PubChem (NCBI) · pathways from PathBank, Reactome, WikiPathways & PharmGKB.
Molecular reference: phosphorous
PubChem CID 5462309Molecular 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.
Biological pathways
Source: PubChem (NCBI) · pathways from PathBank, Reactome, WikiPathways & PharmGKB.
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