Injectiphos
Butaphosphan 100 mg/ml,Cyanocobalamin 0.05 mg/ml,N-Butyl Alcohol 30.00 mg,Potassium Thiocyanate 20.00 mg,Sodium Hydroxide Q.S. mg,Water for Injection Q.S. ml
What it does
Alcohol is a substance that can affect your mood and behavior. It is important to use it carefully, especially if you are taking other medications.
Commonly used for: social enjoyment, anxiety relief, temporary relaxation
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.
Medicine sourcing is available in Kenya only. We don't sell or dispense medicines - licensed pharmacies do.
Sourcing - Kenya onlyRegistration & product details
Source: Tanzania Medicines and Medical Devices Authority · fetched 2026-03-11 23:39:22 · updated 2026-09-28 03:00:45
Drug Interactions
8Pharmacodynamic Warnings
Alcohol appears in TABLE 1: Drugs that cause hepatotoxicity
Alcohol appears in TABLE 8: Drugs that cause hypotension
Alcohol appears in TABLE 11: Drugs with CNS depressant effects
Unknown (8)
Acitretin - increases concentration
Alcohol potentially increases the concentration of retinoids (acitretin). Avoid and for 2 months after stopping acitretin.
Antiepileptics - increases risk of visual disturbances
Alcohol potentially increases the risk of visual disturbances when given with antiepileptics (retigabine).
Methylphenidate - increases concentration
Alcoholmightincreasetheconcentrationofmethylphenidate. Avoid.oStudy
Retigabine - increases risk of visual disturbances
Alcohol potentially increases the risk of visual disturbances when given with antiepileptics (retigabine).
Retinoids - increases concentration
Alcohol potentially increases the concentration of retinoids (acitretin). Avoid and for 2 months after stopping acitretin.
Topical Pimecrolimus - increases risk of facial flushing and skin irritation
Alcohol increases the risk of facial flushing and skin irritation when given with topical pimecrolimus.
Topical Tacrolimus - increases risk of facial flushing and skin irritation
Alcohol increases the risk of facial flushing and skin irritation when given with topical tacrolimus.
Vasopressin - decreases antidiuretic effect
Alcoholmightdecreasetheantidiureticeffectofvasopressin. oTheoretical Aldesleukin →seeTABLE15p.1520(myelosuppression) Alectinib →seeTABLE6p.1518(bradycardia),TABLE1p.1517 (hepatotoxicity) com/codemedic
Data from BNF 85 (British National Formulary). This is not a substitute for professional medical advice. Matched via: exact
About alcohol
Alcohol is a substance that can affect your mood and behavior. It is important to use it carefully, especially if you are taking other medications.
What it treats
- social enjoyment
- anxiety relief
- temporary relaxation
How it works
Alcohol affects the brain and central nervous system, leading to changes in mood and behavior.
Who it's for
Adults who consume alcohol in moderation for social or relaxation purposes.
Cautions
- • Be cautious if taking medications that can harm the liver.
- • Use with care if you have low blood pressure.
- • Avoid combining with medications that can cause drowsiness.
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
About butaphosphan
Butaphosphan is a medication often used to support overall health and well-being.
What it treats
- nutritional deficiencies
- supporting recovery from illness
How it works
It helps improve energy levels and promotes better health.
Who it's for
It is suitable for individuals looking to enhance their general health or recover from health issues.
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 hydroxide
Hydroxide is a compound used to help neutralize stomach acid and relieve indigestion or heartburn.
What it treats
- indigestion
- heartburn
How it works
Hydroxide works by neutralizing the excess acid in the stomach, which helps to reduce discomfort.
Who it's for
Hydroxide is suitable for adults and children experiencing symptoms of excess stomach acid.
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
About thiocyanate
Thiocyanate is a compound that can affect the body in various ways, often related to its role in certain medical conditions.
What it treats
- used in some medical tests
- helps assess thyroid function
How it works
Thiocyanate can influence how the body uses iodine, which is important for making thyroid hormones.
Who it's for
Thiocyanate may be used for individuals undergoing tests for thyroid-related issues.
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: Alcohol
BNF-referencedAlcohol is a volatile, flammable liquid used primarily as an antiseptic for skin disinfection and preparation before injections. It is commonly employed in medical settings to cleanse the skin and reduce the risk of infection.
Indications
- Skin disinfection
- Preparation of skin before injections
- Cleansing minor wounds
Dosage
Children: Apply to the skin as required; consult product literature for specific guidance.
Adults: Apply to the skin as required for disinfection.
Mechanism of action
Alcohol exerts its antiseptic effect by denaturing proteins, disrupting cell membranes, and dehydrating microbial cells, leading to cell lysis and death.
Pharmacodynamics
Alcohol has broad-spectrum antimicrobial activity, effective against bacteria, fungi, and viruses. Its efficacy is influenced by concentration, with higher concentrations generally being more effective.
Pharmacokinetics
Alcohol is rapidly absorbed through the skin and mucous membranes. It is metabolized primarily in the liver, with a half-life that varies based on the individual's metabolic rate and the amount consumed.
Contra-indications
- Concomitant use with lithium
- Regular use in neonates
- Patients with severe burns when diathermy has been preceded by application of alcoholic skin disinfectants
Adverse effects
- Eye erythema
- Punctate keratitis
- Cytotoxicity
- Eye discolouration
Interactions
- Increases risk of visual disturbances with antiepileptics
- Increases concentration with methylphenidate
- Increases risk of facial flushing and skin irritation with topical pimecrolimus
- Increases concentration with retinoids
- Increases concentration with acitretin
- Increases risk of facial flushing and skin irritation with topical tacrolimus
- Decreases antidiuretic effect with vasopressin
Precautions
- Avoid regular application to inflamed or broken skin or mucosa
- Avoid broken skin
- Flammable
Pregnancy
Sufficient iodine may be absorbed to affect the fetal thyroid in the second and third trimester.
Breast-feeding
Avoid regular or excessive use.
Storage
Store in a cool, dry place away from heat and direct sunlight.
Formulations
- Betadine 2.5% dry powder spray
- Industrial methylated spirit
- Povidone-Iodine 25 mg per 1 gram
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: butaphosphan
BNF-referencedButaphosphan is a phosphoric acid derivative commonly used in veterinary medicine as an appetite stimulant and for enhancing metabolic processes. It is recognized for its role in improving the overall health and performance of animals, particularly in conditions where appetite and energy levels are compromised. Its use in human medicine is not well established.
Indications
- Appetite stimulation
- Metabolic enhancement in animals
- Support in conditions of poor appetite
Dosage
Children: Refer to specific veterinary dosing guidelines, as human use is not well established.
Adults: Refer to specific veterinary dosing guidelines, as human use is not well established.
Mechanism of action
Butaphosphan is believed to enhance the bioavailability of phosphorus in the body, which plays a critical role in various metabolic pathways, including the synthesis of ATP, nucleic acids, and phospholipids. It may also stimulate the release of insulin, promoting glucose utilization and energy production.
Pharmacodynamics
Butaphosphan acts primarily as a metabolic enhancer, improving appetite and energy levels. It contributes to nutritional support by facilitating the metabolism of carbohydrates and fats. The pharmacological effects are generally observed in the gastrointestinal and metabolic systems, leading to improved overall health and vitality.
Pharmacokinetics
The pharmacokinetics of butaphosphan are not extensively studied, but it is expected to be rapidly absorbed after administration, with effects seen shortly thereafter. Metabolism occurs primarily in the liver, and excretion is likely through the kidneys. The specific half-life and elimination pathways are not well documented.
Pregnancy
There is limited data on the use of butaphosphan in pregnancy. It should only be used if the potential benefit justifies the potential risk to the fetus.
Breast-feeding
It is not known whether butaphosphan is excreted in human milk. Caution should be exercised when administering to a nursing mother.
Storage
Store in a cool, dry place, away from light. Keep out of reach of children.
Formulations
- Injectable 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: hydroxide
BNF-referencedHydroxide, represented by the molecular formula HO-, is an anion commonly found in various chemical and biological systems. It plays a crucial role in acid-base chemistry and is a fundamental component in many biochemical pathways. Hydroxide ions are involved in maintaining pH balance in biological systems and participate in various metabolic processes.
Dosage
Children: Refer to specific guidelines for pediatric dosing; consult the BNF for Children for accurate dosage information.
Adults: Refer to specific guidelines for use; dosage may vary based on the context of use.
Mechanism of action
Hydroxide ions act primarily as bases, neutralizing acids to form water and salts. They participate in various biochemical pathways, including selenium metabolism and the degradation of reactive oxygen species. Hydroxide can influence enzyme activity and stability by altering the pH of the environment, thereby affecting metabolic reactions.
Pharmacodynamics
Hydroxide ions can impact biological processes by changing the local pH, which influences enzyme activity, ion transport, and the solubility of other compounds. Their ability to neutralize acids can help regulate physiological pH, contributing to homeostasis in living organisms.
Pharmacokinetics
As an inorganic ion, hydroxide does not undergo traditional pharmacokinetic processes like absorption, distribution, metabolism, or excretion. Instead, it is rapidly equilibrated in biological fluids and participates in acid-base reactions, having immediate effects on the local environment.
Pregnancy
There is limited information regarding the use of hydroxide during pregnancy. Consult a healthcare professional for advice.
Breast-feeding
Limited data is available on the excretion of hydroxide in breast milk. Consult a healthcare professional before use.
Storage
Store in a cool, dry place away from direct sunlight. Keep out of reach of children.
AI-synthesized from BNF references - general information only, not a substitute for professional medical advice or the current BNF. Verify doses with a pharmacist.
Clinical monograph: thiocyanate
BNF-referencedThiocyanate is an anion derived from thiocyanic acid, commonly found in various biological systems. It plays a role in sulfur metabolism and is involved in various biochemical pathways. Thiocyanate can be produced in the body through the metabolism of cyanide and is excreted primarily via the kidneys. Its presence in the body may reflect exposure to cyanogenic compounds or certain dietary sources, such as cruciferous vegetables.
Mechanism of action
Thiocyanate acts primarily by competing with iodide for uptake in the thyroid gland, thereby potentially inhibiting thyroid hormone synthesis. This can lead to a reduction in the production of thyroid hormones, affecting metabolic processes that are regulated by these hormones. Additionally, thiocyanate is involved in various metabolic pathways related to sulfur compounds, influencing overall redox status and metabolic homeostasis.
Pharmacodynamics
Thiocyanate has a notable effect on thyroid function due to its ability to inhibit iodide transport. This inhibition can result in decreased levels of thyroid hormones, which are crucial for regulating metabolism, growth, and development. The compound may also influence various metabolic pathways involving sulfur, interacting with enzymes and substrates related to sulfur metabolism.
Pharmacokinetics
Thiocyanate is absorbed through the gastrointestinal tract, and its distribution is influenced by factors such as protein binding and tissue uptake. The compound is primarily excreted through the kidneys, with renal clearance being a significant route of elimination. The half-life of thiocyanate can vary, but it is generally considered to be several days in the body, depending on individual metabolic rates and kidney function.
Pregnancy
Thiocyanate should be used during pregnancy only if the potential benefit justifies the potential risk to the fetus.
Breast-feeding
Thiocyanate is excreted in breast milk. Caution should be exercised when administering to nursing mothers.
Storage
Store in a tightly closed container at room temperature, away from heat 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.
Molecular reference: Alcohol
PubChem CID 702Molecular formula: C2H6O
Mechanism of action
Ethanol affects the brain’s neurons in several ways. It alters their membranes as well as their ion channels, enzymes, and receptors. Alcohol also binds directly to the receptors for acetylcholine, serotonin, GABA, and the NMDA receptors for glutamate. The sedative effects of ethanol are mediated through binding to GABA receptors and glycine receptors (alpha 1 and alpha 2 subunits). It also inhibits NMDA receptor functioning. In its role as an anti-infective, ethanol acts as an osmolyte or dehydrating agent that disrupts the osmotic balance across cell membranes. ... Ethanol is known to affect a large number of membrane proteins that participate in signaling pathways such as neurotransmitter receptors, enzymes, and ion channels, and there is extensive evidence that ethanol interacts with a variety of neurotransmitters. The major actions of ethanol involve enhancing the inhibitory effects of gamma-aminobutyric acid (GABA) at GABAa receptors and blockade of the N-methyl-D-aspartate (NMDA) subtype of glutamate, an excitatory amine acid (EAA) receptor. Animal studies indicate that the acute effects of ethanol result from competitive inhibition of glycine binding to NMDA receptor and disruption of glutamatergic neurotransmission by inhibiting the response of the NMDA receptor. Persistent glycine antagonism and attenuation of glutamatergic neurotransmission by chronic ethanol exposure results in tolerance to ethanol by enhancing EAA neurotransmission and NMDA receptor upregulation. The latter appears to involve selective increases in NMDA R2B subunit concentrations and other molecular changes in specific brain loci. The abrupt withdrawal of ethanol thus produces a hyperexcitable state that leads to the ethanol withdrawal syndrome and excitotoxic neuronal death. GABA-mediated inhibition, which normally acts to limit excitation, is eliminated during ethanol withdrawal syndrome and further intensifies this excitation. In addition, NMDA receptors function to inhibit the release of dopamine in the nucleus accumbens and mesolimbic structures, which modulate the reinforcing action of addictive xenobiotics such as ethanol. By inhibiting NMDA receptor activity, ethanol could increase dopamine release from the nucleus accumbens and ventral tegmental area and could thus create dependence. Chronic ethanol administration also results in tolerance, dependence, and an ethanol withdrawal syndrome, mediated, in part, by desensitization and or downregulation of GABAa receptors. The development of alcoholic ketoacidosis (AKA) requires that a combination of physical and physiologic events occur. The normal response to starvation and depletion of hepatic glycogen stores is for amino acids to be converted to pyruvate. Pyruvate can serve as a substrate for gluconeogenesis, be converted to acetyl-CoA, which can enter the Krebs cycle or can be utilized in various biosynthetic pathways (eg, fatty acid, ketone bodies, cholesterol, and acetylcholine) ... Ethanol metabolism generates NADH, resulting in an excess of reducing potential. This high redox state favors the conversion of pyruvate to lactate, diverting pyruvate from being a substrate for gluconeogenesis. To compensate for the lack of normal metabolic substrates, the body mobilizes fat from adipose tissue and increased fatty acid metabolism as an alternative source of energy. This response is mediated by a decrease in insulin and an increased secretion of glucagon, catecholamines, growth hormone, and cortisol. Fatty acid metabolism results in the formation of acetyl-CoA and it combines with the excess acetate that is generated from ethanol metabolism to form acetoacetate. Most of the acetoacetate is reduced to beta-hydroxybutyrate due to the excess reducing potential or high redox state of the cell. Volume depletion interferes with the renal elimination of acetoacetate and beta-hydroxybutyrate, and contributes to the acidosis. An elevated lactate concentration may result from shunting from pyruvate or
Pharmacodynamics
Alcohol produces injury to cells by dehydration and precipitation of the cytoplasm or protoplasm. This accounts for its bacteriocidal and antifungal action. When alcohol is injected in close proximity to nerve tissues, it produces neuritis and nerve degeneration (neurolysis). Ninety to 98% of ethanol that enters the body is completely oxidized. Ethanol is also used as a cosolvent to dissolve many insoluble drugs and to serve as a mild sedative in some medicinal formulations. Ethanol also binds to GABA, glycine, NMDA receptors and modulates their effects. Ethanol is also metabolised by the hepatic enzyme alcohol dehydrogenase.
Biological pathways
Source: PubChem (NCBI) · pathways from PathBank, Reactome, WikiPathways & PharmGKB.
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: butaphosphan
PubChem CID 6328684Molecular formula: C7H17NO2P+
Source: PubChem (NCBI) · pathways from PathBank, Reactome, WikiPathways & PharmGKB.
Molecular reference: hydroxide
PubChem CID 961Molecular formula: HO-
Biological pathways
Source: PubChem (NCBI) · pathways from PathBank, Reactome, WikiPathways & PharmGKB.
Molecular reference: thiocyanate
PubChem CID 9322Molecular formula: CNS-
Biological pathways
Source: PubChem (NCBI) · pathways from PathBank, Reactome, WikiPathways & PharmGKB.
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