Metformin Teva
Colloidal Silicon Dioxide / Silica, Colloidal anhydrous (Aerosil 200) 1.2 mg,Magnesium Stearate.. 2.7 mg,Metformin Hvdrochloride 500 mg,Povidone K 30 500 mg
What it does
Colloidal solutions are often used in various medical treatments and can help improve the delivery of certain medications.
Commonly used for: supporting hydration, helping with nutrient absorption, improving medication effectiveness
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: Tanzania Medicines and Medical Devices Authority · fetched 2026-05-18 02:04:12 · updated 2026-06-02 06:16:20
Drug Interactions
9Pharmacodynamic Warnings
Metformin appears in TABLE 14: Antidiabetic drugs
Moderate (4)
Metformin - increases exposure
Dolutegravir increases the exposure to metformin. Adjust dose.
Metformin - increases exposure
Cimetidine increases the exposure to metformin. Monitor and adjust dose.
Metformin - increases concentration
Risdiplam is predicted to increase the concentration of metformin. Monitor and adjust dose.
Metformin - increases exposure
Vandetanib increases the exposure to metformin. Monitor and adjust dose. Methadone → see opioids Methenamine
Unknown (5)
Metformin - increases exposure
Bictegravir slightly increases the exposure to metformin.
Metformin - increases concentration
Guanfacineispredictedtoincreasetheconcentrationof metformin.oTheoretical
Metformin - affects exposure
Mexiletineispredictedtoaffecttheexposuretometformin. qTheoretical
Metformin - increases exposure
Pitolisantispredictedtoincreasetheexposuretometformin. nTheoretical
Metformin - increases exposure
Ribociclibispredictedtoincreasetheexposuretometformin. oTheoretical
Data from BNF 85 (British National Formulary). This is not a substitute for professional medical advice. Matched via: exact
About colloidal
Colloidal solutions are often used in various medical treatments and can help improve the delivery of certain medications.
What it treats
- supporting hydration
- helping with nutrient absorption
- improving medication effectiveness
How it works
Colloidal solutions contain small particles that can help carry and deliver substances in the body more effectively.
Who it's for
Adults and children who need assistance with hydration or nutrient delivery.
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
About dioxide
Dioxide is used in various medical applications, but specific details about its class or interactions are not provided.
How it works
The exact mechanism of action for dioxide is not specified, but it generally serves various therapeutic roles in medicine.
Who it's for
Dioxide may be suitable for individuals needing treatment related to its specific applications, but more information is needed to identify specific patient groups.
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
About hvdrochloride
Hydrochloride is a type of medication often used to treat various conditions.
What it treats
- high blood pressure (hypertension)
- fluid retention (edema)
How it works
It helps the body get rid of excess salt and water, which can lower blood pressure and reduce swelling.
Who it's for
This medication is suitable for adults who need help managing blood pressure or fluid buildup.
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
About metformin
Metformin is a medicine used to help control blood sugar levels in people with diabetes.
What it treats
- type 2 diabetes (non-insulin dependent diabetes)
- high blood sugar (hyperglycemia)
How it works
Metformin works by reducing the amount of sugar produced by the liver and improving how the body uses sugar.
Who it's for
It is for adults and children over 10 years with type 2 diabetes.
Cautions
- • If you are taking other diabetes medications, talk to your doctor.
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
About povidone
Povidone is a synthetic polymer often used as a disinfectant and to help deliver medications in various forms.
What it treats
- skin infections
- wound care
- eye infections (conjunctivitis)
How it works
Povidone works by killing bacteria and other germs, helping to prevent infections.
Who it's for
Povidone is suitable for people needing treatment for skin or eye infections.
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
About silica
Silica is a natural substance that can be found in various forms and is often used to help with digestion and absorb excess moisture.
What it treats
- digestive issues
- absorption of moisture
How it works
Silica helps improve digestion by supporting the body's ability to break down food and absorb nutrients.
Who it's for
Silica may be suitable for adults experiencing digestive discomfort or needing help with moisture control.
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
About silicon
Silicon is a mineral that may help support healthy bones and connective tissues.
What it treats
- bone health
- joint health
- skin health
How it works
Silicon helps form collagen, which is important for maintaining the strength and elasticity of bones and tissues.
Who it's for
Silicon is for individuals looking to support their bone and joint health.
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
Clinical monograph: Metforminhydrochloride
BNF-referencedMetformin hydrochloride is a biguanide antihyperglycemic agent primarily used in the management of type 2 diabetes mellitus. It lowers blood glucose levels by decreasing hepatic glucose production and improving insulin sensitivity, thereby enhancing peripheral glucose uptake and utilization. Metformin is typically prescribed for patients who are unable to control their blood sugar levels through diet and exercise alone.
Indications
- Type 2 diabetes mellitus
- Gestational diabetes
- Management of pre-existing diabetes in pregnant women
Dosage
Children: For children aged 10 years and older, the usual starting dose is 500 mg taken with food, with gradual increases based on clinical response. Refer to the BNF for Children for specific dosing recommendations.
Adults: The initial dose is usually 500 mg to 1,000 mg taken orally with food, and the dosage may be gradually increased based on glycemic control and tolerance, with a maximum daily dose typically not exceeding 2,000 mg.
Mechanism of action
Metformin decreases hepatic glucose production and increases peripheral glucose utilization. It does not stimulate insulin release from the pancreas, making it antihyperglycemic rather than hypoglycemic. The drug also interacts with SIRT1, a protein involved in bile acid metabolism, contributing to its effects on glucose homeostasis.
Pharmacodynamics
Metformin improves glycemic control in patients with type 2 diabetes by reducing fasting and postprandial plasma glucose levels. It acts by decreasing intestinal absorption of glucose, increasing insulin sensitivity, and enhancing peripheral glucose uptake and utilization, without causing hypoglycemia.
Pharmacokinetics
Metformin is absorbed from the gastrointestinal tract and is excreted unchanged in the urine. It has a half-life of about 6 hours and does not undergo significant metabolism. The drug's pharmacokinetics can be affected by renal function, and caution is advised in patients with renal impairment.
Contra-indications
- Severe renal impairment (creatinine clearance less than 25 mL/minute)
- Acute or chronic metabolic acidosis, including diabetic ketoacidosis
- Hypersensitivity to metformin or any of its components
Adverse effects
- Nausea
- Vomiting
- Diarrhea
- Abdominal pain
- Lactic acidosis (rare)
- Hepatic disorders (rare)
- Oedema (rare)
- Acute generalised exanthematous pustulosis (very rare)
- Thrombocytopenia (very rare)
Interactions
- Angiotensin-converting enzyme inhibitors and angiotensin II receptor antagonists may require monitoring and adjustments
- Antacids containing magnesium and aluminium salts may reduce the absorption of metformin
- Concomitant use with other antihyperglycemic agents requires careful monitoring for hypoglycemia
Precautions
- Caution in patients with hepatic impairment
- Monitor liver function regularly during treatment
- Patients should be advised to discontinue use in the event of significant illness, especially dehydration or infections
Pregnancy
Avoid use during pregnancy. Women planning to become pregnant should discontinue metformin and consult a healthcare provider for safer alternatives.
Breast-feeding
Avoid use during breastfeeding. Metformin is excreted in breast milk, and its effects on a nursing infant are unknown.
Storage
Store in a cool, dry place, below 25°C. Protect from light.
Formulations
- Metformin hydrochloride 500 mg tablets
- Metformin hydrochloride 850 mg tablets
- Metformin hydrochloride 1000 mg 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: colloidal
Colloidal solutions are mixtures in which small particles are dispersed throughout a continuous medium. They can be used in various medical applications, including as intravenous fluids for volume expansion and as drug delivery systems. Colloidal solutions can improve the solubility and stability of drugs, enhancing their therapeutic effects.
Indications
- Hypovolemic shock
- Severe burns
- Postoperative fluid replacement
- Sepsis
- Trauma management
Dosage
Children: Refer to established guidelines for specific dosing, as it varies based on the type of colloidal solution used and the clinical condition being treated.
Adults: Refer to established guidelines for specific dosing, as it varies based on the type of colloidal solution used and the clinical condition being treated.
Mechanism of action
Colloidal solutions work by maintaining oncotic pressure in the blood, thus helping to retain fluid within the vascular system. This is primarily due to the large molecular weight of the colloidal particles, which cannot easily pass through capillary walls. The presence of colloids in the blood helps to draw water into the circulation, increasing blood volume and improving tissue perfusion.
Pharmacodynamics
The pharmacodynamics of colloidal solutions are centered on their ability to exert osmotic pressure, which helps maintain blood volume and pressure. This effect is particularly important in conditions such as hypovolemia and shock, where fluid replacement is necessary to restore hemodynamic stability. The efficacy of colloidal solutions can vary depending on the type of colloid used, as well as the underlying clinical condition being treated.
Pharmacokinetics
Colloidal solutions are typically administered intravenously and their pharmacokinetics can vary based on the specific formulation. Generally, colloids are distributed throughout the vascular compartment and have a longer duration of action compared to crystalloids, as they remain in circulation longer. The elimination of colloids is primarily through the reticuloendothelial system, where they are metabolized or eliminated by the liver and spleen. Factors such as particle size and composition can influence their distribution and clearance.
Adverse effects
- Allergic reactions
- Injection site reactions
- Nausea
- Vomiting
- Headache
- Fever
Precautions
- Use with caution in patients with known allergies to any component of the formulation
- Monitor for signs of hypersensitivity during administration
- Consider volume overload in patients with cardiac or renal impairment
Pregnancy
The safety of colloidal solutions during pregnancy has not been established. Use only if the potential benefit justifies the potential risk to the fetus.
Breast-feeding
It is not known whether colloidal solutions are excreted in human milk. Caution should be exercised when administering to breastfeeding mothers.
Storage
Store at room temperature, protect from light, and do not freeze. Keep out of reach of children.
Formulations
- Colloidal silver
- Colloidal gold
- Colloidal iron
- Other metal colloids
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: dioxide
Dioxide refers to a class of chemical compounds that contain two oxygen atoms bonded to another element or group. The most commonly referenced dioxide is carbon dioxide (CO2), a colorless, odorless gas produced by respiration in animals and plants and by the combustion of organic matter. In a clinical context, dioxides are often involved in various physiological processes and can play roles in drug mechanisms, particularly with respect to gas exchange and acid-base balance in the body.
Indications
- Monitoring respiratory function
- Assessment of metabolic status
- Management of respiratory acidosis
- Management of respiratory alkalosis
Dosage
Children: Dosing for interventions related to carbon dioxide levels in pediatric patients should be guided by clinical protocols and the BNF for Children.
Adults: Dosing for interventions related to carbon dioxide levels is typically based on clinical assessment and individual patient needs. Refer to clinical guidelines for specific scenarios.
Mechanism of action
Carbon dioxide acts primarily as a signaling molecule in the body, influencing respiratory drive and blood pH. It is produced during cellular respiration and is a critical component of the bicarbonate buffering system, which helps maintain acid-base homeostasis. Elevated levels of CO2 in the blood stimulate ventilation in the lungs, increasing the rate of gas exchange and facilitating the removal of excess CO2.
Pharmacodynamics
The pharmacodynamic effects of dioxides, particularly carbon dioxide, are closely related to its concentration in the blood. As CO2 levels increase, it leads to respiratory acidosis, which can stimulate the respiratory centers in the brain to increase ventilation. Conversely, low levels of CO2 can cause respiratory alkalosis, potentially leading to decreased respiratory drive. CO2 also plays a role in vasodilation and can affect blood flow and pressure through its influence on smooth muscle tone.
Pharmacokinetics
Carbon dioxide is produced endogenously during metabolic processes and is transported in the bloodstream primarily in three forms: dissolved in plasma, as bicarbonate ions (HCO3-), and bound to hemoglobin. The half-life of CO2 in the bloodstream is very short due to its rapid exchange with alveolar gas in the lungs. The elimination of CO2 occurs through exhalation, making it a dynamic component of respiratory physiology.
Pregnancy
Data on the effects of dioxide during pregnancy are limited. Caution is advised due to potential risks associated with exposure.
Breast-feeding
Limited data are available regarding the excretion of dioxide in human milk. Caution is recommended.
Storage
Store in a cool, dry place, away from direct sunlight and moisture.
AI-synthesized from BNF references - general information only, not a substitute for professional medical advice or the current BNF. Verify doses with a pharmacist.
Clinical monograph: hvdrochloride
Hydrochloride is a common salt form of various medications, often used to enhance the solubility and stability of the active ingredient. It is frequently used in the formulation of drugs, particularly in oral and injectable forms. Hydrochloride salts are utilized in a diverse range of therapeutic areas, including antihypertensive, antidepressant, and analgesic medications.
Indications
- Hypertension
- Anxiety disorders
- Depression
- Pain management
- Cardiovascular diseases
Dosage
Children: Refer to the BNF for Children for appropriate paediatric dosages, as these are drug-specific and vary according to age and condition.
Adults: Refer to specific drug formulations for adult dosages, as this varies widely depending on the active ingredient and clinical indication.
Mechanism of action
The mechanism of action of hydrochloride varies depending on the specific drug it is associated with. Generally, hydrochloride salts are ionized forms of the parent drug that improve absorption and bioavailability. For example, in the case of antihypertensives like amlodipine hydrochloride, the drug acts by inhibiting calcium channels, leading to vasodilation and reduced blood pressure.
Pharmacodynamics
Pharmacodynamics of hydrochloride salts is contingent on the active ingredient it is combined with. For example, in drugs like sertraline hydrochloride, the pharmacodynamic effects include selective inhibition of the serotonin reuptake transporter, resulting in increased serotonin levels in the synaptic cleft, which alleviates symptoms of depression and anxiety.
Pharmacokinetics
The pharmacokinetics of hydrochloride medications can vary widely. However, hydrochloride salts typically exhibit enhanced solubility, leading to better absorption characteristics. The bioavailability, distribution, metabolism, and elimination depend significantly on the specific drug. For instance, drugs like lisinopril hydrochloride are primarily excreted unchanged in urine, while others may undergo extensive hepatic metabolism.
Contra-indications
- Hypersensitivity to hydrochloride or any component of the formulation
- Severe renal impairment
- Anuria
Adverse effects
- Hypotension
- Dizziness
- Headache
- Electrolyte imbalances (e.g., hyponatremia, hypokalemia)
- Dehydration
- Nausea
- Vomiting
- Diarrhea
Interactions
- Non-steroidal anti-inflammatory drugs (NSAIDs) may reduce the antihypertensive effect
- Lithium levels may be increased, leading to toxicity
- Corticosteroids may exacerbate electrolyte imbalances
- Other antihypertensive agents may have additive effects
Precautions
- Monitor renal function regularly
- Caution in patients with electrolyte disturbances
- Use with caution in patients with liver impairment
- Monitor for signs of dehydration
Pregnancy
Hydrochloride is generally considered safe in pregnancy, but consult local guidelines and weigh benefits against risks.
Breast-feeding
Hydrochloride is excreted in breast milk; caution should be exercised.
Storage
Store at room temperature, protected from moisture and light.
Formulations
- Tablets
- Oral solution
- Injection
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: metformin
BNF-referencedMetformin is an oral antihyperglycemic medication primarily used in the management of type 2 diabetes mellitus. It is known for its ability to lower blood glucose levels through various mechanisms, including the reduction of hepatic glucose production, decreased intestinal absorption of glucose, and improved insulin sensitivity. Metformin is distinctive among oral antihyperglycemic agents as it does not stimulate insulin secretion, thus avoiding the risk of hypoglycemia commonly associated with other glucose-lowering medications.
Indications
- Type 2 diabetes mellitus
- Polycystic ovary syndrome (PCOS)
Dosage
Children: The
Adults: The usual starting dose of metformin for adults is 500 mg taken orally twice a day or 850 mg once daily, with gradual increases based on tolerance and blood glucose levels. The maximum recommended daily dose is 2000-3000 mg, depending on the formulation used.
Mechanism of action
Metformin decreases blood glucose levels by decreasing hepatic glucose production (gluconeogenesis), decreasing intestinal absorption of glucose, and increasing insulin sensitivity, which enhances peripheral glucose uptake and utilization. It is known to inhibit mitochondrial complex I activity, leading to increased AMP:ATP ratios that activate AMP-activated protein kinase (AMPK), a key regulator of glucose metabolism. This activation results in reduced hepatic glucose output and improved cellular glucose uptake.
Pharmacodynamics
Metformin exerts its effects primarily by enhancing insulin sensitivity and reducing glucose production by the liver. Unlike sulfonylureas, which increase insulin secretion, metformin does not cause hyperinsulinemia. Its ability to lower fasting plasma glucose and glycosylated hemoglobin (HbA1c) levels makes it a cornerstone in the management of type 2 diabetes. Clinical studies have shown significant reductions in fasting plasma glucose and HbA1c levels in patients treated with metformin.
Pharmacokinetics
Metformin is absorbed from the gastrointestinal tract, with peak plasma concentrations typically occurring 2-3 hours after ingestion. It has a bioavailability of approximately 50-60% when administered orally. The drug is primarily eliminated unchanged by the kidneys, and its clearance is proportional to renal function. The half-life of metformin is about 6.5 hours. Accumulation may occur in cases of renal impairment, necessitating caution in patients with reduced renal function.
Adverse effects
- Gastrointestinal disturbances (nausea, vomiting, diarrhea)
- Lactic acidosis
- Vitamin B12 deficiency
Interactions
- dolutegravir+metformin: Moderate (increases exposure)
- cimetidine+metformin: Moderate (increases exposure)
- risdiplam+metformin: Moderate (increases concentration)
- vandetanib+metformin: Moderate (increases exposure)
- bictegravir+metformin: Unknown (increases exposure)
- guanfacine+metformin: Unknown (increases concentration)
- mexiletine+metformin: Unknown (affects exposure)
- pitolisant+metformin: Unknown (increases exposure)
- ribociclib+metformin: Unknown (increases exposure)
Precautions
- Renal impairment
- Dehydration
- Excessive alcohol intake
Pregnancy
Metformin is classified as a Category B medication. It is often used during pregnancy for managing gestational diabetes but should be administered under medical supervision.
Breast-feeding
Metformin is excreted in breast milk, but is generally considered safe for use during breastfeeding. Consult with a healthcare provider for specific guidance.
Storage
Store in a cool, dry place, away from direct light. Keep out of reach of children.
Formulations
- Tablets
- Extended-release tablets
- Oral solution
AI-synthesized from BNF references - general information only, not a substitute for professional medical advice or the current BNF. Verify doses with a pharmacist.
Clinical monograph: povidone
Povidone, also known as polyvinylpyrrolidone (PVP), is a synthetic polymer that is used as a water-soluble binder, stabilizer, and film-forming agent in various pharmaceutical formulations. It is recognized for its ability to enhance the solubility and bioavailability of drugs, making it valuable in both topical and oral therapies. Povidone has antiseptic properties and is commonly used in wound care, surgical scrubs, and as an excipient in medications.
Indications
- Topical antiseptic for skin disinfection
- Surgical scrubs and hand sanitizers
- Wound care management
- Pharmaceutical excipient in solid and liquid formulations
Dosage
Children: Refer to specific product guidelines for pediatric dosing recommendations, as doses can vary based on formulation and intended use.
Adults: Refer to specific product guidelines for dosing recommendations, as doses can vary based on the formulation and intended use.
Mechanism of action
Povidone acts by forming a complex with iodine when used as an antiseptic, which releases iodine slowly to exert its antimicrobial effect. The iodine disrupts microbial cell walls and interferes with protein synthesis, leading to cell death. Additionally, as a polymer, povidone can enhance drug solubility and stability by forming a hydrophilic matrix.
Pharmacodynamics
Povidone has a broad spectrum of antimicrobial activity against bacteria, viruses, and fungi. Its antiseptic properties are primarily due to the release of iodine, which is effective in reducing microbial load and preventing infection. The polymer's ability to bind to various substances allows it to be utilized in formulations that require improved stability and solubility.
Pharmacokinetics
Povidone is not absorbed systemically when applied topically, as it remains localized at the site of application. Its pharmacokinetics are largely dependent on the formulation and route of administration, with the polymer being metabolized by hydrolysis and excreted in urine as low-molecular-weight compounds. The release and activity of iodine are influenced by the concentration of povidone and the presence of organic matter.
Adverse effects
- Local irritation
- Allergic reactions
- Skin rashes
- Hypersensitivity reactions
Precautions
- Use with caution in patients with known allergies to iodine or povidone-iodine
- Avoid use in deep puncture wounds or serious burns
Pregnancy
Povidone is generally considered safe for use during pregnancy, but it is advisable to consult a healthcare professional before use.
Breast-feeding
Povidone is considered safe during breastfeeding, but it is recommended to consult a healthcare professional.
Storage
Store at room temperature, away from moisture and heat. Keep the container tightly closed.
Formulations
- Topical solution
- Ointment
- Surgical scrub
- Gauze impregnated with povidone-iodine
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: silica
BNF-referencedSilica, primarily in the form of silicon dioxide (SiO2), is a naturally occurring mineral found in various forms, including crystalline and amorphous structures. It is widely used in various industries, including construction, manufacturing, and as a food additive. Silica is known for its high melting point and chemical stability. In clinical contexts, exposure to crystalline silica has been linked to respiratory diseases such as silicosis and lung cancer due to its cytotoxic effects on lung cells. The different forms of silica exhibit varying degrees of biological activity, with crystalline silica being more hazardous than amorphous types.
Indications
- Silicosis
- Chronic obstructive pulmonary disease (COPD)
- Lung cancer associated with silica exposure
Dosage
Adults: Silica is not administered as a drug, but rather
Mechanism of action
Silica, particularly crystalline forms like quartz and cristobalite, can induce cytotoxicity and morphological transformation in cells. The cytotoxic effects are attributed to the presence of silanol groups and trace iron on the silica surface, which can generate reactive oxygen species. These interactions lead to cellular damage and transformation, suggesting multiple molecular mechanisms underlying silica's biological effects. The activity is sensitive to the silica's surface structure and composition, indicating that the biological response is a phenomenon originating from the silica's surface characteristics.
Pharmacodynamics
Silica's pharmacodynamic effects are largely related to its cytotoxic and transforming properties, particularly in lung tissue. The inhalation of crystalline silica can lead to the activation of inflammatory pathways, oxidative stress, and apoptosis in alveolar macrophages and epithelial cells. This can result in chronic inflammation, fibrosis, and ultimately, diseases such as silicosis and lung cancer. The degree of these effects varies based on the type of silica, its crystalline structure, and the presence of surface modifications.
Pharmacokinetics
The pharmacokinetics of silica is complex as it is not absorbed systemically when inhaled or ingested. Instead, inhaled silica particles can deposit in the alveolar region of the lungs, where they may persist for long periods. The body responds to silica exposure through inflammatory processes, and macrophages attempt to phagocytize silica particles. However, the persistence of these particles can lead to chronic lung conditions. Clearance mechanisms are inefficient, leading to prolonged retention in lung tissue.
Adverse effects
- Cytotoxicity
- Morphological transformation of cells
- Respiratory issues
- Silicosis
- Lung cancer
Precautions
- Use caution in occupational settings with silica dust exposure
- Regular monitoring of lung function in exposed individuals
Pregnancy
There is insufficient data on the effects of silica on pregnancy. It is advised to minimize exposure.
Breast-feeding
Limited data available; caution is advised due to potential respiratory effects.
Storage
Store in a cool, dry place, away from moisture and incompatible materials.
Formulations
- Crystalline silica
- Amorphous silica (diatomaceous earth)
- Silica gel
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: silicon
BNF-referencedSilicon, represented by the molecular formula Si, is a metalloid that plays a significant role in various biological processes, particularly in the formation of connective tissues and bone. It is thought to contribute to the structural integrity of collagen and other extracellular matrix components. Silicon is not classified as an essential element in the human diet, but it is involved in the metabolism of minerals and may affect bone health and formation.
Indications
- Potential role in bone health
- Support for connective tissue formation
- May aid in mineral metabolism
Dosage
Children: There is no established clinical dosage for silicon in paediatric populations, as it is not classified as an essential nutrient.
Adults: There is no established clinical dosage for silicon in adults, as it is not classified as an essential nutrient.
Mechanism of action
Silicon is believed to enhance the synthesis of glycosaminoglycans and collagen, which are important for the structural integrity of connective tissues. It may also influence the activity of certain enzymes involved in bone mineralization, thus playing a role in maintaining bone density and health.
Pharmacodynamics
The pharmacodynamics of silicon is not fully elucidated; however, it is thought to involve the modulation of bone metabolism and the promotion of connective tissue health. Silicon may have a synergistic effect with other minerals, such as calcium and magnesium, aiding in their utilization and metabolism in the body.
Pharmacokinetics
The pharmacokinetics of silicon is complex, as it is not absorbed through typical gastrointestinal pathways. Instead, silicon is thought to be taken up in the form of silicates and then distributed throughout the body, particularly in connective tissues. The elimination of silicon occurs primarily through renal excretion, with some variations depending on dietary intake and individual metabolism.
Pregnancy
Silicon is generally considered safe during pregnancy, as it is a naturally occurring element in the human body. However, specific recommendations regarding supplementation should be followed based on the advice of a healthcare provider.
Breast-feeding
Silicon is present in breast milk in small amounts. Its safety during breastfeeding is generally regarded as acceptable, although supplementation should be approached with caution and under medical advice.
Storage
Silicon should be stored in a cool, dry place, protected from light and moisture. Follow specific storage recommendations provided by the manufacturer if available.
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: Metforminhydrochloride
PubChem CID 14219Molecular formula: C4H12ClN5
Mechanism of action
Metformin is widely used to treat hyperglycemia. However, metformin treatment may induce intrahepatic cholestasis and liver injury in a few patients with type II diabetes through an unknown mechanism. Here we show that metformin decreases SIRT1 protein levels in primary hepatocytes and liver. Both metformin-treated wild-type C57 mice and hepatic SIRT1-mutant mice had increased hepatic and serum bile acid levels. However, metformin failed to change systemic bile acid levels in hepatic SIRT1-mutant mice. Molecular mechanism study indicates that SIRT1 directly interacts with and deacetylates Foxa2 to inhibit its transcriptional activity on expression of genes involved in bile acids synthesis and transport. Hepatic SIRT1 mutation elevates Foxa2 acetylation levels, which promotes Foxa2 binding to and activating genes involved in bile acids metabolism, impairing hepatic and systemic bile acid homeostasis. Our data clearly suggest that hepatic SIRT1 mediates metformin effects on systemic bile acid metabolism and modulation of SIRT1 activity in liver may be an attractive approach for treatment of bile acid-related diseases such as cholestasis. Metformin is antihyperglycemic, not hypoglycemic. It does not cause insulin release from the pancreas and does not cause hypoglycemia, even in large doses. Metformin has no significant effects on the secretion of glucagon, cortisol, growth hormone or somatostatin. Metformin reduces glucose levels primarily by decreasing hepatic glucose production and by increasing insulin action in muscle and fat. ... May decrease plasma glucose by reducing the absorption of glucose from the intestine. /Salt not specified/ Metformin potentiates the effect of insulin by mechanisms not fully understood. Metformin does not stimulate pancreatic beta cells to increase secretion of insulin; insulin secretion must be present for metformin to work properly. It is postulated that metformin decreases hepatic glucose production and improves insulin sensitivity by increasing peripheral glucose uptake and utilization. /Salt not specified/ People with Type 2 diabetes mellitus (T2DM) have reduced bone mineral density and an increased risk of fractures due to altered mesenchymal stem cell (MSC) differentiation in the bone marrow. This leads to a shift in the balance of differentiation away from bone formation (osteogenesis) in favour of fat cell development (adipogenesis). The commonly used anti-diabetic drug, metformin, activates the osteogenic transcription factor Runt-related transcription factor 2 (Runx2), which may suppress adipogenesis, leading to improved bone health. Here we investigate the involvement of the metabolic enzyme, AMP-activated protein kinase (AMPK), in these protective actions of metformin. The anti-adipogenic actions of metformin were observed in multipotent C3H10T1/2 MSCs, in which metformin exerted reciprocal control over the activities of Runx2 and the adipogenic transcription factor, PPARgamma, leading to suppression of adipogenesis. These effects appeared to be independent of AMPK activation but rather through the suppression of the mTOR/p70S6K signalling pathway. Basal AMPK and mTOR/p70S6K activity did appear to be required for adipogenesis, as demonstrated by the use of the AMPK inhibitor, compound C. This observation was further supported by using AMPK knockout mouse embryo fibroblasts (MEFs) where adipogenesis, as assessed by reduced lipid accumulation and expression of the adipogeneic transcription factor, C/EBPbeta, was found to display an absolute requirement for AMPK. Further activation of AMPK in wild type MEFS, with either metformin or the AMPK-specific activator, A769662, was also associated with suppression of adipogenesis. It appears, therefore, that basal AMPK activity is required for adipogenesis and that metformin can inhibit adipogenesis through AMPK-dependent or -independent mechanisms, depending on the cellular context.
Source: PubChem (NCBI) · pathways from PathBank, Reactome, WikiPathways & PharmGKB.
Molecular reference: metformin
PubChem CID 4091Molecular formula: C4H11N5
Mechanism of action
Metformin's mechanisms of action are unique from other classes of oral antihyperglycemic drugs. Metformin decreases blood glucose levels by decreasing hepatic glucose production (also called gluconeogenesis), decreasing the intestinal absorption of glucose, and increasing insulin sensitivity by increasing peripheral glucose uptake and utilization. It is well established that metformin inhibits mitochondrial complex I activity, and it has since been generally postulated that its potent antidiabetic effects occur through this mechanism. The above processes lead to a decrease in blood glucose, managing type II diabetes and exerting positive effects on glycemic control. After ingestion, the organic cation transporter-1 (OCT1) is responsible for the uptake of metformin into hepatocytes (liver cells). As this drug is positively charged, it accumulates in cells and in the mitochondria because of the membrane potentials across the plasma membrane as well as the mitochondrial inner membrane. Metformin inhibits mitochondrial complex I, preventing the production of mitochondrial ATP leading to increased cytoplasmic ADP:ATP and AMP:ATP ratios. These changes activate AMP-activated protein kinase (AMPK), an enzyme that plays an important role in the regulation of glucose metabolism. Aside from this mechanism, AMPK can be activated by a lysosomal mechanism involving other activators. Following this process, increases in AMP:ATP ratio also inhibit _fructose-1,6-bisphosphatase_ enzyme, resulting in the inhibition of gluconeogenesis, while also inhibiting _adenylate cyclase_ and decreasing the production of cyclic adenosine monophosphate (cAMP), a derivative of ATP used for cell signaling. Activated AMPK phosphorylates two isoforms of acetyl-CoA carboxylase enzyme, thereby inhibiting fat synthesis and leading to fat oxidation, reducing hepatic lipid stores and increasing liver sensitivity to insulin. In the intestines, metformin increases anaerobic glucose metabolism in enterocytes (intestinal cells), leading to reduced net glucose uptake and increased delivery of lactate to the liver. Recent studies have also implicated the gut as a primary site of action of metformin and suggest that the liver may not be as important for metformin action in patients with type 2 diabetes. Some of the ways metformin may play a role on the intestines is by promoting the metabolism of glucose by increasing glucagon-like peptide I (GLP-1) as well as increasing gut utilization of glucose. In addition to the above pathway, the mechanism of action of metformin may be explained by other ways, and its exact mechanism of action has been under extensive study in recent years. Metformin is widely used to treat hyperglycemia. However, metformin treatment may induce intrahepatic cholestasis and liver injury in a few patients with type II diabetes through an unknown mechanism. Here we show that metformin decreases SIRT1 protein levels in primary hepatocytes and liver. Both metformin-treated wild-type C57 mice and hepatic SIRT1-mutant mice had increased hepatic and serum bile acid levels. However, metformin failed to change systemic bile acid levels in hepatic SIRT1-mutant mice. Molecular mechanism study indicates that SIRT1 directly interacts with and deacetylates Foxa2 to inhibit its transcriptional activity on expression of genes involved in bile acids synthesis and transport. Hepatic SIRT1 mutation elevates Foxa2 acetylation levels, which promotes Foxa2 binding to and activating genes involved in bile acids metabolism, impairing hepatic and systemic bile acid homeostasis. Our data clearly suggest that hepatic SIRT1 mediates metformin effects on systemic bile acid metabolism and modulation of SIRT1 activity in liver may be an attractive approach for treatment of bile acid-related diseases such as cholestasis. Metformin is antihyperglycemic, not hypoglycemic. It does not cause insulin release from the pancreas and does not cause hypoglycemia, even in large doses. Me
Pharmacodynamics
**General effects** Insulin is an important hormone that regulates blood glucose levels. Type II diabetes is characterized by a decrease in sensitivity to insulin, resulting in elevations in blood glucose when the pancreas can no longer compensate. In patients diagnosed with type 2 diabetes, insulin is unable to exert adequate effects on tissues and cells (i.e. insulin resistance) and insulin deficiency may also be present. Metformin reduces hepatic production of glucose, decreases the intestinal absorption of glucose, and enhances insulin sensitivity by increasing both peripheral glucose uptake and utilization. In contrast with drugs of the sulfonylurea class, which lead to hyperinsulinemia, the secretion of insulin is unchanged with metformin use. **Effect on fasting plasma glucose (FPG) and Glycosylated hemoglobin (HbA1c)** HbA1c is an important periodic measure of glycemic control used to monitor diabetic patients. Fasting plasma glucose is also a useful and important measure of glycemic control. In a 29-week clinical trial of subjects diagnosed with type II diabetes, metformin decreased the fasting plasma glucose levels by an average of 59 mg/dL from baseline, compared to an average increase of 6.3 mg/dL from baseline in subjects taking a placebo. Glycosylated hemoglobin (HbA1c) was decreased by about 1.4% in subjects receiving metformin, and increased by 0.4% in subjects receiving placebo only.
Biological pathways
Source: PubChem (NCBI) · pathways from PathBank, Reactome, WikiPathways & PharmGKB.
Molecular reference: silica
PubChem CID 24261Molecular formula: O2Si
Mechanism of action
...Some quartz and cristobalite dusts (crystalline) as well as the diatomaceous earths (amorphous), but not the pyrogenic amorphous silica, were cytotoxic and induced morphological transformation of SHE cells in a concentration-dependent manner. The ranking in cytotoxicity was different from that in transforming potency, suggesting two separate molecular mechanisms for the two effects. The cytotoxic and transforming potencies were different from one dust to another, even among the same structural silicas. The type of crystalline structure (quartz vs cristobalite) and the crystalline vs biogenic amorphous form did not correlate with cytotoxic or transforming potency of silica dusts. Comparison of cellular effects induced by original and surface modified samples revealed that several surface functionalities modulate cytotoxic and transforming potencies. The cytotoxic effects appeared to be related to the distribution and abundance of silanol groups and to the presence of trace amounts of iron on the silica surface. Silica particles with fractured surfaces and/or iron-active sites, able to generate reactive oxygen species, induced SHE cell transformation. The results show that the activity of silica at the cellular level is sensitive to the composition and structure of surface functionalities and confirm that the biological response to silica is a surface originated phenomenon. In vivo exposure of rat lungs to crystalline silica either by intratracheal instillation or by inhalation results in an increase in mRNA levels for inducible nitric oxide synthase (iNOS) in bronchoalveolar lavage cells (BALC), elevated nitric oxide (.NO) production by BALC, and an increase in .NO-dependent chemiluminescence (CL) from alveolar macrophages (AM). Induction of iNOS message occurs in both AM and polymorphonuclear leukocytes (PMN) harvested from silica-exposed lungs but is not significantly elevated in lavaged lung tissue. This review presents characteristics of simple and complicated coal workers' pneumoconiosis (CWP) as well as pathologic indices of acute and chronic silicosis by summarizing results of in vitro, animal, and human investigations. These results support four basic mechanisms in the etiology of CWP and silicosis: a) direct cytotoxicity of coal dust or silica, resulting in lung cell damage, release of lipases and proteases, and eventual lung scarring; b) activation of oxidant production by pulmonary phagocytes, which overwhelms the antioxidant defenses and leads to lipid peroxidation, protein nitrosation, cell injury, and lung scarring; c) activation of mediator release from alveolar macrophages and epithelial cells, which leads to recruitment of polymorphonuclear leukocytes and macrophages, resulting in the production of proinflammatory cytokines and reactive species and in further lung injury and scarring; d) secretion of growth factors from alveolar macrophages and epithelial cells, stimulating fibroblast proliferation and eventual scarring. Results of in vitro and animal studies provide a basis for proposing these mechanisms for the initiation and progression of pneumoconiosis. Data obtained from exposed workers lend support to these mechanisms. /The authors/ reported previously that freshly fractured silica (FFSi) induces activator protein-1 (AP-1) activation through extracellular signal-regulated protein kinases (ERKs) and p38 kinase pathways. In the present study, the biologic activities of FFSi and aged silica (ASi) were compared by measuring their effects on the AP-1 activation and phosphorylation of ERKs and p38 kinase. The roles of reactive oxygen species (ROS) in this silica-induced AP-1 activation were also investigated. FFSi-induced AP-1 activation was four times higher than that of ASi in JB6 cells. FFSi also caused greater phosphorylation of ERKs and p38 kinase than ASi. FFSi generated more ROS than ASi when incubated with the cells as measured by electron spin resonance (ESR). Studies using ROS-sensitive dyes and
Source: PubChem (NCBI) · pathways from PathBank, Reactome, WikiPathways & PharmGKB.
Molecular reference: silicon
PubChem CID 5461123Molecular formula: Si
Source: PubChem (NCBI) · pathways from PathBank, Reactome, WikiPathways & PharmGKB.
This drug in other countries
The same active ingredient registered across other registries we cover - including different brands.
- BETAFORM TABLETS 850MG · Bliss Gvs Pharma
- BETASEP SOLUTION · Jamjoom Pharmaceuticals
- BG MET SR TABLET (Each tablet contains Metformin Hydrochloride 1G) · Bliss Gvs Pharma
- BGMET 500 TABLETS · Absun Pharma
- CIROTAMIN CAPLETS · Ciron Drugs & Pharmaceuticals
- DAPAMET XR 10MG/ 1000MG TABLETS (Each film coated tablet contains Dapagliflozin propanediol/ Metformin HCL 10mg/1000mg) · Atoz Pharmaceuticals