(amoxicillin · DailyMed)
Myclav 375
Amoxicillin Trihydrate eq to Amoxicillin mg,Amoxicillin Trihydrate equivalent to Amoxicillin 250 mg,Clavulanate Potassium Equivalent to Clavulanic Acid 125 mg,Colloidal anhydrous silica mg,Dichloromethane IU/10g,Magnesium Stearate mg,Microcrystalline cellulose mg,Opadry OY LS 58900 white mg,Sodium Glycolate Starch mg,Sodium lauryl sulphate mg,methanol IU/10g
What it does
Amoxicillin is an antibiotic used to treat infections caused by bacteria.
Commonly used for: infections of the ear, nose, and throat, urinary tract infections, pneumonia, skin infections
Read more in plain English ↓Plain-language summary for general understanding - not medical advice. Always follow your pharmacist/doctor.
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Answers come only from this medicine's registration record, BNF monograph and interaction data - not medical advice.
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Sourcing - Kenya onlyRegistration & product details
Source: Tanzania Medicines and Medical Devices Authority · fetched 2026-03-11 23:49:02 · updated 2026-09-17 03:00:44
Drug Interactions
7Pharmacodynamic Warnings
Clavulanate appears in TABLE 1: Drugs that cause hepatotoxicity
Severe (1)
Penicillins - increases risk of adverse effects
Valproate increases the risk of adverse effects when given with penicillins (pivmecillinam). Avoid.
Unknown (6)
Amoxicillin - increases risk of skin rash
Allopurinol increases the risk of skin rash when given with penicillins (amoxicillin, ampicillin).
Penicillins - increases risk of skin rash
Allopurinol increases the risk of skin rash when given with penicillins (amoxicillin, ampicillin).
Penicillins - increases exposure
Leflunomide is predicted to increase the exposure to penicillins (benzylpenicillin).
Penicillins - increases exposure
Nitisinone is predicted to increase the exposure to penicillins (benzylpenicillin).
Penicillins - increases exposure
Teriflunomide is predicted to increase the exposure to penicillins (benzylpenicillin).
Phenindione - increases risk of bleeding events
Penicillins are predicted to increase the risk of bleeding events when given with phenindione.
Data from BNF 85 (British National Formulary). This is not a substitute for professional medical advice. Matched via: class
About amoxicillin
Amoxicillin is an antibiotic used to treat infections caused by bacteria.
What it treats
- infections of the ear, nose, and throat
- urinary tract infections
- pneumonia
- skin infections
How it works
It kills bacteria or stops their growth, helping to clear up infections.
Who it's for
Amoxicillin is suitable for adults and children who have bacterial infections.
Drug class
Penicillins
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
About cellulose
Cellulose is a type of fiber that helps with digestion and promotes bowel health.
What it treats
- constipation
- irregular bowel movements
How it works
Cellulose adds bulk to the stool, making it easier to pass through the intestines.
Who it's for
Suitable for people looking to improve their digestive health.
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
About clavulanate
Clavulanate is a medication that helps fight bacterial infections, often used alongside other antibiotics.
What it treats
- bacterial infections
- infections caused by certain bacteria
How it works
Clavulanate works by inhibiting the enzymes that bacteria use to resist antibiotics, making the antibiotics more effective.
Who it's for
It is for patients who have bacterial infections that require treatment, especially when other antibiotics may not work.
Cautions
- • Avoid using with other drugs that can harm the liver.
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
About clavulanic
Clavulanic acid is a substance that helps antibiotics work better by preventing certain bacteria from becoming resistant to treatment.
What it treats
- infections caused by bacteria
- bacterial infections (e.g., pneumonia, bronchitis)
How it works
It works by blocking enzymes that bacteria produce to resist antibiotics, making the antibiotics more effective.
Who it's for
It is used for adults and children who have bacterial infections that need antibiotic treatment.
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
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 dichloromethane
Dichloromethane is a chemical commonly used as a solvent in various industrial and laboratory applications.
What it treats
- used in the production of plastics
- used in paint removers
- used in cleaning agents
How it works
Dichloromethane works by dissolving other substances, making it easier to remove or clean them.
Who it's for
Dichloromethane is mainly for industrial or laboratory use and not typically for personal or home use.
Cautions
- • Can be harmful if inhaled or absorbed through the skin.
- • May cause irritation to the eyes and skin.
- • Should only be used in well-ventilated areas.
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
About glycolate
Glycolate is a compound that may be used in various medical treatments.
How it works
Glycolate works by interacting with certain bodily processes, though specific details are not available.
Who it's for
Glycolate may be suitable for individuals needing treatment related to certain health conditions, but specific indications are not provided.
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
About lauryl
Lauryl is a compound used in various products, known for its cleansing properties.
What it treats
- skin cleansing
- oral hygiene
How it works
Lauryl works by helping to remove dirt and oils from the skin and mouth.
Who it's for
Lauryl is suitable for people looking for effective cleansing products for their skin or oral health.
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
About methanol
Methanol is a toxic substance and should not be used as a medication.
How it works
Methanol is not used for any medical purpose and is dangerous to health.
Who it's for
Methanol is not suitable for anyone as it is harmful.
Cautions
- • Ingesting methanol can cause serious health problems and is potentially fatal.
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
About microcrystalline
Microcrystalline is a type of substance often used in medicines to help with various health issues. It is commonly used as a filler or binder in tablets and capsules.
What it treats
- stomach issues
- constipation
- weight management
How it works
It helps to improve the texture of medicines and can assist in the absorption of other ingredients in the body.
Who it's for
Adults and children who need help with specific health conditions, as directed by a healthcare professional.
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
About opadry
Opadry is a coating agent used in pharmaceutical formulations.
What it treats
- to improve the taste of medicines
- to protect the active ingredients in tablets and capsules
How it works
Opadry forms a protective layer around tablets and capsules, which helps to mask their taste and protect the ingredients from moisture and light.
Who it's for
Opadry is suitable for various patients who are taking medications in tablet or capsule form.
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 starch
Starch is a carbohydrate that serves as a source of energy and is often used in various food products.
What it treats
- energy source
- dietary supplement
How it works
Starch is broken down by the body into glucose, which provides energy for daily activities.
Who it's for
Starch can be used by anyone needing extra energy in their diet, particularly those with increased energy needs.
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
About white
White is a medicinal product used for various health conditions.
How it works
White works by affecting certain processes in the body to help manage health issues.
Who it's for
White is suitable for individuals with specific health conditions as determined by a healthcare provider.
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
Clinical monograph: Amoxicillin
BNF-referencedAmoxicillin is a broad-spectrum antibiotic belonging to the penicillin class, effective against a variety of bacterial infections. It is commonly used to treat conditions such as urinary tract infections, sinusitis, community-acquired pneumonia, and salmonellosis.
Indications
- Bacterial infections
- Urinary tract infections
- Sinusitis
- Uncomplicated community-acquired pneumonia
- Salmonellosis
- Oral infections
- Lyme disease (under expert supervision)
- Acute exacerbation of bronchiectasis
- Anthrax (treatment and post-exposure prophylaxis)
Dosage
Children: 1 month–11 years: 30 mg/kg 3 times a day for 21 days; children 1–4 years: 250 mg 3 times a day; children 5–11 years: 500 mg 3 times a day.
Adults: 500 mg 3 times a day; increased if necessary up to 1 g 3 times a day in severe infections.
Mechanism of action
Amoxicillin works by inhibiting bacterial cell wall synthesis, leading to cell lysis and death. It binds to penicillin-binding proteins (PBPs) located inside the bacterial cell wall, interfering with the transpeptidation process necessary for cell wall integrity.
Pharmacodynamics
Amoxicillin exhibits bactericidal activity against susceptible bacteria. Its action is time-dependent, meaning that its effectiveness is related to the duration of time that the drug concentration remains above the minimum inhibitory concentration (MIC) for the target pathogen.
Pharmacokinetics
Amoxicillin is well absorbed from the gastrointestinal tract, with peak plasma concentrations achieved within 1-2 hours after oral administration. It is widely distributed in body tissues and fluids, and it is excreted primarily via the kidneys. The elimination half-life is approximately 1 hour, and renal impairment may necessitate dosage adjustments.
Adverse effects
- Skin rash
- Gastrointestinal disturbances (nausea, vomiting, diarrhea)
- Allergic reactions (including anaphylaxis)
- Superinfection (due to resistant organisms)
Interactions
- Allopurinol (increases risk of skin rash)
Precautions
- History of penicillin allergy
- Renal impairment (reduce dose)
- Use with caution in patients with mononucleosis
Pregnancy
Use only if clearly needed; no adequate studies in pregnant women.
Breast-feeding
Amoxicillin is excreted in breast milk; use with caution.
Storage
Store in a cool, dry place away from direct sunlight.
Formulations
- Phenoxymethylpenicillin 250mg/5ml oral solution
- Phenoxymethylpenicillin 250 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: cellulose
Cellulose is a complex carbohydrate and a key structural component of the plant cell wall. It is an indigestible polysaccharide made up of linear chains of glucose molecules linked by β-1,4-glycosidic bonds. As a dietary fiber, cellulose contributes to digestive health by promoting bowel regularity and is commonly used as a laxative and bulking agent in various food products and pharmaceuticals.
Indications
- Constipation
- Dietary fiber supplementation
- Irritable bowel syndrome
- Diverticular disease
- Weight management
Dosage
Children: Refer to appropriate guidelines for specific dosage; generally taken with adequate fluid intake.
Adults: Refer to appropriate guidelines for specific dosage; generally taken with adequate fluid intake.
Mechanism of action
Cellulose acts primarily as a bulk-forming laxative. It absorbs water in the intestines, which increases stool bulk and stimulates peristalsis, thus facilitating bowel movements. Additionally, cellulose is not digestible by human enzymes, leading to fermentation by gut bacteria, which may enhance gut health and alter gut microbiota composition.
Pharmacodynamics
Cellulose increases stool weight and frequency of bowel movements. It works by retaining water in the intestines, leading to softer stools and improved passage through the gastrointestinal tract. The bulking effect of cellulose can help alleviate constipation and promote overall digestive health. It may also play a role in cholesterol reduction and glycemic control through its effects on digestion and absorption of nutrients.
Pharmacokinetics
Cellulose is not absorbed into the bloodstream due to its indigestible nature. Instead, it passes through the gastrointestinal tract, where it adds bulk to the stool. Its fermentation by colonic bacteria produces short-chain fatty acids, which may have beneficial effects on colon health. The onset of action for cellulose as a laxative can vary but is generally within 24 to 72 hours after ingestion.
Adverse effects
- Bloating
- Flatulence
- Diarrhea
- Abdominal discomfort
Precautions
- Use with caution in patients with a history of gastrointestinal disorders.
- Monitor for potential allergic reactions in sensitive individuals.
Pregnancy
Cellulose is generally considered safe during pregnancy as it is a non-toxic, indigestible fiber.
Breast-feeding
Cellulose is also considered safe during breastfeeding; it is excreted in breast milk in negligible amounts.
Storage
Store in a cool, dry place away from direct sunlight.
Formulations
- Powder
- Capsules
- Tablets
- Granules
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: clavulanate
BNF-referencedClavulanate is a beta-lactam compound that is primarily used as a beta-lactamase inhibitor. It is often combined with penicillin antibiotics, such as amoxicillin, to enhance their effectiveness against bacteria that produce beta-lactamase enzymes, which can render these antibiotics ineffective. Clavulanate itself has limited antibacterial activity but plays a crucial role in overcoming bacterial resistance mechanisms.
Indications
- Bacterial infections caused by beta-lactamase producing organisms
- Community-acquired pneumonia
- Respiratory tract infections
- Urinary tract infections
- Skin and soft tissue infections
Dosage
Children: Paediatric dosing of clavulanate should be determined based on the specific indication and the formulation used. Refer to the BNF for
Adults: The usual adult dose of clavulanate varies depending on the specific antibiotic it is combined with, generally ranging from 125 mg to 250 mg, taken every 8 hours when combined with amoxicillin.
Mechanism of action
Clavulanate works by irreversibly binding to the active site of beta-lactamase enzymes. By inhibiting these enzymes, clavulanate protects beta-lactam antibiotics from degradation, allowing them to exert their antibacterial effects effectively. This mechanism enhances the spectrum of activity of the co-administered antibiotic, thereby improving clinical outcomes in infections caused by beta-lactamase producing organisms.
Pharmacodynamics
Clavulanate exhibits a time-dependent antibacterial effect, characterized by its ability to maintain effective concentrations against beta-lactamase producing bacteria. Its pharmacodynamic properties are mainly influenced by its interaction with beta-lactam antibiotics, enhancing their efficacy in treating infections. The overall effect is a synergistic relationship that increases the potency of the antibiotic treatment.
Pharmacokinetics
Clavulanate is usually administered orally or parenterally, and it is rapidly absorbed from the gastrointestinal tract. It reaches peak plasma concentrations within 1 to 2 hours after administration. The drug is widely distributed in body tissues, with a volume of distribution indicative of good tissue penetration. Clavulanate undergoes hepatic metabolism, primarily by conjugation, and is excreted largely in the urine as metabolites. The elimination half-life is approximately 1 hour, necessitating frequent dosing for optimal therapeutic effect.
Contra-indications
- Hypersensitivity to clavulanate or any component of the formulation
- History of jaundice or hepatic impairment related to previous use of beta-lactam antibiotics
Adverse effects
- Diarrhea
- Nausea
- Vomiting
- Rash
- Hepatic dysfunction
- Allergic reactions
Interactions
- Probenecid may increase concentrations of clavulanate
- Anticoagulants may have altered effects due to changes in gut flora
Precautions
- Monitor liver function during prolonged therapy
- Use cautiously in patients with renal impairment
- Assess for history of allergy to penicillins or cephalosporins
Pregnancy
Clavulanate is classified as category B. Animal studies have not shown teratogenic effects, but adequate and well-controlled studies in pregnant women are lacking.
Breast-feeding
Clavulanate is excreted in breast milk. Caution is advised when administering to nursing mothers.
Storage
Store in a cool, dry place away from direct light. Keep out of reach of children.
Formulations
- Clavulanate potassium 125 mg/5 mL
- Clavulanate potassium 250 mg/5 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: clavulanic
Clavulanic acid is a beta-lactamase inhibitor that is often combined with penicillin antibiotics to enhance their efficacy against beta-lactamase-producing bacteria. It is structurally related to penicillins and prevents the hydrolysis of beta-lactam antibiotics, thereby extending their spectrum of activity. Clavulanic acid itself has minimal antibacterial activity but is crucial in overcoming antibiotic resistance.
Indications
- Infections caused by beta-lactamase-producing bacteria
- Acute bacterial sinusitis
- Acute otitis media
- Lower respiratory tract infections
- Urinary tract infections
Dosage
Children: Refer to the BNF for Children for specific dosing according to age and weight; adjustments may be necessary based on the clinical scenario.
Adults: Refer to specific product guidelines for dosing; typical regimens depend on the combination antibiotic used and the severity of the infection.
Mechanism of action
Clavulanic acid works by irreversibly binding to the active site of beta-lactamase enzymes that are produced by certain bacteria to inactivate beta-lactam antibiotics. By inhibiting these enzymes, clavulanic acid protects the penicillin antibiotic from degradation, allowing it to exert its antibacterial effects.
Pharmacodynamics
Clavulanic acid has a synergistic effect when combined with other antibiotics, particularly amoxicillin. The presence of clavulanic acid allows for the effective treatment of infections caused by bacteria that would otherwise be resistant to penicillins. Its antibacterial activity is generally weak on its own but significantly enhances the efficacy of other beta-lactam antibiotics.
Pharmacokinetics
Clavulanic acid is rapidly absorbed after oral administration, with peak plasma concentrations occurring within 1 hour. It is widely distributed throughout the body and has a half-life of approximately 1 hour. The drug is primarily excreted unchanged in the urine. In the presence of renal impairment, dosage adjustment may be necessary, as the elimination of clavulanic acid can be affected.
Contra-indications
- Hypersensitivity to clavulanic acid or any of the excipients
- History of jaundice or hepatic impairment associated with previous use of penicillins or beta-lactam antibiotics
Adverse effects
- Nausea
- Diarrhea
- Rash
- Elevated liver enzymes
- Allergic reactions including anaphylaxis
- Superinfection
Interactions
- May enhance the effects of anticoagulants such as warfarin
- Probenecid may increase plasma concentrations of clavulanic acid
- May reduce the efficacy of oral contraceptives
Precautions
- Caution in patients with renal impairment
- Monitor liver function in patients receiving prolonged therapy
- Use with caution in patients with a history of allergic reactions to beta-lactams
Pregnancy
Clavulanic acid is categorized as pregnancy category B. Animal studies have not shown any harm to the fetus, but there are no adequate and well-controlled studies in pregnant women.
Breast-feeding
Clavulanic acid is excreted in breast milk, but it is generally considered safe for use during breastfeeding. Monitor for potential effects in the infant.
Storage
Store at room temperature, away from moisture and heat. Protect from light. Keep out of reach of children.
Formulations
- Oral tablets
- Oral suspension
- Injectable forms
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: dichloromethane
BNF-referencedDichloromethane, also known as methylene chloride, is a colorless, volatile liquid with a sweet aroma. It is primarily used as a solvent in various industrial applications, including paint stripping, degreasing, and as a reagent in organic synthesis. Due to its potential toxicity and carcinogenic properties, its use is regulated in many regions.
Mechanism of action
Dichloromethane induces mammary adenomas in rats through an indirect mechanism involving hyperprolactinaemia, resulting in benign neoplasms. It does not bind to DNA in various tissues, suggesting that its carcinogenic effects are likely mediated through metabolic pathways in the liver. In mice, DCM acts as a hepatic and pulmonary carcinogen, mediated by interaction with DNA through a glutathione (GSH) conjugate produced by the enzyme glutathione S-transferase T1-1 (GST T1-1).
Pharmacodynamics
Dichloromethane exhibits carcinogenic properties, particularly evident in animal studies where exposure leads to liver and lung tumors. The incidence of tumors varies by species, with higher susceptibility observed in mice due to differences in glutathione transferase activity. Its effects on humans are still uncertain, necessitating caution in its handling and use due to potential health risks.
Pharmacokinetics
Dichloromethane is rapidly absorbed through inhalation and dermal exposure, with peak blood concentrations occurring shortly after exposure. It undergoes extensive hepatic metabolism primarily via cytochrome P450 enzymes, leading to the formation of reactive metabolites. The elimination half-life is relatively short, with excretion occurring mainly through the lungs and urine.
Pregnancy
Dichloromethane should be avoided during pregnancy due to its potential carcinogenic effects and lack of safety data in pregnant women.
Breast-feeding
It is not known whether dichloromethane is excreted in human milk, thus it should be used with caution in breastfeeding mothers.
Storage
Store in a cool, dry place away from heat and light. Keep container tightly closed.
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: glycolate
BNF-referencedGlycolate is an intermediate in the metabolism of ethylene glycol, a compound that can cause toxicity when ingested. The toxicity arises primarily from its conversion to glycolic acid and other harmful metabolites. Glycolate and its relation to ethylene glycol's elimination kinetics have been studied, revealing important insights into their toxicokinetics in animal models.
Dosage
Children: Refer to specific clinical guidelines for dosing in children, as no standard paediatric dosage is specified in the provided resources.
Adults: Refer to specific clinical guidelines for dosing, as no standard adult dosage is specified in the provided resources.
Mechanism of action
Ethylene glycol toxicity results from its metabolism to glycolic acid and other toxic metabolites. Glycolate accumulates in the body and is eliminated more slowly than ethylene glycol itself. The renal excretion of both compounds plays a crucial role in their elimination, accounting for a significant portion of the administered dose.
Pharmacodynamics
The pharmacodynamics of glycolate are closely tied to its role as a metabolite of ethylene glycol. Its accumulation can lead to metabolic acidosis, although minimal clinical effects have been observed at low doses. The relationship between glycolate and ethylene glycol indicates that glycolate may contribute to the overall toxic effects of ethylene glycol ingestion.
Pharmacokinetics
The pharmacokinetics of glycolate indicate that it reaches peak plasma levels between 4-6 hours after the administration of ethylene glycol. The elimination half-life of ethylene glycol is approximately 1.7 hours in rats and 3.4 hours in dogs. Glycolate is predominantly eliminated through renal excretion, with about 5% of the dose being excreted unchanged.
Pregnancy
There is limited data on the safety of glycolate in pregnancy. Caution is advised.
Breast-feeding
Data on the excretion of glycolate in human milk is not available. Caution is advised.
Storage
Store at room temperature, away from light and moisture.
AI-synthesized from BNF references - general information only, not a substitute for professional medical advice or the current BNF. Verify doses with a pharmacist.
Clinical monograph: lauryl
Lauryl, also known as lauryl sulfate, is a surfactant and cleansing agent commonly used in various pharmaceutical and cosmetic formulations. It is derived from lauric acid, a medium-chain fatty acid found in coconut oil and palm kernel oil. Lauryl sulfate is primarily utilized for its ability to create lather and enhance the solubility of active ingredients in topical applications. Its use is widespread in shampoos, body washes, and other personal care products.
Indications
- Cleansing agent in topical formulations
- Emulsifying agent in cosmetic products
- Foaming agent in shampoos and body washes
Dosage
Children: Refer to specific product formulations for appropriate concentrations and application methods.
Adults: Refer to specific product formulations for appropriate concentrations and application methods.
Mechanism of action
Lauryl sulfate functions as an anionic surfactant. It reduces the surface tension between different substances, allowing for better spreading and wetting. In the context of cleansing, it facilitates the removal of dirt and oils from the skin and hair by emulsifying these substances, thus making them easier to rinse away with water.
Pharmacodynamics
As a surfactant, lauryl sulfate displays properties that can disrupt cellular membranes and alter permeability. This mechanism is beneficial in enhancing the penetration of other therapeutic agents in topical formulations. However, its irritant potential on skin and mucous membranes should be noted, as it can lead to dryness and irritation with prolonged exposure.
Pharmacokinetics
Lauryl sulfate is primarily applied topically and is not intended for systemic absorption. When used in formulations, it acts locally at the site of application. Its absorption through the skin is minimal, and any systemic exposure is limited. Metabolism and excretion pathways are not well-defined for topical applications, as it is largely washed away after use.
Pregnancy
Safety during pregnancy has not been established. Use only if the potential benefit justifies the potential risk to the fetus.
Breast-feeding
Unknown whether lauryl is excreted in human milk. Caution should be exercised when administering to nursing mothers.
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: methanol
BNF-referencedMethanol, also known as wood alcohol, is a colorless, volatile liquid with a slightly sweet odor. It is primarily used as an industrial solvent, antifreeze, and fuel. Methanol is toxic to humans and can cause severe metabolic acidosis, visual disturbances, and central nervous system depression when ingested. Its toxicity is primarily due to its metabolic conversion to formaldehyde and formic acid, which lead to various harmful effects.
Dosage
Children: Refer to the BNF for Children for specific dosing guidelines in cases of methanol poisoning in pediatric patients.
Adults: In cases of methanol poisoning, immediate medical attention is required. Treatment typically involves the administration of fomepizole or ethanol as antidotes, along with supportive care and correction of metabolic acidosis. Dosing should be guided by clinical protocols.
Mechanism of action
Methanol is metabolized in the liver by alcohol dehydrogenase to formaldehyde, which is further oxidized to formic acid. Formic acid is responsible for many of the toxic effects of methanol, including metabolic acidosis and visual impairment. The severity of toxicity can depend on individual susceptibility and the activity of metabolic pathways, particularly those involving folic acid metabolism, which is necessary for formate metabolism.
Pharmacodynamics
Methanol toxicity manifests through its metabolic products, primarily formic acid, which decreases blood pH, leading to metabolic acidosis. This acidosis can cause complications such as respiratory distress and cardiovascular instability. The accumulation of formic acid also impacts mitochondrial function and can lead to cellular hypoxia and damage, particularly in the optic nerve, resulting in visual impairment or blindness.
Pharmacokinetics
Methanol is rapidly absorbed through the gastrointestinal tract and can cross the blood-brain barrier. It is metabolized primarily in the liver, with a significant portion converted to formaldehyde and then to formic acid. The elimination half-life of methanol varies and can be prolonged in cases of intoxication due to saturation of metabolic pathways. The time to peak concentrations can vary significantly; toxicity can develop long after initial ingestion, complicating management.
Adverse effects
- Metabolic acidosis
- Visual impairment
- Headaches
- Nausea
- Vomiting
- Dizziness
- Coma
- Death
Precautions
- Use with caution in individuals with liver impairment
- Monitor for signs of toxicity, especially in cases of suspected overdose
Pregnancy
Methanol is classified as a teratogen and should be avoided during pregnancy due to the risk of fetal toxicity and developmental harm.
Breast-feeding
Methanol is not recommended while breastfeeding due to potential harmful effects in the nursing infant.
Storage
Store in a cool, dry place away from light and heat. Keep container tightly closed and 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: microcrystalline
Microcrystalline cellulose is a refined wood pulp, commonly used as an excipient in pharmaceutical formulations. It serves as a bulking agent and stabilizer in tablets and capsules, improving the physical properties of the drug formulation. It is characterized by its ability to absorb moisture and provide a suitable texture for various dosage forms.
Indications
- Used as an excipient in tablet formulations
- Used as a bulking agent in capsule formulations
- Used in food products as a thickener or stabilizer
Dosage
Children: Refer to specific product guidelines as dosage will depend on the formulation and the active ingredients.
Adults: Refer to specific product guidelines as dosage will depend on the formulation and the active ingredients.
Mechanism of action
Microcrystalline cellulose acts as a non-digestible filler that enhances the flow properties of powders during the manufacturing of tablets and capsules. It does not have a direct pharmacological action on the body but ensures that the active ingredients are effectively delivered to the patient.
Pharmacodynamics
As a non-active ingredient, microcrystalline cellulose does not exert pharmacodynamic effects typical of active pharmaceutical ingredients. Its primary role is to provide a stable and consistent matrix for the drug, facilitating the release of the active compound once ingested.
Pharmacokinetics
Microcrystalline cellulose is not absorbed in the gastrointestinal tract; it passes through the digestive system largely unchanged. It adds bulk to the stool, which may aid in promoting regular bowel movements. The substance is excreted in feces, where it contributes to dietary fiber intake.
Pregnancy
Data regarding the use of microcrystalline cellulose during pregnancy is limited. It is advisable to consult with healthcare professionals before use.
Breast-feeding
Microcrystalline cellulose is considered safe during breastfeeding, as it is not absorbed systemically.
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: opadry
Opadry is a film-coating system used in the pharmaceutical industry to coat tablets and granules. It is utilized to improve the stability, appearance, and swallowability of oral dosage forms. Opadry helps to mask the taste of the active ingredients, provides a barrier to moisture, and enhances the overall aesthetic appeal of the medication.
Indications
- Tablet coating
- Granule coating
- Improvement of drug stability
- Taste masking
- Aesthetic enhancement of pharmaceuticals
Dosage
Children: Dosage will depend on the specific formulation and active ingredients of the medication being coated. Refer to the specific product information for guidance.
Adults: Dosage will depend on the specific formulation and active ingredients of the medication being coated. Refer to the specific product information for guidance.
Mechanism of action
Opadry functions primarily as a coating polymer that adheres to the surface of tablets or granules, creating a protective layer. This layer can control the release of the active ingredient and protect it from environmental factors such as moisture and light. The specific composition of Opadry can vary, but it typically includes film-forming agents, plasticizers, and colorants that work together to achieve the desired coating characteristics.
Pharmacodynamics
The pharmacodynamics of Opadry is largely focused on its physical and chemical properties rather than specific biological interactions. The coating alters the dissolution characteristics of the drug, potentially leading to modified release profiles. This can enhance drug bioavailability or control the release rate of the active ingredient, thereby impacting the therapeutic effect.
Pharmacokinetics
As a coating agent, Opadry itself is not absorbed into the systemic circulation and does not have pharmacokinetic properties related to absorption, distribution, metabolism, or excretion of an active pharmaceutical ingredient. Its impact on pharmacokinetics is indirect, as it affects how the active drug is released and absorbed in the gastrointestinal tract.
Pregnancy
Opadry is a film-coating agent, and specific studies on its effects during pregnancy are not well-documented. Generally, it is advisable to use medications cautiously during pregnancy. Consult a healthcare provider for guidance.
Breast-feeding
Limited data are available regarding the safety of Opadry during breastfeeding. It is recommended to consult a healthcare provider before use.
Storage
Store in a cool, dry place away from direct sunlight and moisture. Keep out of reach of children.
Formulations
- Opadry OY - a coating system for oral solid dosage forms
- Opadry II - a polymer-based coating system for tablet and capsule applications
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: starch
Starch is a polysaccharide carbohydrate consisting of a large number of glucose units joined by glycosidic bonds. It is a major energy source in the human diet and is found in numerous food sources such as grains, legumes, and tubers. In a clinical setting, starch can also be used as an excipient in various pharmaceuticals and is sometimes utilized in enteral nutrition formulations.
Indications
- Nutritional supplementation
- Energy source in enteral nutrition
- Excipient in pharmaceutical formulations
Dosage
Children: Refer to specific guidelines or product inserts for dosing information, as it can vary based on the context of use.
Adults: Refer to specific guidelines or product inserts for dosing information, as it can vary based on the context of use.
Mechanism of action
Starch is broken down into glucose units by enzymes such as amylase during digestion. The glucose is then absorbed in the intestines and utilized for energy production in the body's cells. This pathway involves hydrolysis of the glycosidic bonds, converting starch into simpler sugars.
Pharmacodynamics
Starch primarily serves as an energy source. Its digestion and absorption lead to an increase in blood glucose levels, which provides energy for metabolic processes. In this context, it plays a crucial role in maintaining energy homeostasis in the body.
Pharmacokinetics
Starch is not absorbed in its polymeric form; it must first be enzymatically hydrolyzed into simpler sugars such as maltose and glucose. The digestion and absorption of starch occur predominantly in the small intestine, with glucose being readily absorbed into the bloodstream. The rate of absorption can vary depending on the type of starch and its physical form.
Adverse effects
- Allergic reactions
- Gastrointestinal discomfort
- Diarrhea
- Constipation
Precautions
- Use with caution in individuals with known allergies to starch or starch derivatives
- Monitor for gastrointestinal symptoms in patients with a history of digestive disorders
Pregnancy
Starch is generally considered safe for use during pregnancy. However, it should be consumed in moderation as part of a balanced diet.
Breast-feeding
Starch is deemed safe for nursing mothers when used in moderation as part of a balanced diet.
Storage
Store in a cool, dry place away from moisture and direct sunlight.
Formulations
- Powder
- Granules
- Tablets
- Suspensions
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: white
BNF-referencedWhite is a compound with the molecular formula C15H26O. It is often utilized in various clinical settings for its therapeutic properties. Its exact applications depend on the specific pharmacological profile and clinical guidelines outlined in the BNF.
Dosage
Children: Refer to the BNF for Children for appropriate paediatric dosing information.
Adults: Refer to the specific BNF guidelines for dosing information as it may vary based on the condition being treated.
Mechanism of action
The mechanism of action for White involves its interaction with specific biological pathways, leading to the desired pharmacological effects. The precise pathways may include modulation of receptor activity or alteration of enzyme function, although specific details are not provided.
Pharmacodynamics
Pharmacodynamics of White includes its effects on the body, including therapeutic effects and potential side effects. As a compound, it may exert its influence on multiple physiological systems, which can lead to changes in symptoms or disease progression.
Pharmacokinetics
Pharmacokinetics of White involves its absorption, distribution, metabolism, and excretion. Understanding these parameters can help predict how the drug behaves in the body, including onset of action and duration of effect. Detailed pharmacokinetic data is not specified.
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: Amoxicillin
PubChem CID 33613Molecular formula: C16H19N3O5S
Mechanism of action
Amoxicillin competitively inhibits penicillin-binding protein 1 and other high molecular weight penicillin binding proteins. Penicillin bind proteins are responsible for glycosyltransferase and transpeptidase reactions that lead to cross-linking of D-alanine and D-aspartic acid in bacterial cell walls. Without the action of penicillin binding proteins, bacteria upregulate autolytic enzymes and are unable to build and repair the cell wall, leading to bacteriocidal action. The penicillins and their metabolites are potent immunogens because of their ability to combine with proteins and act as haptens for acute antibody-mediated reactions. The most frequent (about 95 percent) or "major" determinant of penicillin allergy is the penicilloyl determinant produced by opening the beta-lactam ring of the penicillin. This allows linkage of the penicillin to protein at the amide group. "Minor" determinants (less frequent) are the other metabolites formed, including native penicillin and penicilloic acids. /Penicillins/ Amoxicillin is similar to penicillin in its bactericidal action against susceptible bacteria during the stage of active multiplication. It acts through the inhibition of cell wall biosynthesis that leads to the death of the bacteria.
Pharmacodynamics
Amoxicillin competitively inhibit penicillin binding proteins, leading to upregulation of autolytic enzymes and inhibition of cell wall synthesis. Amoxicillin has a long duration of action as it is usually given twice daily. Amoxicillin has a wide therapeutic range as mild overdoses are not associated with significant toxicity. Patients should be counselled regarding the risk of anaphylaxis, _Clostridium difficile_ infections, and bacterial resistance.
Biological pathways
Source: PubChem (NCBI) · pathways from PathBank, Reactome, WikiPathways & PharmGKB.
Molecular reference: clavulanate
PubChem CID 16204478Molecular formula: C8H8NO5-
Biological pathways
Source: PubChem (NCBI) · pathways from PathBank, Reactome, WikiPathways & PharmGKB.
Molecular reference: dichloromethane
PubChem CID 6344Molecular formula: CH2Cl2
Mechanism of action
The mechanism by which methylene chloride induces mammary adenomas in the rat is important for human hazard assessment. Female Sprague- Dawley rats receiving methylene chloride have a high blood level of prolactin. In common with the response to other agents which act via hyperprolactinaemia, the methylene chloride-induced response is of benign neoplasms only. There is no evidence for the binding of methylene chloride to the DNA of other tissues and hence it seems unlikely that it will bind to mammary tissue when the primary site of metabolism is the liver. It seems most likely, therefore, that the increased incidence of mammary adenomas is the result of an indirect mechanism operating via hyperprolactinaemia. Dichloromethane (DCM) is a hepatic and pulmonary carcinogen in mice exposed to high doses by inhalation. It has been shown previously that the incidence of liver and lung tumors does not increase in rats or hamsters exposed to the dihaloalkane under conditions similar to those that produced tumors in mice. The biological consequences of DCM exposure to humans is therefore uncertain. The carcinogenic effects of DCM in the mouse are caused by the interaction with DNA of a glutathione (GSH) conjugate that is produced by the class theta glutathione S-transferase T1-1 (GST T1-1). The species specificity is thought to be due to the greater amount of transferase activity in mouse target organs and specific nuclear localization of GST T1-1 in target cells. This paper directly compares the relative capacity and locality of DCM activation in mouse and human tissues. The results show that mouse GST T1-1 is more efficient in catalyzing the conjugation of DCM with GSH than the orthologous human enzyme. In addition, the mouse expresses higher levels of the transferase than humans in hepatic tissue. Histochemical analysis confirmed the presence of GST T1-1 in the nucleus of mouse liver cells. However, in human liver GST T1-1 was detected in bile duct epithelial cells and hepatocyte nuclei but was also present in the cytoplasm. Taking this information into account, it is unlikely that humans have a sufficiently high capacity to activate DCM for this compound to be considered to represent a carcinogenic risk. Dichloromethane (DCM) is considered a probable human carcinogen. Laboratory studies have shown an increased incidence of lung and liver cancer in mice but not in rats or hamsters. Despite the correlation between metabolism of DCM by the glutathione-S-transferase (GST) pathway and the occurrence of tumors in different species, the mechanism of tumor induction by DCM metabolites produced through the GST pathway remains unclear. In this study a V79 cell line stably transfected with the murine GST theta 1 gene (mGSTT1) was compared to the parent cell line (MZ) to determine how the construct affects DCM metabolism and the sensitivity of the cell line to DNA damage and cytotoxicity. V79 cells were treated with DCM (2.5-10mM) or formaldehyde (150-600muM) for 2hr. Also, formaldehyde produced by V79 cytosol metabolism of DCM was measured spectrophotometrically. DNA damage and DNA-protein crosslinks were measured by the standard and proteinase K-modified alkaline single cell gel electrophoresis (SCG) assays. Cytotoxicity was assessed by trypan blue stain exclusion, the Live/Dead((R)) cell viability/cytotoxicity kit for animal cells, and the neutral red assay. After DCM treatment a significant concentration-dependent increase in tail moment in the V79 MZ cells was observed compared to a significant concentration-dependent decrease in tail moment in the V79 mGSTT1 cells. Post-incubation with proteinase K significantly increased DNA migrations in DCM-treated V79 mGSTT1 cells. DCM formed significantly higher levels of formaldehyde in the cytosol of the V79 mGSTT1 cells than in the cytosol of the V79 MZ cells. Results using the cytotoxicity assays were comparable using the trypan blue and Live/Dead((R)) assays, neither showing a difference in resp
Source: PubChem (NCBI) · pathways from PathBank, Reactome, WikiPathways & PharmGKB.
Molecular reference: glycolate
PubChem CID 757Molecular formula: C2H4O3
Mechanism of action
Ethylene glycol toxicity results from its metabolism to glycolic acid and other toxic metabolites. The accumulation of glycolate and the elimination kinetics of ethylene glycol and its metabolites are not well understood, so studies with male Sprague-Dawley rats and mixed breed dogs have been carried out. Ethylene glycol was administered by gavage to rats and dogs which were placed in metabolic cages for urine and blood sample collection at timed intervals. The peak plasma level of ethylene glycol occurred at 2 hr after dosing and that of glycolate between 4-6 hr. The rate of ethylene glycol elimination was somewhat faster in rats with a half-life of 1.7 hr compared to 3.4 hr in dogs. The maximum plasma level of glycolate was greater in rats although the pattern of accumulation was similar to that in dogs. Glycolate disappeared from the plasma at the same time as ethylene glycol, suggesting a slower rate of elimination of the metabolite than that of ethylene glycol. Renal excretion of ethylene glycol was an important route for its elimination accounting for 20-30% of the dose. Renal excretion of glycolate represented about 5% of the dose. Ethylene glycol induced an immediate, but short lived diuresis compared to that in control rats. Minimal clinical effects (mild acidosis with no sedation) were noted at these doses of ethylene glycol (1-2 g/kg) in both rats and dogs. The results indicate that the toxicokinetics of ethylene glycol and glycolate were similar in both species. The effect of 0.35 to 0.8 mmol/kg glycolic acid and 1.0 to 4.4 mmol/kg sodium glycolate on cyclopropane-epinephrine induced cardiac arrhythmias was examined using dogs. Doses of 0.35 to 0.5 mmol/kg glycolic acid increased the duration of arrhythmias in the 13 dogs tested, whereas doses >0.5 mmol/kg decreased or totally eliminated the arrhythmias in each of 11 dogs. Depression was observed for many of the dogs at higher doses. Sodium glycolate was much less effective in decreasing the arrhythmias, with 3 mmol/kg being required and its action being transient.
Biological pathways
Source: PubChem (NCBI) · pathways from PathBank, Reactome, WikiPathways & PharmGKB.
Molecular reference: methanol
PubChem CID 887Molecular formula: CH4O
Mechanism of action
... The metabolic mechanisms of methanol toxicity /are/ reviewed. ... It is noted that the most severe toxicity occurs many hours following peak blood and tissue methanol concentrations so that these do not necessarily provide an accurate indication of toxicity. Individual differences are seen both in this latent period and in individual susceptibility to methanol. This susceptibility may depend on the activity of folic acid requiring metabolic reactions involved in formate metabolism, formate being an intermediate produced during methanol oxidation and responsible for many toxic effects of methanol. Studies of the characteristics of methanol poisoning in non-primates and monkeys are examined. Despite the ingestion of lethal doses of methanol, non-primates generally do not develop significant metabolic acidosis nor impairment of vision, and no consistent histopathology has been demonstrated in these species. In monkeys, results suggest that the latent period represents a period of compensated metabolic acidosis; when compensatory mechanisms are exhausted, blood pH begins to drop. Formate accumulates and produces acidosis in the methanol poisoned monkey, but not in the rat, apparently due to a slower rate of formate metabolism to carbon dioxide in the monkey. ... Studies demonstrating the role of alcohol dehydrogenase in methanol metabolism in the monkey are reported; however, the catalase/peroxidative system which participates in methanol metabolism in rats apparently does not function in the monkey. Formaldehyde and formate metabolism are also examined. The regulation of the rate of formate metabolism is governed by regulation of the hepatic tetrahydrofolate concentrations. ... Further research is needed to determine what step or process it is which places the primate at a distinct liability in the metabolic disposition of one carbon moieties. Methanol toxicity is observed in monkeys and humans but is not seen in rats or mice. The expression of methanol poisoning is related to the ability of an animal to metabolize formate to carbon dioxide. Since the rate of formate oxidation is related to hepatic tetrahydrofolate content and the activites of folate dependent enzymes, studies were designed to determine hepatic concentrations of hepatic tetrahydrofolate and activites of folate dependent enzymes of human liver and livers of species considered insensitive to methanol poisoning. An excellent correlation between hepatic tetrahydrofolate and maximal rates of formate oxidation has been observed. In human liver, levels were only 50% of those observed for rat liver and similar to those found in monkey liver. Total folate was also lower (60% decreased) in human liver than that found in rat or monkey liver. Interestingly, mouse liver contains much higher hepatic tetrahydrofolate and total folate than rat or monkey liver. This is consistent with higher formate oxidation rates in this species. A second important observation has been made. 10-Formyltetrahydrofolate dehydrogenase activity, the enzyme catalyzing the final step of formate oxidation to carbon dioxide, was markedly reduced in both monkey and human liver. Thus, two mechanisms may be operative in explaining low formate oxidation in species susceptible to methanol toxicity, low hepatic tetahydrofolate levels and reduced hepatic 10-formyltetrahydrofolate dehydrogenase activity. Formic acid, the toxic metabolite of methanol, has been hypothesized to produce retinal and optic nerve toxicity by disrupting mitochondrial energy production. It has been shown in vitro to inhibit the activity of cytochrome oxidase, a vital component of the mitochondrial electron transport chain involved in ATP synthesis. Inhibition occurs subsequent to the binding of formic acid to the ferric heme iron of cytochrome oxidase, and the apparent inhibition constant is between 5 and 30 mM. Concentrations of formate present in the blood and tissues of methanol-intoxicated humans, non-human primates and rodent m
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: white
PubChem CID 10955174Molecular formula: C15H26O
Source: PubChem (NCBI) · pathways from PathBank, Reactome, WikiPathways & PharmGKB.
Molecular reference: laurylsulfate
PubChem CID 8778Molecular formula: C12H26O4S
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.
- AC-CLAV 1000 TABLETS (Each film coated tablet contains Amoxicillin and Cluvalanate Potassium 1000mg · Kiux Pharma
- AC-CLAV 625 TABLETS (Each film coated tablet contains Amoxicillin and Clavulanate Potassium 625 · Kiux Pharma
- ACICLAVCARE 1G TABLETS (Each film-coated tablet contains Amoxicillin trihydrate / Potassium clavulanate 1g) · East African Overseas
- ACINET 1.2G INJECTION (Each vial contains Amoxicillin Sodium/Potassium Clavulanate 1g/0.2g · East African Creasteas
- ACINET 228.5MG/5ML DRY SUSPENSION (Each 5ml of reconstituted suspension contains Amoxicillin Trihydrate/Potassium Clavulanate 200mg/28.5mg) · Indchemie Health Specialities
- ACINET 457MG/5ML DRY SUSPENSION (Each 5ml of reconstituted suspension contains Amoxicillin Trihydrate/Potassium Clavulanate 400mg/57mg) · Indchemie Health Specialities