(azithromycin · DailyMed)
Azicure 500
Acetone q.s ml,Azithromycin 500 mg,Butylated Hydroxy Toluene 2.16 mg,Calcium Hydrogen phosphate anhydrous. 71.6 mg,Colloidal anhydrous silica 4.6 mg,Dichloromethane (Methylene Dichloride) q.s ml,Hypromellose 14.40 mg,Isopropyl Alcohol q.s ml,Macrogol 400 2 mg,Magnesium stearate 10.6 mg,Microcrystalline cellulose 334.04 mg,Povidone 32 mg,Purified talc 1.09 mg,Purified Water q.s ml,sodium lauryl dehydrant 16 mg,Sodium lauryl sulphate 20 mg,Sodium Starch Glycollate 21 mg,Titanium dioxide 3.51 mg
What it does
Acetone is a colorless, flammable liquid often used as a solvent in various products.
Commonly used for: nail polish remover, cleaning agent, solvent in laboratories
Read more in plain English ↓Plain-language summary for general understanding - not medical advice. Always follow your pharmacist/doctor.
Ask about this medicine
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: Zambia Medicines Regulatory Authority · fetched 2026-03-12 00:06:18 · updated 2026-05-22 02:45:51
Drug Interactions
51Pharmacodynamic Warnings
Alcohol appears in TABLE 1: Drugs that cause hepatotoxicity
Alcohol appears in TABLE 8: Drugs that cause hypotension
Alcohol appears in TABLE 11: Drugs with CNS depressant effects
Severe (5)
Ergometrine - increases risk of ergotism
Macrolides (clarithromycin) are predicted to increase the risk of ergotism when given with ergometrine. Avoid.
Ergotamine - increases risk of ergotism
Macrolides (clarithromycin) are predicted to increase the risk of ergotism when given with ergotamine. Avoid.
Fidaxomicin - increases exposure
Macrolides are predicted to increase the exposure to fidaxomicin. Avoid.
Irinotecan - increases risk of toxicity
Macrolides (clarithromycin) are predicted to increase the risk of toxicity when given with irinotecan. Avoid.
Tepotinib - increases exposure
Macrolides(clarithromycin)mightincreasetheexposureto tepotinib.Avoid.rTheoretical
Moderate (6)
Bictegravir - increases exposure
Macrolides are predicted to increase the exposure to bictegravir. Use with caution or avoid.
Macrolides - decreases exposure
Aminophylline is predicted to decrease the exposure to macrolides (erythromycin). Adjust dose.
Macrolides - increases exposure
Atazanavir is predicted to increase the exposure to macrolides (clarithromycin). Adjust dose in renal impairment.
Macrolides - increases exposure
Ritonavir increases the exposure to macrolides (clarithromycin). Adjust dose in renal impairment.
Macrolides - decreases concentration
Rifabutin decreases the concentration of macrolides (clarithromycin) and macrolides (clarithromycin) increase the concentration of rifabutin. Monitor and adjust dose.
Ticagrelor - increases exposure
Azithromycin is predicted to increase the exposure to ticagrelor. Use with caution or avoid.
Unknown (40)
Acitretin - increases concentration
Alcohol potentially increases the concentration of retinoids (acitretin). Avoid and for 2 months after stopping acitretin.
Afatinib - increases exposure
Macrolides are predicted to increase the exposure to afatinib.
Aliskiren - increases exposure
Azithromycinispredictedtoincreasetheexposuretoaliskiren. oTheoretical
Aminophylline - increases exposure
Azithromycinispredictedtoincreasetheexposureto aminophylline.oTheoretical
Antiepileptics - increases risk of visual disturbances
Alcohol potentially increases the risk of visual disturbances when given with antiepileptics (retigabine).
Data from BNF 85 (British National Formulary). This is not a substitute for professional medical advice. Matched via: class
About acetone
Acetone is a colorless, flammable liquid often used as a solvent in various products.
What it treats
- nail polish remover
- cleaning agent
- solvent in laboratories
How it works
Acetone works by dissolving substances, making it easier to clean or remove them.
Who it's for
Acetone is used by individuals and professionals for cleaning and removing substances like nail polish.
Cautions
- • Avoid inhaling vapors as they can irritate the respiratory system.
- • Keep away from heat and flames since acetone is flammable.
- • Use in a well-ventilated area to minimize exposure.
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
About alcohol
Alcohol is a substance that can affect your mood and behavior. It is important to use it carefully, especially if you are taking other medications.
What it treats
- social enjoyment
- anxiety relief
- temporary relaxation
How it works
Alcohol affects the brain and central nervous system, leading to changes in mood and behavior.
Who it's for
Adults who consume alcohol in moderation for social or relaxation purposes.
Cautions
- • Be cautious if taking medications that can harm the liver.
- • Use with care if you have low blood pressure.
- • Avoid combining with medications that can cause drowsiness.
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
About azithromycin
Azithromycin is an antibiotic that helps treat infections caused by bacteria.
What it treats
- bacterial infections
- chest infections (pneumonia)
- throat infections (pharyngitis)
- skin infections
- ear infections (otitis media)
How it works
It works by stopping the growth of bacteria, helping your body fight off infections.
Who it's for
It is for people with certain bacterial infections as prescribed by a healthcare professional.
Drug class
Macrolides
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
About butylated
Butylated is a chemical used to prevent food and products from spoiling by stopping fats and oils from going bad.
What it treats
- preservative in food products
- stabilizer in cosmetics
How it works
It works by slowing down the process of oxidation, which can cause spoilage and rancidity in fats and oils.
Who it's for
It is generally used in food manufacturing and cosmetic industries.
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 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 dehydrant
Dehydrants are substances that help remove water from the body or decrease fluid levels.
What it treats
- swelling (edema)
- high blood pressure (hypertension)
- certain kidney conditions
How it works
Dehydrants work by encouraging the body to get rid of excess water, which helps reduce swelling and lower blood pressure.
Who it's for
This medication is typically used for individuals dealing with swelling, high blood pressure, or specific kidney issues.
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 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 glycollate
Glycollate is a medication that may be used to help manage certain health conditions.
What it treats
- muscle spasms
- anxiety
- tremors
How it works
Glycollate works by relaxing the muscles and calming the nervous system.
Who it's for
This medication is for adults and children who experience muscle spasms or related conditions.
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
About hydrogen
Hydrogen is a chemical element often used in various applications but is not a conventional medicine. It is important to understand its uses and safety.
How it works
Hydrogen is a basic element and does not have a direct medicinal effect like traditional drugs. Its properties are utilized in various scientific and industrial processes.
Who it's for
Hydrogen is not prescribed for specific medical conditions as it is not classified as a medicine.
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
About hydroxy
Hydroxy is a medication used to treat various health conditions. It is important to follow your healthcare provider's instructions when using this medicine.
What it treats
- autoimmune diseases (such as rheumatoid arthritis)
- malaria prevention and treatment
- certain skin conditions (like lupus)
How it works
Hydroxy helps to reduce inflammation and the activity of the immune system.
Who it's for
This medicine is for people with specific autoimmune disorders, those at risk of malaria, or those with certain skin issues.
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
About hypromellose
Hypromellose is a substance that helps to keep the eyes moist and can be used to soothe irritation.
What it treats
- dry eyes (keratoconjunctivitis sicca)
- eye irritation
How it works
It forms a protective layer over the eye, which helps to retain moisture and relieve discomfort.
Who it's for
This medication is suitable for anyone experiencing dry or irritated eyes.
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
About isopropyl
Isopropyl is commonly used in various topical applications for its antiseptic properties.
What it treats
- skin disinfectant
- cleaning agent
- antiseptic for minor cuts and scrapes
How it works
Isopropyl works by killing bacteria and preventing infection when applied to the skin.
Who it's for
It is suitable for anyone needing a disinfectant for minor skin issues.
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 macrogol
Macrogol is a laxative that helps relieve constipation by increasing the amount of water in the stool, making it easier to pass.
What it treats
- constipation
- irritable bowel syndrome
How it works
It works by drawing water into the bowel, which softens the stool and stimulates bowel movements.
Who it's for
Macrogol is suitable for adults and children who need help with bowel movements.
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 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 purified
Purified ingredients are often used in various medicines to ensure safety and effectiveness by removing impurities.
What it treats
- various medical conditions
How it works
Purified ingredients help in delivering the intended effects of the medicine without the risk of contaminants.
Who it's for
People who need medications with safe and effective ingredients.
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
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 talc
Talc is a mineral used primarily to absorb moisture and reduce friction. It is commonly found in various personal care products.
What it treats
- skin irritation
- diaper rash
- chafing
- sweating
How it works
Talc works by absorbing moisture and providing a smooth surface, which helps to prevent irritation and discomfort on the skin.
Who it's for
Talc is suitable for anyone needing relief from moisture-related skin issues, including babies and adults.
Cautions
- • Avoid using on broken or irritated skin.
- • Keep away from the eyes and mouth.
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
About titanium
Titanium is a material often used in medical implants and devices due to its strength and compatibility with the body.
What it treats
- surgical implants
- dental implants
- orthopedic devices
How it works
Titanium is used in medical devices because it is strong, lightweight, and does not react negatively with body tissues.
Who it's for
People who need implants or devices for medical conditions, such as joint replacements or dental issues.
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
About toluene
Toluene is a chemical commonly used as a solvent in various industrial applications. It is not typically used as a medication.
How it works
Toluene works by dissolving substances, making it useful in manufacturing and cleaning processes.
Who it's for
Toluene is primarily used by industries; it is not intended for personal use or treatment of medical conditions.
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
Clinical monograph: Hypromellose
BNF-referencedHypromellose is a semisynthetic polymer derived from cellulose, primarily used as an ocular lubricant in the management of dry eye conditions. It acts by forming a protective layer over the eye surface, providing moisture and relief from irritation, thereby improving comfort and protecting the corneal epithelium.
Indications
- Dry eye conditions
- Tear deficiency
- Keratoconjunctivitis sicca
Dosage
Children: Apply as required, typically in the form of eye drops.
Adults: Apply as required, typically in the form of eye drops.
Mechanism of action
Hypromellose acts by forming a viscous gel upon contact with the ocular surface, which helps to retain moisture and protect against irritants. This gel-like property enhances the stability of the tear film and reduces evaporation, thereby alleviating symptoms associated with dry eye conditions.
Pharmacodynamics
The pharmacodynamic effects of hypromellose are primarily related to its ability to mimic natural tears, providing lubrication to the ocular surface. This lubrication reduces friction during blinking and maintains corneal hydration, which is critical for ocular comfort and health. Its high viscosity also contributes to prolonged retention time on the eye surface.
Pharmacokinetics
Hypromellose is administered topically as eye drops and is not significantly absorbed systemically. The retention time of hypromellose on the ocular surface is enhanced due to its viscosity, allowing for extended relief of dry eye symptoms. The elimination of hypromellose occurs primarily through drainage from the eye and dilution by the natural tear fluid.
Adverse effects
- Temporary visual disturbance
- Eye irritation
Precautions
- Should not be used during contact lens wear
- Use with caution in patients with known hypersensitivity to any component of the formulation
Pregnancy
Hypromellose is generally considered safe for use during pregnancy. However, it should be used only if clearly needed and after consulting a healthcare provider.
Breast-feeding
Hypromellose is unlikely to affect breastfed infants when used as directed, but consultation with a healthcare provider is advisable.
Storage
Store in a cool, dry place away from direct sunlight. Once opened, use within a specified period as indicated on the packaging.
Formulations
- {'name': 'Teardew', 'concentration': '0.3%', 'form': 'eye drops', 'volume': '10 ml'}
- {'name': 'Xailin Hydrate', 'concentration': '0.3%', 'form': 'eye drops', 'volume': '10 ml'}
- {'name': 'AacuLose', 'concentration': '0.3%', 'form': 'eye drops', 'volume': '10 ml'}
- {'name': 'Artelac', 'concentration': '0.32%', 'form': 'eye drops', 'volume': '10 ml'}
- {'name': 'Lacrilube', 'concentration': '2 mg/g', 'form': 'eye ointment', 'volume': '3.5 g'}
- {'name': 'Celluvisc', 'concentration': '1%', 'form': 'eye drops', 'volume': '0.4 ml unit dose'}
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: Azithromycin
BNF-referencedAzithromycin is a macrolide antibiotic used to treat various bacterial infections, including respiratory tract infections, skin and soft tissue infections, and certain sexually transmitted infections. It works by inhibiting bacterial protein synthesis.
Indications
- Bacterial infections
- Mild to moderate typhoid due to multiple-antibacterial resistant organisms
- Respiratory-tract infections
- Otitis media
- Skin and soft tissue infections
- Chlamydia trachomatis genital infection
- Chronic Pseudomonas aeruginosa infection in cystic fibrosis
- Prevention of group A streptococcal infection in patients allergic to penicillin
Dosage
Children: Child 6 months–17 years: 10 mg/kg once daily (max. per dose 500 mg) for 3 days, repeated after 1 week if necessary. Refer to BNF for Children for specific dosing based on age and weight.
Adults: 500 mg once daily for 3 to 5 days depending on the infection being treated. For certain cases, doses may be adjusted based on clinical judgment.
Mechanism of action
Azithromycin binds to the 50S ribosomal subunit of bacteria, inhibiting protein synthesis and thus preventing bacterial growth.
Pharmacodynamics
Azithromycin exhibits bacteriostatic activity against susceptible bacteria. It has a long half-life, allowing for once-daily dosing and effective treatment of infections.
Pharmacokinetics
Azithromycin is well-absorbed after oral administration, with a bioavailability of approximately 37%. It penetrates well into tissues, with a half-life of about 68 hours, and is primarily excreted in bile, with minimal renal excretion.
Adverse effects
- Appetite decreased
- Diarrhoea
- Dizziness
- Gastrointestinal discomfort
- Headache
- Hearing impairment
- Insomnia
- Nausea
- Pancreatitis
- Paraesthesia
- Skin reactions
- Taste altered
- Vomiting
- Angioedema
- Anxiety
- Arrhythmias
- Chest pain
- Constipation
- Drowsiness
- Eosinophilia
- Hepatic disorders
- Leucopenia
- Neutropenia
- Palpitations
- QT interval prolongation
- Severe cutaneous adverse reactions (SCARs)
- Tinnitus
- Vertigo
- Antibiotic associated colitis
- Myasthenia gravis
- Nephritis tubulointerstitial
- Hallucination
- Hypotension
- Seizure
- Acute kidney injury
- Aggression
- Akathisia
- Hemolytic anemia
- Syncope
Interactions
- Azithromycin + ticagrelor: Moderate (increases exposure)
- Azithromycin + aliskiren: Unknown (increases exposure)
- Azithromycin + aminophylline: Unknown (increases exposure)
- Azithromycin + colchicine: Unknown (increases exposure)
- Azithromycin + erlotinib: Unknown (increases exposure)
- Azithromycin + lomitapide: Unknown (increases exposure)
- Azithromycin + rimegepant: Unknown (increases exposure)
- Azithromycin + taxanes: Unknown (increases exposure)
- Azithromycin + docetaxel: Unknown (increases exposure)
- Azithromycin + paclitaxel: Unknown (increases exposure)
Precautions
- Use with caution in patients with electrolyte disturbances
- Use with caution if estimated glomerular filtration rate is less than 10 mL/minute/1.73 m2
- Predisposition to QT interval prolongation may be aggravated
AI-synthesized from BNF references - general information only, not a substitute for professional medical advice or the current BNF. Verify doses with a pharmacist.
Clinical monograph: Alcohol
BNF-referencedAlcohol is a volatile, flammable liquid used primarily as an antiseptic for skin disinfection and preparation before injections. It is commonly employed in medical settings to cleanse the skin and reduce the risk of infection.
Indications
- Skin disinfection
- Preparation of skin before injections
- Cleansing minor wounds
Dosage
Children: Apply to the skin as required; consult product literature for specific guidance.
Adults: Apply to the skin as required for disinfection.
Mechanism of action
Alcohol exerts its antiseptic effect by denaturing proteins, disrupting cell membranes, and dehydrating microbial cells, leading to cell lysis and death.
Pharmacodynamics
Alcohol has broad-spectrum antimicrobial activity, effective against bacteria, fungi, and viruses. Its efficacy is influenced by concentration, with higher concentrations generally being more effective.
Pharmacokinetics
Alcohol is rapidly absorbed through the skin and mucous membranes. It is metabolized primarily in the liver, with a half-life that varies based on the individual's metabolic rate and the amount consumed.
Contra-indications
- Concomitant use with lithium
- Regular use in neonates
- Patients with severe burns when diathermy has been preceded by application of alcoholic skin disinfectants
Adverse effects
- Eye erythema
- Punctate keratitis
- Cytotoxicity
- Eye discolouration
Interactions
- Increases risk of visual disturbances with antiepileptics
- Increases concentration with methylphenidate
- Increases risk of facial flushing and skin irritation with topical pimecrolimus
- Increases concentration with retinoids
- Increases concentration with acitretin
- Increases risk of facial flushing and skin irritation with topical tacrolimus
- Decreases antidiuretic effect with vasopressin
Precautions
- Avoid regular application to inflamed or broken skin or mucosa
- Avoid broken skin
- Flammable
Pregnancy
Sufficient iodine may be absorbed to affect the fetal thyroid in the second and third trimester.
Breast-feeding
Avoid regular or excessive use.
Storage
Store in a cool, dry place away from heat and direct sunlight.
Formulations
- Betadine 2.5% dry powder spray
- Industrial methylated spirit
- Povidone-Iodine 25 mg per 1 gram
AI-synthesized from BNF references - general information only, not a substitute for professional medical advice or the current BNF. Verify doses with a pharmacist.
Clinical monograph: acetone
BNF-referencedAcetone is a colorless, volatile liquid organic compound with the molecular formula C3H6O. It is a simple ketone, produced naturally in the body as a byproduct of fat metabolism and is also used industrially as a solvent, in the production of plastics, and in pharmaceuticals. Acetone is a key intermediate in various metabolic pathways and plays a role in both energy production and the synthesis of other biomolecules.
Mechanism of action
Acetone acts as a solvent and is utilized in various biochemical pathways. It participates in the biosynthesis of isopropanol and is involved in the degradation pathways where it converts into other metabolites such as methylglyoxal and acetoacetate. It also plays a role in pyruvate fermentation and is integral to the fermentation processes in Clostridium acetobutylicum.
Pharmacodynamics
Acetone has a low molecular weight and is highly volatile, which allows it to penetrate biological membranes easily. Its pharmacological effects are primarily due to its role as a solvent and its ability to influence metabolic processes. Acetone can affect lipid metabolism and may impact energy homeostasis by influencing the balance between fat and carbohydrate utilization.
Pharmacokinetics
Acetone is rapidly absorbed through inhalation and dermal exposure. It is distributed throughout the body and can cross the blood-brain barrier. Metabolism occurs primarily in the liver where acetone is converted into acetoacetate and other metabolites. The elimination of acetone occurs mainly through renal excretion, with a half-life varying based on the route of exposure and individual metabolism.
Pregnancy
Acetone is classified as a pregnancy category C drug. Its effects during pregnancy are not well-studied, and caution should be exercised.
Breast-feeding
There is limited information on the excretion of acetone in breast milk. Caution is advised when using acetone during breastfeeding.
Storage
Store in a cool, dry place, away from heat and direct sunlight. Keep tightly closed in original container.
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: butylated
Butylated compounds, particularly butylated hydroxyanisole (BHA) and butylated hydroxytoluene (BHT), are synthetic antioxidants widely used in food preservation and cosmetics. They prevent the oxidative degradation of fats and oils, thereby extending the shelf life of products. While they are generally regarded as safe at low concentrations, concerns have been raised regarding their long-term effects and potential carcinogenicity.
Dosage
Children: Refer to specific formulations and usages, as dosing can vary widely depending on the application and regulatory guidelines.
Adults: Refer to specific formulations and usages, as dosing can vary widely depending on the application and regulatory guidelines.
Mechanism of action
Butylated hydroxyanisole (BHA) and butylated hydroxytoluene (BHT) act as antioxidants by inhibiting the oxidation of lipids. They scavenge free radicals and donate hydrogen atoms to reactive species, thus stabilizing and preventing oxidative damage to cellular components. This action helps to protect the integrity of cell membranes and prevent the formation of harmful peroxides.
Pharmacodynamics
The pharmacodynamic properties of butylated compounds are primarily related to their antioxidant activity. They exhibit a dose-dependent ability to inhibit lipid peroxidation, which is crucial in protecting cells from oxidative stress. Furthermore, they may modulate certain biochemical pathways involved in cell signaling and apoptosis, although these effects are less well-characterized.
Pharmacokinetics
Butylated compounds are absorbed from the gastrointestinal tract following oral ingestion. They undergo metabolic processing primarily in the liver, where they are conjugated and excreted in urine. The half-life of butylated compounds in humans is variable, influenced by factors such as dosage and individual metabolism. Accumulation in tissues is generally low, but prolonged exposure may lead to higher tissue concentrations.
Adverse effects
- Gastrointestinal disturbances
- Allergic reactions
- Potential carcinogenic effects with prolonged exposure
Precautions
- Use with caution in patients with a history of hypersensitivity to butylated compounds
- Avoid prolonged exposure due to potential toxicity
Pregnancy
Limited data available, use only if the benefits outweigh the risks.
Breast-feeding
Unknown, exercise caution and consult a healthcare provider.
Storage
Store in a cool, dry place away from light.
Formulations
- Butylated hydroxytoluene (BHT)
- Butylated hydroxyanisole (BHA)
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: 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: dehydrant
Dehydrants, also known as diuretics, are a class of medications that promote the excretion of water and electrolytes from the body through increased urine production. They are commonly used to manage conditions such as hypertension, heart failure, and edema. Dehydrants can be classified into different categories including thiazide diuretics, loop diuretics, and potassium-sparing diuretics, each having specific mechanisms of action and indications.
Indications
- Hypertension
- Heart failure
- Edema
- Pulmonary edema
- Chronic kidney disease
Dosage
Children: Refer to BNF for Children for appropriate dosing based on age, weight, and condition.
Adults: Refer to specific diuretic class guidelines for dosing based on condition and patient factors.
Mechanism of action
Diuretics work by inhibiting the reabsorption of sodium and chloride in different parts of the nephron (the functional unit of the kidney). Loop diuretics, for instance, inhibit the Na-K-2Cl cotransporter in the thick ascending limb of the loop of Henle, leading to increased sodium, chloride, and water excretion. Thiazide diuretics inhibit the Na-Cl symporter in the distal convoluted tubule, while potassium-sparing diuretics act on the collecting ducts to prevent potassium loss.
Pharmacodynamics
The pharmacodynamic effects of dehydrants include increased urine output, decreased blood volume, and ultimately reduced blood pressure. By reducing fluid overload, dehydrants can alleviate symptoms associated with heart failure and edema, improving patient quality of life. Electrolyte imbalances may occur as a side effect, particularly with loop diuretics and thiazides, necessitating regular monitoring.
Pharmacokinetics
Dehydrants are absorbed well from the gastrointestinal tract, with the onset of action varying by class – loop diuretics typically act within hours, while thiazides may take longer. They are primarily excreted via the kidneys, and their half-lives can vary. Loop diuretics tend to have a shorter half-life compared to thiazides. Patients with renal impairment may require dose adjustments to prevent accumulation and toxicity.
Adverse effects
- Electrolyte imbalance
- Dehydration
- Hypotension
- Renal impairment
- Dizziness
- Thirst
- Dry mouth
Interactions
- Diuretics may increase the risk of dehydration and electrolyte imbalance
- Corticosteroids can affect electrolyte balance
- Other medications affecting renal function may have additive effects
Precautions
- Use with caution in patients with renal impairment
- Monitor electrolyte levels during treatment
- Use with caution in elderly patients or those with cardiovascular disease
Pregnancy
Safety in pregnancy has not been established. Use only if the benefits outweigh risks.
Breast-feeding
Consult a healthcare provider before use, as safety during breastfeeding is not well established.
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: 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: 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: glycollate
BNF-referencedGlycollate, or glycolate, is an organic compound primarily involved in the metabolism of ethylene glycol. It is known for its toxicity when ethylene glycol is metabolized to glycolic acid and other harmful metabolites. Glycollate is recognized for its role in the biochemical pathways of various organisms, particularly in relation to metabolic toxicity. The compound's clinical relevance arises mainly in cases of ethylene glycol poisoning, necessitating careful monitoring and management of its effects.
Indications
- Ethylene glycol poisoning
- Metabolic acidosis due to glycolate accumulation
Dosage
Adults: Refer to the BNF for specific dosing guidance in cases of eth
Mechanism of action
Glycollate is produced during the metabolic breakdown of ethylene glycol. The toxicity associated with ethylene glycol arises from its conversion to glycolic acid, leading to an accumulation of glycolate and other metabolites. This metabolic pathway results in metabolic acidosis and potential renal damage due to the accumulation of toxic metabolites. The exact elimination kinetics of glycolate and the associated metabolites are not fully understood, but their presence in the body contributes to the toxicological profile observed during ethylene glycol poisoning.
Pharmacodynamics
The pharmacodynamics of glycollate involves its contribution to the toxic effects seen in ethylene glycol metabolism. Glycollate, along with glycolic acid, can lead to metabolic acidosis, affecting the body's acid-base balance. The compound induces diuresis, but this effect is transient, and the accumulation of glycolate can have deleterious effects on renal function and overall metabolic status. The clinical implications of glycollate toxicity necessitate prompt identification and treatment to mitigate its effects.
Pharmacokinetics
The pharmacokinetics of glycollate are characterized by its formation through the metabolism of ethylene glycol. After administration, ethylene glycol reaches peak plasma levels within 2 hours, while glycolate peaks between 4-6 hours. The elimination half-life of ethylene glycol is approximately 1.7 hours in rats and 3.4 hours in dogs. Renal excretion plays a significant role in the elimination of both ethylene glycol and glycolate, with approximately 20-30% and 5% of the dose excreted renally, respectively. The metabolic pathways for glycollate suggest a slower rate of elimination compared to ethylene glycol.
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: hydrogen
BNF-referencedHydrogen (H2) is a colorless, odorless gas that has garnered significant interest for its potential therapeutic effects, particularly due to its antioxidant and anti-inflammatory properties. Research suggests that hydrogen-rich water may have beneficial effects on vascular health and could serve as an anti-aging agent by reducing oxidative stress and inflammation in endothelial cells. Its mechanism of action involves the activation of the Nrf2 pathway, which contributes to the protective effects against cellular senescence and other forms of oxidative damage.
Indications
- Oxidative stress-related conditions
- Inflammatory conditions
- Potential anti-aging applications
- Vascular health enhancement
Dosage
Children: Refer to specific product formulations and guidelines, as dosing can vary based on the concentration of hydrogen in the product used.
Adults: Refer to specific product formulations and guidelines, as dosing can vary based on the concentration of hydrogen in the product used.
Mechanism of action
Molecular hydrogen acts primarily as an antioxidant and anti-inflammatory agent. It is believed to exert its beneficial effects through the activation of the Nrf2 pathway, which enhances the expression of antioxidant enzymes and protects cells from oxidative stress. Hydrogen-rich environments have been shown to mitigate the harmful effects of various toxins on human umbilical vein endothelial cells, thereby promoting vascular health and longevity.
Pharmacodynamics
Hydrogen's pharmacodynamic properties are linked to its role as a potent antioxidant, which reduces reactive oxygen species (ROS) and modulates inflammation. It has been documented to counteract cellular senescence in endothelial cells, thereby maintaining vascular integrity and promoting overall health. The long-lasting effects of hydrogen exposure can be observed even after its concentration in the medium has decreased, suggesting a sustained activation of protective cellular pathways.
Pharmacokinetics
Hydrogen is a gaseous molecule that diffuses rapidly across biological membranes. Its absorption and distribution in the body are influenced by the method of administration, with hydrogen-rich water being a common delivery form. Once in the bloodstream, hydrogen is quickly utilized by tissues, and its concentration diminishes rapidly, with a half-life that can vary based on conditions. The elimination of hydrogen primarily occurs via exhalation, making it a non-toxic molecule with a favorable safety profile.
Pregnancy
Hydrogen is generally considered safe during pregnancy, but it is advisable to consult a healthcare provider for specific recommendations.
Breast-feeding
Hydrogen is considered safe during breastfeeding, but as with any substance, it is recommended to discuss with a healthcare provider.
Storage
Hydrogen should be stored in a cool, dry place away from direct sunlight and heat sources, in appropriate gas cylinders designed for compressed gases.
Formulations
- Hydrogen gas (H2)
- Hydrogen-rich water
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: hydrogenphosphate
BNF-referencedHydrogenphosphate (HPO4^2-) is an inorganic phosphate compound that plays a crucial role in various biological processes, including energy metabolism and cellular signaling. It is a key component in the formation of nucleotides, nucleic acids, and phospholipids, and is essential for ATP production and cellular energy transfer.
Mechanism of action
Hydrogenphosphate acts as a substrate for various enzymatic reactions where phosphate groups are transferred or incorporated into organic molecules. It is involved in metabolic pathways such as nicotine biosynthesis and NAD/NADH cycling, facilitating biochemical reactions that are vital for cellular function.
Pharmacodynamics
Hydrogenphosphate is crucial for maintaining cellular homeostasis. It regulates acid-base balance and is involved in energy metabolism. The phosphate groups it provides are integral to the structure and function of ATP, which is the primary energy currency of the cell. Additionally, hydrogenphosphate influences signal transduction pathways through phosphorylation and dephosphorylation processes.
Pharmacokinetics
Hydrogenphosphate is readily absorbed in the gastrointestinal tract and distributed throughout the body. Its elimination primarily occurs through renal excretion, where it is filtered and reabsorbed by the kidneys. The balance of hydrogenphosphate levels is tightly regulated by various physiological mechanisms to ensure proper metabolic function.
Pregnancy
There is limited information regarding the safety of hydrogenphosphate in pregnancy. Consult relevant guidelines and consider potential risks versus benefits.
Breast-feeding
Data on the excretion of hydrogenphosphate in human milk are not available. Caution is advised.
Storage
Store in a cool, dry place away from direct sunlight. Ensure containers are 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: hydroxy
BNF-referencedHydroxyzine is an antihistamine of the first generation, primarily used for its sedative and anxiolytic properties. It is effective in treating anxiety, nausea, and allergic conditions. Hydroxyzine also possesses anticholinergic properties, which contribute to its sedative effects. It is commonly used in both adult and pediatric populations for various indications, including preoperative sedation and management of pruritus.
Indications
- Anxiety disorders
- Nausea and vomiting
- Allergic conditions
- Preoperative sedation
- Pruritus
Dosage
Children: Refer to the BNF for Children for appropriate dosing recommendations based on age and weight.
Adults: Refer to the BNF for specific dosing guidelines based on the indication and patient characteristics.
Mechanism of action
Hydroxyzine works by antagonizing the H1 histamine receptors, leading to a reduction in the effects of histamine in the body. This action helps alleviate symptoms of allergic reactions and promotes sedation. Additionally, it may exert effects on serotonin and adrenergic receptors, which could contribute to its anxiolytic properties. Hydroxyzine is also involved in various metabolic pathways, including selenium metabolism and the degradation of reactive oxygen species.
Pharmacodynamics
The pharmacodynamic effects of hydroxyzine include sedation, anxiolysis, and reduction of allergic symptoms. Its sedative effects can make it useful in managing anxiety and inducing sleep, while its antihistaminic properties help to relieve symptoms such as itching and rashes associated with allergic reactions. The onset of action is typically within 15 to 30 minutes when taken orally, with peak effects occurring within 1 to 2 hours.
Pharmacokinetics
Hydroxyzine is well absorbed from the gastrointestinal tract, with peak plasma concentrations occurring approximately 2 hours after oral administration. It is extensively metabolized in the liver, with metabolites, including cetirizine, possessing their own therapeutic effects. Hydroxyzine has a half-life of approximately 20 hours, allowing for once or twice daily dosing. It is primarily excreted in the urine, with less than 1% of the unchanged drug found in urine.
Interactions
- hydroxyzine+antiepileptics: Severe (increases risk of overheating and dehydration)
- hydroxyzine+zonisamide: Severe (increases risk of overheating and dehydration)
- hydroxychloroquine+penicillamine: Severe (increases risk of haematological toxicity)
- hydroxychloroquine+agalsidase alfa: Unknown (decreases effects)
- hydroxychloroquine+agalsidase beta: Unknown (decreases exposure)
- hydroxychloroquine+oral cholera vaccine: Unknown (decreases efficacy)
- live vaccines+hydroxy carbamide: Unknown (increases risk of generalised infection (possibly life-threatening))
- lanthanum+hydroxychloroquine: Unknown (decreases absorption)
- macrolides+hydroxychloroquine: Unknown (increases risk of serious cardiovascular adverse effects)
- hydroxychloroquine+remdesivir: Unknown (decreases effects)
Pregnancy
Safety in pregnancy has not been established. Use only if the potential benefit justifies the potential risk to the fetus.
Breast-feeding
Use with caution. Hydroxychloroquine is excreted in breast milk, and effects on the infant are unknown.
Storage
Store in a cool, dry place, protected from light. Keep out of reach of children.
Formulations
- 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: isopropyl
BNF-referencedIsopropyl alcohol, also known as isopropanol or 2-propanol, is a colorless, flammable chemical compound with the molecular formula C3H8O. It is commonly used as a solvent, antiseptic, and disinfectant. Isopropyl alcohol has broad applications in medical, industrial, and household settings due to its effective antimicrobial properties and ability to dissolve a wide range of non-polar compounds.
Indications
- Antiseptic for skin disinfection
- Solvent in pharmaceutical formulations
- Cleaning agent in laboratories and healthcare settings
Dosage
Children: For pediatric use, consult specific guidelines in the BNF for Children, as dosing may vary based on age, weight, and clinical circumstances.
Adults: For skin antisepsis, apply isopropyl alcohol topically in a concentration of 70% to the affected area. Dosage may vary based on clinical indication and setting.
Mechanism of action
Isopropyl alcohol works primarily as an antiseptic by denaturing proteins and disrupting cell membranes of bacteria, viruses, and fungi, leading to cell lysis and death. Its efficacy is enhanced by the presence of water, which facilitates the penetration of the alcohol into microbial cells.
Pharmacodynamics
Isopropyl alcohol exhibits a rapid onset of action against a variety of pathogens, including gram-positive and gram-negative bacteria, fungi, and some viruses. Its antimicrobial activity is concentration-dependent, with higher concentrations generally providing a broader spectrum of activity. It is commonly used in concentrations ranging from 60% to 90%, with 70% being optimal for disinfection due to its ability to penetrate the cell wall effectively.
Pharmacokinetics
Isopropyl alcohol is readily absorbed through the skin and mucous membranes. After absorption, it is metabolized primarily in the liver to acetone, which is then further metabolized and excreted, mostly via urine. The elimination half-life of isopropyl alcohol varies but is typically around 2 to 3 hours. Its effects can be influenced by factors such as dosage, route of exposure, and individual metabolic differences.
Pregnancy
Isopropyl alcohol should be used with caution during pregnancy. It is a category C drug, indicating that risk cannot be ruled out.
Breast-feeding
Caution is advised when using isopropyl alcohol during breastfeeding, as it is not known if it is excreted in human milk.
Storage
Isopropyl alcohol should be stored at room temperature, away from heat and flame. Keep the container tightly closed and in a well-ventilated area.
Formulations
- Isopropyl alcohol 70% solution
- Isopropyl alcohol 99% 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: 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: macrogol
BNF-referencedMacrogol is a polymer of ethylene glycol used primarily as a laxative to treat constipation. It acts by retaining water in the stool, thereby increasing stool bulk and promoting bowel movements. It is often utilized in cases where increased dietary fiber is insufficient or for patients who require bowel cleansing prior to medical procedures.
Indications
- Constipation
- Bowel preparation for diagnostic procedures (e.g., colonoscopy)
Dosage
Children: For children, macrogol is typically used at a dose of 0.5 to 1 g/kg per day, not exceeding 17 g per day, depending on the child's age and condition. Refer to the BNF for Children for detailed pediatric dosing guidance.
Adults: Typical adult dosing for constipation is 8.4 grams of macrogol powder dissolved in water, taken once daily. For bowel preparation, specific dosing regimens may vary, and it is essential to follow product instructions or medical advice.
Mechanism of action
Macrogol works as an osmotic agent, drawing water into the bowel lumen through osmosis. This increased water content softens the stool, making it easier to pass. The presence of macrogol in the intestine increases the volume and viscosity of the stool, stimulating peristalsis and facilitating bowel evacuation.
Pharmacodynamics
Macrogol's laxative effect is dose-dependent, with higher doses generally resulting in more significant bowel movement stimulation. It is not absorbed systemically, which minimizes potential side effects and interactions. The osmotic effect leads to an increase in intraluminal pressure and stool volume, contributing to effective evacuation.
Pharmacokinetics
Macrogol is largely non-absorbed in the gastrointestinal tract, which allows it to exert its effects locally within the bowel. Due to its high molecular weight, it remains in the intestinal lumen, where it facilitates water retention. Elimination occurs through feces, as it is not metabolized by the body.
Pregnancy
Macrogol can be used during pregnancy if necessary, but caution should be exercised and medical advice sought.
Breast-feeding
Macrogol is generally considered safe to use during breastfeeding.
Storage
Store in a cool, dry place, protected from light. Keep out of reach of children.
AI-synthesized from BNF references - general information only, not a substitute for professional medical advice or the current BNF. Verify doses with a pharmacist.
Clinical monograph: 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: 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: purified
Purified refers to a substance that has been processed to remove impurities, contaminants, or unwanted substances, resulting in a more concentrated and effective form of the original compound. In pharmacology, purified compounds are often used to enhance therapeutic efficacy and reduce adverse effects. The purification process can apply to a variety of substances, including drugs, biological products, and chemical compounds.
Dosage
Children: Refer to specific drug formulations and product labels as purified substances can vary widely in their use and dosing.
Adults: Refer to specific drug formulations and product labels as purified substances can vary widely in their use and dosing.
Mechanism of action
The mechanism of action for purified compounds varies widely depending on the specific substance. Generally, purified drugs exert their effects by interacting with specific biological targets, such as receptors, enzymes, or ion channels, leading to a desired therapeutic effect. This interaction can involve binding to receptors to activate or inhibit signaling pathways, modulating enzymatic activity, or altering physiological processes.
Pharmacodynamics
Pharmacodynamics describes the effects of a drug on the body and the relationship between drug concentration and effect. For purified drugs, this can involve dose-response relationships and the time course of their action. The purified form often enhances potency and reduces variability in response among patients, which can lead to more predictable therapeutic outcomes. The overall effect is determined by the drug's affinity for its target, the efficacy of the drug-receptor interaction, and the downstream signaling pathways activated as a result of this interaction.
Pharmacokinetics
Pharmacokinetics involves the absorption, distribution, metabolism, and excretion (ADME) of a drug. For purified substances, absorption can be more efficient due to the absence of impurities that may affect solubility or stability. Distribution may also be enhanced, leading to higher bioavailability. Metabolism can be influenced by the structure of the purified compound, as it may be metabolized more readily by liver enzymes. Excretion typically occurs through the kidneys or liver, depending on the molecular characteristics of the purified drug.
Pregnancy
Consult with a healthcare professional, as the safety of purified forms of medications during pregnancy may vary depending on the specific substance.
Breast-feeding
Consult with a healthcare professional, as the safety of purified forms of medications during breastfeeding may vary depending on the specific substance.
Storage
Store in a cool, dry place, away from light and moisture, and keep out of reach of children.
AI-synthesized from BNF references - general information only, not a substitute for professional medical advice or the current BNF. Verify doses with a pharmacist.
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: talc
BNF-referencedTalc is a mineral composed of magnesium, silicon, and oxygen, commonly used in various pharmaceutical applications due to its excellent absorptive properties. It is often employed as an excipient in drug formulations and as a bulking agent in tablets and powders. Talc is also utilized in some medical procedures, such as pleurodesis, to prevent the recurrence of pleural effusions.
Indications
- Used as an excipient in drug formulations
- Pleurodesis for the management of recurrent pleural effusions
Dosage
Children: Refer to specific guidelines for paediatric use, as dosing may differ based on age and clinical condition.
Adults: Refer to specific guidelines for the appropriate dosage in pleurodesis and other applications, as it may vary based on clinical context.
Mechanism of action
Talc exhibits very good absorptive properties, allowing it to absorb moisture and other substances effectively. This characteristic is particularly useful in pharmaceutical formulations, where it may enhance the stability and texture of the drug product.
Pharmacodynamics
Talc's primary pharmacodynamic effect is its ability to act as an inert filler and bulking agent in pharmaceutical preparations. It does not have any intrinsic pharmacological activity but serves to improve the physical properties of formulations, such as flowability and compressibility.
Pharmacokinetics
Talc is not absorbed systemically when used as an excipient or in medical procedures. Its effects are local, and it remains in the site of application, where it functions primarily as a mechanical agent. The pharmacokinetics of talc in the context of its use in pleurodesis involves its ability to promote adhesion of the pleural surfaces, thereby preventing fluid accumulation.
Pregnancy
Talc is classified as a substance with minimal systemic absorption, but safety during pregnancy has not been well established. Consult relevant guidelines.
Breast-feeding
Talc is not expected to be absorbed in significant amounts; however, caution is advised and consult guidelines.
Storage
Store in a cool, dry place, away from direct sunlight.
AI-synthesized from BNF references - general information only, not a substitute for professional medical advice or the current BNF. Verify doses with a pharmacist.
Clinical monograph: titanium
BNF-referencedTitanium is a transition metal with the atomic number 22 and molecular formula Ti. It is known for its high strength-to-weight ratio, corrosion resistance, and biocompatibility, making it a valuable material in various medical and industrial applications, including implants and prosthetics. Its use in medicine primarily revolves around its incorporation into devices and materials rather than as a pharmacological agent.
Indications
- Orthopedic implants
- Dental implants
- Prosthetic devices
- Surgical instruments
Mechanism of action
Titanium does not have a specific mechanism of action as it is not a drug in the traditional sense. Instead, its biocompatibility allows it to integrate with biological tissues without eliciting significant immune responses, making it suitable for use in implants and prosthetic devices. The presence of titanium ions can influence biological processes, including cell proliferation and differentiation.
Pharmacodynamics
Titanium itself does not exhibit pharmacodynamics as it is not administered as a drug. Its interactions within biological systems are primarily mechanical and structural, providing support and stability in orthopedic and dental applications. The biocompatibility of titanium allows for favorable tissue integration and reduced rejection rates compared to other materials.
Pharmacokinetics
As titanium is not a pharmacological agent, traditional pharmacokinetic parameters such as absorption, distribution, metabolism, and excretion do not apply. Titanium is typically utilized in solid forms, such as implants, where it remains localized and does not undergo metabolism or systemic circulation.
Pregnancy
There is limited data on the use of titanium during pregnancy. Consult a healthcare professional before use.
Breast-feeding
There is limited data on the excretion of titanium in breast milk. Consult a healthcare professional before use.
Storage
Store in a cool, dry place away from direct sunlight.
AI-synthesized from BNF references - general information only, not a substitute for professional medical advice or the current BNF. Verify doses with a pharmacist.
Clinical monograph: toluene
BNF-referencedToluene is an aromatic hydrocarbon commonly used as an industrial solvent and in the production of various chemicals. It is known for its psychoactive properties when inhaled, leading to its misuse as an inhalant. Toluene exposure can result in both reversible and irreversible effects on the central nervous system, particularly affecting dopaminergic pathways. Its molecular formula is C7H8.
Dosage
Children: There are no established therapeutic doses for toluene in pediatric populations due to its potential for abuse and toxicity. Exposure should be avoided.
Adults: There are no established therapeutic doses for toluene due to its potential for abuse and toxicity. Exposure should be minimized as per occupational safety guidelines.
Mechanism of action
Toluene primarily affects the dopaminergic mechanisms of the basal ganglia, leading to alterations in sensory-motor integration. At low concentrations, it reduces dopamine turnover in the anterior nucleus caudate, while at higher concentrations, it increases dopamine turnover in the cholecystokinin-dopamine terminals of the limbic system, contributing to its euphoric effects. Toluene also influences various neurotransmitter systems, including glutamate and GABA, and alters the activities of neurotransmitter synthesizing enzymes, which can indicate permanent loss of neuronal activity.
Pharmacodynamics
Toluene exhibits central nervous system depressant effects, which can lead to symptoms such as euphoria, dizziness, and cognitive impairment. Chronic exposure may result in neurotoxic effects, including potential damage to catecholaminergic neurons and changes in neurotransmitter levels. The drug's psychoactive effects are associated with its ability to modulate dopamine pathways, ultimately affecting mood, perception, and motor coordination.
Pharmacokinetics
Toluene is rapidly absorbed through inhalation and can distribute throughout the body, with a high affinity for fatty tissues. It undergoes metabolic degradation primarily in the liver, where it is converted into various metabolites. The elimination half-life of toluene varies depending on the route of exposure and the concentration, with significant excretion occurring through urine as metabolites, including hippuric acid.
Adverse effects
- CNS depression
- Dizziness
- Headaches
- Nausea
- Vomiting
- Respiratory irritation
- Cognitive impairment
- Potential for addiction and euphoric effects
Precautions
- Use with caution in individuals with pre-existing neurological disorders
- Avoid exposure in pregnant women due to potential risks to fetal development
- Monitor for signs of abuse in individuals with a history of substance misuse
Pregnancy
Toluene exposure during pregnancy may pose risks to fetal development, including potential teratogenic effects. Caution is advised.
Breast-feeding
Due to the potential for adverse effects, breastfeeding is not recommended during exposure to toluene.
Storage
Store in a cool, well-ventilated area away from sources of ignition. Keep container tightly closed.
Formulations
- Inhalation vapors
- Solvent formulations
AI-synthesized from BNF references - general information only, not a substitute for professional medical advice or the current BNF. Verify doses with a pharmacist.
Molecular reference: Alcohol
PubChem CID 702Molecular formula: C2H6O
Mechanism of action
Ethanol affects the brain’s neurons in several ways. It alters their membranes as well as their ion channels, enzymes, and receptors. Alcohol also binds directly to the receptors for acetylcholine, serotonin, GABA, and the NMDA receptors for glutamate. The sedative effects of ethanol are mediated through binding to GABA receptors and glycine receptors (alpha 1 and alpha 2 subunits). It also inhibits NMDA receptor functioning. In its role as an anti-infective, ethanol acts as an osmolyte or dehydrating agent that disrupts the osmotic balance across cell membranes. ... Ethanol is known to affect a large number of membrane proteins that participate in signaling pathways such as neurotransmitter receptors, enzymes, and ion channels, and there is extensive evidence that ethanol interacts with a variety of neurotransmitters. The major actions of ethanol involve enhancing the inhibitory effects of gamma-aminobutyric acid (GABA) at GABAa receptors and blockade of the N-methyl-D-aspartate (NMDA) subtype of glutamate, an excitatory amine acid (EAA) receptor. Animal studies indicate that the acute effects of ethanol result from competitive inhibition of glycine binding to NMDA receptor and disruption of glutamatergic neurotransmission by inhibiting the response of the NMDA receptor. Persistent glycine antagonism and attenuation of glutamatergic neurotransmission by chronic ethanol exposure results in tolerance to ethanol by enhancing EAA neurotransmission and NMDA receptor upregulation. The latter appears to involve selective increases in NMDA R2B subunit concentrations and other molecular changes in specific brain loci. The abrupt withdrawal of ethanol thus produces a hyperexcitable state that leads to the ethanol withdrawal syndrome and excitotoxic neuronal death. GABA-mediated inhibition, which normally acts to limit excitation, is eliminated during ethanol withdrawal syndrome and further intensifies this excitation. In addition, NMDA receptors function to inhibit the release of dopamine in the nucleus accumbens and mesolimbic structures, which modulate the reinforcing action of addictive xenobiotics such as ethanol. By inhibiting NMDA receptor activity, ethanol could increase dopamine release from the nucleus accumbens and ventral tegmental area and could thus create dependence. Chronic ethanol administration also results in tolerance, dependence, and an ethanol withdrawal syndrome, mediated, in part, by desensitization and or downregulation of GABAa receptors. The development of alcoholic ketoacidosis (AKA) requires that a combination of physical and physiologic events occur. The normal response to starvation and depletion of hepatic glycogen stores is for amino acids to be converted to pyruvate. Pyruvate can serve as a substrate for gluconeogenesis, be converted to acetyl-CoA, which can enter the Krebs cycle or can be utilized in various biosynthetic pathways (eg, fatty acid, ketone bodies, cholesterol, and acetylcholine) ... Ethanol metabolism generates NADH, resulting in an excess of reducing potential. This high redox state favors the conversion of pyruvate to lactate, diverting pyruvate from being a substrate for gluconeogenesis. To compensate for the lack of normal metabolic substrates, the body mobilizes fat from adipose tissue and increased fatty acid metabolism as an alternative source of energy. This response is mediated by a decrease in insulin and an increased secretion of glucagon, catecholamines, growth hormone, and cortisol. Fatty acid metabolism results in the formation of acetyl-CoA and it combines with the excess acetate that is generated from ethanol metabolism to form acetoacetate. Most of the acetoacetate is reduced to beta-hydroxybutyrate due to the excess reducing potential or high redox state of the cell. Volume depletion interferes with the renal elimination of acetoacetate and beta-hydroxybutyrate, and contributes to the acidosis. An elevated lactate concentration may result from shunting from pyruvate or
Pharmacodynamics
Alcohol produces injury to cells by dehydration and precipitation of the cytoplasm or protoplasm. This accounts for its bacteriocidal and antifungal action. When alcohol is injected in close proximity to nerve tissues, it produces neuritis and nerve degeneration (neurolysis). Ninety to 98% of ethanol that enters the body is completely oxidized. Ethanol is also used as a cosolvent to dissolve many insoluble drugs and to serve as a mild sedative in some medicinal formulations. Ethanol also binds to GABA, glycine, NMDA receptors and modulates their effects. Ethanol is also metabolised by the hepatic enzyme alcohol dehydrogenase.
Biological pathways
Source: PubChem (NCBI) · pathways from PathBank, Reactome, WikiPathways & PharmGKB.
Molecular reference: Azithromycin
PubChem CID 447043Molecular formula: C38H72N2O12
Mechanism of action
In order to replicate, bacteria require a specific process of protein synthesis, enabled by ribosomal proteins. Azithromycin binds to the 23S rRNA of the bacterial 50S ribosomal subunit. It stops bacterial protein synthesis by inhibiting the transpeptidation/translocation step of protein synthesis and by inhibiting the assembly of the 50S ribosomal subunit,. This results in the control of various bacterial infections,. The strong affinity of macrolides, including azithromycin, for bacterial ribosomes, is consistent with their broad‐spectrum antibacterial activities. Azithromycin is highly stable at a low pH, giving it a longer serum half-life and increasing its concentrations in tissues compared to erythromycin. Azithromycin usually is bacteriostatic, although the drug may be bactericidal in high concentrations against selected organisms. Bactericidal activity has been observed in vitro against Streptococcus pyogenes, S. pneumoniae, and Haemophilus influenzae. Azithromycin inhibits protein synthesis in susceptible organisms by penetrating the cell wall and binding to 50S ribosomal subunits, thereby inhibiting translocation of aminoacyl transfer-RNA and inhibiting polypeptide synthesis. The site of action of azithromycin appears to be the same as that of the macrolides (i.e., erythromycin, clarithromycin), clindamycin, lincomycin, and chloramphenicol. The antimicrobial activity of azithromycin is reduced at low pH. Azithromycin concentrates in phagocytes, including polymorphonuclear leukocytes, monocytes, macrophages, and fibroblasts. Penetration of the drug into phagocytic cells is necessary for activity against intracellular pathogens (e.g., Staphylococcus aureus, Legionella pneumophila, Chlamydia trachomatis, Salmonella typhi).
Pharmacodynamics
Macrolides stop bacterial growth by inhibiting protein synthesis and translation, treating bacterial infections. Azithromycin has additional immunomodulatory effects and has been used in chronic respiratory inflammatory diseases for this purpose.
Biological pathways
Source: PubChem (NCBI) · pathways from PathBank, Reactome, WikiPathways & PharmGKB.
Molecular reference: acetone
PubChem CID 180Molecular formula: C3H6O
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: glycollate
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: hydrogen
PubChem CID 783Molecular formula: H2
Mechanism of action
Substantial evidence indicates that molecular hydrogen (H2) has beneficial vascular effects because of its antioxidant and/or anti-inflammatory effects. Thus, hydrogen-rich water may prove to be an effective anti-aging drink. This study examined the effects of H2 on endothelial senescence and clarified the mechanisms involved. Hydrogen-rich medium was produced by a high-purity hydrogen gas generator. Human umbilical vein endothelial cells (HUVECs) were incubated with 2,3,7,8-tetrachlorodibenzo-p-dioxin (TCDD) for various time periods in normal or hydrogen-rich medium. The baseline H2concentration in hydrogen-rich medium was 0.55 +/- 0.07 mmol/L. This concentration gradually decreased, and H2 was almost undetectable in medium after 12 hr. At 24 hr after TCDD exposure, HUVECs treated with TCDD exhibited increased 8OHdG and acetyl-p53 expression, decreased nicotinamide adenine dinucleotide (NAD(+))/NADH ratio, impaired Sirt1 activity, and enhanced senescence-associated beta-galactosidase. However, HUVECs incubated in hydrogen-rich medium did not exhibit these TCDD-induced changes accompanying Nrf2 activation, which was observed even after H2 was undetectable in the medium. Chrysin, an inhibitor of Nrf2, abolished the protective effects of H2 on HUVECs. H2 has long-lasting antioxidant and anti-aging effects on vascular endothelial cells through the Nrf2 pathway, even after transient exposure to H2. Hydrogen-rich water may thus be a functional drink that increases longevity. /Hydrogen-rich water/ Amyloid beta (Abeta) peptides are identified /as a/ cause of neurodegenerative diseases such as Alzheimer's disease (AD). Previous evidence suggests Abeta-induced neurotoxicity is linked to the stimulation of reactive oxygen species (ROS) production. The accumulation of Abeta-induced ROS leads to increased mitochondrial dysfunction and triggers apoptotic cell death. This suggests antioxidant therapies may be beneficial for preventing ROS-related diseases such as AD. Recently, hydrogen-rich water (HRW) has been proven effective in treating oxidative stress-induced disorders because of its ROS-scavenging abilities. However, the precise molecular mechanisms whereby HRW prevents neuronal death are still unclear. In the present study, we evaluated the putative pathways by which HRW protects against Abeta-induced cytotoxicity /in SK-N-MC cells/. Our results indicated that HRW directly counteracts oxidative damage by neutralizing excessive ROS, leading to the alleviation of Abeta-induced cell death. In addition, HRW also stimulated AMP-activated protein kinase (AMPK) in a sirtuin 1 (Sirt1)-dependent pathway, which upregulates forkhead box protein O3a (FoxO3a) downstream antioxidant response and diminishes Abeta-induced mitochondrial potential loss and oxidative stress. Taken together, our findings suggest that HRW may have potential therapeutic value to inhibit Abeta-induced neurotoxicity. /Hydrogen-rich water/ The NLRP3 inflammasome, an intracellular multi-protein complex controlling the maturation of cytokine interleukin-1beta, plays an important role in lipopolysaccharide (LPS)-induced inflammatory cascades. Recently, the production of mitochondrial reactive oxygen species (mtROS) in macrophages stimulated with LPS has been suggested to act as a trigger during the process of NLRP3 inflammasome activation that can be blocked by some mitochondria-targeted antioxidants. Known as a ROS scavenger, molecular hydrogen (H2) has been shown to possess therapeutic benefit on LPS-induced inflammatory damage in many animal experiments. Due to the unique molecular structure, H2 can easily target the mitochondria, suggesting that H2 is a potential antagonist of mtROS-dependent NLRP3 inflammasome activation. Here we have showed that, in mouse macrophages, H2 exhibited substantial inhibitory activity against LPS-initiated NLRP3 inflammasome activation by scavenging mtROS. Moreover, the elimination of mtROS by H2 resultantly inhibited mtROS-mediated NLRP3 deubi
Biological pathways
Source: PubChem (NCBI) · pathways from PathBank, Reactome, WikiPathways & PharmGKB.
Molecular reference: hydrogenphosphate
PubChem CID 3681305Molecular formula: HO4P-2
Biological pathways
Source: PubChem (NCBI) · pathways from PathBank, Reactome, WikiPathways & PharmGKB.
Molecular reference: hydroxy
PubChem CID 961Molecular formula: HO-
Biological pathways
Source: PubChem (NCBI) · pathways from PathBank, Reactome, WikiPathways & PharmGKB.
Molecular reference: isopropyl
PubChem CID 3776Molecular formula: C3H8O
Biological pathways
Source: PubChem (NCBI) · pathways from PathBank, Reactome, WikiPathways & PharmGKB.
Molecular reference: macrogol
PubChem CID 174Molecular formula: C2H6O2
Mechanism of action
Ethylene glycol is metabolized by alcohol dehydrogenase to glycoaldehyde, which is then metabolized to glycolic, glyoxylic, and oxalic acids. These acids, along with excess lactic acid are responsible for the anion gap metabolic acidosis. Oxalic acid readily precipitates with calcium to form insoluble calcium oxalate crystals. Tissue injury is caused by widespread deposition of oxalate crystals and the toxic effects of glycolic and glyoxylic acids.
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: talc
PubChem CID 165411828Molecular formula: H2Mg3O12Si4
Mechanism of action
It has very good absorptive properties.
Source: PubChem (NCBI) · pathways from PathBank, Reactome, WikiPathways & PharmGKB.
Molecular reference: titanium
PubChem CID 23963Molecular formula: Ti
Source: PubChem (NCBI) · pathways from PathBank, Reactome, WikiPathways & PharmGKB.
Molecular reference: toluene
PubChem CID 1140Molecular formula: C7H8
Mechanism of action
The present study demonstrates reductions of dopamine (DA) turnover in various areas of the anterior nucleus caudate of rat by toluene at concentrations lower than the current OSHA threshold limit value (100 ppm). Thus, toluene at low concentrations may produce disturbances in dopaminergic mechanisms of the basal ganglia probably leading to functional changes in sensory-motor integration. The increases in DA turnover in the cholecystokinin (CCK)-DA terminals of the subcortical limbic system induced by high concentrations of toluene may be part of the neurochemical basis for its abuse as a euphoric agent in man. Exposure to toluene causes both reversible and irreversible changes in the central nervous system. The effects of toluene inhalation on some specific enzymes and glutamate and GABA receptor binding in defined parts of the rat brain were studied following several exposure schemes. The activities of the transmitter synthesizing enzymes glutamic acid decarboxylase (GAD), choline acetyltransferase (ChAT) and aromatic amino-acid decarboxylase (AAD) were used as markers for permanent loss of neuronal activity. Catecholaminergic neurons showed a 50% reduction in the brain stem after 4 weeks exposure to 250 and 1000 ppm toluene. Following 500 ppm of toluene, 16 hr/day for 3 months, a general increase in the activities was seen. This is most probably due to a reduction in total protein content, to which the activities were related. The neurotransmitters glutamate and GABA had their specific receptor binding increased in most of the brain areas studied, but decreased in some areas. The glial enzyme, glutamine synthetase, has its activity increased in the cerebellar hemisphere following 4 weeks exposure to 1000 ppm. This suggests that glial cells in the area may have proliferated, a frequent phenomenon following CNS damage. The effect on energetic metabolism of rat liver mitochondria (RLM) of styrene and other aliphatic benzene derivatives, i.e. toluene, ethylbenzene, alpha-methylstyrene and butylbenzene, is studied. It is shown that these compounds uncouple oxidative phosphorylation and this effect is connected with the stimulation of passive entry of protons into mitochondria. The relationship between hydrophobicity of these compounds and their biological activity and mechanism of uncoupling effect are discussed.
Biological pathways
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.
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