erythromycin reference
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(erythromycin · DailyMed)
Valid Ghana · FDA Ghana

ERNSERYL WATER SOLUBLE POWDER

Erythromycin thiocyanate/ Oxytetracycline hydrochloride/ Streptomycin sulfate/ Colistin sulphate/ Vitamin A/ Vitamin D3/ Vitamin E/ Vitamin C

FDA/V.255-02026 Erythromycin thiocyanate/ Oxytetracycline hydrochloride/ Streptomycin sulfate/ Colistin sulphate/ Vitamin A/ Vitamin D3/ Vitamin E/ Vitamin C 4.65kg/ 5.75kg/ 4.8kg/ 0.97kg/ 0.6kg/ 0.6kg/ 0.2kg/ 2kg alimentary tract and metabolism INN generic

What it does

Ascorbic acid, commonly known as Vitamin C, is essential for overall health and helps the body in many ways.

Commonly used for: scurvy, immune system support, wound healing, antioxidant support

Read more in plain English ↓

Plain-language summary for general understanding - not medical advice. Always follow your pharmacist/doctor.

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Answers come only from this medicine's registration record, BNF monograph and interaction data - not medical advice.

Medicine sourcing is available in Kenya only. We don't sell or dispense medicines - licensed pharmacies do.

Sourcing - Kenya only

Registration & product details

Registration no.
FDA/V.255-02026
Registration date
2025-03-12
Expiry date
2030-03-01
Status
Valid
Active ingredient
Erythromycin thiocyanate/ Oxytetracycline hydrochloride/ Streptomycin sulfate/ Colistin sulphate/ Vitamin A/ Vitamin D3/ Vitamin E/ Vitamin C
Strength
4.65kg/ 5.75kg/ 4.8kg/ 0.97kg/ 0.6kg/ 0.6kg/ 0.2kg/ 2kg
Pack size
-
Therapeutic class
-
ATC class (WHO)
A11GA - Ascorbic acid (vitamin C), plain
RxNorm RxCUI
1151
Manufacturer / MAH
Jiangx Bolai Pharmacy
Country of origin
-
Manufacturer location
24 Tong Jia Xiang, Gu Lou Qu, Nan Jing Shi, Jiang Su Sheng, China, 210009

Source: Food and Drugs Authority · fetched 2026-04-18 08:38:04 · updated 2026-09-25 04:00:12

Drug Interactions

165
Check interactions

Pharmacodynamic Warnings

Oxytetracycline appears in TABLE 1: Drugs that cause hepatotoxicity

Streptomycin appears in TABLE 2: Drugs that cause nephrotoxicity

Erythromycin appears in TABLE 9: Drugs that prolong the QT interval

Streptomycin appears in TABLE 19: Drugs that cause ototoxicity

Streptomycin appears in TABLE 20: Drugs with neuromuscular blocking effects

Severe (17)

Agalsidasealfa - decreases effects

Aminoglycosidesarepredictedtodecreasetheeffectsof agalsidasealfa.Avoid.oTheoretical

Severe Theoretical

Agalsidasebeta - decreases effects

Aminoglycosidesarepredictedtodecreasetheeffectsof agalsidasebeta.Avoid.oTheoretical

Severe Theoretical

Antipsychotics, Second Generation - increases exposure

Erythromycin is predicted to increase the exposure to antipsychotics, second generation (cariprazine). Avoid.

Severe Study

Cariprazine - increases exposure

Erythromycin is predicted to increase the exposure to antipsychotics, second generation (cariprazine). Avoid.

Severe Study

Eletriptan - increases exposure

Erythromycin moderately increases the exposure to triptans (eletriptan). Avoid.

Severe Study

Moderate (41)

Alfentanil - increases exposure

Erythromycinispredictedtoincreasetheexposuretoopioids (alfentanil,buprenorphine,fentanyl,oxycodone).Monitorand adjustdose.oStudy com/codemedicalapps/ cal Applications)

Moderate Study

Amlodipine - increases exposure

Erythromycin is predicted to increase the exposure to calcium channel blockers (amlodipine, felodipine, lacidipine, lercanidipine, nicardipine, nifedipine, nimodipine). Monitor and adjust dose.

Moderate Study

Antiarrhythmics - increases exposure

Erythromycin is predicted to increase the exposure to antiarrhythmics (propafenone). Monitor and adjust dose.

Moderate Study

Antiepileptics - increases concentration

Erythromycin markedly increases the concentration of antiepileptics (carbamazepine). Monitor concentration and adjust dose.

Moderate Study

Atorvastatin - increases exposure

Erythromycins slightly increases the exposure to statins (atorvastatin). Monitor and adjust dose.

Moderate Study

Unknown (107)

Abemaciclib - increases exposure

Erythromycin is predicted to increase the exposure to abemaciclib.

Unknown Study

Acalabrutinib - increases exposure

Erythromycin is predicted to increase the exposure to acalabrutinib. Avoid or monitor.

Unknown Study

Afatinib - increases exposure

Macrolides are predicted to increase the exposure to afatinib.

Unknown Study

Alphablockers - increases exposure

Erythromycin is predicted to increase the exposure to alpha blockers (tamsulosin).

Unknown Theoretical

Alprazolam - increases exposure

Erythromycin is predicted to increase the exposure to benzodiazepines (alprazolam).

Unknown Study

Data from BNF 85 (British National Formulary). This is not a substitute for professional medical advice. Matched via: class

Disclaimer: This information is sourced from Food and Drugs Authority (Ghana). Always consult a qualified healthcare professional before using any medication.

About ascorbic acid

Ascorbic acid, commonly known as Vitamin C, is essential for overall health and helps the body in many ways.

What it treats

  • scurvy
  • immune system support
  • wound healing
  • antioxidant support

How it works

Ascorbic acid helps in the production of collagen, a protein important for skin, blood vessels, and connective tissues, and acts as an antioxidant to protect cells.

Who it's for

It is suitable for people needing vitamin C, such as those with a deficiency or increased requirements due to illness or stress.

AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.

About cholecalciferol

Cholecalciferol is a form of vitamin D that helps maintain healthy bones and teeth.

What it treats

  • vitamin D deficiency
  • rickets
  • osteomalacia

How it works

Cholecalciferol helps your body absorb calcium and phosphorus, which are essential for strong bones.

Who it's for

It is suitable for individuals who need to boost their vitamin D levels, especially those with limited sun exposure.

AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.

About colistin

Colistin is an antibiotic used to treat serious infections caused by certain bacteria, especially when other antibiotics are not effective.

What it treats

  • serious bacterial infections
  • pneumonia
  • blood infections (sepsis)

How it works

Colistin works by attacking the outer membrane of bacteria, leading to their death and helping to clear the infection.

Who it's for

This medicine is for adults and children with severe infections caused by bacteria that are resistant to other treatments.

AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.

About erythromycin

Erythromycin is an antibiotic used to treat various bacterial infections.

What it treats

  • bacterial infections
  • bronchitis
  • pneumonia
  • skin infections
  • ear infections

How it works

It works by stopping the growth of bacteria, helping the body to fight off infections.

Who it's for

It is suitable for adults and children who have certain bacterial infections.

Drug class

Macrolides

Cautions

  • • Be careful if you are taking other medications that can affect heart rhythm.

AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.

About oxytetracycline

Oxytetracycline is an antibiotic used to treat various bacterial infections.

What it treats

  • bacterial infections
  • acne
  • respiratory infections
  • urinary tract infections

How it works

It works by stopping the growth of bacteria, helping to eliminate the infection.

Who it's for

It is for adults and children over the age of 12 who have specific bacterial infections.

Drug class

Tetracyclines

Cautions

  • • Avoid use with other medications that can harm the liver.

AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.

About retinol

Retinol is a form of vitamin A that helps improve skin health and appearance.

What it treats

  • acne
  • wrinkles
  • dry skin
  • psoriasis

How it works

Retinol promotes skin cell turnover, helping to clear up acne and reduce signs of aging.

Who it's for

Adults looking to improve their skin quality or treat specific skin conditions.

AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.

About streptomycin

Streptomycin is an antibiotic used to treat various bacterial infections.

What it treats

  • tuberculosis (TB)
  • bacterial infections
  • plague

How it works

Streptomycin works by stopping the growth of bacteria, helping the body fight off the infection.

Who it's for

This medication is for people diagnosed with certain bacterial infections, particularly those resistant to other antibiotics.

Drug class

Aminoglycosides

Cautions

  • • Be careful if you are taking other medications that can harm the kidneys.
  • • Avoid using with drugs that can affect hearing.
  • • Use caution if you are on medications that can relax muscles.

AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.

About thiocyanate

Thiocyanate is a compound that can affect the body in various ways, often related to its role in certain medical conditions.

What it treats

  • used in some medical tests
  • helps assess thyroid function

How it works

Thiocyanate can influence how the body uses iodine, which is important for making thyroid hormones.

Who it's for

Thiocyanate may be used for individuals undergoing tests for thyroid-related issues.

AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.

About tocopherol

Tocopherol is a form of vitamin E, an antioxidant that helps protect cells from damage.

What it treats

  • skin health
  • antioxidant support
  • nutritional supplement

How it works

It helps protect your body from harmful substances by neutralizing free radicals.

Who it's for

It is suitable for people looking to support their overall health and skin condition.

AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.

Clinical monograph: Oxytetracycline

BNF-referenced

Oxytetracycline is a broad-spectrum antibiotic belonging to the tetracycline class. It is effective against a variety of bacterial infections, including those caused by Chlamydia, Rickettsia, and Mycoplasma. This medication works by inhibiting protein synthesis in bacteria, making it a vital option in treating susceptible infections. Its use is cautioned in pediatric populations due to potential adverse effects on bone and dental development.

Indications

  • Bacterial infections (e.g. Chlamydia, Rickettsia, Mycoplasma)
  • Acne
  • Prophylaxis of asymptomatic meningococcal carrier state (not recommended)

Dosage

Adults: For adult patients, the typical dosage of oxytetracycline for susceptible infections is 100 mg twice daily for 5 days. For other conditions, such as acne, the dosage may be 500 mg twice daily, usually for a duration of 6 to 12 weeks, with the possibility of repeating the course intermittently.

Mechanism of action

Oxytetracycline exerts its antibacterial effects by binding to the 30S ribosomal subunit of bacteria, inhibiting the binding of aminoacyl-tRNA to the mRNA-ribosome complex. This action prevents the synthesis of proteins essential for bacterial growth and replication, leading to the bacteriostatic effect of the drug.

Pharmacodynamics

The pharmacodynamics of oxytetracycline involve its ability to inhibit bacterial protein synthesis, which is critical for the growth and reproduction of bacteria. The drug demonstrates a broad spectrum of activity against both Gram-positive and Gram-negative organisms, as well as some atypical pathogens. Its effectiveness can be influenced by the presence of tetracycline resistance mechanisms in certain bacterial strains.

Pharmacokinetics

Oxytetracycline is well absorbed from the gastrointestinal tract, with peak plasma concentrations occurring approximately 1-2 hours after oral administration. It has a relatively long half-life of about 8-10 hours, allowing for twice-daily dosing. The drug is widely distributed in body tissues and fluids, including the liver, kidneys, and lungs, but is less effective in central nervous system infections due to limited penetration. It is primarily excreted via urine, and dosage adjustments may be necessary in patients with renal impairment.

Contra-indications

  • Children under 12 years due to deposition in growing bone and teeth, causing staining and occasionally dental hypoplasia

Adverse effects

  • Gastrointestinal disturbances
  • Photosensitivity
  • Dental discoloration
  • Hepatotoxicity
  • Renal impairment
  • Skin reactions including rash and urticaria
  • Ataxia
  • Hearing impairment
  • Colitis
  • Systemic lupus erythematosus exacerbation

Interactions

  • Antacids and supplements containing calcium, magnesium, or iron may reduce absorption
  • Oral contraceptives may be less effective
  • Other tetracyclines
  • Warfarin (may increase anticoagulant effect)

Precautions

  • Use with caution in patients with renal impairment
  • Monitor for hepatic toxicity in long-term use
  • Patients should be advised to avoid excessive sunlight exposure
  • Discontinue if systemic lupus erythematosus develops or worsens

Pregnancy

Oxytetracycline is contraindicated during pregnancy due to potential harm to fetal development, particularly affecting bone and dental health.

Breast-feeding

Use with caution; oxytetracycline is excreted in breast milk and may affect the infant's dental health.

Storage

Store in a cool, dry place away from direct sunlight. Keep out of reach of children.

Formulations

  • Oxytetracycline 250 mg tablets
  • Oxytetracycline oral suspension
  • Oxytetracycline oral solution
BNF 85 (British National Formulary) p.646 BNF for Children 2019-2020 p.389 PubChem / pathway

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: Streptomycin

BNF-referenced

Streptomycin is an aminoglycoside antibiotic that exhibits bactericidal activity against a variety of gram-negative and some gram-positive bacteria. It is primarily used in the treatment of tuberculosis, particularly strains resistant to other treatments, and is also effective against specific infections caused by Yersinia pestis and Brucella species. Due to its potential for toxicity, including nephrotoxicity and ototoxicity, careful monitoring during therapy is essential.

Indications

  • Tuberculosis, resistant to other treatment
  • Brucellosis (as an adjunct to doxycycline)
  • Severe gram-negative infections (specific cases)

Dosage

Adults: For tuberculosis: 15 mg/kg daily (maximum 1 g per dose), reduce in those under 50 kg and over 40 years. For other infections: 3 mg/kg daily in 3 divided doses, increased if necessary up

Mechanism of action

Streptomycin enters bacterial cells through a three-phase process. Initially, it binds electrostatically to negatively charged components of bacterial cell membranes, increasing permeability and allowing entry. This is followed by energy-dependent transport into the cytoplasm where it binds to the 30S ribosomal subunit, causing mistranslation of proteins and disrupting membrane integrity. The resultant damage leads to concentration-dependent bactericidal effects, including immediate and delayed actions due to impaired protein synthesis.

Pharmacodynamics

Streptomycin has a narrow spectrum of activity, effective against susceptible strains of Yersinia pestis, Francisella tularensis, Brucella, and certain strains of gram-negative bacilli and gram-positive cocci. Resistance has reduced its effectiveness against many pathogens, and it is not effective against Pseudomonas aeruginosa. The drug's therapeutic index is narrow, necessitating close monitoring for toxic effects, particularly nephrotoxicity and ototoxicity.

Pharmacokinetics

Streptomycin is administered parenterally due to poor oral absorption. After intramuscular injection, it achieves peak plasma concentrations within 1-2 hours. It is distributed widely in body tissues and fluids, but does not penetrate well into the central nervous system. The drug is primarily eliminated unchanged by the kidneys, necessitating dosage adjustments in renal impairment. The half-life is approximately 2-3 hours in individuals with normal renal function.

Contra-indications

  • Hypersensitivity to streptomycin or other aminoglycosides
  • Myasthenia gravis (due to risk of neuromuscular blockade)
  • Pregnancy (especially in the second and third trimesters due to risk of auditory or vestibular nerve damage)

Adverse effects

  • Nephrotoxicity
  • Ototoxicity
  • Nausea
  • Vomiting
  • Diarrhea
  • Electrolyte imbalance
  • Blood disorders
  • Confusion
  • Paraesthesia
  • Drowsiness
  • Respiratory disorders
  • Hearing loss
  • Vestibular dysfunction

Interactions

  • Other nephrotoxic drugs (e.g., vancomycin, furosemide)
  • Neuromuscular blocking agents
  • Other ototoxic agents

Precautions

  • Caution in renal impairment due to increased risk of nephrotoxicity and ototoxicity
  • Monitor renal function and auditory function before and during treatment
  • Use with caution in patients with existing hearing loss

Pregnancy

There is a risk of auditory or vestibular nerve damage in the infant when aminoglycosides, including streptomycin, are used during the second and third trimesters of pregnancy.

Breast-feeding

Streptomycin is excreted in breast milk; caution is advised when administering to nursing mothers.

Storage

Store below 25°C, protect from light, and keep out of reach of children.

Formulations

  • Streptomycin sulfate injection (various concentrations)
  • Streptomycin for inhalation (nebulized form)
  • Streptomycin oral solution
BNF 85 (British National Formulary) p.589 BNF for Children 2019-2020 p.345 PubChem / pathway

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: Erythromycin

BNF-referenced

Erythromycin is a macrolide antibiotic effective against a range of bacterial infections. It works primarily by inhibiting protein synthesis in susceptible bacteria, making it a valuable choice for patients with penicillin hypersensitivity. Erythromycin is commonly used in treating respiratory tract infections, skin infections, and various other bacterial infections, including those caused by organisms like Propionibacterium acnes.

Indications

  • Bacterial infections
  • Acute otitis media
  • Community-acquired pneumonia
  • Skin and soft tissue infections
  • Campylobacter enteritis
  • Pertussis
  • Syphilis (early stage)
  • Chlamydia infections
  • Impetigo
  • Secondary bacterial infection of eczema

Dosage

Children: Child 1–23 months: 125 mg 4 times a day. Child 2–7 years: 250 mg 4 times a

Adults: 500 mg 4 times a day for 5 days, or alternatively 250–500 mg 4 times a day for 5–7 days.

Mechanism of action

Erythromycin exerts its antibacterial effect by binding to the 23S ribosomal RNA in the 50S subunit of bacterial ribosomes. This binding inhibits the transpeptidation and translocation steps of protein synthesis, effectively halting bacterial growth. The drug has a strong affinity for bacterial ribosomes, which contributes to its broad-spectrum activity against various pathogens.

Pharmacodynamics

Erythromycin acts as a bacteriostatic agent, preventing bacterial growth by inhibiting protein synthesis. It is effective against many strains of bacteria, although susceptibility testing is recommended due to increasing resistance. Notably, erythromycin does not impact nucleic acid synthesis and may lead to complications such as pseudomembranous colitis or hepatotoxicity in some patients.

Pharmacokinetics

Erythromycin is well-absorbed from the gastrointestinal tract, with bioavailability affected by food. It is widely distributed in body tissues, with higher concentrations in the lungs and liver. The drug undergoes hepatic metabolism and is primarily excreted in bile, with a small amount eliminated through urine. Erythromycin's half-life varies but generally ranges from 1.5 to 2 hours.

Contra-indications

  • Hypersensitivity to erythromycin or any component of the formulation
  • History of cholestatic jaundice or hepatic dysfunction associated with prior use of erythromycin

Adverse effects

  • Gastrointestinal disturbances (nausea, vomiting, diarrhea)
  • Cholestatic jaundice
  • Hepatotoxicity
  • Skin rashes
  • QT interval prolongation
  • Tinnitus
  • Hearing loss (reversible)
  • Pseudomembranous colitis

Interactions

  • Erythromycin may significantly increase the exposure to certain drugs such as antipsychotics, simvastatin, and triptans due to its effect on cytochrome P450 enzymes
  • Caution with concurrent use of drugs that prolong the QT interval
  • Moderate interaction with aminophylline (decreases exposure)

Precautions

  • Use with caution in patients with hepatic impairment or pre-existing liver disease
  • Monitor for signs of pseudomembranous colitis in patients with diarrhea following antibiotic use
  • Assess for potential drug interactions due to the impact on CYP450 metabolism

Pregnancy

Erythromycin crosses the placenta. It is generally considered safe for use during pregnancy, particularly for treating infections when no alternatives are available, but should be used with caution.

Breast-feeding

Erythromycin is excreted in breast milk. While generally considered safe, the infant should be monitored for potential side effects. Consult healthcare providers for specific recommendations.

Storage

Store in a cool, dry place away from direct sunlight. Keep out of reach of children. Check specific product information for any temperature requirements.

Formulations

  • Oral suspension (125 mg/5 ml)
  • Tablets (250 mg and 500 mg)
  • Injectable solution (various strengths for intravenous administration)
BNF 85 (British National Formulary) p.614 BNF for Children 2019-2020 p.363 PubChem / pathway

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: Ascorbicacid

BNF-referenced

Ascorbic acid, also known as Vitamin C, is a water-soluble vitamin essential for various bodily functions, including the synthesis of collagen, neurotransmitters, and the immune response. It acts as an antioxidant, protecting cells from damage by free radicals.

Indications

  • Vitamin C deficiency
  • Scurvy
  • Adjunct therapy in iron overload conditions

Dosage

Children: Child 1 month–3 years: 125–250 mg daily in 1–2 divided doses; Child 4–11 years: 250–500 mg daily in 1–2 divided doses; Child 12–17 years: 0.5–1 g daily in 1–2 divided doses.

Adults: 500 mg daily, taken in 1-2 divided doses, depending on the clinical condition and dietary needs.

Mechanism of action

Ascorbic acid functions primarily as a reducing agent, facilitating enzymatic reactions in the body, including the hydroxylation of proline and lysine in collagen synthesis. It also plays a role in the absorption of iron from the gastrointestinal tract and enhances the immune response.

Pharmacodynamics

Ascorbic acid is crucial for the maintenance of connective tissue and is involved in the metabolism of several amino acids. Its antioxidant properties help to mitigate oxidative stress and may play a role in reducing the risk of chronic diseases.

Pharmacokinetics

Ascorbic acid is absorbed in the intestines and is widely distributed throughout the body. The renal clearance of ascorbic acid is dose-dependent, with higher doses leading to increased excretion. The half-life varies but is generally around 15 to 30 minutes in healthy individuals, with tissue saturation levels influencing its retention.

Contra-indications

  • Hypercalcaemia
  • Hyperoxaluria
  • Patients with cardiac dysfunction

Adverse effects

  • Abdominal pain
  • Headache
  • Nausea
  • Vomiting
  • Diarrhoea
  • Constipation
  • Weight loss
  • Polyuria
  • Sweating
  • Thirst
  • Vertigo

Interactions

  • Increases risk of cardiovascular adverse effects with iron chelators
  • Increases risk of cardiovascular adverse effects with deferiprone
  • Increases risk of cardiovascular adverse effects with desferrioxamine

Precautions

  • Use with caution in patients with iron overload
  • Monitor for symptoms of overdose

Pregnancy

High doses teratogenic in animals but therapeutic doses unlikely to be harmful.

Storage

Store in a cool, dry place away from direct sunlight.

Formulations

  • Ascorbic acid 50 mg tablets
  • Ascorbic acid 100 mg tablets
  • Ascorbic acid 200 mg tablets
  • Ascorbic acid 250 mg tablets
  • Ascorbic acid 500 mg capsules
BNF for Children 2019-2020 p.674 PubChem / pathway

AI-synthesized from BNF references - general information only, not a substitute for professional medical advice or the current BNF. Verify doses with a pharmacist.

Clinical monograph: cholecalciferol

BNF-referenced

Cholecalciferol, also known as vitamin D3, is a fat-soluble vitamin essential for maintaining normal serum calcium and phosphorus levels. It is naturally synthesized in the skin upon exposure to sunlight and can also be obtained from certain dietary sources. Cholecalciferol is crucial for bone health, as it aids in the absorption of calcium and phosphorus from the gut and supports bone mineralization. Deficiency in vitamin D can lead to conditions such as rickets in children and osteomalacia in adults, characterized by weakened bones and skeletal deformities.

Indications

  • Vitamin D deficiency
  • Rickets
  • Osteomalacia
  • Osteoporosis
  • Hypoparathyroidism

Dosage

Adults: The usual adult dose for vitamin D deficiency is 800 to 2000 IU daily, depending on the severity of deficiency and clinical condition. Higher doses may be used under medical supervision.

Mechanism of action

Cholecalciferol is converted to its active forms, 25-hydroxyvitamin D in the liver and 1,25-dihydroxyvitamin D in the kidneys. These metabolites enhance the intestinal absorption of calcium and phosphorus, increase serum calcium levels, and mobilize these minerals from bone. This process is regulated by parathyroid hormone, which influences calcium and phosphate metabolism, particularly in the kidneys.

Pharmacodynamics

The pharmacodynamics of cholecalciferol involve its conversion to active metabolites that play a significant role in calcium and phosphorus homeostasis. The metabolites facilitate intestinal absorption of these minerals, promote bone mineralization, and influence renal reabsorption. The onset of action occurs within 10 to 24 hours following administration, as metabolic activation is required for its biological effects.

Pharmacokinetics

Cholecalciferol is absorbed in the gastrointestinal tract, and its absorption is enhanced by the presence of dietary fats. It is transported in the bloodstream bound to vitamin D-binding protein. Once in the liver, it undergoes hydroxylation to form 25-hydroxyvitamin D, which is further converted in the kidneys to the active form, 1,25-dihydroxyvitamin D. The elimination half-life of cholecalciferol varies, typically spanning several days, and it is primarily excreted in bile and urine.

Adverse effects

  • Hypercalcemia
  • Hypercalciuria
  • Nausea
  • Vomiting
  • Constipation
  • Weakness
  • Fatigue

Interactions

  • May enhance the effects of thiazide diuretics, leading to increased risk of hypercalcemia
  • Anticonvulsants may increase metabolism of vitamin D, leading to reduced effectiveness
  • Cholestyramine may reduce absorption of vitamin D

Precautions

  • Monitor serum calcium levels in patients with renal impairment
  • Caution in patients with a history of hypercalcemia or hyperparathyroidism
  • Use with caution in patients taking other medications that affect calcium metabolism

Pregnancy

Cholecalciferol can be used during pregnancy if indicated, as vitamin D is essential for fetal bone development.

Breast-feeding

Cholecalciferol is excreted in breast milk, but is generally considered safe during breastfeeding.

Storage

Store in a cool, dry place, away from light. Keep out of reach of children.

Formulations

  • Capsules
  • Tablets
  • Liquid formulations

AI-synthesized from BNF references - general information only, not a substitute for professional medical advice or the current BNF. Verify doses with a pharmacist.

Clinical monograph: colistin

BNF-referenced

Colistin is a polymyxin antibiotic primarily used to treat infections caused by multidrug-resistant gram-negative bacteria. It acts as a surface-active agent that disrupts bacterial cell membranes, leading to cell death. Due to the emergence of antibiotic-resistant pathogens, colistin has regained importance in clinical settings, particularly for treating severe infections in patients with limited treatment options.

Indications

  • Treatment of multidrug-resistant gram-negative bacterial infections
  • Pneumonia caused by Pseudomonas aeruginosa
  • Complicated urinary tract infections
  • Infections in cystic fibrosis patients

Dosage

Children: Refer to the BNF for Children for appropriate paediatric dosing information.

Adults: Refer to the BNF for specific dosing guidelines, as doses may vary based on infection severity and renal function.

Mechanism of action

Colistin interacts with the bacterial cytoplasmic membrane, disrupting its integrity and altering permeability. It binds to the membrane through its cationic properties, leading to leakage of essential intracellular components, which results in bactericidal effects.

Pharmacodynamics

Colistin functions as a cationic polypeptide that disrupts bacterial cell membranes via a detergent-like mechanism. It is effective against certain multidrug-resistant organisms, including Pseudomonas aeruginosa and Acinetobacter baumannii. Its use has increased due to the rise of antibiotic-resistant infections, particularly in patients with cystic fibrosis and other serious infections.

Pharmacokinetics

Colistin is administered parenterally and has variable pharmacokinetics depending on the route of administration. It is not well-absorbed orally and is primarily eliminated by the kidneys. The pharmacokinetic profile may vary based on renal function and dosage regimen, necessitating careful monitoring in patients with renal impairment.

Adverse effects

  • Nephrotoxicity
  • Neurotoxicity
  • Allergic reactions
  • Rash
  • Fever

Interactions

  • Increased risk of nephrotoxicity with other nephrotoxic agents
  • Potential interactions with neuromuscular blockers

Precautions

  • Monitor renal function during treatment
  • Use with caution in patients with renal impairment
  • Consider monitoring neuromuscular function in patients receiving concomitant neuromuscular blockers

Pregnancy

Colistin should be used during pregnancy only if the potential benefit justifies the potential risk to the fetus.

Breast-feeding

It is not known whether colistin is excreted in human milk. Caution should be exercised when administering to a nursing mother.

Storage

Store in a cool, dry place, away from light. Keep out of reach of children.

Formulations

  • Colistin sulfate for injection
  • Colistin methanesulfonate for injection

AI-synthesized from BNF references - general information only, not a substitute for professional medical advice or the current BNF. Verify doses with a pharmacist.

Clinical monograph: retinol

BNF-referenced

Retinol, also known as Vitamin A, is a fat-soluble vitamin essential for various physiological functions including vision, epithelial differentiation, growth, and immune function. It is critical for the synthesis of rhodopsin, a photoreceptor protein in the retina that enables vision in low-light conditions. Retinol acts through nuclear retinoid receptors to influence gene expression and is vital for maintaining healthy skin and mucous membranes.

Indications

  • Vitamin A deficiency
  • Night blindness
  • Impaired wound healing
  • Epithelial disorders

Dosage

Children: Refer to BNF for Children for specific paediatric dosing information.

Adults: Refer to BNF for specific adult dosing information.

Mechanism of action

Retinol is converted in the retina to 11-cis-retinal, which is crucial for the conversion of light into neural signals necessary for vision. It binds to opsin in rhodopsin, facilitating the isomerization to all-trans-retinal upon exposure to light, thus triggering visual signaling. Additionally, retinol interacts with retinoic acid receptors (RARs) and retinoid-X receptors (RXRs) as transcription factors, modulating gene expression related to cellular differentiation and growth.

Pharmacodynamics

Vitamin A is effective in treating Vitamin A deficiency, which can lead to vision impairment and other health issues. It plays a critical role in various biological processes including vision, cellular differentiation, reproduction, and immune system function. Its deficiency can cause symptoms such as night blindness and impaired wound healing, while adequate levels support growth and development.

Pharmacokinetics

Retinol is absorbed from the gastrointestinal tract and stored in the liver, where it can be mobilized as needed. It undergoes metabolism primarily in the liver, where it is converted to retinal and retinoic acid, the active forms of Vitamin A. The elimination half-life varies, but retinol is generally excreted in urine and bile. The bioavailability can be affected by dietary fat intake.

Adverse effects

  • Nausea
  • Vomiting
  • Headache
  • Dizziness
  • Fatigue
  • Irritability
  • Dry skin
  • Peeling of skin
  • Itching
  • Blurred vision

Precautions

  • Use with caution in patients with liver disease due to potential hepatotoxicity.
  • Monitor for signs of vitamin A toxicity, especially in patients on high doses or prolonged therapy.
  • Caution in patients with a history of alcohol abuse, as it may exacerbate liver conditions.

Pregnancy

Retinol should be used with caution during pregnancy due to the risk of teratogenic effects. High doses of vitamin A can lead to fetal malformations.

Breast-feeding

Retinol is generally considered safe during breastfeeding, but excessive intake should be avoided to prevent potential adverse effects on the infant.

Storage

Store in a cool, dry place away from light. Keep out of reach of children.

Formulations

  • Capsules
  • Tablets
  • Oral solutions
  • Topical preparations

AI-synthesized from BNF references - general information only, not a substitute for professional medical advice or the current BNF. Verify doses with a pharmacist.

Clinical monograph: thiocyanate

BNF-referenced

Thiocyanate is an anion derived from thiocyanic acid, commonly found in various biological systems. It plays a role in sulfur metabolism and is involved in various biochemical pathways. Thiocyanate can be produced in the body through the metabolism of cyanide and is excreted primarily via the kidneys. Its presence in the body may reflect exposure to cyanogenic compounds or certain dietary sources, such as cruciferous vegetables.

Mechanism of action

Thiocyanate acts primarily by competing with iodide for uptake in the thyroid gland, thereby potentially inhibiting thyroid hormone synthesis. This can lead to a reduction in the production of thyroid hormones, affecting metabolic processes that are regulated by these hormones. Additionally, thiocyanate is involved in various metabolic pathways related to sulfur compounds, influencing overall redox status and metabolic homeostasis.

Pharmacodynamics

Thiocyanate has a notable effect on thyroid function due to its ability to inhibit iodide transport. This inhibition can result in decreased levels of thyroid hormones, which are crucial for regulating metabolism, growth, and development. The compound may also influence various metabolic pathways involving sulfur, interacting with enzymes and substrates related to sulfur metabolism.

Pharmacokinetics

Thiocyanate is absorbed through the gastrointestinal tract, and its distribution is influenced by factors such as protein binding and tissue uptake. The compound is primarily excreted through the kidneys, with renal clearance being a significant route of elimination. The half-life of thiocyanate can vary, but it is generally considered to be several days in the body, depending on individual metabolic rates and kidney function.

Pregnancy

Thiocyanate should be used during pregnancy only if the potential benefit justifies the potential risk to the fetus.

Breast-feeding

Thiocyanate is excreted in breast milk. Caution should be exercised when administering to nursing mothers.

Storage

Store in a tightly closed container at room temperature, away from heat and moisture.

AI-synthesized from BNF references - general information only, not a substitute for professional medical advice or the current BNF. Verify doses with a pharmacist.

Clinical monograph: tocopherol

BNF-referenced

Tocopherol, commonly known as vitamin E, is a fat-soluble antioxidant that plays a critical role in protecting cell membranes from oxidative stress. It is primarily found in various dietary sources, including nuts, seeds, and green leafy vegetables. Tocopherol acts by donating hydrogen atoms to free radicals, thereby neutralizing their harmful effects and preventing cellular damage.

Indications

  • Prevention of vitamin E deficiency
  • Antioxidant therapy
  • Support in conditions related to oxidative stress

Dosage

Children: Refer to BNF for Children for specific dosage guidelines.

Adults: Refer to BNF for specific dosage guidelines.

Mechanism of action

Tocopherol acts as a radical scavenger, primarily functioning as an antioxidant for lipid bilayers. It donates hydrogen atoms to free radicals, trapping them and preventing cellular damage. Its effectiveness is influenced by its location within the membrane and its interaction with cytosolic reductants like ascorbate. Tocopherol can trap multiple radicals, including alkyl and peroxy radicals.

Pharmacodynamics

The antioxidant properties of tocopherol lead to significant pharmacodynamic effects, including the inhibition of cell death through modulation of protein kinase C (PKC). Tocopherol also exhibits anti-inflammatory effects, which can be attributed to its influence on cytokines, prostaglandins, prostanoids, and thromboxanes. These interactions may contribute to its protective effects in various pathological conditions.

Pharmacokinetics

Tocopherol is absorbed in the intestines and its bioavailability can be influenced by dietary fat intake. It is transported in the plasma primarily bound to lipoproteins. Tocopherol is stored in adipose tissue and the liver, and its elimination occurs through bile and urine. The half-life of tocopherol can vary depending on the individual's nutritional status and other factors.

Pregnancy

Tocopherol is generally considered safe during pregnancy, but it is advisable to consult a healthcare provider before use.

Breast-feeding

Tocopherol is excreted in breast milk, and while it is considered safe, a healthcare provider should be consulted for specific recommendations.

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.

Molecular reference: Erythromycin

PubChem CID 12560

Molecular formula: C37H67NO13

Mechanism of action

In order to replicate, bacteria require a specific process of protein synthesis, enabled by ribosomal proteins. Erythromycin acts by inhibition of protein synthesis by binding to the 23S ribosomal RNA molecule in the 50S subunit of ribosomes in susceptible bacterial organisms. 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 erythromycin, for bacterial ribosomes, supports their broad‐spectrum antibacterial activities. Macrolide antibiotics are bacteriostatic agents that inhibit protein synthesis by binding reversibly to 50S ribosomal subunits of sensitive microorganisms, at or very near the site that binds chloramphenicol. Erythromycin does not inhibit peptide bond formation per se, but rather inhibits the translocation step wherein a newly synthesized peptidyl tRNA molecule moves from the acceptor site on the ribosome to the peptidyl donor site. Gram-positive bacteria accumulate about 100 times more erythromycin than do gram-negative bacteria. Cells are considerably more permeable to the un-ionized form of the drug, which probably explains the increased antimicrobial activity at alkaline pH. ... /Erythromycin/ inhibits the growth of susceptible organisms (principally Propionibacterium acnes) on the surface of the skin and reduces the concn of free fatty acids in sebum ... The reduction in free fatty acids in sebum may be an indirect result of the inhibition of lipase-producing organisms which convert triglycerides into free fatty acids or may be a direct result of interference with lipase production in these organisms. /In acne treatment regimens/ Although stromal-derived factor-1 (SDF-1) via its cognate receptor CXCR4 is assumed to play a critical role in migration of endothelial cells during new vessel formation after tissue injury, CXCR4 expression on endothelial cells is strictly regulated. Erythromycin (EM), a 14-membered ring macrolide, has an anti-inflammatory effect that may account for its clinical benefit in the treatment of chronic inflammatory diseases. However, the effects of EM on endothelial cells and especially their expression of CXCR4 have not been fully evaluated. In this study, we demonstrated that EM markedly induced CXCR4 surface expression on microvascular endothelial cells in vitro and lung capillary endothelial cells in vivo. This ability to induce CXCR4 surface expression on endothelial cells was restricted to 14-membered ring macrolides and was not observed in other antibiotics including a 16-membered ring macrolide, josamycin. Furthermore, this EM-induced expression of CXCR4 on endothelial cells was functionally significant as demonstrated by chemotaxis assays in vitro. These findings suggest that EM-induced CXCR4 surface expression on endothelial cells may promote migration of CXCR4-expressing endothelial cells into sites of tissue injury, which may be associated with the known anti-inflammatory activity of this macrolide.

Pharmacodynamics

Macrolides, such as erythromycin, stop bacterial growth by inhibiting protein synthesis and translation, treating bacterial infections. Erythromycin does not exert effects on nucleic acid synthesis. This drug has been shown to be active against most strains of the following microorganisms, effectively treating both in vitro and clinical infections. Despite this, it is important to perform bacterial susceptibility testing before administering this antibiotic, as resistance is a common issue that may affect treatment. **A note on antimicrobial resistance, pseudomembranous colitis, and hepatotoxicity** Many strains of Haemophilus influenzae are resistant to erythromycin alone but are found to be susceptible to erythromycin and sulfonamides used in combination. It is important to note that Staphylococci that are resistant to erythromycin may emerge during erythromycin and/or sulfonamide therapy. Pseudomembranous colitis has been reported with most antibacterial agents, including erythromycin, and may range in severity from mild to life-threatening. Therefore, the physician should consider this diagnosis in patients with diarrhea after the administration of antibacterial agents. Erythromycin can cause hepatic dysfunction, cholestatic jaundice, and abnormal liver transaminases, particularly when erythromycin estolate is administered.

Source: PubChem (NCBI) · pathways from PathBank, Reactome, WikiPathways & PharmGKB.

Molecular reference: Oxytetracycline

PubChem CID 54675779

Molecular formula: C22H24N2O9

Source: PubChem (NCBI) · pathways from PathBank, Reactome, WikiPathways & PharmGKB.

Molecular reference: Streptomycin

PubChem CID 19649

Molecular formula: C21H39N7O12

Mechanism of action

There are 3 key phases of aminoglycoside entry into cells. The first “ionic binding phase” occurs when polycationic aminoglycosides bind electrostatically to negatively charged components of bacterial cell membranes including with lipopolysaccharides and phospholipids within the outer membrane of Gram-negative bacteria and to teichoic acids and phospholipids within the cell membrane of Gram-positive bacteria. This binding results in displacement of divalent cations and increased membrane permeability, allowing for aminoglycoside entry. The second “energy-dependent phase I” of aminoglycoside entry into the cytoplasm relies on the proton-motive force and allows a limited amount of aminoglycoside access to its primary intracellular target - the bacterial 30S ribosome. This ultimately results in the mistranslation of proteins and disruption of the cytoplasmic membrane. Finally, in the “energy-dependent phase II” stage, concentration-dependent bacterial killing is observed. Aminoglycoside rapidly accumulates in the cell due to the damaged cytoplasmic membrane, and protein mistranslation and synthesis inhibition is amplified. Hence, aminoglycosides have both immediate bactericidal effects through membrane disruption and delayed bactericidal effects through impaired protein synthesis; observed experimental data and mathematical modeling support this two-mechanism model. Inhibition of protein synthesis is a key component of aminoglycoside efficacy. Structural and cell biological studies suggest that aminoglycosides bind to the 16S rRNA in helix 44 (h44), near the A site of the 30S ribosomal subunit, altering interactions between h44 and h45. This binding also displaces two important residues, A1492 and A1493, from h44, mimicking normal conformational changes that occur with successful codon-anticodon pairing in the A site. Overall, aminoglycoside binding has several negative effects including inhibition of translation, initiation, elongation, and ribosome recycling. Recent evidence suggests that the latter effect is due to a cryptic second binding site situated in h69 of the 23S rRNA of the 50S ribosomal subunit. Also, by stabilizing a conformation that mimics correct codon-anticodon pairing, aminoglycosides promote error-prone translation. Mistranslated proteins can incorporate into the cell membrane, inducing the damage discussed above. The primary intracellular site of action of the aminoglycosides is the 30 S ribosomal subunit, which consists of 21 proteins and a single 16 S molecule of RNA. at least three of these proteins and perhaps the 16 S ribosomal RNA as well contribute to the streptomycin binding site, and alterations of these molecules markedly affect the binding and subsequent action of streptomycin. For example, a single amino acid substitution of asparagine for lysine at position 42 of one ribosomal protein (S12) prevents binding of the drug; the resultant mutant is totally resistant to streptomycin. Another mutant, in which glutamine is the amino acid at this position, is dependent on streptomycin. During protein synthesis, the ribosome selects aminoacyl-transfer RNAs with anticodons matching the messenger RNA codon present in the A site of the small ribosomal subunit. The aminoglycoside antibiotic streptomycin disrupts decoding by binding close to the site of codon recognition. Here we use X-ray crystallography to define the impact of streptomycin on the decoding site of the Thermus thermophilus 30S ribosomal subunit in complexes with cognate or near-cognate anticodon stem-loop analogues and messenger RNA. Our crystal structures display a significant local distortion of 16S ribosomal RNA induced by streptomycin, including the crucial bases A1492 and A1493 that participate directly in codon recognition. Consistent with kinetic data, we observe that streptomycin stabilizes the near-cognate anticodon stem-loop analogue complex, while destabilizing the cognate anticodon stem-loop analogue complex. These data reveal ho

Pharmacodynamics

Although streptomycin originally had broad gram-negative and gram-positive coverage, its spectrum of activity has been significantly narrowed due to antibiotic resistance. Streptomycins current spectrum of activity includes susceptible strains of Yersinia pestis, Francisella tularensis, Brucella, Calymmatobacterium granulomatis, H. ducreyi, H. influenza, K. pneumoniae pneumonia, E.coli, Proteus, A. aerogenes, K. pneumoniae, Enterococcus faecalis, Streptococcus viridans, Enterococcus faecalis, and Gram-negative bacillary bacteremia. Streptomycin is not reliably active against pseudomonas aeruginosa. Similar to other aminoglycosides, streptomycin is considered to have a narrow therapeutic index. Characteristic toxicities of streptomycin include nephrotoxicity and ototoxicity. Patients should be carefully monitored for early signs of hearing loss and vestibular dysfunction in order to prevent permanent damage to sensorineural cells. Neuromuscular blockade has also been rarely reported.

Source: PubChem (NCBI) · pathways from PathBank, Reactome, WikiPathways & PharmGKB.

Molecular reference: cholecalciferol

PubChem CID 5280795

Molecular formula: C27H44O

Mechanism of action

Most individuals naturally generate adequate amounts of vitamin D through ordinary dietary intake of vitamin D (in some foods like eggs, fish, and cheese) and natural photochemical conversion of the vitamin D3 precursor 7-dehydrocholesterol in the skin via exposure to sunlight. Conversely, vitamin D deficiency can often occur from a combination of insufficient exposure to sunlight, inadequate dietary intake of vitamin D, genetic defects with endogenous vitamin D receptor, or even severe liver or kidney disease. Such deficiency is known for resulting in conditions like rickets or osteomalacia, all of which reflect inadequate mineralization of bone, enhanced compensatory skeletal demineralization, resultant decreased calcium ion blood concentrations, and increases in the production and secretion of parathyroid hormone. Increases in parathyroid hormone stimulate the mobilization of skeletal calcium and the renal excretion of phosphorus. This enhanced mobilization of skeletal calcium leads towards porotic bone conditions. Ordinarily, while vitamin D3 is made naturally via photochemical processes in the skin, both itself and vitamin D2 can be found in various food and pharmaceutical sources as dietary supplements. The principal biological function of vitamin D is the maintenance of normal levels of serum calcium and phosphorus in the bloodstream by enhancing the efficacy of the small intestine to absorb these minerals from the diet. At the liver, vitamin D3 or D2 is hydroxylated to 25-hydroxyvitamin D and then finally to the primary active metabolite 1,25-dihydroxyvitamin D in the kidney via further hydroxylation. This final metabolite binds to endogenous vitamin d receptors, which results in a variety of regulatory roles - including maintaining calcium balance, the regulation of parathyroid hormone, the promotion of the renal reabsorption of calcium, increased intestinal absorption of calcium and phosphorus, and increased calcium and phosphorus mobilization of calcium and phosphorus from bone to plasma to maintain balanced levels of each in bone and the plasma. In particular, calcitriol interacts with vitamin D receptors in the small intestine to enhance the efficiency of intestinal calcium and phosphorous absorption from about 10-15% to 30-40% and 60% increased to 80%, respectively. Furthermore, calcitriol binds with vitamin D receptors in osteoblasts to stimulate a receptor activator of nuclear factor kB ligand (or RANKL) which subsequently interacts with receptor activator of nuclear factor kB (NFkB) on immature preosteoclasts, causing them to become mature bone-resorbing osteoclasts. Such mature osteoclasts ultimately function in removing calcium and phosphorus from bone to maintain blood calcium and phosphorus levels. Moreover, calcitriol also stimulates calcium reabsorption from the glomerular filtrate in the kidneys. Additionally, it is believed that when calcitriol binds with nuclear vitamin D receptors, that this bound complex itself binds to retinoic acid X receptor (RXR) to generate a heterodimeric complex that consequently binds to specific nucleotide sequences in the DNA called vitamin D response elements. When bound, various transcription factors attach to this complex, resulting in either up or down-regulation of the associated gene's activity. It is thought that there may be as much as 200 to 2000 genes that possess vitamin D response elements or that are influenced indirectly to control a multitude of genes across the genome. It is in this way that cholecalciferol is believed to function in regulating gene transcription associated with cancer risk, autoimmune disorders, and cardiovascular disease linked to vitamin D deficiency. In fact, there has been some research to suggest calcitriol may also be able to prevent malignancies by inducing cellular maturation and inducing apoptosis and inhibiting angiogenesis, exhibit anti-inflammatory effects by inhibiting foam cell formation and promoting angiogenesis in en

Pharmacodynamics

The in vivo synthesis of the predominant two biologically active metabolites of vitamin D occurs in two steps. The first hydroxylation of vitamin D3 cholecalciferol (or D2) occurs in the liver to yield 25-hydroxyvitamin D while the second hydroxylation happens in the kidneys to give 1, 25-dihydroxyvitamin D. These vitamin D metabolites subsequently facilitate the active absorption of calcium and phosphorus in the small intestine, serving to increase serum calcium and phosphate levels sufficiently to allow bone mineralization. Conversely, these vitamin D metabolites also assist in mobilizing calcium and phosphate from bone and likely increase the reabsorption of calcium and perhaps also of phosphate via the renal tubules. There exists a period of 10 to 24 hours between the administration of cholecalciferol and the initiation of its action in the body due to the necessity of synthesis of the active vitamin D metabolites in the liver and kidneys. It is parathyroid hormone that is responsible for the regulation of such metabolism at the level of the kidneys.

Source: PubChem (NCBI) · pathways from PathBank, Reactome, WikiPathways & PharmGKB.

Molecular reference: colistin

PubChem CID 5311054

Molecular formula: C52H98N16O13

Mechanism of action

Colistin is a surface active agent which penetrates into and disrupts the bacterial cell membrane. Colistin is polycationic and has both hydrophobic and lipophilic moieties. It interacts with the bacterial cytoplasmic membrane, changing its permeability. This effect is bactericidal. There is also evidence that polymyxins enter the cell and precipitate cytoplasmic components, primarily ribosomes. POLYMYXIN B IS SURFACE-ACTIVE AGENT... CONTAINING LIPOPHILIC & LIPOPHOBIC GROUPS SEPARATED WITHIN MOLECULE. /POLYMYXIN B/ PERMEABILITY OF THE BACTERIAL MEMBRANE CHANGES IMMEDIATELY ON CONTACT WITH DRUG. SENSITIVITY TO POLYMYXIN B APPARENTLY IS RELATED TO THE PHOSPHOLIPID CONTENT OF THE CELL WALL-MEMBRANE COMPLEX. /POLYMYXIN B/ Colistin acts like a cationic detergent and binds to and damages the bacterial cytoplasmic membrane of susceptible bacteria. Damage to the bacterial cytoplasmic membrane alters the osmotic barrier of the membrane and causes leakage of essential intracellular metabolites and nucleosides.

Pharmacodynamics

Colistin is a polymyxin antibiotic agent. Polymyxins are cationic polypeptides that disrupt the bacterial cell membrane through a detergentlike mechanism. With the development of less toxic agents, such as extended-spectrum penicillins and cephalosporins, parenteral polymyxin use was largely abandoned, except for the treatment of multidrug-resistant pulmonary infections in patients with cystic fibrosis. More recently, however, the emergence of multidrug-resistant gram-negative bacteria, such as <i>Pseudomonas aeruginosa</i> and <i>Acinetobacter baumannii</i>, and the lack of new antimicrobial agents have led to the revived use of the polymyxins.

Source: PubChem (NCBI) · pathways from PathBank, Reactome, WikiPathways & PharmGKB.

Molecular reference: retinol

PubChem CID 445354

Molecular formula: C20H30O

Mechanism of action

Vision:Vitamin A (all-<i>trans</i> retinol) is converted in the retina to the 11-<i>cis</i>-isomer of retinaldehyde or 11-<i>cis</i>-retinal. 11-<i>cis</i>-retinal functions in the retina in the transduction of light into the neural signals necessary for vision. 11-<i>cis</i>-retinal, while attached to opsin in rhodopsin is isomerized to all-<i>trans</i>-retinal by light. This is the event that triggers the nerve impulse to the brain which allows for the perception of light. All-<i>trans</i>-retinal is then released from opsin and reduced to all-<i>trans</i>-retinol. All-<i>trans</i>-retinol is isomerized to 11-<i>cis</i>-retinol in the dark, and then oxidized to 11-<i>cis</i>-retinal. 11-<i>cis</i>-retinal recombines with opsin to re-form rhodopsin. Night blindness or defective vision at low illumination results from a failure to re-synthesize 11-<i>cis</i> retinal rapidly. Epithelial differentiation: The role of Vitamin A in epithelial differentiation, as well as in other physiological processes, involves the binding of Vitamin A to two families of nuclear retinoid receptors (retinoic acid receptors, RARs; and retinoid-X receptors, RXRs). These receptors function as ligand-activated transcription factors that modulate gene transcription. When there is not enough Vitamin A to bind these receptors, natural cell differentiation and growth are interrupted. Topical vitamin A can reverse the impairment of wound healing seen in patients receiving corticosteroids, perhaps by restoring the normal inflammatory reaction in the wound. The possibility has been suggested that systemic vitamin A could inhibit the anti-inflammatory effect of systemic corticosteroids. Retinol arrested proliferation of cultured neuroblastoma cells at concentrations of 50 um. A correlation existed between inhibition of growth and inhibition of ornithine decarboxylase in both neuroblastoma cells and glioma cells with retinol. In rats exptl-hypervitaminosis A has been shown ... to produce severe damage of the retina, mainly in the pigment epithelium according to electron microscopy. Alcohol dehydrogenase activity was shown to disappear in the pigment epithelium and visual cells ... . /The authors/ have shown that in an experimental cell culture system consisting of carcinogen-treated 10T1/2 cells, both retinoids and all dietary carotenoids examined can reversibly inhibit neoplastic transformation in the post-initiation phase of carcinogenesis. This activity strongly correlates with their ability to increase gap junctional intercellular communication by up-regulating the expression of the gene CX43 (connexin43). Connexins comprise the structural unit of gap junctions, organelles which allow direct transfer of signals, nutrients and waste products between contacting cells. CX43 is the most widely expressed member of the gap junction family of genes, and we have demonstrated that its expression is strongly down-regulated in human cancers and in several premalignant conditions. When several human tumour cell lines were genetically engineered to conditionally express CX43 under the influence of a tetracycline promoter, their neoplastic phenotype was strongly attenuated. Specifically, induced cells were inhibited from growing in an anchorage-independent manner and, additionally, growth as xenografts in immunocompromised animals was also strongly attenuated. Growth inhibition in suspension was associated both with increased G(1) cell-cycle arrest and with increased apoptosis. /The authors/ propose a model whereby junctional communication allows the transfer of growth inhibitory signals from normal to neoplastic cells and that retinoids and carotenoids, by increasing signal transfer, act to prevent cancer.

Pharmacodynamics

Vitamin A is effective for the treatment of Vitamin A deficiency. Vitamin A refers to a group of fat-soluble substances that are structurally related to and possess the biological activity of the parent substance of the group called all-<i>trans</i> retinol or retinol. Vitamin A plays vital roles in vision, epithelial differentiation, growth, reproduction, pattern formation during embryogenesis, bone development, hematopoiesis and brain development. It is also important for the maintenance of the proper functioning of the immune system.

Source: PubChem (NCBI) · pathways from PathBank, Reactome, WikiPathways & PharmGKB.

Molecular reference: tocopherol

PubChem CID 14986

Molecular formula: C28H48O2

Mechanism of action

Tocopherol acts as a radical scavenger. It mainly acts as an antioxidant for lipid bilayers. Tocopherol's functions depend on the H-atom donating ability, location, and movement within the membrane, as well as the efficiency in the radical recycling by some cytosolic reductants such as ascorbate. Tocopherol actions are related to the trap of radicals, and it has been shown that even in the absence of substituents in the ortho-positions, tocopherol can trap more than two radicals. The type of radicals available for tocopherol are alkyl and peroxy.

Pharmacodynamics

The antioxidant effects of tocopherol can be translated into different changes at the pharmacodynamic level. In vitro studies have shown that this antioxidant activity can produce modification in protein kinase C (PKC) which will later be translated into an inhibition of cell death. Some other derivate effects are the anti-inflammatory properties of tocopherol which can be related to the modulation of cytokines or prostaglandins, prostanoids and thromboxanes.

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.