dexamethasone reference
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(dexamethasone · DailyMed)
Registered Kenya · PPB

GENDEX EYE/EAR DROPS

GENTAMYCIN AND DEXAMETHASONE SODIUM PHOSPHATE

8903 GENTAMYCIN 0.30%W/V AND DEXAMETHASONE SODIUM PHOSPHATE 0.1%W/V alimentary tract and metabolism INN generic

What it does

Dexamethasone is a corticosteroid used to treat various conditions by reducing inflammation and suppressing the immune system.

Commonly used for: inflammation, allergic reactions, certain cancers, autoimmune diseases (e.g., lupus) …

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

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Registration & product details

Registration no.
8903
Registration date
-
Expiry date
-
Status
Registered
Active ingredient
GENTAMYCIN AND DEXAMETHASONE SODIUM PHOSPHATE
Strength
-
Pack size
-
Therapeutic class
-
ATC class (WHO)
A01AC - Corticosteroids for local oral treatment
RxNorm RxCUI
3264
Manufacturer / MAH
Ray Pharmaceuticals
Applicant / LTR
-
Country of origin
FOREIGN
Manufacturer location
Kyangombe, Old Mombasa Rd, Nairobi, Kenya

Source: Pharmacy and Poisons Board · fetched 2026-01-28 21:51:07 · updated 2026-03-23 04:36:13

Drug Interactions

48
Check interactions

Pharmacodynamic Warnings

Dexamethasone appears in TABLE 17: Drugs that reduce serum potassium

Severe (2)

Avapritinib - decreases exposure

Dexamethasoneispredictedtodecreasetheexposureto avapritinib.Avoid.rTheoretical

Severe Theoretical

Mifamurtide - decreases efficacy

Corticosteroidsarepredictedtodecreasetheefficacyof mifamurtide.Avoid.rTheoretical

Severe Theoretical

Moderate (24)

Corticosteroids - increases exposure

Dronedarone is predicted to increase the exposure to corticosteroids (methylprednisolone). Monitor and adjust dose.

Moderate Study

Corticosteroids - increases concentration

Miconazole is predicted to increase the concentration of corticosteroids (methylprednisolone). Monitor and adjust dose.

Moderate Theoretical

Corticosteroids - increases exposure

Antifungals, azoles (fluconazole, isavuconazole, posaconazole) are predicted to increase the exposure to corticosteroids (methylprednisolone). Monitor and adjust dose.

Moderate Study

Corticosteroids - decreases exposure

Cenobamate is predicted to decrease the exposure to corticosteroids (fluticasone). Adjust dose.

Moderate Theoretical

Corticosteroids - decreases efficacy

Mifepristone is predicted to decrease the efficacy of corticosteroids. Use with caution and adjust dose.

Moderate Theoretical

Unknown (22)

Aspirin - decreases concentration

Corticosteroids are predicted to decrease the concentration of aspirin (high-dose) and aspirin (high-dose) increases the risk of gastrointestinal bleeding when given with corticosteroids.

Unknown Study

Caspofungin - decreases concentration

Dexamethasone is predicted to decrease the concentration of caspofungin. Adjust caspofungin dose, p. 654.

Unknown Theoretical

Choline Salicylate - decreases concentration

Corticosteroids are predicted to decrease the concentration of cholinesalicylate. Ciclesonide → see corticosteroids Ciclosporin → see TABLE 2 p. 1517 (nephrotoxicity), TABLE 16 p. 1521 (increased seru

Unknown Study

Corticosteroids - increases exposure

Cobicistat is predicted to increase the exposure to corticosteroids (beclometasone) (risk with beclometasone is likely to be lower than with other corticosteroids).

Unknown Theoretical

Corticosteroids - increases risk of gastrointestinal perforation

Erlotinib is predicted to increase the risk of gastrointestinal perforation when given with corticosteroids.

Unknown Theoretical

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

Disclaimer: This information is sourced from Pharmacy and Poisons Board (Kenya). Always consult a qualified healthcare professional before using any medication.

About dexamethasone

Dexamethasone is a corticosteroid used to treat various conditions by reducing inflammation and suppressing the immune system.

What it treats

  • inflammation
  • allergic reactions
  • certain cancers
  • autoimmune diseases (e.g., lupus)
  • skin conditions (e.g., eczema)

How it works

It works by mimicking the effects of hormones produced by the adrenal glands, helping to decrease inflammation and control the immune response.

Who it's for

It is prescribed for adults and children with specific health issues that require inflammation control or immune suppression.

Drug class

Corticosteroids

Cautions

  • • Be cautious if taking medications that lower potassium levels.

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

About gentamycin

Gentamycin is an antibiotic used to treat serious infections caused by bacteria.

What it treats

  • bacterial infections
  • severe infections
  • infections in the lungs (pneumonia)
  • infections in the bloodstream (sepsis)

How it works

Gentamycin works by stopping the growth of bacteria, helping your body to fight off the infection.

Who it's for

It is prescribed for adults and children with severe bacterial infections.

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

Clinical monograph: Dexamethasone

BNF-referenced

Dexamethasone is a synthetic corticosteroid with potent anti-inflammatory and immunosuppressive properties. It has predominantly glucocorticoid activity and is used to treat various inflammatory and allergic conditions. Its mechanisms include decreasing vasodilation and permeability of capillaries, inhibiting leukocyte migration, and altering gene expression related to inflammation. Dexamethasone is administered orally or via injection, and it is important to manage dosing carefully to avoid potential side effects.

Indications

  • Suppression of inflammatory and allergic disorders
  • Adjunctive treatment of suspected bacterial meningitis
  • Reduction of peri- and neonatal morbidity and mortality in preterm birth
  • Management of severe croup
  • Congenital adrenal hyperplasia
  • COVID-19 requiring supplemental oxygen

Dosage

Adults: For adults, the typical dosing varies by condition

Mechanism of action

Dexamethasone binds to the glucocorticoid receptor, leading to changes in gene expression that result in decreased inflammatory and immune responses. It inhibits phospholipase A2, reducing the formation of pro-inflammatory mediators, and promotes anti-inflammatory genes like interleukin-10. The drug also inhibits neutrophil apoptosis and demargination, contributing to its anti-inflammatory effects. Its glucocorticoid activity results in significant immunosuppression at higher doses.

Pharmacodynamics

Dexamethasone's pharmacodynamics involve the modulation of inflammatory responses through glucocorticoid receptor binding. It inhibits pro-inflammatory signals while promoting anti-inflammatory signals. The duration of action varies based on the administration route, and careful dosing is required to avoid suppression of the hypothalamic-pituitary-adrenal axis and increased infection risk. The drug has a wide therapeutic window, allowing for higher doses than the body's natural production.

Pharmacokinetics

Dexamethasone is well-absorbed after oral administration, with peak plasma concentrations typically occurring within 1-2 hours. It is extensively metabolized in the liver, primarily through hepatic cytochrome P450 enzymes. The elimination half-life ranges from 3 to 4 hours, although it may be longer in certain populations. The drug is excreted mainly in urine as metabolites. The pharmacokinetics can be affected by factors such as liver function and co-administered medications.

Contra-indications

  • Systemic fungal infections
  • Hypersensitivity to dexamethasone or any component of the formulation
  • Active tuberculosis
  • Cautious use in patients with peptic ulcer disease

Adverse effects

  • Oedema
  • Hypotension
  • Increased susceptibility to infections
  • Mood changes
  • Cushing's syndrome
  • Hyperglycemia
  • Gastrointestinal perforation
  • Osteoporosis
  • Adrenal suppression

Interactions

  • Severe interaction with avapritinib (decreases exposure)
  • Moderate interaction with mitotane (decreases exposure)
  • Moderate interaction with monoclonal antibodies (decreases exposure)
  • Moderate interaction with tocilizumab (decreases exposure)
  • Moderate interaction with aprepitant (increases exposure)
  • Moderate interaction with netupitant (increases exposure)
  • Moderate interaction with rifampicin (decreases exposure)
  • Unknown interaction with cobicistat (increases exposure)
  • Unknown interaction with caspofungin (decreases concentration)
  • Unknown interaction with idelalisib (increases exposure)

Precautions

  • Use with caution in patients with a history of tuberculosis
  • Monitor for signs of infection due to immunosuppressive effects
  • Consider dose adjustments in hepatic impairment
  • Taper dosage to avoid withdrawal symptoms after prolonged use
  • Monitor blood glucose levels in diabetic patients

Pregnancy

Dexamethasone is classified as a pregnancy category C drug. It should only be used if the potential benefit justifies the potential risk to the fetus.

Breast-feeding

Dexamethasone is excreted in breast milk. Caution is advised when administering to breastfeeding women, and the risks versus benefits should be considered.

Storage

Store at room temperature (15-30 degrees Celsius), protect from light, and keep out of reach of children.

Formulations

  • Tablet (6 mg)
  • Solution for injection (3.3 mg/1 ml)
  • Dexamethasone sodium phosphate solution for injection (6.6 mg/2 ml)
BNF 85 (British National Formulary) p.772 BNF 85 (British National Formulary) p.1289 BNF 85 (British National Formulary) p.1296 BNF for Children 2019-2020 p.477 BNF for Children 2019-2020 p.714 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: gentamycin

BNF-referenced

Gentamicin is an aminoglycoside antibiotic used primarily to treat serious infections caused by Gram-negative bacteria. It is effective against a wide range of bacterial infections, particularly those caused by Pseudomonas aeruginosa and Enterobacteriaceae. Gentamicin is generally administered parenterally due to poor oral absorption, and it is known for its potential nephrotoxicity and ototoxicity, requiring careful monitoring during treatment.

Indications

  • Severe infections caused by Gram-negative bacteria
  • Urinary tract infections
  • Bacteremia
  • Sepsis
  • Pneumonia
  • Intra-abdominal infections
  • Skin and soft tissue infections

Dosage

Adults: The usual dosage for adults is 3 to 5 mg/kg/day divided into 3 doses, given intravenously or intramuscularly. Adjustments should be made based on renal function and severity of infection.

Mechanism of action

Gentamicin acts by binding to the bacterial 30S ribosomal subunit, leading to misreading of mRNA and subsequent production of nonfunctional or toxic peptides. This disrupts protein synthesis and leads to bacterial cell death. The drug enters bacterial cells in a three-phase process: first, ionic binding occurs with the cell membrane, increasing permeability. Second, energy-dependent transport allows the drug to access its intracellular target. Third, concentration-dependent killing is observed as gentamicin accumulates within the cell, amplifying its effects on protein synthesis and membrane integrity.

Pharmacodynamics

Gentamicin exhibits concentration-dependent bactericidal activity, meaning that its efficacy increases with higher concentrations. The pharmacodynamic properties highlight the rapid and delayed bactericidal effects, with membrane disruption occurring immediately followed by impaired protein synthesis. The drug's action is particularly effective against aerobic Gram-negative bacteria, while its effectiveness is significantly reduced in anaerobic conditions.

Pharmacokinetics

Gentamicin is poorly absorbed from the gastrointestinal tract; thus, it is typically administered intravenously or intramuscularly. It has a volume of distribution that reflects extensive tissue penetration, particularly in renal and gastrointestinal tissues. The elimination half-life ranges from 2 to 3 hours in healthy individuals, but it can be prolonged in patients with renal impairment. The drug is primarily eliminated by renal excretion, with dosage adjustments required in cases of renal dysfunction.

Contra-indications

  • Hypersensitivity to gentamicin or other aminoglycosides
  • Severe renal impairment
  • Myasthenia gravis

Adverse effects

  • Nephrotoxicity
  • Ototoxicity (hearing loss, balance disorders)
  • Neuromuscular blockade
  • Allergic reactions (rash, pruritus)
  • Peripheral neuropathy

Interactions

  • Increased risk of nephrotoxicity with other nephrotoxic agents (e.g., cisplatin, vancomycin)
  • Increased risk of ototoxicity with loop diuretics (e.g., furosemide)
  • Synergistic effects with beta-lactam antibiotics

Precautions

  • Monitor renal function during treatment
  • Use caution in patients with pre-existing hearing loss
  • Adjust dosage in patients with renal impairment
  • Consider potential drug interactions

Pregnancy

Gentamicin should be used during pregnancy only if clearly needed, due to potential risk of fetal harm.

Breast-feeding

Gentamicin is excreted in breast milk, but is generally considered safe. Monitor for possible effects on the infant.

Storage

Store in a cool, dry place, away from light. Do not refrigerate or freeze.

Formulations

  • Injection (solution for injection)
  • Topical ointment
  • Eye drops

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: Dexamethasone

PubChem CID 5743

Molecular formula: C22H29FO5

Mechanism of action

The short term effects of corticosteroids are decreased vasodilation and permeability of capillaries, as well as decreased leukocyte migration to sites of inflammation. Corticosteroids binding to the glucocorticoid receptor mediates changes in gene expression that lead to multiple downstream effects over hours to days. Glucocorticoids inhibit neutrophil apoptosis and demargination; they inhibit phospholipase A2, which decreases the formation of arachidonic acid derivatives; they inhibit NF-Kappa B and other inflammatory transcription factors; they promote anti-inflammatory genes like interleukin-10. Lower doses of corticosteroids provide an anti-inflammatory effect, while higher doses are immunosuppressive. High doses of glucocorticoids for an extended period bind to the mineralocorticoid receptor, raising sodium levels and decreasing potassium levels. Corticosteroids diffuse across cell membranes and complex with specific cytoplasmic receptors. These complexes then enter the cell nucleus, bind to DNA, and stimulate transcription of mRNA and subsequent protein synthesis of enzymes ultimately responsible for anti-inflammatory effects of topical application of corticosteroids to the eye. In high concentrations which may be achieved after topical application, corticosteroids may exert direct membrane effects. Corticosteroids decrease cellular and fibrinous exudation and tissue infiltration, inhibit fibroblastic and collagen-forming activity, retard epithelial regeneration, diminish postinflammatory neovascularization and reduce toward normal levels the excessive permeability of inflamed capillaries. /Corticosteroids (Otic)/ Glucocorticoids are capable of suppressing the inflammatory process through numerous pathways. They interact with specific intracellular receptor proteins in target tissues to alter the expression of corticosteroid-responsive genes. Glucocorticoid-specific receptors in the cell cytoplasm bind with steroid ligands to form hormone-receptor complexes that eventually translocate to the cell nucleus. There these complexes bind to specific DNA sequences and alter their expression. The complexes may induce the transcription of mRNA leading to synthesis of new proteins. Such proteins include lipocortin, a protein known to inhibit PLA2a and thereby block the synthesis of prostaglandins, leukotrienes, and PAF. Glucocorticoids also inhibit the production of other mediators including AA metabolites such as COX, cytokines, the interleukins, adhesion molecules, and enzymes such as collagenase. /Glucocorticoids/ Corticosteroids diffuse across cell membranes and complex with specific cytoplasmic receptors. These complexes then enter the cell nucleus, bind to DNA (chromatin), and stimulate transcription of messenger RNA (mRNA) and subsequent protein synthesis of various inhibitory enzymes responsible for the anti-inflammatory effects of topical corticosteroids. These anti-inflammatory effects include inhibition of early processes such as edema, fibrin deposition, capillary dilatation, movement of phagocttes into the area, and phagocytic activities. Later processes, such as capillary production, collagen deposition, and keloid formation also are inhibited by corticosteroids. The overall actions of topical corticosteroids are catabolic. /Corticosteroids (topical)/

Pharmacodynamics

Corticosteroids bind to the glucocorticoid receptor, inhibiting pro-inflammatory signals, and promoting anti-inflammatory signals. Dexamethasone's duration of action varies depending on the route. Corticosteroids have a wide therapeutic window as patients may require doses that are multiples of what the body naturally produces. Patients taking corticosteroids should be counselled regarding the risk of hypothalamic-pituitary-adrenal axis suppression and increased susceptibility to infections.

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

Molecular reference: gentamycin

PubChem CID 3467

Molecular formula: C21H43N5O7

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. The necessity of oxygen-dependent active transport explains why aminoglycosides are ineffective against anaerobic bacteria. 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. Aminoglycosides are usually bactericidal in action. Although the exact mechanism of action has not been fully elucidated, the drugs appear to inhibit protein synthesis in susceptible bacteria by irreversibly binding to 30S ribosomal subunits. /Aminoglycosides/ ... Aminoglycosides are aminocyclitols that kill bacteria by inhibiting protein synthesis as they bind to the 16S rRNA and by disrupting the integrity of bacterial cell membrane. Aminoglycoside resistance mechanisms include: (a) the deactivation of aminoglycosides by N-acetylation, adenylylation or O-phosphorylation, (b) the reduction of the intracellular concentration of aminoglycosides by changes in outer membrane permeability, decreased inner membrane transport, active efflux, and drug trapping, (c) the alteration of the 30S ribosomal subunit target by mutation, and (d) methylation of the aminoglycoside binding site. ... /Aminoglycosides/

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

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