Registered Rwanda · Rwanda FDA

FLUMED SYRUP

Paracetamol 120mg, Chlorpheniramine Maleate 0.5mg, Phenylephrine Hydrochloride 2.5mg and Dextromethorphan Hydrobromide 2mg

Rwanda FDA-HMP-MA-1068 Syrup 120mg, 0.5mg, 2.5mg, 2mg respiratory system INN generic

What it does

Chlorpheniramine is a sedating antihistamine used to relieve allergy symptoms.

Commonly used for: allergies, hay fever (allergic rhinitis), common cold symptoms

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 only

Registration & product details

Registration no.
Rwanda FDA-HMP-MA-1068
Registration date
20/04/2024
Expiry date
19/04/2029
Status
Registered
Active ingredient
Paracetamol 120mg, Chlorpheniramine Maleate 0.5mg, Phenylephrine Hydrochloride 2.5mg and Dextromethorphan Hydrobromide 2mg
Dosage form
Syrup
Strength
120mg, 0.5mg, 2.5mg, 2mg
Pack size
100 ml bottle
Therapeutic class
-
ATC class (WHO)
R06AB - Substituted alkylamines
Drug group
RESPIRATORY SYSTEM
RxNorm RxCUI
2400
Manufacturer / MAH
Varichem Pharmaceuticals
Country of origin
ZIMBABWE
Manufacturer location
194 Gleneagles Rd, Harare, Zimbabwe

Source: Rwanda Food and Drugs Authority · fetched 2026-03-11 22:07:18 · updated 2026-09-14 02:30:16

Drug Interactions

8
Check interactions

Pharmacodynamic Warnings

Paracetamol appears in TABLE 1: Drugs that cause hepatotoxicity

Moderate (3)

Prilocaine - increases risk of methaemoglobinaemia

Paracetamol is predicted to increase the risk of methaemoglobinaemia when given with topical anaesthetics, local (prilocaine). Use with caution or avoid.

Moderate Theoretical

Topical Anaesthetics, Local - increases risk of methaemoglobinaemia

Paracetamol is predicted to increase the risk of methaemoglobinaemia when given with topical anaesthetics, local (prilocaine). Use with caution or avoid.

Moderate Theoretical

Topical Prilocaine - increases risk of methaemoglobinaemia

Paracetamolispredictedtoincreasetheriskof methaemoglobinaemiawhengivenwithtopicalprilocaine. Usewithcautionoravoid.rTheoretical 1xidneppA|snoitcaretnI A1 https://www.facebook.c (Books-Courses-Medic

Moderate Theoretical

Unknown (5)

Coumarins - increases anticoagulant effect

Paracetamol increases the anticoagulant effect of coumarins.

Unknown Study

Dapsone - increases risk of methaemoglobinaemia

Paracetamol is predicted to increase the risk of methaemoglobinaemia when given with dapsone.

Unknown Theoretical

Paracetamol - increases risk of hepatotoxicity

Imatinib increases the risk of hepatotoxicity when given with paracetamol.

Unknown Anecdotal

Paracetamol - decreases exposure

Pitolisantispredictedtodecreasetheexposureto paracetamol.nTheoretical

Unknown Theoretical

Paracetamol - decreases exposure

Rifampicin decreases the exposure to paracetamol.

Unknown Study

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 Rwanda Food and Drugs Authority (Rwanda). Always consult a qualified healthcare professional before using any medication.

About chlorpheniramine

Chlorpheniramine is a sedating antihistamine used to relieve allergy symptoms.

What it treats

  • allergies
  • hay fever (allergic rhinitis)
  • common cold symptoms

How it works

It reduces the effects of natural substances in the body that cause allergy symptoms.

Who it's for

It is suitable for adults and children experiencing allergic reactions.

Drug class

Antihistamines, sedating

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

About dextromethorphan

Dextromethorphan is a medicine used to relieve coughing.

What it treats

  • coughs due to colds
  • coughs due to flu
  • coughs due to bronchitis

How it works

It works by decreasing the activity in the part of the brain that triggers the cough reflex.

Who it's for

It is suitable for adults and children over a certain age, but not for very young children.

Cautions

  • • Do not use if you have a cough with mucus or if you have asthma.
  • • Consult a doctor if you are pregnant or breastfeeding.

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

About hydrobromide

Hydrobromide is a medication used to treat various conditions, often related to respiratory issues.

What it treats

  • coughs
  • asthma
  • allergic reactions

How it works

Hydrobromide works by relaxing the muscles in the airways, making it easier to breathe.

Who it's for

It is suitable for adults and children with respiratory problems or allergies.

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

About paracetamol

Paracetamol is a common pain relief medication used to reduce fever and relieve mild to moderate pain.

What it treats

  • fever
  • headaches
  • muscle aches
  • joint pain
  • toothaches
  • menstrual cramps

How it works

Paracetamol works by blocking pain signals in the brain and helping to lower body temperature.

Who it's for

Paracetamol is suitable for most adults and children who need pain relief or fever reduction.

Cautions

  • • Use with caution if you are taking other drugs that may harm the liver.

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

About phenylephrine

Phenylephrine is a medication used to relieve nasal congestion and improve breathing.

What it treats

  • nasal congestion (blocked nose)
  • sinusitis
  • hay fever (allergic rhinitis)

How it works

It works by narrowing the blood vessels in the nasal passages, which reduces swelling and congestion.

Who it's for

This medication is suitable for adults and children who need relief from nasal congestion.

Cautions

  • • Avoid if you have high blood pressure (hypertension) or heart conditions.
  • • Consult a healthcare professional if you are pregnant or breastfeeding.

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

Clinical monograph: Phenylephrinehydrochloride

BNF-referenced

Phenylephrine hydrochloride is a sympathomimetic amine that acts primarily as a selective α1-adrenergic receptor agonist. It is commonly used as a decongestant and to elevate blood pressure in hypotensive states. By stimulating α1-adrenergic receptors, it causes vasoconstriction, leading to increased peripheral vascular resistance and elevated blood pressure. Phenylephrine is often administered as a nasal spray, oral tablet, or injectable solution.

Indications

  • Nasal congestion
  • Hypotension (particularly in acute settings)
  • Vasopressor support during anesthesia

Dosage

Children: Refer to the BNF for Children for specific dosing information, as it varies based on age and indication.

Adults: For the treatment of hypotension, the recommended initial dose is 0.16–0.33 mL/minute as an intravenous infusion, adjusted according to blood pressure response. For nasal congestion, 0.25 to 0.5 mL of the 0.5% solution may be applied topically.

Mechanism of action

Phenylephrine primarily acts as a selective agonist for α1-adrenergic receptors. Activation of these receptors results in vasoconstriction of blood vessels, leading to increased systemic vascular resistance and blood pressure. It does not significantly stimulate β-adrenergic receptors, which makes it less effective at increasing heart rate compared to other sympathomimetics.

Pharmacodynamics

Phenylephrine's pharmacodynamic effects include increased peripheral vascular resistance and blood pressure due to its vasoconstrictive action. Its decongestant effects arise from vasoconstriction of nasal mucosal blood vessels, reducing swelling and congestion. The duration of action is dose-dependent and can vary based on the route of administration.

Pharmacokinetics

Phenylephrine is absorbed after oral administration but has a significant first-pass metabolism, which reduces its bioavailability. It is metabolized primarily in the liver and has a half-life of about 2.5 to 3 hours. The drug is excreted in urine, primarily as metabolites. The onset of action varies with the route of administration, with intravenous administration providing the most rapid effect.

Adverse effects

  • Hypertension
  • Reflex bradycardia
  • Headache
  • Nausea
  • Vomiting
  • Palpitations

Precautions

  • Use with caution in patients with hypertension
  • Monitor blood pressure frequently
  • Use during pregnancy only if potential benefit outweighs risk

Pregnancy

Manufacturer advises use if potential benefit outweighs risk-may reduce placental perfusion and induce fetal bradycardia.

Storage

Store at room temperature, protect from light.

Formulations

  • Phenylephrine hydrochloride 2.5mg tablets
  • Phenylephrine hydrochloride 5mg tablets
  • Phenylephrine hydrochloride 10mg tablets
  • Phenylephrine hydrochloride solution for injection
BNF 85 (British National Formulary) p.226 BNF 85 (British National Formulary) p.917 BNF 85 (British National Formulary) p.1310 BNF for Children 2019-2020 p.149 BNF for Children 2019-2020 p.725 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: Paracetamol

BNF-referenced

Paracetamol, also known as acetaminophen, is a widely used analgesic and antipyretic medication. It is effective in alleviating pain and reducing fever but does not possess anti-inflammatory properties. Paracetamol is often used for mild to moderate pain relief, including headaches, muscle aches, arthritis, backaches, toothaches, colds, and fevers. Its mechanism of action is primarily central, as it affects the brain's heat-regulating centers and increases pain thresholds.

Indications

  • Mild to moderate pain
  • Fever
  • Headaches
  • Muscle aches
  • Arthritis
  • Backaches
  • Toothaches
  • Colds

Dosage

Adults: For adults, the typical dosage is 500 mg to 1 g every 4 to 6 hours, with a maximum daily limit of 4 g. In cases of intravenous administration, the dosage is 15 mg/kg every

Mechanism of action

Paracetamol is thought to exert its analgesic effects by inhibiting cyclo-oxygenase (COX) enzymes, specifically COX-1 and COX-2, which are involved in the synthesis of prostaglandins responsible for pain sensation. Unlike most NSAIDs, paracetamol does not exhibit peripheral anti-inflammatory effects. Its antipyretic action is believed to result from direct action on heat-regulating centers in the brain, leading to peripheral vasodilation and sweating.

Pharmacodynamics

Paracetamol has been shown to have both antipyretic and analgesic effects, lacking any significant anti-inflammatory activity. It does not interfere with platelet aggregation or disrupt hemostasis, making it a safer option for individuals at risk of bleeding. Allergic reactions to paracetamol are rare. The drug does not affect uric acid secretion or acid-base balance when used at recommended doses.

Pharmacokinetics

Paracetamol is rapidly absorbed from the gastrointestinal tract, with peak plasma concentrations typically occurring within 30 to 60 minutes after oral administration. It is primarily metabolized in the liver via conjugation with glucuronide and sulfate, with a minor pathway involving cytochrome P450 enzymes. The elimination half-life ranges from 1 to 4 hours, with renal excretion of metabolites as the primary route of elimination.

Adverse effects

  • Nausea and vomiting
  • Liver injury
  • Renal damage
  • Hypersensitivity reactions
  • Flushing
  • Hypotension
  • Anorectal erythema
  • Angioedema
  • Agranulocytosis
  • Thrombocytopenia
  • Leukopenia
  • Severe cutaneous adverse reactions (SCARs)

Interactions

  • Increased risk of methaemoglobinaemia with topical prilocaine
  • Increased risk of methaemoglobinaemia with topical anaesthetics
  • Increased anticoagulant effect with coumarins
  • Increased risk of hepatotoxicity with imatinib
  • Decreased exposure with rifampicin
  • Decreased exposure with pitolisant

Precautions

  • Monitor patients with liver disease or heavy alcohol use for increased risk of hepatotoxicity
  • Adjust doses in patients taking enzyme-inducing antiepileptic medications
  • Use caution in patients with renal impairment
  • Clinical judgement is required for dose adjustment in weight-based dosing

Pregnancy

Paracetamol is generally considered safe to use during pregnancy for pain and fever relief, but should be used at the lowest effective dose for the shortest duration necessary.

Breast-feeding

Paracetamol is excreted in breast milk in small amounts and is considered safe for use while breastfeeding.

Storage

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

Formulations

  • Oral tablets (500 mg)
  • Oral suspension (120 mg/5 mL, 500 mg/5 mL)
  • Rectal suppositories (various strengths)
  • Intravenous infusion (various strengths)
BNF 85 (British National Formulary) p.503 BNF for Children 2019-2020 p.300 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: chlorpheniramine

BNF-referenced

Chlorpheniramine is a sedating antihistamine belonging to the alkylamine class, primarily used for the relief of allergic symptoms. It is effective in alleviating conditions such as allergic rhinitis and urticaria by blocking the action of histamine at the H1 receptor. Chlorpheniramine is known for its anticholinergic properties, providing a drying effect on nasal mucosa and reducing symptoms associated with upper respiratory allergies.

Indications

  • Allergic rhinitis (hay fever)
  • Urticaria (hives)
  • Allergic conjunctivitis
  • Common cold symptoms

Dosage

Children: For children aged 6-12 years, the dose is typically 2 mg every 4 to 6 hours, not exceeding 12 mg per day. For children under

Adults: The usual adult dose for chlorpheniramine is 4 mg every 4 to 6 hours, not to exceed 24 mg per day.

Mechanism of action

Chlorpheniramine binds to the histamine H1 receptor, preventing endogenous histamine from exerting its effects. This leads to temporary relief from symptoms such as sneezing, pruritus, and increased vascular permeability associated with allergic reactions. The drug competes with histamine for H1-receptor sites on effector cells, thus antagonizing most of the pharmacological effects of histamine, including its actions on smooth muscle and vascular permeability.

Pharmacodynamics

In allergic reactions, allergens trigger the degranulation of mast cells and basophils, leading to the release of histamine. Chlorpheniramine, as an H1 antagonist, competes for receptor binding, effectively blocking histamine-induced effects, such as itching, vasodilation, and bronchoconstriction. This results in relief from symptoms like sneezing, watery eyes, and nasal discharge.

Pharmacokinetics

Chlorpheniramine is well absorbed from the gastrointestinal tract. It undergoes hepatic metabolism and its effects can last for several hours. The onset of action is typically observed within 1 to 2 hours following oral administration, with peak effects occurring around 2 to 6 hours. The drug is eliminated primarily through urine, with a half-life ranging from 12 to 15 hours, though this can vary based on individual factors.

Contra-indications

  • Hypersensitivity to chlorpheniramine or any component of the formulation
  • Acute asthma attacks
  • Severe hypertension
  • Narrow-angle glaucoma
  • Prostatic hypertrophy

Adverse effects

  • Drowsiness
  • Dizziness
  • Dry mouth
  • Blurred vision
  • Constipation
  • Urinary retention
  • Confusion
  • Headache

Interactions

  • Alcohol
  • CNS depressants
  • MAO inhibitors
  • Anticholinergic agents
  • Beta-blockers

Precautions

  • Use with caution in patients with cardiovascular disease
  • Caution in patients with liver or kidney impairment
  • Avoid in elderly patients due to increased risk of sedation and anticholinergic effects
  • May impair the ability to drive or operate machinery

Pregnancy

Chlorpheniramine should be used in pregnancy only if clearly needed. Consult medical professionals for guidance.

Breast-feeding

Chlorpheniramine is excreted in breast milk. Caution is advised when administering to nursing mothers.

Storage

Store at room temperature, away from moisture and heat. Keep out of reach of children.

Formulations

  • Tablets
  • Syrup
  • Oral suspension

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: dextromethorphan

BNF-referenced

Dextromethorphan is a semisynthetic morphine derivative that primarily functions as a cough suppressant. It is commonly found in over-the-counter medications for the treatment of cough and has additional applications in managing pseudobulbar affect. Despite its structural similarity to other central nervous system depressants, dextromethorphan does not exhibit mu-opioid receptor activity, distinguishing it from traditional opioids.

Indications

  • Cough
  • Pseudobulbar affect

Dosage

Children: Refer to the BNF for Children for specific dosing information tailored to paediatric patients.

Adults: Refer to the BNF for specific dosing guidelines based on the formulation and clinical context.

Mechanism of action

Dextromethorphan acts as a low-affinity uncompetitive antagonist of NMDA receptors and as an agonist at sigma-1 receptors. It also antagonizes α3/β4 nicotinic receptors. The clinical effects are thought to arise from NMDA receptor blockade and serotonin (5-HT) uptake inhibition, which may lead to increased serotonin receptor stimulation. However, the precise mechanisms by which these actions translate into therapeutic effects remain incompletely understood.

Pharmacodynamics

Dextromethorphan is considered an opioid-like molecule with a moderate therapeutic window, indicating that while it is effective at standard doses, higher doses can lead to intoxication. It has a moderate duration of action, making it suitable for use in cough management. Due to its potential for abuse and risk of intoxication, patients are advised to use it cautiously.

Pharmacokinetics

Dextromethorphan is metabolized primarily in the liver through the cytochrome P450 enzyme system, leading to the formation of its active metabolite, dextrorphan. The pharmacokinetics may be influenced by individual variations in metabolic pathways, which can affect the drug's efficacy and safety profile.

Contra-indications

  • Hypersensitivity to dextromethorphan or any of its components
  • Concurrent use with monoamine oxidase inhibitors (MAOIs)
  • Severe respiratory insufficiency or asthma
  • Persistent cough due to smoking, emphysema, or chronic bronchitis

Adverse effects

  • Dizziness
  • Nausea
  • Vomiting
  • Drowsiness
  • Confusion
  • Constipation
  • Abdominal discomfort
  • Euphoria or dysphoria
  • Serotonin syndrome (when used with serotonergic drugs)

Interactions

  • May interact with MAOIs, leading to serious side effects
  • Potential interactions with other CNS depressants, leading to increased sedation
  • May enhance the effects of alcohol
  • Can interact with medications that affect serotonin levels, increasing the risk of serotonin syndrome

Precautions

  • Use with caution in patients with a history of substance abuse
  • Monitor use in patients with hepatic impairment
  • Caution advised in patients with a history of seizures
  • Should not be used in children under 2 years unless directed by a physician

Pregnancy

Dextromethorphan should be used during pregnancy only if clearly needed. Consult a healthcare provider for advice.

Breast-feeding

Dextromethorphan is excreted in breast milk. Caution is advised when administered to nursing mothers.

Storage

Store at room temperature, away from moisture and heat. Keep out of reach of children.

Formulations

  • Oral syrup
  • Tablets
  • Capsules
  • Lozenges

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: hydrobromide

BNF-referenced

Hydrobromide refers to a chemical compound formed when hydrobromic acid reacts with an organic base. It is commonly associated with various drugs that are administered in hydrobromide salt form. These salts enhance the stability and solubility of the active pharmaceutical ingredients. The hydrobromide salts are often used in formulations for their pharmacological effects, particularly in the central nervous system and respiratory conditions.

Indications

  • Respiratory conditions (e.g., asthma, chronic obstructive pulmonary disease)
  • Cough (e.g., as an antitussive)
  • Anxiety and sleep disorders (when associated with specific formulations)

Dosage

Children: Refer to the BNF for Children for appropriate dosing information, as it is determined based on weight and age for the specific formulation.

Adults: Refer to the specific product monograph for dosing information, as it varies based on the drug formulation and indication.

Mechanism of action

Hydrobromides often act as competitive antagonists or agonists at specific receptor sites, depending on the drug involved. The exact mechanism can vary widely, but many hydrobromide-containing drugs modulate neurotransmitter activity, impacting various pathways in the body such as those involved in the central nervous system or respiratory function. The metabolic pathways include Phase I reactions primarily mediated by cytochrome P450 enzymes, which facilitate the functionalization and clearance of these compounds.

Pharmacodynamics

The pharmacodynamics of hydrobromide salts are largely determined by the specific drug they are associated with. Generally, hydrobromides may exhibit effects such as sedation, bronchodilation, or antitussive actions. The efficacy and adverse effects are influenced by the drug's receptor selectivity, affinity, and the pharmacological properties inherent to the parent compound.

Pharmacokinetics

Hydrobromides typically exhibit variable pharmacokinetic profiles depending on the specific drug formulation. They are generally absorbed rapidly following oral administration, with peak plasma concentrations occurring within a few hours. Metabolism primarily occurs in the liver through cytochrome P450 enzymes, particularly CYP2E1, among others. The elimination half-life varies but is often in the range of several hours, allowing for once or twice-daily dosing in many formulations. Excretion is usually via the kidneys, with metabolites being eliminated in urine.

Pregnancy

There are no adequate and well-controlled studies in pregnant women. Use only if clearly needed and the potential benefits justify the potential risks to the fetus.

Breast-feeding

Caution is advised; consider the importance of the drug to the mother against potential risks to the breastfeeding infant.

Storage

Store in a cool, dry place away 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: phenylephrine

BNF-referenced

Phenylephrine is a selective alpha-1 adrenergic agonist primarily used for its vasoconstrictive properties. It is commonly employed in clinical settings to increase blood pressure in hypotensive states and as a mydriatic agent in ophthalmology. The drug acts by stimulating alpha-1 adrenergic receptors, leading to vasoconstriction and increased peripheral vascular resistance. Its effects on blood pressure and heart rate are notable, as it can induce reflex bradycardia due to the increase in blood pressure.

Indications

  • Hypotension in surgical settings
  • Nasal decongestion
  • Mydriasis for ophthalmic procedures
  • Management of shock states

Dosage

Adults: For intravenous administration, initial doses typically range from 100 to 500 micrograms, repeated as necessary, with careful monitoring of blood pressure. For nasal decongestion, phenylephrine is commonly administered as a 10 mg oral dose every

Mechanism of action

Phenylephrine exerts its effects primarily through agonism of alpha-1 adrenergic receptors, which results in vasoconstriction and mydriasis. The stimulation of these receptors inhibits the production of cyclic adenosine-3',5'-monophosphate (cAMP) by inhibiting adenyl cyclase, leading to increased peripheral vascular resistance and elevated blood pressure. Additionally, phenylephrine indirectly promotes the release of norepinephrine from storage sites, further enhancing its vasoconstrictive effects.

Pharmacodynamics

Phenylephrine causes an increase in blood pressure and local vasoconstriction. Its ophthalmic formulations can induce mydriasis for 3-8 hours, while intravenous administration has a rapid onset with an effective half-life of about 5 minutes and an elimination half-life of approximately 2.5 hours. Caution is advised regarding potential side effects such as hypertension, arrhythmias, and rebound miosis with ophthalmic use, and bradycardia, allergic reactions, and tissue damage with intravenous use.

Pharmacokinetics

Phenylephrine is rapidly absorbed following intravenous administration, leading to a quick elevation in blood pressure. The drug undergoes metabolism primarily in the liver and is eliminated through urine. The pharmacokinetic profile indicates a short effective half-life which necessitates frequent dosing in continuous infusion settings for maintaining blood pressure levels.

Contra-indications

  • Severe hypertension
  • Hypersensitivity to phenylephrine
  • Severe coronary artery disease
  • Narrow-angle glaucoma

Adverse effects

  • Hypertension
  • Reflex bradycardia
  • Arrhythmias
  • Headache
  • Dizziness
  • Nausea
  • Vomiting
  • Local irritation (ophthalmic use)

Interactions

  • MAO inhibitors may enhance the hypertensive effect
  • Tricyclic antidepressants may increase the pressor response
  • Concurrent use with oxytocic drugs may increase the risk of hypertension
  • Can interact with other sympathomimetics

Precautions

  • Use with caution in patients with hypertension, hyperthyroidism, or diabetes mellitus
  • Monitor blood pressure regularly during treatment
  • Caution in patients with cardiovascular disease
  • Use with caution in elderly patients

Pregnancy

Phenylephrine should be used during pregnancy only if the potential benefit justifies the potential risk to the fetus. Limited data available.

Breast-feeding

It is not known whether phenylephrine is excreted in human milk. Caution is advised when administered to nursing mothers.

Storage

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

Formulations

  • Ophthalmic solution
  • Injectable solution
  • Oral tablet

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: Paracetamol

PubChem CID 1983

Molecular formula: C8H9NO2

Mechanism of action

According to its FDA labeling, acetaminophen's exact mechanism of action has not been fully established - despite this, it is often categorized alongside NSAIDs (non-steroidal anti-inflammatory drugs) due to its ability to inhibit the cyclo-oxygenase (COX) pathways. It is thought to exert central actions which ultimately lead to the alleviation of pain symptoms. One theory is that acetaminophen increases the pain threshold by inhibiting two isoforms of cyclo-oxygenase, COX-1 and COX-2, which are involved in prostaglandin (PG) synthesis. Prostaglandins are responsible for eliciting pain sensations. Acetaminophen does not inhibit cyclooxygenase in peripheral tissues and, therefore, has no peripheral anti-inflammatory effects. Though acetylsalicylic acid (aspirin) is an irreversible inhibitor of COX and directly blocks the active site of this enzyme, studies have shown that acetaminophen (paracetamol) blocks COX indirectly. Studies also suggest that acetaminophen selectively blocks a variant type of the COX enzyme that is unique from the known variants COX-1 and COX-2. This enzyme has been referred to as _COX-3_. The antipyretic actions of acetaminophen are likely attributed to direct action on heat-regulating centers in the brain, resulting in peripheral vasodilation, sweating, and loss of body heat. The exact mechanism of action of this drug is not fully understood at this time, but future research may contribute to deeper knowledge. Although further investigation is warranted, the active metabolite of acetaminophen (AM404) was shown to interact with several molecular targets, including the Ca<sub>v</sub>3.2 calcium channel, the cannabinoid CB1 receptors, TRPV1 receptors, and Na<sub>v</sub>1.8 and Na<sub>v</sub>1.7 channels. Acetaminophen produces analgesia and antipyresis by a mechanism similar to that of salicylates. Unlike salicylates, however, acetaminophen does not have uricosuric activity. There is some evidence that acetaminophen has weak anti-inflammatory activity in some nonrheumatoid conditions (e.g., in patients who have had oral surgery). ... Acetaminophen lowers body temperature in patients with fever but rarely lowers normal body temperature. The drug acts on the hypothalamus to produce antipyresis; heat dissipation is increased as a result of vasodilation and increased peripheral blood flow. The effects of acetaminophen on cyclooxygenase activity have not been fully determined. Acetaminophen is a weak, reversible, isoform-nonspecific cyclooxygenase inhibitor at dosages of 1 g daily. The inhibitory effect of acetaminophen on cyclooxygenase-1 is limited, and the drug does not inhibit platelet function. Therapeutic doses of acetaminophen appear to have little effect on cardiovascular and respiratory systems; however, toxic doses may cause circulatory failure and rapid, shallow breathing. Acetaminophen (N-acetyl-p-aminophenol (APAP)) is the most common antipyretic/analgesic medicine worldwide. If APAP is overdosed, its metabolite, N-acetyl-p-benzo-quinoneimine (NAPQI), causes liver damage. However, epidemiological evidence has associated previous use of therapeutic APAP doses with the risk of chronic obstructive pulmonary disease (COPD) and asthma. The transient receptor potential ankyrin-1 (TRPA1) channel is expressed by peptidergic primary sensory neurons. Because NAPQI, like other TRPA1 activators, is an electrophilic molecule, /the researchers/ hypothesized that APAP, via NAPQI, stimulates TRPA1, thus causing airway neurogenic inflammation. NAPQI selectively excites human recombinant and native (neuroblastoma cells) TRPA1. TRPA1 activation by NAPQI releases proinflammatory neuropeptides (substance P and calcitonin gene-related peptide) from sensory nerve terminals in rodent airways, thereby causing neurogenic edema and neutrophilia. Single or repeated administration of therapeutic (15-60 mg/kg) APAP doses to mice produces detectable levels of NAPQI in the lung, and increases neutrophil numbers, myeloperoxidase

Pharmacodynamics

Animal and clinical studies have determined that acetaminophen has both antipyretic and analgesic effects. This drug has been shown to lack anti-inflammatory effects. As opposed to the _salicylate_ drug class, acetaminophen does not disrupt tubular secretion of uric acid and does not affect acid-base balance if taken at the recommended doses. Acetaminophen does not disrupt hemostasis and does not have inhibitory activities against platelet aggregation. Allergic reactions are rare occurrences following acetaminophen use.

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

Molecular reference: chlorpheniramine

PubChem CID 2725

Molecular formula: C16H19ClN2

Mechanism of action

Chlorpheniramine binds to the histamine H1 receptor. This blocks the action of endogenous histamine, which subsequently leads to temporary relief of the negative symptoms brought on by histamine. Antihistamines used in the treatment of allergy act by competing with histamine for H1-receptor sites on effector cells. They thereby prevent, but do not reverse, responses mediated by histamine alone. Antihistamines antagonize, in varying degrees, most of the pharmacological effects of histamine, including urticaria and pruritus. Also, the anticholinergic actions of most antihistamines provide a drying effect on the nasal mucosa. /Antihistamines/ H1 antagonists inhibit most responses of smooth muscle to histamine. Antagonism of the constrictor action of histamine on respiratory smooth muscle is easily shown in vivo and in vitro. /Histamine Antagonists: H1 Antagonists/ H1 antagonists strongly block the action of histamine that results in increased permeability and formation of edema and wheal. /Histamine Antagonists: H1 Antagonists/ Within the vascular tree, the H1 antagonists inhibit both the vasoconstrictor effects of histamine and, to a degree, the more rapid vasodilator effects that are mediated by H1 receptors on endothelial cells. Residual vasodilatation reflects the involvement of H2 receptors on smooth muscle and can be suppressed only by the concurrent administration of an H2 antagonist. Effects of the histamine antagonists on histamine induced changes in systemic blood pressure parallel these vascular effects. /Histamine Antagonists: H1 Antagonists/ Many of the H1 antagonists tend to inhibit responses to acetylcholine that are mediated by muscarinic receptors. These atropine like actions are sufficiently prominent in some of the drugs to be manifest during clinical usage ... . /Histamine Antagonists: H1 Antagonists/

Pharmacodynamics

In allergic reactions an allergen interacts with and cross-links surface IgE antibodies on mast cells and basophils. Once the mast cell-antibody-antigen complex is formed, a complex series of events occurs that eventually leads to cell-degranulation and the release of histamine (and other chemical mediators) from the mast cell or basophil. Once released, histamine can react with local or widespread tissues through histamine receptors. Histamine, acting on H<sub>1</sub>-receptors, produces pruritis, vasodilatation, hypotension, flushing, headache, tachycardia, and bronchoconstriction. Histamine also increases vascular permeability and potentiates pain. Chlorpheniramine, is a histamine H1 antagonist (or more correctly, an inverse histamine agonist) of the alkylamine class. It competes with histamine for the normal H<sub>1</sub>-receptor sites on effector cells of the gastrointestinal tract, blood vessels and respiratory tract. It provides effective, temporary relief of sneezing, watery and itchy eyes, and runny nose due to hay fever and other upper respiratory allergies.

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

Molecular reference: dextromethorphan

PubChem CID 5360696

Molecular formula: C18H25NO

Mechanism of action

Dextromethorphan is a low-affinity uncompetitive NMDA antagonist and sigma-1 receptor agonist. It is also an antagonist of α3/β4 nicotinic receptors. However, the mechanism by which dextromethorphan's receptor agonism and antagonism translate to a clinical effect is not well understood. Dextromethorphan (DXM) is the dextro isomer of levomethorphan, a semisynthetic morphine derivative. Although structurally similar to other /CNS depressants/, DXM does not act as a mu receptor opioid (eg, morphine, heroin). DXM and its metabolite, dextrorphan, act as potent blockers of the N-methyl-d-aspartate (NMDA) receptor. Amantadine and dextromethorphan suppress levodopa (L-DOPA)-induced dyskinesia (LID) in patients with Parkinson's disease (PD) and abnormal involuntary movements (AIMs) in the unilateral 6-hydroxydopamine (6-OHDA) rat model. These effects have been attributed to N-methyl-d-aspartate (NMDA) antagonism. However, amantadine and dextromethorphan are also thought to block serotonin (5-HT) uptake and cause 5-HT overflow, leading to stimulation of 5-HT(1A) receptors, which has been shown to reduce LID. We undertook a study in 6-OHDA rats to determine whether the anti-dyskinetic effects of these two compounds are mediated by NMDA antagonism and/or 5-HT(1A) agonism. In addition, we assessed the sensorimotor effects of these drugs using the Vibrissae-Stimulated Forelimb Placement and Cylinder tests. Our data show that the AIM-suppressing effect of amantadine was not affected by the 5-HT(1A) antagonist WAY-100635, but was partially reversed by the NMDA agonist d-cycloserine. Conversely, the AIM-suppressing effect of dextromethorphan was prevented by WAY-100635 but not by d-cycloserine. Neither amantadine nor dextromethorphan affected the therapeutic effects of L-DOPA in sensorimotor tests. We conclude that the anti-dyskinetic effect of amantadine is partially dependent on NMDA antagonism, while dextromethorphan suppresses AIMs via indirect 5-HT(1A) agonism. Combined with previous work from our group, our results support the investigation of 5-HT(1A) agonists as pharmacotherapies for LID in PD patients. Dextromethorphan (DM) is a dextrorotatory morphinan and an over-the-counter non-opioid cough suppressant. We have previously shown that DM protects against LPS-induced dopaminergic neurodegeneration through inhibition of microglia activation. Here, we investigated protective effects of DM against endotoxin shock induced by lipopolysaccharide/d-galactosamine (LPS/GalN) in mice and the mechanism underlying its protective effect. Mice were given multiple injections of DM (12.5 mg/kg, s.c.) 30 min before and 2, 4 hr after an injection of LPS/GalN (20 ug/700 mg/kg). DM administration decreased LPS/GalN-induced mortality and hepatotoxicity, as evidenced by increased survival rate, decreased serum alanine aminotransferase activity and improved pathology. Furthermore, DM was also effective when it was given 30 min after LPS/GalN injection. The protection was likely associated with reduced serum and liver tumor necrosis factor alpha (TNF-alpha) levels. DM also attenuated production of superoxide and intracellular reactive oxygen species in Kupffer cells and neutrophils. Real-time RT-PCR analysis revealed that DM administration suppressed the expression of a variety of inflammation-related genes such as macrophage inflammatory protein-2, CXC chemokine, thrombospondin-1, intercellular adhesion molecular-1 and interleukin-6. DM also decreased the expression of genes related to cell-death pathways, such as the DNA damage protein genes GADD45 and GADD153. In summary, DM is effective in protecting mice against LPS/GalN-induced hepatotoxicity, and the mechanism is likely through a faster TNF-alpha clearance, and decrease of superoxide production and inflammation and cell-death related components. This study not only extends neuroprotective effect of DM, but also suggests that DM may be a novel compound for the therapeutic intervention for sepsis. /The

Pharmacodynamics

Dextromethorphan is an opioid-like molecule indicated in combination with other medication in the treatment of coughs and pseudobulbar affect. It has a moderate therapeutic window, as intoxication can occur at higher doses. Dextromethorphan has a moderate duration of action. Patients should be counselled regarding the risk of intoxication.

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

Molecular reference: phenylephrine

PubChem CID 6041

Molecular formula: C9H13NO2

Mechanism of action

Phenylephrine is an alpha-1 adrenergic agonist that mediates vasoconstriction and mydriasis depending on the route and location of administration. Systemic exposure to phenylephrine also leads to agonism of alpha-1 adrenergic receptors, raising systolic and diastolic pressure as well as peripheral vascular resistance. Increased blood pressure stimulates the vagus nerve, causing reflex bradycardia. Phenylephrine acts predominantly by a direct effect on alpha-adrenergic receptors. In therapeutic doses, the drug has no substantial stimulant effect on the beta-adrenergic receptors of the heart (beta1-adrenergic receptors) but substantial activation of these receptors may occur when larger doses are given. Phenylephrine does not stimulate beta-adrenergic receptors of the bronchi or peripheral blood vessels (beta2-adrenergic receptors). It is believed that alpha-adrenergic effects result from the inhibition of the production of cyclic adenosine-3',5'-monophosphate (cAMP) by inhibition of the enzyme adenyl cyclase, whereas beta-adrenergic effects result from stimulation of adenyl cyclase activity. Phenylephrine also has an indirect effect by releasing norepinephrine from its storage sites.

Pharmacodynamics

Phenylephrine is an alpha-1 adrenergic agonist that raises blood pressure, dilates the pupils, and causes local vasoconstriction. Ophthalmic formulations of phenylephrine act for 3-8 hours while intravenous solutions have an effective half life of 5 minutes and an elimination half life of 2.5 hours. Patients taking ophthalmic formulations of phenylephrine should be counselled about the risk of arrhythmia, hypertension, and rebound miosis. Patients taking an intravenous formulation should be counselled regarding the risk of bradycardia, allergic reactions, extravasation causing necrosis or tissue sloughing, and the concomitant use of oxytocic drugs.

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.