ASMADIZIN TABLETS
THEOPHYLLINE+EPHEDRINE
What it does
Ephedrine is a medication used to treat low blood pressure (hypotension) and respiratory conditions like asthma.
Commonly used for: low blood pressure (hypotension), asthma
Read more in plain English ↓Plain-language summary for general understanding - not medical advice. Always follow your pharmacist/doctor.
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Answers come only from this medicine's registration record, BNF monograph and interaction data - not medical advice.
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Sourcing - Kenya onlyRegistration & product details
Source: Food and Drugs Authority · fetched 2026-04-18 08:45:57 · updated 2026-09-15 04:00:12
Drug Interactions
32Pharmacodynamic Warnings
Theophylline appears in TABLE 17: Drugs that reduce serum potassium
Severe (5)
Phosphodiesterase Type- - increases exposure
Theophylline is predicted to slightly increase the exposure to phosphodiesterase type-4 inhibitors (roflumilast). Avoid.
Roflumilast - increases exposure
Theophylline is predicted to slightly increase the exposure to roflumilast. Avoid.
Theophylline - increases exposure
Stiripentolispredictedtoincreasetheexposureto theophylline.Avoid.oTheoretical
Theophylline - increases risk of bronchospasm
Betablockers, selective are predicted to increase the risk of bronchospasm when given with theophylline. Avoid.
Theophylline - increases exposure
Deferasirox increases the exposure to theophylline. Avoid.
Moderate (16)
Lithium - decreases concentration
Theophylline is predicted to decrease the concentration of lithium. Monitor concentration and adjust dose.
Theophylline - increases exposure
Aciclovir is predicted to increase the exposure to theophylline. Monitor and adjust dose. Theoretical Acipimox
Theophylline - decreases exposure
Ritonavir is predicted to decrease the exposure to theophylline. Adjust dose.
Theophylline - decreases exposure
Leflunomide is predicted to decrease the exposure to theophylline. Adjust dose.
Theophylline - increases exposure
Mexiletine is predicted to increase the exposure to theophylline. Monitor and adjust dose.
Unknown (11)
Adenosine - decreases efficacy
Theophyllinedecreasestheefficacyofadenosine.Separate administrationby24hours.nStudy com/codemedicalapps/ cal Applications)
Antiarrhythmics - decreases efficacy
Theophylline decreases the efficacy of antiarrhythmics (adenosine). Separate administration by 24 hours.
Doxapram - increases risk of agitation
Theophylline increases the risk of agitation when given with doxapram. Doxazosin → see alpha blockers Doxepin → see tricyclic antidepressants Doxorubicin → see anthracyclines Doxycycline → see tetracy
Ephedrine - decreases effects
Mianserin decreases the effects of sympathomimetics, vasoconstrictor (ephedrine). Anecdotal Micafungin → see TABLE 1 p. 1517 (hepatotoxicity)
Ephedrine - additive effect
Volatilehalogenatedanaesthetics(sevoflurane)cancause hypertension,ascanephedrine.Avoidephedrineforseveral daysbeforesurgery.rTheoretical https://www.facebook.c (Books-Courses-Medic
Data from BNF 85 (British National Formulary). This is not a substitute for professional medical advice. Matched via: exact
About ephedrine
Ephedrine is a medication used to treat low blood pressure (hypotension) and respiratory conditions like asthma.
What it treats
- low blood pressure (hypotension)
- asthma
How it works
Ephedrine works by stimulating the heart and opening the airways, helping to improve breathing and increase blood pressure.
Who it's for
This medication is for individuals experiencing low blood pressure or breathing difficulties, such as those with asthma.
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
About theophylline
Theophylline is a medication used to help open up the airways in the lungs, making it easier to breathe.
What it treats
- asthma
- chronic obstructive pulmonary disease (COPD)
How it works
It works by relaxing the muscles around the airways, which helps to improve airflow and reduce breathing difficulties.
Who it's for
It is used for people who have breathing problems, especially those with asthma or COPD.
Cautions
- • Be cautious if you are taking medications that can lower potassium levels in the blood.
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
Clinical monograph: Ephedrinehydrochloride
BNF-referencedEphedrine hydrochloride is a sympathomimetic agent that acts primarily as a bronchodilator and a vasopressor. It stimulates the alpha and beta-adrenergic receptors, leading to increased heart rate and blood pressure, and is utilized in the treatment of hypotension associated with spinal or epidural anesthesia, as well as for reversible airways obstruction in conditions such as asthma and bronchospasm.
Indications
- Reversal of hypotension from spinal or epidural anesthesia
- Reversible airways obstruction (e.g., asthma, bronchospasm)
- Nasal congestion
Dosage
Children: For children aged 1 month to 11 years, the dose is 1 mg/kg/hour by intravenous infusion, adjusted according to plasma-theophylline concentration. For children aged 12 to 17 years, administer 500–700 micrograms/kg/hour by intravenous infusion, also adjusted according to plasma-theophylline concentration.
Adults: For reversal of hypotension, administer 3–7.5 mg by slow intravenous injection every 3–4 minutes, adjusting according to response, with a maximum of 9 mg per dose. For airways obstruction, 30–60 mg may be given orally three times a day.
Mechanism of action
Ephedrine acts by stimulating adrenergic receptors, leading to bronchodilation and vasoconstriction. It increases the release of norepinephrine from sympathetic nerve endings, enhancing its action on alpha and beta-adrenergic receptors, which results in increased peripheral resistance and cardiac output.
Pharmacodynamics
Ephedrine exhibits both alpha- and beta-adrenergic activity. Its alpha-adrenergic effects lead to vasoconstriction, while beta-adrenergic stimulation results in bronchodilation. The drug also has a mild central nervous system stimulant effect, which can contribute to side effects such as anxiety and insomnia.
Pharmacokinetics
Ephedrine is well-absorbed from the gastrointestinal tract and is distributed widely throughout the body. It has a relatively long half-life due to its resistance to metabolism. The drug is primarily excreted unchanged in the urine. Its pharmacokinetic profile can be influenced by factors such as renal function and the presence of other medications that may affect its clearance.
Contra-indications
- Hypersensitivity to ephedrine or any of its components
- Severe hypertension
- Tachyarrhythmias
- Severe coronary artery disease
- Hyperthyroidism
- Prostatic hypertrophy
Adverse effects
- Anxiety
- Headache
- Insomnia
- Nausea
- Tremor
- Dry mouth
- Dizziness
- Cardiac arrhythmias
- Hypertension
- Urinary retention
- Myocardial infarction
- Psychotic disorders
- Pulmonary edema
Interactions
- Other sympathomimetics
- Xanthines (e.g., theophylline)
- Monoamine oxidase inhibitors
- Antihypertensive agents
- Antidepressants
- Corticosteroids
Precautions
- Use with caution in patients with diabetes mellitus
- Caution in elderly patients
- Hypertension
- Ischaemic heart disease
- Glaucoma (risk of angle-closure)
- Chronic obstructive pulmonary disease
Pregnancy
Manufacturer advises avoidance due to potential risks, including increased fetal heart rate.
Breast-feeding
Present in breast milk; manufacturer advises avoidance due to reported irritability and disturbed sleep in infants.
Storage
Store in a cool, dry place away from direct sunlight. Keep out of reach of children.
Formulations
- Oral suspension
- Oral solution
- Tablets (15 mg, 30 mg)
- Solution for injection (30 mg per 10 ml)
AI-synthesized from BNF references - general information only, not a substitute for professional medical advice or the current BNF. Verify doses with a pharmacist.
Clinical monograph: Theophylline
BNF-referencedTheophylline is a xanthine derivative used primarily as a bronchodilator in the management of obstructive airway diseases, such as asthma and chronic obstructive pulmonary disease (COPD). It relaxes bronchial smooth muscle and reduces airway responsiveness to various stimuli, thus alleviating symptoms of bronchospasm. Theophylline has both bronchodilator and anti-inflammatory effects, making it useful in improving respiratory function in patients with chronic airway diseases.
Indications
- Chronic asthma
- Severe acute asthma
- Chronic obstructive pulmonary disease (COPD)
- Reversible airways obstruction
Dosage
Children: For children aged 2–11 years, the recommended dosage
Adults: For adults, the typical dosage is 200 mg every 12 hours, which can be adjusted according to response, with a maximum of 400 mg every 12 hours for more severe symptoms.
Mechanism of action
Theophylline relaxes smooth muscle in the bronchial airways and pulmonary blood vessels, reducing airway responsiveness to histamine, methacholine, adenosine, and allergens. It inhibits phosphodiesterase types III and IV, leading to increased cyclic AMP levels in smooth muscle cells, promoting bronchodilation. Additionally, theophylline antagonizes adenosine A2B receptors, blocking adenosine-induced bronchoconstriction. It also activates histone deacetylase, reducing the transcription of inflammatory genes, thereby exerting anti-inflammatory effects.
Pharmacodynamics
Theophylline exhibits dual actions in patients with reversible airway obstruction: it promotes smooth muscle relaxation (bronchodilation) and suppresses the airway response to stimuli (non-bronchodilator prophylactic effects). The increase in cyclic AMP levels enhances airway smooth muscle relaxation and decreases inflammation, which are critical in managing asthma and other obstructive airway diseases.
Pharmacokinetics
Theophylline is primarily metabolized in the liver, and its plasma concentrations can be influenced by various factors, including smoking and liver function. The half-life of theophylline is variable, often longer in patients with liver impairment or heart failure. The therapeutic plasma concentration range is typically between 10-20 mg/L, with adverse effects becoming more frequent at levels above this range. Monitoring of plasma theophylline levels is recommended, especially after any dose adjustment.
Contra-indications
- Allergy to theophylline or any of its excipients
- Severe hepatic impairment
- Acute myocardial infarction
- Peptic ulcer disease
Adverse effects
- Nausea
- Vomiting
- Agitation
- Restlessness
- Dilated pupils
- Sinus tachycardia
- Hyperglycaemia
- Haematemesis
- Convulsions
- Supraventricular and ventricular arrhythmias
- Severe hypokalaemia
Interactions
- Stiripentol - Severe (increases exposure)
- Beta-blockers (selective) - Severe (increases risk of bronchospasm)
- Deferasirox - Severe (increases exposure)
- Roflumilast - Severe (increases exposure)
- Phosphodiesterase type inhibitors - Severe (increases exposure)
- Aciclovir - Moderate (increases exposure)
- Ritonavir - Moderate (decreases exposure)
- Leflunomide - Moderate (decreases exposure)
- Lithium - Moderate (decreases concentration)
- Mexiletine - Moderate (increases exposure)
Precautions
- Caution in patients with hepatic impairment due to risk of increased exposure
- Monitor plasma theophylline concentration regularly, especially after dose adjustments or in cases of smoking cessation or initiation
- Be aware of potential interactions with other medications
Pregnancy
Theophylline can be taken as normal during pregnancy, as it is important to maintain controlled asthma. However, neonatal irritability and apnoea have been reported.
Breast-feeding
Theophylline is present in breast milk and has been associated with irritability in infants; modified-release preparations are preferable. It can be taken as normal during breastfeeding.
Storage
Store at room temperature, away from moisture and heat. Keep out of reach of children.
Formulations
- Modified-release tablets
- Solution for injection
- Infusion solution
- Suppository
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: ephedrine
BNF-referencedEphedrine is a sympathomimetic amine that acts as both a direct and indirect stimulant of the adrenergic receptors. It is primarily used for its effects on cardiovascular function and bronchodilation. As a member of the sympathomimetic drug class, it increases heart rate, cardiac output, and blood pressure while also facilitating bronchodilation, making it valuable in treating conditions such as asthma and hypotension.
Indications
- Bronchial asthma
- Hypotension
- Nasal congestion
- Cardiac arrest
Dosage
Children: Refer to the BNF for Children for appropriate paediatric dosing information.
Adults: Refer to the BNF for specific dosing guidelines based on the condition being treated.
Mechanism of action
Ephedrine acts by activating alpha-adrenergic and beta-adrenergic receptors. Directly, it stimulates these receptors, leading to vasoconstriction (alpha-1), increased cardiac chronotropy and inotropy (beta-1), and bronchodilation (beta-2). Indirectly, it inhibits norepinephrine reuptake and promotes the release of norepinephrine from nerve cells, resulting in prolonged sympathetic stimulation.
Pharmacodynamics
Ephedrine elevates blood pressure through increased heart rate and cardiac output, while also variably raising peripheral resistance. It induces bronchodilation through beta-adrenergic receptor activation in the lungs. Additionally, it enhances urine outflow resistance by stimulating alpha-adrenergic receptors in bladder smooth muscle. The therapeutic dose range is broad, with potential dosages from 5mg to 50mg, and caution is advised regarding the risk of hypertension and tachyphylaxis.
Pharmacokinetics
Ephedrine is rapidly absorbed and reaches peak plasma concentrations within 1 to 2 hours following oral administration. It is metabolized in the liver and excreted primarily via the kidneys. The duration of action is variable, but it generally lasts for 2 to 4 hours. Its pharmacokinetic profile can be influenced by individual patient characteristics, including renal function.
Adverse effects
- Tachycardia
- Hypertension
- Palpitations
- Nervousness
- Dizziness
- Nausea
- Vomiting
Interactions
- mianserin+ephedrine: Unknown (decreases effects)
- volatile halogenated anaesthetics+ephedrine: Unknown (additive effect)
Precautions
- Use with caution in patients with cardiovascular disorders
- Monitor blood pressure and heart rate during treatment
- Consider potential for tachyphylaxis with prolonged use
Pregnancy
Use only if clearly needed, as safety in pregnancy has not been established.
Breast-feeding
Caution is advised; ephedrine may pass into breast milk.
Storage
Store in a cool, dry place, away from direct sunlight.
Formulations
- Oral tablets
- Injectable solution
AI-synthesized from BNF references - general information only, not a substitute for professional medical advice or the current BNF. Verify doses with a pharmacist.
Molecular reference: ephedrine
PubChem CID 9294Molecular formula: C10H15NO
Mechanism of action
Ephedrine is a direct and indirect sympathomimetic amine. As a direct effect, ephedrine activates alpha-adrenergic and beta-adrenergic receptors. As an indirect effect, it inhibits norepinephrine reuptake and increases the release of norepinephrine from vesicles in nerve cells. These actions combined lead to larger quantities of norepinephrine present in the synapse for more extended periods of time, increasing stimulation of the sympathetic nervous system. Ephedrine acts as an agonist of alpha-1, beta-1 and beta-2-adrenergic receptors. The stimulation of alpha-1-adrenergic receptors causes the constriction of veins and a rise in blood pressure, the stimulation of beta-1-adrenergic receptors increases cardiac chronotropy and inotropy, and the stimulation of beta-2-adrenergic receptors causes vasodilation and bronchodilation. Ephedrine alkaloids are members of a large family of sympathomimetic compounds that include dobutamine and amphetamine. Members of this family increase blood pressure and heart rate by binding to alpha- and beta-adrenergic receptors present in many parts of the body, including the heart and blood vessels. These compounds are called sympathomimetics because they mimic the effects of epinephrine and norepinephrine, which occur naturally in the human body. In addition to their direct pharmacological effects, many of these compounds also stimulate the release of norepinephrine from nerve endings. The release of norepinephrine further increases the sympathomimetic effects of these compounds, at least transiently. Ephedrine does not contain a catechol moiety, and it is effective after oral administration. The drug stimulates heart rate and cardiac output and variably increases peripheral resistance; as a result, ephedrine usually increases blood pressure. Stimulation of the alpha-adrenergic receptors of smooth muscle cells in the bladder base may increase the resistance to the outflow of urine. Activation of beta-adrenergic receptors in the lungs promotes bronchodilation. Ephedrine stimulates both alpha- and beta-adrenergic receptors. It is believed that beta-adrenergic effects result from stimulation of the production of cyclic adenosine 3',5'-monophosphate (AMP) by activation of the enzyme adenyl cyclase, whereas a-adrenergic effects result from inhibition of adenyl cyclase activity. In contrast to epinephrine, ephedrine also has an indirect effect by releasing norepinephrine from its storage sites. With prolonged use or if doses are given frequently, ephedrine may deplete norepinephrine stores in sympathetic nerve endings and tachyphylaxis may develop to the cardiac and pressor effects. Tachyphylaxis to the bronchial effects of the drug may also occur, but it is not the result of norepinephrine depletion.
Pharmacodynamics
Ephedrine increases blood pressure by stimulating heart rate and cardiac output and variably increasing peripheral resistance. It causes bronchodilation due to the activation of beta-adrenergic receptors in the lungs. By stimulating alpha-adrenergic receptors in bladder smooth muscle cells, ephedrine also increases the resistance to the outflow of urine. The therapeutic window of ephedrine is wide, as patients can be given doses of 5mg up to 50mg. Patients should be counselled regarding the pressor effects of sympathomimetic amines and the risk of tachyphylaxis. Also, the use of ephedrine for hypotension prophylaxis is associated with a higher risk of hypertension, compared to when ephedrine is used to treat hypotension.
Biological pathways
Source: PubChem (NCBI) · pathways from PathBank, Reactome, WikiPathways & PharmGKB.
Molecular reference: Theophylline
PubChem CID 2153Molecular formula: C7H8N4O2
Mechanism of action
Theophylline relaxes the smooth muscle of the bronchial airways and pulmonary blood vessels and reduces airway responsiveness to histamine, methacholine, adenosine, and allergen. Theophylline competitively inhibits type III and type IV phosphodiesterase (PDE), the enzyme responsible for breaking down cyclic AMP in smooth muscle cells, possibly resulting in bronchodilation. Theophylline also binds to the adenosine A2B receptor and blocks adenosine mediated bronchoconstriction. In inflammatory states, theophylline activates histone deacetylase to prevent transcription of inflammatory genes that require the acetylation of histones for transcription to begin. Theophylline is an old drug experiencing a renaissance owing to its beneficial antiinflammatory effects in chronic respiratory diseases, such as asthma and chronic obstructive pulmonary disease. Multiple modes of antiinflammatory action have been reported, including inhibition of the enzymes that degrade cAMP-phosphodiesterase (PDE). Using primary cultures of airway smooth muscle (ASM) cells, we recently revealed that PDE4 inhibitors can potentiate the antiinflammatory action of beta2-agonists by augmenting cAMP-dependent expression of the phosphatase that deactivates mitogen-activated protein kinase (MAPK)-MAPK phosphatase (MKP)-1. Therefore, the aim of this study was to address whether theophylline repressed cytokine production in a similar, PDE-dependent, MKP-1-mediated manner. Notably, theophylline did not potentiate cAMP release from ASM cells treated with the long-acting beta2-agonist formoterol. Moreover, theophylline (0.1-10 uM) did not increase formoterol-induced MKP-1 messenger RNA expression nor protein up-regulation, consistent with the lack of cAMP generation. However, theophylline (at 10 uM) was antiinflammatory and repressed secretion of the neutrophil chemoattractant cytokine IL-8, which is produced in response to TNF-a. Because theophylline's effects were independent of PDE4 inhibition or antiinflammatory MKP-1, we then wished to elucidate the novel mechanisms responsible. We investigated the impact of theophylline on protein phosphatase (PP) 2A, a master controller of multiple inflammatory signaling pathways, and show that theophylline increases TNF-a-induced PP2A activity in ASM cells. Confirmatory results were obtained in A549 lung epithelial cells. PP2A activators have beneficial effects in ex vivo and in vivo models of respiratory disease. Thus, our study is the first to link theophylline with PP2A activation as a novel mechanism to control respiratory inflammation. Theophylline has two distinct actions in the airways of patients with reversible obstruction; smooth muscle relaxation (i.e., bronchodilation) and suppression of the response of the airways to stimuli (i.e., non-bronchodilator prophylactic effects). While the mechanisms of action of theophylline are not known with certainty, studies in animals suggest that bronchodilatation is mediated by the inhibition of two isozymes of phosphodiesterase (PDE III and, to a lesser extent, PDE IV) while non-bronchodilator prophylactic actions are probably mediated through one or more different molecular mechanisms, that do not involve inhibition of PDE III or antagonism of adenosine receptors. Some of the adverse effects associated with theophylline appear to be mediated by inhibition of PDE III (e.g., hypotension, tachycardia, headache, and emesis) and adenosine receptor antagonism (e.g., alterations in cerebral blood flow). Theophylline increases the force of contraction of diaphragmatic muscles. This action appears to be due to enhancement of calcium uptake through an adenosine-mediated channel. Lung deflation and inflation during cardiac surgery with cardiopulmonary bypass contributes to pulmonary dysfunction postoperatively. Theophylline treatment for lung diseases has traditionally been thought to act by phosphodiesterase inhibition; however, increasing evidence has suggested other plausible mechanism
Pharmacodynamics
Theophylline, an xanthine derivative chemically similar to caffeine and theobromine, is used to treat asthma and bronchospasm. Theophylline has two distinct actions in the airways of patients with reversible (asthmatic) obstruction; smooth muscle relaxation (i.e., bronchodilation) and suppression of the response of the airways to stimuli (i.e., non-bronchodilator prophylactic effects).
Biological pathways
Source: PubChem (NCBI) · pathways from PathBank, Reactome, WikiPathways & PharmGKB.
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