(amlodipine · DailyMed)
AMDOCAL PLUS 50 TABLET
AMLODIPINE BESYLATE + ATENOLOL
What it does
Amlodipine is a medicine that helps lower blood pressure and improve blood flow by relaxing the blood vessels.
Commonly used for: high blood pressure (hypertension), chest pain (angina)
Read more in plain English ↓Plain-language summary for general understanding - not medical advice. Always follow your pharmacist/doctor.
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Source: Pharmacy and Poisons Board · fetched 2026-01-28 21:55:12 · updated 2026-03-23 04:40:19
Drug Interactions
24Pharmacodynamic Warnings
Atenolol appears in TABLE 6: Drugs that cause bradycardia
Amlodipine appears in TABLE 8: Drugs that cause hypotension
Atenolol appears in TABLE 8: Drugs that cause hypotension
Severe (1)
Amlodipine - increases exposure
Grapefruit juice very slightly increases the exposure to amlodipine. Avoid.
Moderate (19)
Amlodipine - decreases exposure
Enzalutamide is predicted to decrease the exposure to calcium channel blockers (amlodipine, felodipine, lacidipine, lercanidipine, nicardipine, nifedipine, nimodipine). Monitor and adjust dose.
Amlodipine - decreases exposure
Apalutamide is predicted to decrease the exposure to calcium channel blockers (amlodipine, felodipine, lacidipine, lercanidipine, nicardipine, nimodipine). Monitor and adjust dose.
Amlodipine - increases exposure
Dronedarone is predicted to increase the exposure to calcium channel blockers (amlodipine, felodipine, lacidipine, lercanidipine, nicardipine, nifedipine, nimodipine). Monitor and adjust dose.
Amlodipine - increases exposure
Antifungals, azoles (fluconazole, isavuconazole, posaconazole) are predicted to increase the exposure to calcium channel blockers (amlodipine, felodipine, lacidipine, lercanidipine, nicardipine, nifed
Amlodipine - increases exposure
Miconazole is predicted to increase the exposure to calcium channel blockers (amlodipine, felodipine, lacidipine, lercanidipine, nicardipine, nifedipine, nimodipine, verapamil). Use with caution and a
Unknown (4)
Amlodipine - increases risk of hypotension
Intravenous magnesium potentially increases the risk of hypotension when given with calcium channel blockers (amlodipine, felodipine, lacidipine, lercanidipine, nicardipine, nifedipine, nimodipine, ve
Amlodipine - increases risk of angioedema
Temsirolimusispredictedtoincreasetheriskofangioedema whengivenwithcalciumchannelblockers(amlodipine, felodipine,lacidipine,lercanidipine,nicardipine,nifedipine, nimodipine).oTheoretical https://www.fa
Simvastatin - increases exposure
Amlodipine slightly increases the exposure to statins (simvastatin). Adjust simvastatin dose, p. 224.
Statins - increases exposure
Amlodipine slightly increases the exposure to statins (simvastatin). Adjust simvastatin dose, p. 224.
Data from BNF 85 (British National Formulary). This is not a substitute for professional medical advice. Matched via: exact
About amlodipine
Amlodipine is a medicine that helps lower blood pressure and improve blood flow by relaxing the blood vessels.
What it treats
- high blood pressure (hypertension)
- chest pain (angina)
How it works
It works by blocking calcium from entering the cells of the heart and blood vessels, which helps to relax and widen them.
Who it's for
Amlodipine is for adults who need help managing high blood pressure or chest pain.
Drug class
Calcium channel blockers
Cautions
- • Be careful if you are taking other medications that lower blood pressure.
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
About atenolol
Atenolol is a type of medicine called a beta blocker. It helps manage heart-related conditions.
What it treats
- high blood pressure (hypertension)
- chest pain (angina)
- heart rhythm disorders
How it works
Atenolol works by slowing down the heart rate and reducing the heart's workload, which helps lower blood pressure and improve blood flow.
Who it's for
It is for adults who need treatment for certain heart conditions.
Drug class
Beta blockers
Cautions
- • Be careful if you are taking other medicines that slow your heart rate.
- • Be cautious if you take medicines that lower blood pressure.
AI-assisted summary grounded in BNF data - general information only, not medical advice. Always confirm with your pharmacist or doctor.
Clinical monograph: Amlodipine
BNF-referencedAmlodipine is a dihydropyridine calcium channel blocker primarily used for the treatment of hypertension and angina. It works by relaxing blood vessels, which lowers blood pressure and improves blood flow to the heart.
Indications
- Hypertension
- Angina
Dosage
Children: Children 1 month to 11 years: Initially 100–200 micrograms/kg once daily; increased if necessary at intervals of 1–2 weeks up to a maximum of 5 mg once daily.
Adults: Initially, 5 mg once daily, increased if necessary to a maximum of 10 mg once daily.
Mechanism of action
Amlodipine inhibits the influx of calcium ions into vascular smooth muscle and cardiac muscle cells, leading to vasodilation and decreased myocardial oxygen demand.
Pharmacodynamics
Amlodipine causes a reduction in systemic vascular resistance and arterial pressure, resulting in decreased workload on the heart. It has a long duration of action due to its slow onset and prolonged effects.
Pharmacokinetics
Amlodipine is well absorbed orally, with peak plasma concentrations occurring 6-12 hours after administration. It has a half-life of approximately 30-50 hours, allowing for once-daily dosing. It is extensively metabolized in the liver and excreted primarily in the urine.
Contra-indications
- Cardiogenic shock
- Aortic stenosis
Adverse effects
- Asthenia
- Constipation
- Diarrhoea
- Drowsiness
- Dyspnoea
- Gastrointestinal disturbances
Interactions
- Grapefruit juice (severe increase in exposure)
- Enzalutamide (moderate decrease in exposure)
- Apalutamide (moderate decrease in exposure)
- Dronedarone (moderate increase in exposure)
- Antifungals (azoles) (moderate increase in exposure)
- Miconazole (moderate increase in exposure)
- Cobicistat (moderate increase in exposure)
- Crizotinib (moderate increase in exposure)
- Dabrafenib (moderate decrease in exposure)
- Idelalisib (moderate increase in exposure)
Precautions
- Caution in hepatic impairment (risk of increased exposure)
- Monitor for sudden withdrawal effects, which may exacerbate myocardial ischaemia
Pregnancy
Manufacturer advises caution due to limited data on safety.
Breast-feeding
Manufacturer advises to avoid; no information available.
Storage
Store at room temperature, away from moisture and heat.
Formulations
- Amlodipine 5mg/5ml oral solution (sugar-free)
- Amlodipine 10mg/5ml oral solution (sugar-free)
- Amlodipine 5 mg tablets
- Amlodipine 10 mg tablets
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: Atenolol
BNF-referencedAtenolol is a selective beta-1 adrenergic antagonist used primarily for the treatment of hypertension and certain arrhythmias. It reduces heart rate and myocardial oxygen demand.
Indications
- Hypertension
- Arrhythmias
- Angina pectoris
- Post-myocardial infarction
Dosage
Children: Child 12–17 years: 25–50 mg once daily. For children aged 1 month–11 years, 0.5–2 mg/kg once daily, given in 2 divided doses.
Adults: Usual starting dose for hypertension is 25-50 mg once daily, which can be adjusted based on response. Maximum daily dose is 100 mg.
Mechanism of action
Atenolol selectively blocks beta-1 adrenergic receptors in the heart, leading to decreased heart rate, myocardial contractility, and conduction velocity, thus reducing cardiac workload and oxygen consumption.
Pharmacodynamics
Atenolol lowers blood pressure and heart rate through its action on the heart, reducing the effects of catecholamines. It also decreases renin release from the kidneys, contributing to its antihypertensive effect.
Pharmacokinetics
Atenolol is well absorbed after oral administration, with a bioavailability of approximately 50%. It is primarily eliminated via the kidneys, and its half-life is about 6-9 hours. Dose adjustment may be necessary in renal impairment.
Adverse effects
- Gastrointestinal disorders
- Anxiety
- Decreased appetite
- Altered mood
- Postural hypotension
- Impaired concentration
- Drowsiness
- Hyperhidrosis
- Skin reactions
- Thrombocytopenia
- Arrhythmias
- Constipation
- Hypersensitivity
- Lupus-like syndrome
- Dry mouth
- Dyspepsia
- Flushing
- Oedema
- Pallor
- Pulmonary oedema
- Seizures
- Speech disorder
- Taste altered
- Abnormal thinking
- Urinary retention
- Cardiac arrest
- Extravasation necrosis
- Angioedema
- Coronary vasospasm
- Hyperkalaemia
- Metabolic acidosis
Interactions
- Propafenone (increases risk of cardiovascular adverse effects)
Precautions
- Care must be taken to ensure the correct drug is prescribed and dispensed.
- Use caution in renal impairment.
- Breastfeeding is advised to be avoided.
Pregnancy
Manufacturer advises caution.
Breast-feeding
Manufacturer advises avoidance.
Storage
Store in a cool, dry place, away from direct sunlight.
Formulations
- Atenolol 25 mg tablets
- Atenolol 50 mg tablets
- Atenolol 100 mg tablets
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: Amlodipine
PubChem CID 2162Molecular formula: C20H25ClN2O5
Mechanism of action
**Mechanism of action on blood pressure** Amlodipine is considered a peripheral arterial vasodilator that exerts its action directly on vascular smooth muscle to lead to a reduction in peripheral vascular resistance, causing a decrease in blood pressure. Amlodipine is a dihydropyridine calcium antagonist (calcium ion antagonist or slow-channel blocker) that inhibits the influx of calcium ions into both vascular smooth muscle and cardiac muscle. Experimental studies imply that amlodipine binds to both _dihydropyridine_ and _nondihydropyridine_ binding sites, located on cell membranes. The contraction of cardiac muscle and vascular smooth muscle are dependent on the movement of extracellular calcium ions into these cells by specific ion channels. Amlodipine blocks calcium ion influx across cell membranes with selectivity. A stronger effect of amlodipine is exerted on vascular smooth muscle cells than on cardiac muscle cells. Direct actions of amlodipine on vascular smooth muscle result in reduced blood pressure. **Mechanism of action in angina** The exact mechanism by which amlodipine relieves the symptoms of angina have not been fully elucidated to this date, however, the mechanism of action is likely twofold: Amlodipine has a dilating effect on peripheral arterioles, reducing the total peripheral resistance (afterload) against which the cardiac muscle functions. Since the heart rate remains stable during amlodipine administration, the reduced work of the heart reduces both myocardial energy use and oxygen requirements. Dilatation of the main coronary arteries and coronary arterioles, both in healthy and ischemic areas, is another possible mechanism of amlodipine reduction of blood pressure. The dilatation causes an increase in myocardial oxygen delivery in patients experiencing coronary artery spasm (Prinzmetal's or variant angina) and reduces coronary vasoconstriction caused by smoking. Amlodipine is a dihydropyridine calcium antagonist (calcium ion antagonist or slow-channel blocker) that inhibits the transmembrane influx of calcium ions into vascular smooth muscle and cardiac muscle. Experimental data suggest that amlodipine binds to both dihydropyridine and nondihydropyridine binding sites. The contractile processes of cardiac muscle and vascular smooth muscle are dependent upon the movement of extracellular calcium ions into these cells through specific ion channels. Amlodipine inhibits calcium ion influx across cell membranes selectively, with a greater effect on vascular smooth muscle cells than on cardiac muscle cells. Negative inotropic effects can be detected in vitro but such effects have not been seen in intact animals at therapeutic doses. Serum calcium concentration is not affected by amlodipine. Within the physiologic pH range, amlodipine is an ionized compound (pKa=8.6), and its kinetic interaction with the calcium channel receptor is characterized by a gradual rate of association and dissociation with the receptor binding site, resulting in a gradual onset of effect. Recent studies have suggested that cytokines are capable of modifying cardiovascular function and that drugs used in the treatment of heart failure have various modulating properties on the production of cytokines. More recently, we have found that ouabain induces the production of cytokines. This study was performed to examine the effects of calcium channel blockers on the production of cytokines induced by a cardiac glycoside. Human peripheral blood mononuclear cells (PBMC) were obtained from healthy volunteers. PBMC were cultured in 0.1, 1, 10, and 30 umol/L amlodipine, diltiazem, and nifedipine in presence of 1 umol/L ouabain. After 24 hr of incubation, IL-1alpha, IL-1beta, IL-6, and TNF-alpha were measured in the culture supernatants by enzyme-linked immunosorbent assay. Ouabain induced the production of IL-1alpha, IL-1beta and IL-6, but not of TNF-alpha. Induction of IL-1beta was most prominent. The production of IL-1alpha, and IL-6 wa
Pharmacodynamics
**General pharmacodynamic effects** Amlodipine has a strong affinity for cell membranes, modulating calcium influx by inhibiting selected membrane calcium channels. This drug's unique binding properties allow for its long-acting action and less frequent dosing regimen,. **Hemodynamic effects** After the administration of therapeutic doses of amlodipine to patients diagnosed with hypertension, amlodipine causes vasodilation, which results in a reduction of supine and standing blood pressure. During these blood pressure reductions, there are no clinically significant changes in heart rate or plasma catecholamine levels with long-term use. Acute intravenous administration of amlodipine reduces arterial blood pressure and increases heart rate in patients with chronic stable angina, however, chronic oral administration of amlodipine in clinical studies did not cause clinically significant alterations in heart rate or blood pressures in patients diagnosed with angina and normal blood pressure. With long-term, once daily oral administration, antihypertensive effectiveness is maintained for at least 24 hours. **Electrophysiologic effects** Amlodipine does not change sinoatrial (SA) nodal function or atrioventricular (AV) conduction in animals or humans. In patients who were diagnosed with chronic stable angina, the intravenous administration of 10 mg of amlodipine did not cause clinically significant alterations A-H and H-V conduction and sinus node recovery time after cardiac pacing. Patients administered amlodipine with concomitant beta-blockers produced similar results. In clinical trials in which amlodipine was given in combination with beta-blockers to patients diagnosed with hypertension or angina, no adverse effects on electrocardiographic parameters were noted. In clinical studies comprised of angina patients alone, amlodipine did not change electrocardiographic intervals or produce high degrees of AV block. **Effects on angina** Amlodipine relieves the symptoms of chest pain associated with angina. In patients diagnosed with angina, daily administration of a single amlodipine dose increases total exercise time, the time to angina onset, and the time to 1 mm ST-segment depression on ECG studies, decreases anginal attack frequency, and decreases the requirement for nitroglycerin tablets.
Biological pathways
Source: PubChem (NCBI) · pathways from PathBank, Reactome, WikiPathways & PharmGKB.
Molecular reference: Atenolol
PubChem CID 2249Molecular formula: C14H22N2O3
Mechanism of action
Atenolol is a cardioselective beta-blocker, called such because it selectively binds to the β1-adrenergic receptor as an antagonist up to a reported 26 fold more than β2 receptors. Selective activity at the β1 receptor produces cardioselectivity due to the higher population of this receptor in cardiac tissue. Some binding to β2 and possibly β3 receptors can still occur at therapeutic dosages but the effects mediated by antagonizing these are significantly reduced from those of non-selective agents. β1 and β2 receptors are G<sub>s</sub> coupled therefore antagonism of their activation reduces activity of adenylyl cyclase and its downstream signalling via cyclic adenosime monophosphate and protein kinase A (PKA). In cardiomyocytes PKA is thought to mediate activation of L-type calcium channels and ryanodine receptors through their phosphorylation. L-type calcium channels can then provide an initial rise in intracellular calcium and trigger the ryanodine receptors to release calcium stored in the sarcoplasmic reticulum (SR) and increased contractility. PKA also plays a role in the cessation of contraction by phosphorylating phospholamban which in turn increases the affinity of SR Ca<sup>2+</sup> ATPase to increase reuptake of calcium into the SR. It also phophorylates troponin I to reduce affinity of the protein for calcium. Both of these events lead to a reduction in contraction which, when coupled with the initial increase in contraction, allows for faster cycling and consequently higher heart rate with increased contractility. L-type calcium channels are also a major contributor to cardiac depolarization and their activation can increase frequency of action potentials and possibly the incidence of ectopic potentials. Similar inihibitory events occur in the bronchial smooth muscle to mediate relaxation including phosphorylation of myosin light-chain kinase, reducing its affinity for calcium. PKA also inhibits the excitatory G<sub>q</sub> coupled pathway by phosphorylating the inositol trisphosphate receptor and phospholipase C resulting in inhibition of intracellular calcium release. Antagonism of this activity by beta-blocker agents like atenolol can thus cause increased bronchoconstriction. By inhibiting myocardial beta 1-adrenergic receptors, atenolol produces negative chronotropic and inotropic activity. The negative chronotropic action of atenolol on the sinoatrial node results in a decrease in the rate of sinoatrial node discharge and an increase in recovery time, thereby decreasing resting and exercise stimulated heart rate and reflex orthostatic tachycardia by about 25-35%. High doses of the drug may produce sinus arrest, especially in patients with sinoatrial node disease (eg, sick sinus syndrome). Atenolol also slows conduction in the atrioventricular nose. Although stroke index may be increased moderately by about 10%, atenolol usually reduces cardiac output by about 20% probably secondary to its effect on heart rate. The decrease in myocardial contractability and heart rate, as well as the reduction in blood pressure, produced by atenolol generally lead to a reduction in myocardial oxygen consumption which accounts for the effectiveness of the drug in chronic stable angina pectoris; however, atenolol can increase oxygen requirements by increasing left ventricular fiber length and end-diastolic pressure, particularly in patients with cardiac failure. Atenolol suppresses plasma renin activity and suppresses the renin aldosterone angiotensin system. The toxic actions of beta-blockers appear to be related to properties such as membrane depressant activity and possibly due to actions on beta-adrenoceptors distinct from those in the cardiovascular system.
Pharmacodynamics
Atenolol is a cardio-selective beta-blocker and as such exerts most of its effects on the heart. It acts as an antagonist to sympathetic innervation and prevents increases in heart rate, electrical conductivity, and contractility in the heart due to increased release of norepinephrine from the peripheral nervous system. Together the decreases in contractility and rate produce a reduction in cardiac output resulting in a compensatory increase in peripheral vascular resistance in the short-term. This response later declines to baseline with long-term use of atenolol. More importantly, this reduction in the work demanded of the myocardium also reduces oxygen demand which provides therapeutic benefit by reducing the mismatch of oxygen supply and demand in settings where coronary blood flow is limited, such as in coronary atherosclerosis. Reducing oxygen demand, particularly due to exercise, can reduce the frequency of angina pectoris symptoms and potentially improve survival of the remaining myocardium after myocardial infarction. The decrease in rate of sinoatrial node potentials, electrical conduction, slowing of potentials traveling through the atrioventricular node, and reduced frequency of ectopic potentials due to blockade of adrenergic beta receptors has led to benefit in arrhythmic conditions such as atrial fibrillation by controlling the rate of action potential generation and allowing for more effective coordinated contractions. Since a degree of sympathetic activity is necessary to maintain cardiac function, the reduced contractility induced by atenolol may precipitate or worsen heart failure, especially during volume overload. The effects of atenolol on blood pressure have been established, although it is less effective than alternative beta-blockers, but the mechanism has not yet been characterized. As a β1 selective drug, it does not act via the vasodilation produced by non-selective agents. Despite this there is a sustained reduction in peripheral vascular resistance, and consequently blood pressure, alongside a decrease in cardiac output. It is thought that atenolol's antihypertensive activity may be related to action on the central nervous system (CNS) or it's inhibition of the renin-aldosterone-angiotensin system rather than direct effects on the vasculature. Atenolol produces CNS effects similar to other beta-blockers, but does so to a lesser extent due to reduces ability to cross the blood-brain barrier. It has the potential to produce fatigue, depression, and sleep disturbances such as nightmares or insomnia. The exact mechanisms behind these have not been characterized but their occurrence must be considered as they represent clinically relevant adverse effects. Atenolol exerts some effects on the respiratory system although to a much lesser extent than non-selective beta-blockers. Interaction with β2 receptors in the airways can produce bronchoconstriction by blocking the relaxation of bronchial smooth muscle mediated by the sympathetic nervous system. The same action can interfere with β-agonist therapies used in asthma and chronic obstructive pulmonary disease. Unlike some other beta-blocker drugs, atenolol does not have intrinsic sympathomimetic or membrane stabilizing activity nor does it produce changes in glycemic control.
Biological pathways
Source: PubChem (NCBI) · pathways from PathBank, Reactome, WikiPathways & PharmGKB.
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