(amlodipine · DailyMed)
EXTOR TABLETS 10+160
AMLODIPINE AND VALSARTAN
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 19:40:11 · updated 2026-09-15 02:20:18
Drug Interactions
24Pharmacodynamic Warnings
Valsartan appears in TABLE 7: Drugs that cause first dose hypotension
Amlodipine appears in TABLE 8: Drugs that cause hypotension
Valsartan appears in TABLE 8: Drugs that cause hypotension
Valsartan appears in TABLE 16: Drugs that increase serum potassium
Severe (1)
Amlodipine - increases exposure
Grapefruit juice very slightly increases the exposure to amlodipine. Avoid.
Moderate (18)
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 (5)
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.
Valsartan - affects exposure
Taxanes (cabazitaxel) are predicted to affect the exposure to valsartan. Manufacturer advises take 12 hours before or 3 hours after cabazitaxel. Antacids SEPARATION OF ADMINISTRATION Aluminium- and ma
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 valsartan
Valsartan is a medication that helps lower high blood pressure and protect heart function.
What it treats
- high blood pressure (hypertension)
- heart failure
How it works
Valsartan works by blocking a substance in the body that causes blood vessels to tighten, helping them relax and lower blood pressure.
Who it's for
Valsartan is for adults who need help managing high blood pressure or heart failure.
Drug class
Angiotensin-II receptor antagonists
Cautions
- • Be careful if you are taking other medications that can lower blood pressure.
- • Avoid drugs that may cause low blood pressure.
- • Use caution with medications that can raise 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: 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: Valsartan
BNF-referencedValsartan is an antihypertensive medication belonging to the class of angiotensin II receptor antagonists (ARBs). It is primarily used to manage hypertension and to reduce cardiovascular events in patients with established atherosclerotic cardiovascular disease. By blocking the action of angiotensin II, a potent vasoconstrictor, valsartan helps to lower blood pressure and has protective effects on the heart and kidneys.
Indications
- Hypertension
- Heart failure
- Prevention of cardiovascular events in patients with established atherosclerotic cardiovascular disease
Dosage
Children: For neonates, 250–500 micrograms/kg every 8–12 hours, increased if necessary to 2–3
Adults: Initially 80 mg once daily, increased if necessary up to a maximum of 320 mg daily, based on clinical response.
Mechanism of action
Valsartan selectively binds to angiotensin receptor 1 (AT1), preventing angiotensin II from exerting its hypertensive effects, such as vasoconstriction and aldosterone secretion. This blockade results in reduced blood pressure, lower aldosterone levels, decreased cardiac activity, and increased sodium excretion. Additionally, valsartan modulates the renin-angiotensin-aldosterone system (RAAS), which is critical in cardiovascular and kidney function regulation.
Pharmacodynamics
Valsartan inhibits the hypertensive effects of angiotensin II, with an oral dose of 80 mg achieving approximately 80% inhibition of the pressor effect at peak, and about 30% inhibition persisting for 24 hours. It minimally affects plasma aldosterone levels and does not significantly alter total cholesterol, triglycerides, serum glucose, or uric acid levels. Hypotension is rare, but caution is advised in patients with an activated renin-angiotensin system, such as those on high-dose diuretics or with heart failure.
Pharmacokinetics
Valsartan is well absorbed after oral administration, with peak plasma concentrations occurring within 2 to 4 hours. It has an elimination half-life of approximately 6 hours, with a bioavailability of around 25% due to first-pass metabolism. Valsartan is primarily eliminated via the feces and to a lesser extent through urine, with renal impairment not significantly affecting its pharmacokinetics.
Contra-indications
- Biliary obstructive disorders
- Cholestasis
Adverse effects
- Anaemia
- Arrhythmias
- Chest pain
- Cystitis
- Depression
- Dyspnoea
- Flatulence
- Gastrointestinal disturbances
- Interstitial lung disease
- Liver disorder
- Pain in extremities
- Sepsis
- Taste alteration
- Tendon pain
- Visual impairment
Interactions
- Taxanes (unknown effect on exposure)
Precautions
- Caution in patients with heart failure
- Monitor for symptomatic hypotension in patients with activated renin-angiotensin system
- Adjust dose in hepatic impairment
- Initial lower doses in renal impairment
Pregnancy
Use only if potential benefit justifies potential risk to the fetus. Contraindicated in the second and third trimesters due to potential harm.
Breast-feeding
Not recommended due to potential adverse effects on the infant.
Storage
Store at room temperature, away from moisture and heat.
Formulations
- Valsartan 40 mg capsules
- Valsartan 80 mg capsules
- 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.
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: Valsartan
PubChem CID 60846Molecular formula: C24H29N5O3
Mechanism of action
Valsartan belongs to the angiotensin II receptor blocker (ARB) family of drugs, which selectively bind to angiotensin receptor 1 (AT1) and prevent angiotensin II from binding and exerting its hypertensive effects. These include vasoconstriction, stimulation and synthesis of aldosterone and ADH, cardiac stimulation, and renal reabsorption of sodium among others. Overall, valsartan's physiologic effects lead to reduced blood pressure, lower aldosterone levels, reduced cardiac activity, and increased excretion of sodium. Valsartan also affects the renin-angiotensin aldosterone system (RAAS), which plays an important role in hemostasis and regulation of kidney, vascular, and cardiac functions. Pharmacological blockade of RAAS via AT1 receptor blockade inhibits negative regulatory feedback within RAAS which is a contributing factor to the pathogenesis and progression of cardiovascular disease, heart failure, and renal disease. In particular, heart failure is associated with chronic activation of RAAS, leading to inappropriate fluid retention, vasoconstriction, and ultimately a further decline in left ventricular function. ARBs have been shown to have a protective effect on the heart by improving cardiac function, reducing afterload, increasing cardiac output and prevent ventricular hypertrophy. The angiotensin-converting enzyme inhibitor (ACEI) class of medications (which includes drugs such as [ramipril], [lisinopril], and [perindopril]) inhibits the conversion of angiotensin I to angiotensin II by inhibiting the ACE enzyme but does not prevent the formation of all angiotensin II. ARB activity is unique in that it blocks all angiotensin II activity, regardless of where or how it was synthesized. Valsartan is commonly used for the management of hypertension, heart failure, and type 2 diabetes-associated nephropathy, particularly in patients who are unable to tolerate ACE inhibitors. ARBs such as valsartan have been shown in a number of large-scale clinical outcomes trials to improve cardiovascular outcomes including reducing risk of myocardial infarction, stroke, the progression of heart failure, and hospitalization. Valsartan also slows the progression of diabetic nephropathy due to its renoprotective effects. Improvements in chronic kidney disease with valsartan include both clinically and statistically significant decreases in urinary albumin and protein excretion in patients diagnosed with type 2 diabetes and in nondiabetic patients diagnosed with chronic kidney disease. Valsartan also binds to the AT2 receptor, however AT2 is not known to be associated with cardiovascular homeostasis like AT1. Valsartan has about 20,000-fold higher affinity for the AT1 receptor than for the AT2 receptor. The increased plasma levels of angiotensin II following AT1 receptor blockade with valsartan may stimulate the unblocked AT2 receptor. Valsartan, a nonpeptide tetrazole derivative, is an angiotensin II type 1 (AT1) receptor antagonist. Valsartan has pharmacologic actions similar to those of losartan; however, unlike losartan, valsartan is not a prodrug and its pharmacologic activity does not depend on hydrolysis in the liver. Valsartan blocks the physiologic actions of angiotensin II, including vasoconstrictor and aldosterone-secreting effects, by selectively inhibiting access of angiotensin II to AT1 receptors within many tissues, including vascular smooth muscle and the adrenal gland. By comparison, angiotensin-converting enzyme (ACE, kininase II) inhibitors block the conversion of angiotensin I to angiotensin II; however, the blockade of angiotensin II production by ACE inhibitors is not complete since the vasopressor hormone can be formed via other enzymes that are not blocked by ACE inhibitors. Because valsartan, unlike ACE inhibitors, does not inhibit ACE, the drug does not interfere with response to bradykinins and substance P; a beneficial consequence is the absence of certain ACE inhibitor-induced adverse effects (e.g., cough),
Pharmacodynamics
Valsartan inhibits the pressor effects of angiotensin II with oral doses of 80 mg inhibiting the pressor effect by about 80% at peak with approximately 30% inhibition persisting for 24 hours. Removal of the negative feedback of angiotensin II causes a 2- to 3-fold rise in plasma renin and consequent rise in angiotensin II plasma concentration in hypertensive patients. Minimal decreases in plasma aldosterone were observed after administration of valsartan. In multiple-dose studies in hypertensive patients, valsartan had no notable effects on total cholesterol, fasting triglycerides, fasting serum glucose, or uric acid. **Hypotension** Excessive hypotension was rarely seen (0.1%) in patients with uncomplicated hypertension treated with valsartan alone. In patients with an activated renin-angiotensin system, such as volume- and/or salt-depleted patients receiving high doses of diuretics, symptomatic hypotension may occur. This condition should be corrected prior to administration of valsartan, or the treatment should start under close medical supervision. Caution should be observed when initiating therapy in patients with heart failure. Patients with heart failure given valsartan commonly have some reduction in blood pressure, but discontinuation of therapy because of continuing symptomatic hypotension usually is not necessary when dosing instructions are followed. In controlled trials in heart failure patients, the incidence of hypotension in valsartan-treated patients was 5.5% compared to 1.8% in placebo-treated patients. If excessive hypotension occurs, the patient should be placed in the supine position and, if necessary, given an intravenous infusion of normal saline. A transient hypotensive response is not a contraindication to further treatment, which usually can be continued without difficulty once the blood pressure has stabilized. **Impaired Renal Function** Changes in renal function including acute renal failure can be caused by drugs that inhibit the renin-angiotensin system and by diuretics. Patients whose renal function may depend in part on the activity of the renin-angiotensin system (e.g., patients with renal artery stenosis, chronic kidney disease, severe congestive heart failure, or volume depletion) may be at particular risk of developing acute renal failure on valsartan. Monitor renal function periodically in these patients. Consider withholding or discontinuing therapy in patients who develop a clinically significant decrease in renal function on valsartan. **Hyperkalemia** Some patients with heart failure have developed increases in potassium. These effects are usually minor and transient, and they are more likely to occur in patients with pre-existing renal impairment. Dosage reduction and/or discontinuation of valsartan may be required.
Biological pathways
Source: PubChem (NCBI) · pathways from PathBank, Reactome, WikiPathways & PharmGKB.
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