Calcium channel blockers

Last updated: September 12, 2024

Calcium channel blockers

Cardio

Cardio

Introduction to the cardiovascular system
Anatomy of the heart
Anatomy of the coronary circulation
Anatomy clinical correlates: Heart
Anatomy of the superior mediastinum
Anatomy of the inferior mediastinum
Anatomy clinical correlates: Mediastinum
Development of the cardiovascular system
Fetal circulation
Cardiac muscle histology
Artery and vein histology
Arteriole, venule and capillary histology
Cardiovascular system anatomy and physiology
Lymphatic system anatomy and physiology
Coronary circulation
Blood pressure, blood flow, and resistance
Pressures in the cardiovascular system
Laminar flow and Reynolds number
Resistance to blood flow
Compliance of blood vessels
Control of blood flow circulation
Microcirculation and Starling forces
Measuring cardiac output (Fick principle)
Stroke volume, ejection fraction, and cardiac output
Cardiac contractility
Frank-Starling relationship
Cardiac preload
Cardiac afterload
Law of Laplace
Cardiac and vascular function curves
Altering cardiac and vascular function curves
Cardiac cycle
Cardiac work
Pressure-volume loops
Changes in pressure-volume loops
Physiological changes during exercise
Cardiovascular changes during hemorrhage
Cardiovascular changes during postural change
Normal heart sounds
Abnormal heart sounds
Action potentials in myocytes
Action potentials in pacemaker cells
Excitability and refractory periods
Cardiac excitation-contraction coupling
Cardiac conduction system
Cardiac conduction velocity
ECG basics
ECG rate and rhythm
ECG intervals
ECG QRS transition
ECG axis
ECG normal sinus rhythm
ECG cardiac infarction and ischemia
ECG cardiac hypertrophy and enlargement
Baroreceptors
Chemoreceptors
Renin-angiotensin-aldosterone system
Arterial disease
Angina pectoris
Stable angina
Unstable angina
Myocardial infarction
Prinzmetal angina
Coronary steal syndrome
Peripheral artery disease
Subclavian steal syndrome
Aneurysms
Aortic dissection
Vasculitis
Behcet's disease
Kawasaki disease
Hypertension
Hypertensive emergency
Renal artery stenosis
Coarctation of the aorta
Cushing syndrome
Conn syndrome
Pheochromocytoma
Polycystic kidney disease
Hypotension
Orthostatic hypotension
Abetalipoproteinemia
Familial hypercholesterolemia
Hypertriglyceridemia
Hyperlipidemia
Chronic venous insufficiency
Thrombophlebitis
Deep vein thrombosis
Lymphedema
Lymphangioma
Shock
Vascular tumors
Human herpesvirus 8 (Kaposi sarcoma)
Angiosarcomas
Persistent truncus arteriosus
Transposition of the great vessels
Total anomalous pulmonary venous return
Tetralogy of Fallot
Hypoplastic left heart syndrome
Patent ductus arteriosus
Ventricular septal defect
Atrial septal defect
Atrial flutter
Atrial fibrillation
Premature atrial contraction
Atrioventricular nodal reentrant tachycardia (AVNRT)
Wolff-Parkinson-White syndrome
Ventricular tachycardia
Brugada syndrome
Premature ventricular contraction
Long QT syndrome and Torsade de pointes
Ventricular fibrillation
Atrioventricular block
Bundle branch block
Pulseless electrical activity
Tricuspid valve disease
Pulmonary valve disease
Mitral valve disease
Aortic valve disease
Dilated cardiomyopathy
Restrictive cardiomyopathy
Hypertrophic cardiomyopathy
Heart failure
Cor pulmonale
Endocarditis
Myocarditis
Rheumatic heart disease
Pericarditis and pericardial effusion
Cardiac tamponade
Dressler syndrome
Cardiac tumors
Acyanotic congenital heart defects: Pathology review
Cyanotic congenital heart defects: Pathology review
Atherosclerosis and arteriosclerosis: Pathology review
Coronary artery disease: Pathology review
Peripheral artery disease: Pathology review
Valvular heart disease: Pathology review
Cardiomyopathies: Pathology review
Heart failure: Pathology review
Supraventricular arrhythmias: Pathology review
Ventricular arrhythmias: Pathology review
Heart blocks: Pathology review
Aortic dissections and aneurysms: Pathology review
Pericardial disease: Pathology review
Endocarditis: Pathology review
Hypertension: Pathology review
Shock: Pathology review
Vasculitis: Pathology review
Cardiac and vascular tumors: Pathology review
Dyslipidemias: Pathology review
Sympatholytics: Alpha-2 agonists
Adrenergic antagonists: Presynaptic
Adrenergic antagonists: Alpha blockers
Adrenergic antagonists: Beta blockers
ACE inhibitors, ARBs and direct renin inhibitors
Thiazide and thiazide-like diuretics
Calcium channel blockers
cGMP mediated smooth muscle vasodilators
Class I antiarrhythmics: Sodium channel blockers
Class II antiarrhythmics: Beta blockers
Class III antiarrhythmics: Potassium channel blockers
Class IV antiarrhythmics: Calcium channel blockers and others
Lipid-lowering medications: Statins
Lipid-lowering medications: Fibrates
Miscellaneous lipid-lowering medications
Positive inotropic medications
Cardiomyopathies: Clinical
Congenital heart defects: Clinical
Valvular heart disease: Clinical
Infective endocarditis: Clinical
Pericardial disease: Clinical
Chest trauma: Clinical
Hypertension: Clinical
Pulmonary hypertension
Aortic aneurysms and dissections: Clinical
Raynaud phenomenon
Peripheral vascular disease: Clinical
Heart failure: Clinical
Coronary artery disease: Clinical
Deep vein thrombosis and pulmonary embolism: Pathology review
Fascia, vessels and nerves of the upper limb
Vessels and nerves of the forearm
Vessels and nerves of the hand
Anatomy of the abdominal viscera: Blood supply of the foregut, midgut and hindgut
Fascia, vessels and nerves of the lower limb
Vessels and nerves of the gluteal region and posterior thigh
Anatomy of the popliteal fossa
Ventilation
Ventilation-perfusion ratios and V/Q mismatch
Gas exchange in the lungs, blood and tissues
Oxygen binding capacity and oxygen content
Oxygen-hemoglobin dissociation curve
Carbon dioxide transport in blood
Trypanosoma cruzi (Chagas disease)
Yellow fever virus
Rickettsia rickettsii (Rocky Mountain spotted fever) and other Rickettsia species
Arteriovenous malformation
Cerebral circulation

Transcript

Watch video only

Calcium entry blockers, or calcium channel blockers - CCBs for short - are vasodilators, or medications that promote dilation of blood vessels. These medications are mainly used to treat hypertension, or high blood pressure, and angina pectoris, which is a pain caused by reduced blood flow to the heart muscle. Now, by definition, blood pressure is the force that blood exerts on the walls of blood vessels and it’s basically what keeps blood flowing and perfusing tissues to deliver oxygen and nutrients. Hypertension happens when this pressure is higher than it should be. In most cases, the cause is unknown.

But basically, we can do a number of things to help lower the blood pressure. First, we can decrease the heart rate or the myocardial contractility, so the heart pumps less blood into the blood vessels. In other words, diminish the amount of blood that exerts force upon the same area. Or, we can vasodilate the peripheral blood vessels, which increases the area for the same amount of liquid that exerts force. Angina, on the other hand, is a type of chest pain caused by insufficient oxygen supply to the myocardium to meet its demand. Generally, the underlying cause is the presence of atheromatous plaques in the coronary arteries which decreases the blood flow to the heart. So, to help diminish the symptoms, it’s important to decrease the oxygen demand of the heart, again by decreasing heart rate or myocardial contractility; and increasing the oxygen supply by vasodilating the coronary arteries.

Now, let’s look at how calcium channels affect heart function. First off, the heart rate depends on the rate that the pacemaker cells in the sinus and atrioventricular node generate action potentials. These action potentials start automatically when sodium channels slowly let in a stream of sodium ions, which causes the membrane potential of the pacemaker cells to become more positive. When this reaches the threshold membrane potential, it’s the cue for voltage-gated calcium channels to open, allowing a large influx of calcium ions, which depolarizes it further. Then, these calcium channels close and potassium channels open to let potassium out of the cell, so the membrane potential goes back down, or repolarizes. Now, each cycle of depolarization and repolarization represents a single heartbeat, so how fast this process repeats in one minute determines the heart rate.

Okay, so now let’s look at the cardiac muscle and vascular smooth muscle contraction, which also depends on calcium. Voltage-gated calcium channels in the membrane of the muscle cell open when they receive an action potential and this allows calcium ions to flow into the cell from the extracellular space. The extracellular calcium causes the release of intracellular calcium ions stored in the sarcoplasmic reticulum. All these calcium ions then bind to troponin regulatory proteins, which change shape and release the thin filaments in the muscle fiber. This allows the thin filament to bind to the thick filament, eventually leading to muscle contraction. In the heart, this means greater myocardial contractility. In blood vessels, this means vasoconstriction.

Okay, so calcium channel blockers, as the name suggests, block voltage-gated calcium channels. We can divide calcium channel blockers into dihydropyridines and non-dihydropyridines. Dihydropyridines include medications that end with the suffix “-dipine,” like nifedipine, nicardipine, amlodipine, and nimodipine. These medications act mainly on the smooth muscles of the blood vessels. Non-dihydropyridines include verapamil and diltiazem, which both have a greater effect on the heart compared to dihydropyridines, but are less effective for vasodilation.

So, let’s start with the dihydropyridines, which are mainly used to treat hypertension. They preferentially exert their effects on arterial smooth muscle, and nifedipine is the prototype of this class. Besides treating hypertension, dihydropyridines are also commonly used to treat other disorders. Since they can also dilate coronary arteries, they are effective for preventing angina. They can treat Raynaud Phenomenon, a disease caused by vasoconstriction of the arteries in the tips of fingers, causing them to turn white, then blue, and finally red. Lastly, they are used to prevent cerebral vasospasms after a subarachnoid hemorrhage.

Key Takeaways

Calcium channel blockers (CCBs) are a class of drugs that cause vasodilation, and are mainly used to treat high blood pressure and angina pectoris. CCBs block calcium flow into the smooth muscle cells of your blood vessels, resulting in vasodilation and reduced blood pressure. They also work on cardiac muscle cells to reduce contractility and abnormally increased heart rate.

CCBs are grouped into two main types; dihydropyridines and non-dihydropyridines. Dihydropyridines mainly cause vasodilation and so are used to treat hypertension and angina. Examples of dihydropyridines include amlodipine, nicardipine, and nifedipine). The non-dihydropyridines target the heart muscle cells and decrease the heart rate and contractility. They are usually used to treat tachyarrhythmias, but also angina, because by reducing the heart rate and contractility, they bring down cardiac demand. Examples of non-dihydropyridines include diltiazem and verapamil. CCBs are typically well-tolerated, but they can cause certain side effects, such as dizziness, lightheadedness, and swelling of the ankles or legs.

Sources

  1. "Katzung & Trevor's Pharmacology Examination and Board Review,12th Edition" McGraw-Hill Education / Medical (2018)
  2. "Rang and Dale's Pharmacology" Elsevier (2019)
  3. "Goodman and Gilman's The Pharmacological Basis of Therapeutics, 13th Edition" McGraw-Hill Education / Medical (2017)
  4. "Hurst's the Heart, 14th Edition: Two Volume Set" McGraw-Hill Education / Medical (2017)
  5. "Amlodipine: an overview of its pharmacodynamic and pharmacokinetic properties" Clin Cardiol (1994)
  6. "Calcium Channel Blockers" The Journal of Clinical Hypertension (2011)
  7. "Calcium channel blockers for primary and secondary Raynaud's phenomenon" Cochrane Database of Systematic Reviews (2017)