Valvular heart disease: Pathology review

Last updated: January 25, 2022

Valvular heart disease: Pathology review

5600

5600

Anatomy of the larynx and trachea
Bones and joints of the thoracic wall
Vessels and nerves of the thoracic wall
Anatomy of the lungs and tracheobronchial tree
Muscles of the thoracic wall
Anatomy of the pleura
Development of the respiratory system
Nasal cavity and larynx histology
Bronchioles and alveoli histology
Trachea and bronchi histology
Respiratory system anatomy and physiology
Ventilation-perfusion ratios and V/Q mismatch
Ventilation
Alveolar surface tension and surfactant
Upper respiratory tract infection
Sinusitis
Retropharyngeal and peritonsillar abscesses
Laryngitis
Bacterial epiglottitis
Anatomy of the pharynx and esophagus
Anatomy of the superior mediastinum
Anatomy of the inferior mediastinum
Regulation of pulmonary blood flow
Zones of pulmonary blood flow
Airflow, pressure, and resistance
Breathing cycle and regulation
Lung volumes and capacities
Pulmonary edema
Anatomic and physiologic dead space
Pulmonary shunts
Diffusion-limited and perfusion-limited gas exchange
Alveolar gas equation
Gas exchange in the lungs, blood and tissues
Anatomy clinical correlates: Thoracic wall
Anatomy clinical correlates: Pleura and lungs
Otitis media
Eustachian tube dysfunction
Corynebacterium diphtheriae (Diphtheria)
Haemophilus influenzae
Bacterial tracheitis
Pediatric upper airway conditions: Clinical
Rhinovirus
Adenovirus
Moraxella catarrhalis
Streptococcus pyogenes (Group A Strep)
Streptococcus pneumoniae
Human parainfluenza viruses
Epstein-Barr virus (Infectious mononucleosis)
Influenza virus
Pediatric ear, nose, and throat conditions: Clinical
Alpha 1-antitrypsin deficiency
Compliance of lungs and chest wall
Combined pressure-volume curves for the lung and chest wall
Breathing cycle
Allergic rhinitis
Nasopharyngeal carcinoma
Oral cancer
Nasal polyps
Warthin tumor
Sjogren syndrome
Nasal, oral and pharyngeal diseases: Pathology review
Choanal atresia
Sialadenitis
Aphthous ulcers
Sleep apnea
Thoracic outlet syndrome
Neonatal respiratory distress syndrome
Cystic fibrosis
Cystic fibrosis: Clinical
Cystic fibrosis: Pathology review
Restrictive lung diseases
Restrictive lung diseases: Pathology review
Idiopathic pulmonary fibrosis
Sarcoidosis
Hypersensitivity pneumonitis
Obstructive lung diseases: Pathology review
Chronic bronchitis
Emphysema
Asthma
Asthma: Clinical
Bronchiectasis
Type I hypersensitivity
Pharmacodynamics: Desensitization and tolerance
Pneumonia: Pathology review
Pneumonia
Pneumonia: Clinical
Mycoplasma pneumoniae
Pulmonary changes at high altitude and altitude sickness
Oxygen-hemoglobin dissociation curve
Bronchodilators: Leukotriene antagonists and methylxanthines
Bronchodilators: Beta 2-agonists and muscarinic antagonists
Mycobacterium tuberculosis (Tuberculosis)
Antituberculosis medications
Tuberculosis: Pathology review
Respiratory syncytial virus
Lung cancer
Lung cancer: Clinical
Lung cancer and mesothelioma: Pathology review
Pancoast tumor
Horner syndrome
Superior vena cava syndrome
Chronic obstructive pulmonary disease (COPD): Clinical
Chlamydia pneumoniae
Coxiella burnetii (Q fever)
Klebsiella pneumoniae
Streptococcus pneumoniae
Pseudomonas aeruginosa
Chronic granulomatous disease
Bordetella pertussis (Whooping cough)
Pleural effusion, pneumothorax, hemothorax and atelectasis: Pathology review
Pleural effusion: Clinical
Pleural effusion
Pneumothorax: Clinical
Pneumothorax
Acute respiratory distress syndrome
Acute respiratory distress syndrome: Clinical
Pulmonary hypertension
Apnea, hypoventilation and pulmonary hypertension: Pathology review
Pulmonary embolism
Pulmonary hypoplasia
Congenital diaphragmatic hernia
Mesothelioma
Respiratory distress syndrome: Pathology review
Pulmonary changes during exercise
Pulmonary chemoreceptors and mechanoreceptors
Pulmonary corticosteroids and mast cell inhibitors
Syncope: Clinical
Anatomy of the heart
Anatomy of the coronary circulation
ECG rate and rhythm
ECG normal sinus rhythm
ECG QRS transition
Cardiac conduction system
Normal heart sounds
Vasculitis: Clinical
Aortic aneurysms and dissections: Clinical
Vascular tumors
Aneurysms
Aortic dissection
Aortic dissections and aneurysms: Pathology review
Raynaud phenomenon
Deep vein thrombosis
Deep vein thrombosis and pulmonary embolism: Pathology review
Thrombophlebitis
Lymphedema
Angiosarcomas
Cardiac and vascular tumors: Pathology review
Sturge-Weber syndrome
Vasculitis: Pathology review
Kawasaki disease
Kawasaki disease: Clinical
Mitral valve disease
Tricuspid valve disease
Aortic valve disease
Pulmonary valve disease
Introduction to the cardiovascular system
Development of the cardiovascular system
Fetal circulation
Cardiac muscle histology
Arteriole, venule and capillary histology
Artery and vein histology
Cardiovascular system anatomy and physiology
Coronary circulation
Lymphatic system anatomy and physiology
Blood pressure, blood flow, and resistance
Laminar flow and Reynolds number
Compliance of blood vessels
Pressures in the cardiovascular system
Resistance to blood flow
Control of blood flow circulation
Microcirculation and Starling forces
Measuring cardiac output (Fick principle)
Frank-Starling relationship
Stroke volume, ejection fraction, and cardiac output
Cardiac afterload
Cardiac preload
Law of Laplace
Cardiac contractility
Cardiac and vascular function curves
Altering cardiac and vascular function curves
Cardiac cycle
Pressure-volume loops
Cardiac work
Changes in pressure-volume loops
Abnormal heart sounds
Action potentials in myocytes
Excitability and refractory periods
Action potentials in pacemaker cells
Cardiac excitation-contraction coupling
Cardiac conduction velocity
ECG basics
ECG intervals
ECG axis
ECG cardiac hypertrophy and enlargement
ECG cardiac infarction and ischemia
Transposition of the great vessels
Tetralogy of Fallot
Persistent truncus arteriosus
Total anomalous pulmonary venous return
Hypoplastic left heart syndrome
Patent ductus arteriosus
Coarctation of the aorta
Ventricular septal defect
Atrial septal defect
Human herpesvirus 8 (Kaposi sarcoma)
Lymphangioma
Chronic venous insufficiency
Vasculitis
Behcet's disease
Aortic dissection
Marfan syndrome
Myocarditis
Endocarditis
Rheumatic heart disease
Pericarditis and pericardial effusion
Cardiac tamponade
Arterial disease
Angina pectoris
Unstable angina
Myocardial infarction
Prinzmetal angina
Hypertension
Hypertensive emergency
Renal artery stenosis
Orthostatic hypotension
Hypotension
Atrial flutter
Atrial fibrillation
Dilated cardiomyopathy
Restrictive cardiomyopathy
Hypertrophic cardiomyopathy
Atherosclerosis and arteriosclerosis: Pathology review
Coronary artery disease: Pathology review
Valvular heart disease: Pathology review
Cardiomyopathies: Pathology review
Dyslipidemias: Pathology review
Hypertension: Pathology review
Endocarditis: Pathology review
Pericardial disease: Pathology review
Shock
Shock: Clinical
Shock: Pathology review
Premature atrial contraction
Wolff-Parkinson-White syndrome
Atrioventricular nodal reentrant tachycardia (AVNRT)
Ventricular tachycardia
Premature ventricular contraction
Ventricular fibrillation
Brugada syndrome
Long QT syndrome and Torsade de pointes
Atrioventricular block
Bundle branch block
Heart failure
Cor pulmonale
Heart failure: Clinical
Heart failure: Pathology review
Positive inotropic medications
Lipid-lowering medications: Statins
Lipid-lowering medications: Fibrates
Miscellaneous lipid-lowering medications
Class III antiarrhythmics: Potassium channel blockers
Class I antiarrhythmics: Sodium channel blockers
Class II antiarrhythmics: Beta blockers
Class IV antiarrhythmics: Calcium channel blockers and others
cGMP mediated smooth muscle vasodilators
Adrenergic antagonists: Beta blockers
Calcium channel blockers
ACE inhibitors, ARBs and direct renin inhibitors
Thiazide and thiazide-like diuretics
Ventricular arrhythmias: Pathology review
Acyanotic congenital heart defects: Pathology review
Cyanotic congenital heart defects: Pathology review
Cardiac tumors
Dressler syndrome
Familial hypercholesterolemia
Abetalipoproteinemia
Hypertriglyceridemia
Hyperlipidemia
Pheochromocytoma
Antihistamines for allergies
Mycobacterium avium complex (NORD)
Nocardia
Pneumocystis jirovecii (Pneumocystis pneumonia)
Cryptococcus neoformans
Coccidioidomycosis and paracoccidioidomycosis
Histoplasmosis
Blastomycosis
Aspergillus fumigatus

Transcript

Watch video only

On the Cardiology ward, there are two individuals. One of them is 75 year old Antonia, who’s complaining of chest pain and says she hardly catches her breath after walking. On clinical examination, her pulse feels pretty weak and on auscultation, a systolic murmur is heard. The murmur was louder just after S1 and got quieter and quieter by the end of S2.

The other individual is 38 year old Mark who has a history of rheumatic fever and is complaining of not being able to swallow properly. On clinical examination, his voice sounds raspy and on auscultation, a snap is heard after S2 along with a diastolic rumble. Based on auscultation, both individuals were sent for echocardiography.

Okay, so based on auscultation and symptoms, both individuals seem to have valvular heart disease. Valvular heart disease involves damage or a defect in one or more of the four valves of the heart, so the aortic and mitral valves on the left side of the heart, and the pulmonary and tricuspid valves on the right side of the heart.

Okay, now, before talking specifics about valvular disease, we’ll first talk about rheumatic fever, which can affect multiple valves. Rheumatic fever can develop after streptococcal infection like strep throat, which is caused by Streptococcus pyogenes. This particular group of streptococcus has an antigen that lumps it into a group called “group A”, and they also produce an enzyme called streptolysin, which causes hemolysis. Some of these strep bacteria have a protein on their cell wall called “M protein”, and this particular protein is highly antigenic, meaning that the immune system sees it and recognizes it as a foreign molecule and produces antibodies against it.

Now, this becomes a problem when these antigens cause a phenomenon called molecular mimicry. M proteins can be structurally similar to human proteins, which means the antibodies that target them will also target our own tissue. In this case, they are similar to proteins found in the myocardium and heart valves. Once bound to cardiac tissue, the antibodies activate nearby immune cells, which causes a cytokine-mediated inflammatory response and tissue destruction. This is also an example of what’s called a type 2 hypersensitivity reaction.

All right, so not everyone that gets strep throat gets rheumatic fever, and it’s actually only a small minority that get it. However, the individuals that do get rheumatic fever from strep infections will have a variety of clinical findings. These make up the Jones criteria which is divided into 5 major criteria that you have to remember, and 5 minor criteria that are also good to keep in mind. Let’s go over the major criteria first.

The most common is migratory polyarthritis of the joints, where multiple large joints become inflamed, swollen and painful, then the inflammation resolves and spreads to other joints. Secondly, some patients have carditis. The inflammation can affect the endo, myo, and pericardium. Since the endocardium includes the valves, they too are affected.

A high yield fact to remember is that the mitral valve is most commonly affected, although the aortic and tricuspid valve can also be affected. In the acute phase of the illness, mitral regurgitation is most common. Later on, fibrosis around the valve causes its leaflets to fuse together, giving it a fish-mouth-like appearance. This fusion narrows the valve opening, and so we get mitral stenosis.

Now, although not a part of the Jones criteria, a high yield fact is that in histology, there will be Aschoff bodies in the heart. These are granulomas with giant cells consisting of areas of fibrinoid necrosis and lymphocytic infiltration. Within Aschoff bodies, there are characteristic Anitschkow cells which are enlarged macrophages that have a characteristic caterpillar-looking nucleus.

Now for the rest of the Jones criteria, the hypersensitivity reaction in rheumatic fever can affect the skin. So the next criteria is subcutaneous nodules, which are these firm lumps under the skin made up of collagen. The fourth is erythema marginatum, a reddish rash that shows up as rings on the arms or trunk. And finally, there’s Sydenham’s chorea, which is a set of rapid movements of the face and the arms, caused by an autoimmune reaction against the basal ganglia of the brain.

For the minor criteria, there’s polyarthralgia, fever greater or equal to 38.5 degrees celsius, blood tests showing an ESR greater or equal to 60 mm/h, or a CRP greater or equal to 3 mg/dl, prolonged P-R interval, and a blood test that shows evidence of previous streptococcal infection, such as high titers of anti-streptolysin-O, or ASO. Treatment and prophylaxis of rheumatic fever is done using penicillin.

Okay, now let’s look at the specific valvular heart diseases. They can be divided into stenosis, where there’s narrowing of the valvular orifice that prevents adequate outflow of blood, and insufficiency or regurgitation, where the valvular leaflets fail to close correctly and are unable to prevent backflow of blood.

In order to make things easier to remember, we’ll classify valvular disease based on what type of murmurs you hear on auscultation. Remember there are two normal heart sounds; S1, caused by the mitral and tricuspid valves closing at the beginning of systole, and S2, caused by the aortic and pulmonary valves closing at the beginning of diastole.

So first, there are systolic murmurs, which you can hear right after S1 and these happen with aortic stenosis, mitral and tricuspid valve regurgitation. Then there are diastolic murmurs, which come right after S2 and these happen with aortic regurgitation and mitral stenosis.

Let’s start with systolic murmurs and look at aortic stenosis. The aortic valve is typically made up of three leaflets: the right, left, and posterior leaflet and it opens during systole to allow blood to be ejected to the body. During diastole, it closes to allow the heart to fill with blood and get ready for the next systole. Aortic stenosis is when the aortic valve doesn’t open all the way and it gets harder to pump blood into the aorta.

Aortic stenosis is usually caused by chronic mechanical stress that damages endothelial cells around the valves, causing fibrosis and calcification, which hardens the valve and makes it more difficult to open completely. This type usually shows up in late adulthood, so for your exams, remember that this is more common in individuals over 60 years old. Now, if there’s aortic stenosis in a younger individual, the cause could be due to a bicuspid valve. These abnormal valves are more at risk of fibrosis and calcification since the mechanical stress is now being split by just two leaflets.

Okay, let’s go over auscultation now. With aortic stenosis, since blood has to flow through a narrow aortic valve, there’s turbulence which creates noise, or a murmur. This initially gets louder as more blood flows past the opening and then quieter as the amount of blood flowing subsides. This is called a crescendo-decrescendo murmur and you can hear this right after S1. This sound is best heard in the aortic area and typically radiates in the carotids. The intensity of the murmur increases as the pressure gradient between the left ventricle and the aorta increases. So, the narrower the stenosis, the louder the murmur.

Now, normally, S2 has two components: the aortic component and the pulmonary component since the valves don’t close at the same time. Typically, the aortic valve closes first and then the pulmonary valve. But with aortic stenosis, the aortic valve closes later than expected and so it may close at the same time with the pulmonary valve, in which case you’ll hear a soft S2. Another important clue that will likely show up on your exam is the ejection click, since the valve fuses together or hardens, it doesn’t open as easily. And so as the left ventricle contracts, it creates this high pressure that eventually pushes on the valve until it finally snaps open, causing a clicking sound.

In aortic stenosis, the pulse is described as being “parvus and tardus”. That’s because the valve doesn’t fully open so there’s less blood flow and the pulse is weak, or “parvus”, and there’s a delay in the opening of the valve that occurs a bit later than expected, so, the pulse is also late, or “tardus”. Even though the ventricle tries to pump out more blood, the heart still might struggle to get enough blood through the narrowed opening and then to the rest of the body.

For example, if there’s a reduction in blood flow to the brain, it could lead to syncope, and a reduction in blood flow through the coronary arteries to the heart’s own myocardium could cause chest pain and angina. Individuals might not initially experience symptoms at rest, and problems only occur during exercise or exertion because there’s an increase in the demand for oxygen. So, during exercise, they can also experience dyspnea.

The next systolic murmur is caused by mitral regurgitation. The mitral valve has two leaflets, the anterior and posterior leaflet, and together they separate the left atrium from the left ventricle. During systole, the valve closes, which means blood has just one option, to be ejected out through the aortic valve and into circulation. Mitral regurgitation is when the mitral valve doesn’t shut all the way, therefore blood can leak back into the left atrium.

The leading cause of mitral valve regurgitation in the United States, and the most common of all valvular conditions, is mitral valve prolapse. Normally, when the left ventricle contracts during systole, a ton of pressure is generated to pump blood out through the aortic valve. This also means a lot of pressure pushes on that closed mitral valve. Normally, the papillary muscles and connective tissue called chordae tendineae keep the valve from prolapsing or falling back into the atrium.

However, sometimes there’s myxomatous degeneration where connective tissue of the leaflets and surrounding tissue are weakened. Why this happens isn’t well understood, but it is sometimes associated with connective tissue disorders like Marfan syndrome and Ehlers-Danlos syndrome. Mitral valve prolapse can also be caused by rheumatic fever or by chordae rupture during trauma.

Key Takeaways

Valvular heart disease refers to a group of conditions that affect the heart's valves. The valves within the heart include the mitral, aortic, tricuspid, and pulmonary valves. Some examples of valvular heart disease include aortic stenosis, which is the narrowing of the aortic valve; aortic regurgitation in which blood leaks back through the aortic valve; mitral regurgitation in which there is a narrowing of the mitral valve; mitral stenosis characterized by blood leaking back through the mitral valve tricuspid regurgitation in which blood leaks back through the tricuspid valve; pulmonary stenosis that's characterized by the narrowing of the pulmonary valve; and finally; pulmonary regurgitation in which blood leaks back through the pulmonary valve.

Sources

  1. "Harrison's Principles of Internal Medicine, Twentieth Edition (Vol.1 & Vol.2)" McGraw-Hill Education / Medical (2018)
  2. "Robbins Basic Pathology" Elsevier (2017)
  3. "Rheumatic heart disease. 2012;379(9819):953-964" Lancet (2012)
  4. "2014 AHA/ACC guideline for the management of patients with valvular heart disease: a report of the American College of Cardiology/American Heart Association Task Force on Practice Guidelines" Nishimura RA, Otto CM, Bonow RO, et al. (2014)
  5. "Comparison of Severity of Aortic Regurgitation by Cardiovascular Magnetic Resonance Versus Transthoracic Echocardiography" The American Journal of Cardiology (2011)
  6. "Pathophysiology of Heart Disease" Wolters Kluwer Health (2015)
  7. "Calcific aortic stenosis" Nature Reviews Disease Primers (2016)