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Monday, August 26, 2024

Myocardial infarction

From Wikipedia, the free encyclopedia
 
Myocardial infarction
Other namesAcute myocardial infarction (AMI), heart attack
A myocardial infarction occurs when an atherosclerotic plaque slowly builds up in the inner lining of a coronary artery and then suddenly ruptures, causing catastrophic thrombus formation, totally occluding the artery and preventing blood flow downstream to the heart muscle.
SpecialtyCardiology, emergency medicine
SymptomsChest pain, shortness of breath, nausea/vomiting, dizziness or lightheadedness, cold sweat, feeling tired; arm, neck, back, jaw, or stomach pain, decreased level or total loss of consciousness
ComplicationsHeart failure, irregular heartbeat, cardiogenic shock, coma, cardiac arrest
CausesUsually coronary artery disease
Risk factorsHigh blood pressure, smoking, diabetes, lack of exercise, obesity, high blood cholesterol
Diagnostic methodElectrocardiograms (ECGs), blood tests, coronary angiography
TreatmentPercutaneous coronary intervention, thrombolysis
MedicationAspirin, nitroglycerin, heparin
PrognosisSTEMI 10% risk of death (developed world)
Frequency15.9 million (2015)

A myocardial infarction (MI), commonly known as a heart attack, occurs when blood flow decreases or stops in one of the coronary arteries of the heart, causing infarction (tissue death) to the heart muscle. The most common symptom is retrosternal chest pain or discomfort that classically radiates to the left shoulder, arm, or jaw. The pain may occasionally feel like heartburn.

Other symptoms may include shortness of breath, nausea, feeling faint, a cold sweat, feeling tired, and decreased level of consciousness.[1] About 30% of people have atypical symptoms. Women more often present without chest pain and instead have neck pain, arm pain or feel tired. Among those over 75 years old, about 5% have had an MI with little or no history of symptoms. An MI may cause heart failure, an irregular heartbeat, cardiogenic shock or cardiac arrest.

Most MIs occur due to coronary artery disease. Risk factors include high blood pressure, smoking, diabetes, lack of exercise, obesity, high blood cholesterol, poor diet, and excessive alcohol intake. The complete blockage of a coronary artery caused by a rupture of an atherosclerotic plaque is usually the underlying mechanism of an MI. MIs are less commonly caused by coronary artery spasms, which may be due to cocaine, significant emotional stress (often known as Takotsubo syndrome or broken heart syndrome) and extreme cold, among others. Many tests are helpful to help with diagnosis, including electrocardiograms (ECGs), blood tests and coronary angiography. An ECG, which is a recording of the heart's electrical activity, may confirm an ST elevation MI (STEMI), if ST elevation is present. Commonly used blood tests include troponin and less often creatine kinase MB.

Treatment of an MI is time-critical. Aspirin is an appropriate immediate treatment for a suspected MI. Nitroglycerin or opioids may be used to help with chest pain; however, they do not improve overall outcomes. Supplemental oxygen is recommended in those with low oxygen levels or shortness of breath. In a STEMI, treatments attempt to restore blood flow to the heart and include percutaneous coronary intervention (PCI), where the arteries are pushed open and may be stented, or thrombolysis, where the blockage is removed using medications. People who have a non-ST elevation myocardial infarction (NSTEMI) are often managed with the blood thinner heparin, with the additional use of PCI in those at high risk. In people with blockages of multiple coronary arteries and diabetes, coronary artery bypass surgery (CABG) may be recommended rather than angioplasty. After an MI, lifestyle modifications, along with long-term treatment with aspirin, beta blockers and statins, are typically recommended.

Worldwide, about 15.9 million myocardial infarctions occurred in 2015. More than 3 million people had an ST elevation MI, and more than 4 million had an NSTEMI. STEMIs occur about twice as often in men as women. About one million people have an MI each year in the United States. In the developed world, the risk of death in those who have had a STEMI is about 10%. Rates of MI for a given age have decreased globally between 1990 and 2010. In 2011, an MI was one of the top five most expensive conditions during inpatient hospitalizations in the US, with a cost of about $11.5 billion for 612,000 hospital stays.

Terminology

Myocardial infarction (MI) refers to tissue death (infarction) of the heart muscle (myocardium) caused by ischemia, the lack of oxygen delivery to myocardial tissue. It is a type of acute coronary syndrome, which describes a sudden or short-term change in symptoms related to blood flow to the heart. Unlike the other type of acute coronary syndrome, unstable angina, a myocardial infarction occurs when there is cell death, which can be estimated by measuring by a blood test for biomarkers (the cardiac protein troponin). When there is evidence of an MI, it may be classified as an ST elevation myocardial infarction (STEMI) or Non-ST elevation myocardial infarction (NSTEMI) based on the results of an ECG.

The phrase "heart attack" is often used non-specifically to refer to myocardial infarction. An MI is different from—but can cause—cardiac arrest, where the heart is not contracting at all or so poorly that all vital organs cease to function, thus leading to death. It is also distinct from heart failure, in which the pumping action of the heart is impaired. However, an MI may lead to heart failure.

Signs and symptoms

View of the chest with common areas of MI coloured
View of the back with common areas of MI coloured
Areas where pain is experienced in myocardial infarction, showing common (dark red) and less common (light red) areas on the chest (top) and back (bottom).

Chest pain that may or may not radiate to other parts of the body is the most typical and significant symptom of myocardial infarction. It might be accompanied by other symptoms such as sweating.

Pain

Chest pain is one of the most common symptoms of acute myocardial infarction and is often described as a sensation of tightness, pressure, or squeezing. Pain radiates most often to the left arm, but may also radiate to the lower jaw, neck, right arm, back, and upper abdomen. The pain most suggestive of an acute MI, with the highest likelihood ratio, is pain radiating to the right arm and shoulder. Similarly, chest pain similar to a previous heart attack is also suggestive. The pain associated with MI is usually diffuse, does not change with position, and lasts for more than 20 minutes. It might be described as pressure, tightness, knifelike, tearing, burning sensation (all these are also manifested during other diseases). It could be felt as an unexplained anxiety, and pain might be absent altogether. Levine's sign, in which a person localizes the chest pain by clenching one or both fists over their sternum, has classically been thought to be predictive of cardiac chest pain, although a prospective observational study showed it had a poor positive predictive value.

Typically, chest pain because of ischemia, be it unstable angina or myocardial infarction, lessens with the use of nitroglycerin, but nitroglycerin may also relieve chest pain arising from non-cardiac causes.

Other

Chest pain may be accompanied by sweating, nausea or vomiting, and fainting, and these symptoms may also occur without any pain at all. Dizziness or lightheadedness is common and occurs due to reduction in oxygen and blood to the brain. In women, the most common symptoms of myocardial infarction include shortness of breath, weakness, and fatigue. Women are more likely to have unusual or unexplained tiredness and nausea or vomiting as symptoms. Women having heart attacks are more likely to have palpitations, back pain, labored breath, vomiting, and left arm pain than men, although the studies showing these differences had high variability. Women are less likely to report chest pain during a heart attack and more likely to report nausea, jaw pain, neck pain, cough, and fatigue, although these findings are inconsistent across studies. Women with heart attacks also had more indigestion, dizziness, loss of appetite, and loss of consciousness. Shortness of breath is a common, and sometimes the only symptom, occurring when damage to the heart limits the output of the left ventricle, with breathlessness arising either from low oxygen in the blood or pulmonary edema.

Other less common symptoms include weakness, light-headedness, palpitations, and abnormalities in heart rate or blood pressure. These symptoms are likely induced by a massive surge of catecholamines from the sympathetic nervous system, which occurs in response to pain and, where present, low blood pressure. Loss of consciousness can occur in myocardial infarctions due to inadequate blood flow to the brain and cardiogenic shock, and sudden death, frequently due to the development of ventricular fibrillation. When the brain was without oxygen for too long due to a myocardial infarction, coma and persistent vegetative state can occur. Cardiac arrest, and atypical symptoms such as palpitations, occur more frequently in women, the elderly, those with diabetes, in people who have just had surgery, and in critically ill patients.

Absence

"Silent" myocardial infarctions can happen without any symptoms at all. These cases can be discovered later on electrocardiograms, using blood enzyme tests, or at autopsy after a person has died. Such silent myocardial infarctions represent between 22 and 64% of all infarctions, and are more common in the elderly, in those with diabetes mellitus and after heart transplantation. In people with diabetes, differences in pain threshold, autonomic neuropathy, and psychological factors have been cited as possible explanations for the lack of symptoms. In heart transplantation, the donor heart is not fully innervated by the nervous system of the recipient.

Risk factors

The most prominent risk factors for myocardial infarction are older age, actively smoking, high blood pressure, diabetes mellitus, and total cholesterol and high-density lipoprotein levels. Many risk factors of myocardial infarction are shared with coronary artery disease, the primary cause of myocardial infarction, with other risk factors including male sex, low levels of physical activity, a past family history, obesity, and alcohol use. Risk factors for myocardial disease are often included in risk factor stratification scores, such as the Framingham Risk Score. At any given age, men are more at risk than women for the development of cardiovascular disease. High levels of blood cholesterol is a known risk factor, particularly high low-density lipoprotein, low high-density lipoprotein, and high triglycerides.

Many risk factors for myocardial infarction are potentially modifiable, with the most important being tobacco smoking (including secondhand smoke). Smoking appears to be the cause of about 36% and obesity the cause of 20% of coronary artery disease. Lack of physical activity has been linked to 7–12% of cases. Less common causes include stress-related causes such as job stress, which accounts for about 3% of cases, and chronic high stress levels.

Diet

There is varying evidence about the importance of saturated fat in the development of myocardial infarctions. Eating polyunsaturated fat instead of saturated fats has been shown in studies to be associated with a decreased risk of myocardial infarction, while other studies find little evidence that reducing dietary saturated fat or increasing polyunsaturated fat intake affects heart attack risk. Dietary cholesterol does not appear to have a significant effect on blood cholesterol and thus recommendations about its consumption may not be needed. Trans fats do appear to increase risk. Acute and prolonged intake of high quantities of alcoholic drinks (3–4 or more daily) increases the risk of a heart attack.

Genetics

Family history of ischemic heart disease or MI, particularly if one has a male first-degree relative (father, brother) who had a myocardial infarction before age 55 years, or a female first-degree relative (mother, sister) less than age 65 increases a person's risk of MI.

Genome-wide association studies have found 27 genetic variants that are associated with an increased risk of myocardial infarction. The strongest association of MI has been found with chromosome 9 on the short arm p at locus 21, which contains genes CDKN2A and 2B, although the single nucleotide polymorphisms that are implicated are within a non-coding region. The majority of these variants are in regions that have not been previously implicated in coronary artery disease. The following genes have an association with MI: PCSK9, SORT1, MIA3, WDR12, MRAS, PHACTR1, LPA, TCF21, MTHFDSL, ZC3HC1, CDKN2A, 2B, ABO, PDGF0, APOA5, MNF1ASM283, COL4A1, HHIPC1, SMAD3, ADAMTS7, RAS1, SMG6, SNF8, LDLR, SLC5A3, MRPS6, KCNE2.

Other

The risk of having a myocardial infarction increases with older age, low physical activity, and low socioeconomic status. Heart attacks appear to occur more commonly in the morning hours, especially between 6AM and noon. Evidence suggests that heart attacks are at least three times more likely to occur in the morning than in the late evening. Shift work is also associated with a higher risk of MI. One analysis has found an increase in heart attacks immediately following the start of daylight saving time.

Women who use combined oral contraceptive pills have a modestly increased risk of myocardial infarction, especially in the presence of other risk factors. The use of non-steroidal anti inflammatory drugs (NSAIDs), even for as short as a week, increases risk.

Endometriosis in women under the age of 40 is an identified risk factor.

Air pollution is also an important modifiable risk. Short-term exposure to air pollution such as carbon monoxide, nitrogen dioxide, and sulfur dioxide (but not ozone) has been associated with MI and other acute cardiovascular events. For sudden cardiac deaths, every increment of 30 units in Pollutant Standards Index correlated with an 8% increased risk of out-of-hospital cardiac arrest on the day of exposure. Extremes of temperature are also associated.

A number of acute and chronic infections including Chlamydophila pneumoniae, influenza, Helicobacter pylori, and Porphyromonas gingivalis among others have been linked to atherosclerosis and myocardial infarction. As of 2013, there is no evidence of benefit from antibiotics or vaccination, however, calling the association into question. Myocardial infarction can also occur as a late consequence of Kawasaki disease.

Calcium deposits in the coronary arteries can be detected with CT scans. Calcium seen in coronary arteries can provide predictive information beyond that of classical risk factors. High blood levels of the amino acid homocysteine is associated with premature atherosclerosis; whether elevated homocysteine in the normal range is causal is controversial.

In people without evident coronary artery disease, possible causes for the myocardial infarction are coronary spasm or coronary artery dissection.

Mechanism

Atherosclerosis

The most common cause of a myocardial infarction is the rupture of an atherosclerotic plaque on an artery supplying heart muscle. Plaques can become unstable, rupture, and additionally promote the formation of a blood clot that blocks the artery; this can occur in minutes. Blockage of an artery can lead to tissue death in tissue being supplied by that artery. Atherosclerotic plaques are often present for decades before they result in symptoms.

The gradual buildup of cholesterol and fibrous tissue in plaques in the wall of the coronary arteries or other arteries, typically over decades, is termed atherosclerosis. Atherosclerosis is characterized by progressive inflammation of the walls of the arteries. Inflammatory cells, particularly macrophages, move into affected arterial walls. Over time, they become laden with cholesterol products, particularly LDL, and become foam cells. A cholesterol core forms as foam cells die. In response to growth factors secreted by macrophages, smooth muscle and other cells move into the plaque and act to stabilize it. A stable plaque may have a thick fibrous cap with calcification. If there is ongoing inflammation, the cap may be thin or ulcerate. Exposed to the pressure associated with blood flow, plaques, especially those with a thin lining, may rupture and trigger the formation of a blood clot (thrombus). The cholesterol crystals have been associated with plaque rupture through mechanical injury and inflammation.

Other causes

Atherosclerotic disease is not the only cause of myocardial infarction, but it may exacerbate or contribute to other causes. A myocardial infarction may result from a heart with a limited blood supply subject to increased oxygen demands, such as in fever, a fast heart rate, hyperthyroidism, too few red blood cells in the bloodstream, or low blood pressure. Damage or failure of procedures such as percutaneous coronary intervention (PCI) or coronary artery bypass grafts (CABG) may cause a myocardial infarction. Spasm of coronary arteries, such as Prinzmetal's angina may cause blockage.

Tissue death

Cross section showing anterior left ventricle wall infarction

If impaired blood flow to the heart lasts long enough, it triggers a process called the ischemic cascade; the heart cells in the territory of the blocked coronary artery die (infarction), chiefly through necrosis, and do not grow back. A collagen scar forms in their place. When an artery is blocked, cells lack oxygen, needed to produce ATP in mitochondria. ATP is required for the maintenance of electrolyte balance, particularly through the Na/K ATPase. This leads to an ischemic cascade of intracellular changes, necrosis and apoptosis of affected cells.

Cells in the area with the worst blood supply, just below the inner surface of the heart (endocardium), are most susceptible to damage. Ischemia first affects this region, the subendocardial region, and tissue begins to die within 15–30 minutes of loss of blood supply. The dead tissue is surrounded by a zone of potentially reversible ischemia that progresses to become a full-thickness transmural infarct. The initial "wave" of infarction can take place over 3–4 hours. These changes are seen on gross pathology and cannot be predicted by the presence or absence of Q waves on an ECG. The position, size and extent of an infarct depends on the affected artery, totality of the blockage, duration of the blockage, the presence of collateral blood vessels, oxygen demand, and success of interventional procedures.

Tissue death and myocardial scarring alter the normal conduction pathways of the heart and weaken affected areas. The size and location put a person at risk of abnormal heart rhythms (arrhythmias) or heart block, aneurysm of the heart ventricles, inflammation of the heart wall following infarction, and rupture of the heart wall that can have catastrophic consequences.

Injury to the myocardium also occurs during re-perfusion. This might manifest as ventricular arrhythmia. The re-perfusion injury is a consequence of the calcium and sodium uptake from the cardiac cells and the release of oxygen radicals during reperfusion. No-reflow phenomenon—when blood is still unable to be distributed to the affected myocardium despite clearing the occlusion—also contributes to myocardial injury. Topical endothelial swelling is one of many factors contributing to this phenomenon.

Diagnosis

Criteria

Diagram showing the blood supply to the heart by the two major blood vessels, the left and right coronary arteries (labelled LCA and RCA). A myocardial infarction (2) has occurred with blockage of a branch of the left coronary artery (1).

A myocardial infarction, according to current consensus, is defined by elevated cardiac biomarkers with a rising or falling trend and at least one of the following:

Types

A myocardial infarction is usually clinically classified as an ST-elevation MI (STEMI) or a non-ST elevation MI (NSTEMI). These are based on ST elevation, a portion of a heartbeat graphically recorded on an ECG. STEMIs make up about 25–40% of myocardial infarctions. A more explicit classification system, based on international consensus in 2012, also exists. This classifies myocardial infarctions into five types:

  1. Spontaneous MI related to plaque erosion and/or rupture fissuring, or dissection
  2. MI related to ischemia, such as from increased oxygen demand or decreased supply, e.g., coronary artery spasm, coronary embolism, anemia, arrhythmias, high blood pressure, or low blood pressure
  3. Sudden unexpected cardiac death, including cardiac arrest, where symptoms may suggest MI, an ECG may be taken with suggestive changes, or a blood clot is found in a coronary artery by angiography and/or at autopsy, but where blood samples could not be obtained, or at a time before the appearance of cardiac biomarkers in the blood
  4. Associated with coronary angioplasty or stents
  5. Associated with CABG
  6. Associated with spontaneous coronary artery dissection in young, fit women

Cardiac biomarkers

There are many different biomarkers used to determine the presence of cardiac muscle damage. Troponins, measured through a blood test, are considered to be the best, and are preferred because they have greater sensitivity and specificity for measuring injury to the heart muscle than other tests. A rise in troponin occurs within 2–3 hours of injury to the heart muscle, and peaks within 1–2 days. The level of the troponin, as well as a change over time, are useful in measuring and diagnosing or excluding myocardial infarctions, and the diagnostic accuracy of troponin testing is improving over time. One high-sensitivity cardiac troponin can rule out a heart attack as long as the ECG is normal.

Other tests, such as CK-MB or myoglobin, are discouraged. CK-MB is not as specific as troponins for acute myocardial injury, and may be elevated with past cardiac surgery, inflammation or electrical cardioversion; it rises within 4–8 hours and returns to normal within 2–3 days. Copeptin may be useful to rule out MI rapidly when used along with troponin.

Electrocardiogram

A 12-lead ECG showing an inferior STEMI due to reduced perfusion through the right coronary artery. Elevation of the ST segment can be seen in leads II, III and aVF.

Electrocardiograms (ECGs) are a series of leads placed on a person's chest that measure electrical activity associated with contraction of the heart muscle. The taking of an ECG is an important part of the workup of an AMI, and ECGs are often not just taken once but may be repeated over minutes to hours, or in response to changes in signs or symptoms.

ECG readouts produce a waveform with different labeled features. In addition to a rise in biomarkers, a rise in the ST segment, changes in the shape or flipping of T waves, new Q waves, or a new left bundle branch block can be used to diagnose an AMI. In addition, ST elevation can be used to diagnose an ST segment myocardial infarction (STEMI). A rise must be new in V2 and V3 ≥2 mm (0,2 mV) for males or ≥1.5 mm (0.15 mV) for females or ≥1 mm (0.1 mV) in two other adjacent chest or limb leads. ST elevation is associated with infarction, and may be preceded by changes indicating ischemia, such as ST depression or inversion of the T waves. Abnormalities can help differentiate the location of an infarct, based on the leads that are affected by changes. Early STEMIs may be preceded by peaked T waves. Other ECG abnormalities relating to complications of acute myocardial infarctions may also be evident, such as atrial or ventricular fibrillation.

Imaging

ECG : AMI with ST elevation in V2-4

Noninvasive imaging plays an important role in the diagnosis and characterisation of myocardial infarction. Tests such as chest X-rays can be used to explore and exclude alternate causes of a person's symptoms. Echocardiography may assist in modifying clinical suspicion of ongoing myocardial infarction in patients that can't be ruled out or ruled in following initial ECG and Troponin testing. Myocardial perfusion imaging has no role in the acute diagnostic algorithm; however, it can confirm a clinical suspicion of Chronic Coronary Syndrome when the patient's history, physical examination (including cardiac examination) ECG, and cardiac biomarkers suggest coronary artery disease.

Echocardiography, an ultrasound scan of the heart, is able to visualize the heart, its size, shape, and any abnormal motion of the heart walls as they beat that may indicate a myocardial infarction. The flow of blood can be imaged, and contrast dyes may be given to improve image. Other scans using radioactive contrast include SPECT CT-scans using thallium, sestamibi (MIBI scans) or tetrofosmin; or a PET scan using Fludeoxyglucose or rubidium-82. These nuclear medicine scans can visualize the perfusion of heart muscle. SPECT may also be used to determine viability of tissue, and whether areas of ischemia are inducible.

Medical societies and professional guidelines recommend that the physician confirm a person is at high risk for Chronic Coronary Syndrome before conducting diagnostic non-invasive imaging tests to make a diagnosis, as such tests are unlikely to change management and result in increased costs. Patients who have a normal ECG and who are able to exercise, for example, most likely do not merit routine imaging.

Differential diagnosis

There are many causes of chest pain, which can originate from the heart, lungs, gastrointestinal tract, aorta, and other muscles, bones and nerves surrounding the chest. In addition to myocardial infarction, other causes include angina, insufficient blood supply (ischemia) to the heart muscles without evidence of cell death, gastroesophageal reflux disease; pulmonary embolism, tumors of the lungs, pneumonia, rib fracture, costochondritis, heart failure and other musculoskeletal injuries. Rarer severe differential diagnoses include aortic dissection, esophageal rupture, tension pneumothorax, and pericardial effusion causing cardiac tamponade. The chest pain in an MI may mimic heartburn. Causes of sudden-onset breathlessness generally involve the lungs or heart – including pulmonary edema, pneumonia, allergic reactions and asthma, and pulmonary embolus, acute respiratory distress syndrome and metabolic acidosis. There are many different causes of fatigue, and myocardial infarction is not a common cause.

Prevention

There is a large crossover between the lifestyle and activity recommendations to prevent a myocardial infarction, and those that may be adopted as secondary prevention after an initial myocardial infarction, because of shared risk factors and an aim to reduce atherosclerosis affecting heart vessels. The influenza vaccine also appear to protect against myocardial infarction with a benefit of 15 to 45%.

Primary prevention

Lifestyle

Physical activity can reduce the risk of cardiovascular disease, and people at risk are advised to engage in 150 minutes of moderate or 75 minutes of vigorous intensity aerobic exercise a week. Keeping a healthy weight, drinking alcohol within the recommended limits, and quitting smoking reduce the risk of cardiovascular disease.

Substituting unsaturated fats such as olive oil and rapeseed oil instead of saturated fats may reduce the risk of myocardial infarction, although there is not universal agreement. Dietary modifications are recommended by some national authorities, with recommendations including increasing the intake of wholegrain starch, reducing sugar intake (particularly of refined sugar), consuming five portions of fruit and vegetables daily, consuming two or more portions of fish per week, and consuming 4–5 portions of unsalted nuts, seeds, or legumes per week. The dietary pattern with the greatest support is the Mediterranean diet. Vitamins and mineral supplements are of no proven benefit, and neither are plant stanols or sterols.

Public health measures may also act at a population level to reduce the risk of myocardial infarction, for example by reducing unhealthy diets (excessive salt, saturated fat, and trans-fat) including food labeling and marketing requirements as well as requirements for catering and restaurants and stimulating physical activity. This may be part of regional cardiovascular disease prevention programs or through the health impact assessment of regional and local plans and policies.

Most guidelines recommend combining different preventive strategies. A 2015 Cochrane Review found some evidence that such an approach might help with blood pressurebody mass index and waist circumference. However, there was insufficient evidence to show an effect on mortality or actual cardio-vascular events.

Medication

Statins, drugs that act to lower blood cholesterol, decrease the incidence and mortality rates of myocardial infarctions. They are often recommended in those at an elevated risk of cardiovascular diseases.

Aspirin has been studied extensively in people considered at increased risk of myocardial infarction. Based on numerous studies in different groups (e.g. people with or without diabetes), there does not appear to be a benefit strong enough to outweigh the risk of excessive bleeding. Nevertheless, many clinical practice guidelines continue to recommend aspirin for primary prevention, and some researchers feel that those with very high cardiovascular risk but low risk of bleeding should continue to receive aspirin.

Secondary prevention

There is a large crossover between the lifestyle and activity recommendations to prevent a myocardial infarction, and those that may be adopted as secondary prevention after an initial myocardial infarct. Recommendations include stopping smoking, a gradual return to exercise, eating a healthy diet, low in saturated fat and low in cholesterol, drinking alcohol within recommended limits, exercising, and trying to achieve a healthy weight. Exercise is both safe and effective even if people have had stents or heart failure, and is recommended to start gradually after 1–2 weeks. Counselling should be provided relating to medications used, and for warning signs of depression. Previous studies suggested a benefit from omega-3 fatty acid supplementation but this has not been confirmed.

Medications

Following a heart attack, nitrates, when taken for two days, and ACE-inhibitors decrease the risk of death. Other medications include:

Aspirin is continued indefinitely, as well as another antiplatelet agent such as clopidogrel or ticagrelor ("dual antiplatelet therapy" or DAPT) for up to twelve months. If someone has another medical condition that requires anticoagulation (e.g. with warfarin) this may need to be adjusted based on risk of further cardiac events as well as bleeding risk. In those who have had a stent, more than 12 months of clopidogrel plus aspirin does not affect the risk of death.

Beta blocker therapy such as metoprolol or carvedilol is recommended to be started within 24 hours, provided there is no acute heart failure or heart block. The dose should be increased to the highest tolerated. Contrary to most guidelines, the use of beta blockers does not appear to affect the risk of death, possibly because other treatments for MI have improved. When beta blocker medication is given within the first 24–72 hours of a STEMI no lives are saved. However, 1 in 200 people were prevented from a repeat heart attack, and another 1 in 200 from having an abnormal heart rhythm. Additionally, for 1 in 91 the medication causes a temporary decrease in the heart's ability to pump blood.

ACE inhibitor therapy should be started within 24 hours and continued indefinitely at the highest tolerated dose. This is provided there is no evidence of worsening kidney failure, high potassium, low blood pressure, or known narrowing of the renal arteries. Those who cannot tolerate ACE inhibitors may be treated with an angiotensin II receptor antagonist.

Statin therapy has been shown to reduce mortality and subsequent cardiac events and should be commenced to lower LDL cholesterol. Other medications, such as ezetimibe, may also be added with this goal in mind.

Aldosterone antagonists (spironolactone or eplerenone) may be used if there is evidence of left ventricular dysfunction after an MI, ideally after beginning treatment with an ACE inhibitor.

Other

A defibrillator, an electric device connected to the heart and surgically inserted under the skin, may be recommended. This is particularly if there are any ongoing signs of heart failure, with a low left ventricular ejection fraction and a New York Heart Association grade II or III after 40 days of the infarction. Defibrillators detect potentially fatal arrhythmia and deliver an electrical shock to the person to depolarize a critical mass of the heart muscle.

First aid

Taking aspirin helps to reduce the risk of mortality in people with myocardial infarction.

Management

A myocardial infarction requires immediate medical attention. Treatment aims to preserve as much heart muscle as possible, and to prevent further complications. Treatment depends on whether the myocardial infarction is a STEMI or NSTEMI. Treatment in general aims to unblock blood vessels, reduce blood clot enlargement, reduce ischemia, and modify risk factors with the aim of preventing future MIs. In addition, the main treatment for myocardial infarctions with ECG evidence of ST elevation (STEMI) include thrombolysis or percutaneous coronary intervention, although PCI is also ideally conducted within 1–3 days for NSTEMI. In addition to clinical judgement, risk stratification may be used to guide treatment, such as with the TIMI and GRACE scoring systems.

Pain

The pain associated with myocardial infarction is often treated with nitroglycerin, a vasodilator, or opioid medications such as morphine. Nitroglycerin (given under the tongue or injected into a vein) may improve blood supply to the heart. It is an important part of therapy for its pain relief effects, though there is no proven benefit to mortality. Morphine or other opioid medications may also be used, and are effective for the pain associated with STEMI. There is poor evidence that morphine shows any benefit to overall outcomes, and there is some evidence of potential harm.

Antithrombotics

Aspirin, an antiplatelet drug, is given as a loading dose to reduce the clot size and reduce further clotting in the affected artery. It is known to decrease mortality associated with acute myocardial infarction by at least 50%. P2Y12 inhibitors such as clopidogrel, prasugrel and ticagrelor are given concurrently, also as a loading dose, with the dose depending on whether further surgical management or fibrinolysis is planned. Prasugrel and ticagrelor are recommended in European and American guidelines, as they are active more quickly and consistently than clopidogrel. P2Y12 inhibitors are recommended in both NSTEMI and STEMI, including in PCI, with evidence also to suggest improved mortality. Heparins, particularly in the unfractionated form, act at several points in the clotting cascade, help to prevent the enlargement of a clot, and are also given in myocardial infarction, owing to evidence suggesting improved mortality rates. In very high-risk scenarios, inhibitors of the platelet glycoprotein αIIbβ3a receptor such as eptifibatide or tirofiban may be used.

There is varying evidence on the mortality benefits in NSTEMI. A 2014 review of P2Y12 inhibitors such as clopidogrel found they do not change the risk of death when given to people with a suspected NSTEMI prior to PCI, nor do heparins change the risk of death. They do decrease the risk of having a further myocardial infarction.

Angiogram

Inserting a stent to widen the artery.

Primary percutaneous coronary intervention (PCI) is the treatment of choice for STEMI if it can be performed in a timely manner, ideally within 90–120 minutes of contact with a medical provider. Some recommend it is also done in NSTEMI within 1–3 days, particularly when considered high-risk. A 2017 review, however, did not find a difference between early versus later PCI in NSTEMI.

PCI involves small probes, inserted through peripheral blood vessels such as the femoral artery or radial artery into the blood vessels of the heart. The probes are then used to identify and clear blockages using small balloons, which are dragged through the blocked segment, dragging away the clot, or the insertion of stents. Coronary artery bypass grafting is only considered when the affected area of heart muscle is large, and PCI is unsuitable, for example with difficult cardiac anatomy. After PCI, people are generally placed on aspirin indefinitely and on dual antiplatelet therapy (generally aspirin and clopidogrel) for at least a year.

Fibrinolysis

If PCI cannot be performed within 90 to 120 minutes in STEMI then fibrinolysis, preferably within 30 minutes of arrival to hospital, is recommended. If a person has had symptoms for 12 to 24 hours evidence for effectiveness of thrombolysis is less and if they have had symptoms for more than 24 hours it is not recommended. Thrombolysis involves the administration of medication that activates the enzymes that normally dissolve blood clots. These medications include tissue plasminogen activator, reteplase, streptokinase, and tenecteplase. Thrombolysis is not recommended in a number of situations, particularly when associated with a high risk of bleeding or the potential for problematic bleeding, such as active bleeding, past strokes or bleeds into the brain, or severe hypertension. Situations in which thrombolysis may be considered, but with caution, include recent surgery, use of anticoagulants, pregnancy, and proclivity to bleeding. Major risks of thrombolysis are major bleeding and intracranial bleeding. Pre-hospital thrombolysis reduces time to thrombolytic treatment, based on studies conducted in higher income countries; however, it is unclear whether this has an impact on mortality rates.

Other

In the past, high flow oxygen was recommended for everyone with a possible myocardial infarction. More recently, no evidence was found for routine use in those with normal oxygen levels and there is potential harm from the intervention. Therefore, oxygen is currently only recommended if oxygen levels are found to be low or if someone is in respiratory distress.

If despite thrombolysis there is significant cardiogenic shock, continued severe chest pain, or less than a 50% improvement in ST elevation on the ECG recording after 90 minutes, then rescue PCI is indicated emergently.

Those who have had cardiac arrest may benefit from targeted temperature management with evaluation for implementation of hypothermia protocols. Furthermore, those with cardiac arrest, and ST elevation at any time, should usually have angiography. Aldosterone antagonists appear to be useful in people who have had an STEMI and do not have heart failure.

Rehabilitation and exercise

Cardiac rehabilitation benefits many who have experienced myocardial infarction, even if there has been substantial heart damage and resultant left ventricular failure. It should start soon after discharge from the hospital. The program may include lifestyle advice, exercise, social support, as well as recommendations about driving, flying, sports participation, stress management, and sexual intercourse. Returning to sexual activity after myocardial infarction is a major concern for most patients, and is an important area to be discussed in the provision of holistic care.

In the short-term, exercise-based cardiovascular rehabilitation programs may reduce the risk of a myocardial infarction, reduces a large number of hospitalizations from all causes, reduces hospital costs, improves health-related quality of life, and has a small effect on all-cause mortality. Longer-term studies indicate that exercise-based cardiovascular rehabilitation programs may reduce cardiovascular mortality and myocardial infarction.

Prognosis

The prognosis after myocardial infarction varies greatly depending on the extent and location of the affected heart muscle, and the development and management of complications. Prognosis is worse with older age and social isolation. Anterior infarcts, persistent ventricular tachycardia or fibrillation, development of heart blocks, and left ventricular impairment are all associated with poorer prognosis. Without treatment, about a quarter of those affected by MI die within minutes and about forty percent within the first month. Morbidity and mortality from myocardial infarction has, however, improved over the years due to earlier and better treatment: in those who have a STEMI in the United States, between 5 and 6 percent die before leaving the hospital and 7 to 18 percent die within a year.

It is unusual for babies to experience a myocardial infarction, but when they do, about half die. In the short-term, neonatal survivors seem to have a normal quality of life.

Complications

Complications may occur immediately following the myocardial infarction or may take time to develop. Disturbances of heart rhythms, including atrial fibrillation, ventricular tachycardia and fibrillation and heart block can arise as a result of ischemia, cardiac scarring, and infarct location. Stroke is also a risk, either as a result of clots transmitted from the heart during PCI, as a result of bleeding following anticoagulation, or as a result of disturbances in the heart's ability to pump effectively as a result of the infarction. Regurgitation of blood through the mitral valve is possible, particularly if the infarction causes dysfunction of the papillary muscle. Cardiogenic shock as a result of the heart being unable to adequately pump blood may develop, dependent on infarct size, and is most likely to occur within the days following an acute myocardial infarction. Cardiogenic shock is the largest cause of in-hospital mortality. Rupture of the ventricular dividing wall or left ventricular wall may occur within the initial weeks. Dressler's syndrome, a reaction following larger infarcts and a cause of pericarditis is also possible.

Heart failure may develop as a long-term consequence, with an impaired ability of heart muscle to pump, scarring, and an increase in the size of the existing muscle. Aneurysm of the left ventricle myocardium develops in about 10% of MI and is itself a risk factor for heart failure, ventricular arrhythmia, and the development of clots.

Risk factors for complications and death include age, hemodynamic parameters (such as heart failure, cardiac arrest on admission, systolic blood pressure, or Killip class of two or greater), ST-segment deviation, diabetes, serum creatinine, peripheral vascular disease, and elevation of cardiac markers.

Epidemiology

Myocardial infarction is a common presentation of coronary artery disease. The World Health Organization estimated in 2004, that 12.2% of worldwide deaths were from ischemic heart disease; with it being the leading cause of death in high- or middle-income countries and second only to lower respiratory infections in lower-income countries. Worldwide, more than 3 million people have STEMIs and 4 million have NSTEMIs a year. STEMIs occur about twice as often in men as women.

Rates of death from ischemic heart disease (IHD) have slowed or declined in most high-income countries, although cardiovascular disease still accounted for one in three of all deaths in the US in 2008. For example, rates of death from cardiovascular disease have decreased almost a third between 2001 and 2011 in the United States.

In contrast, IHD is becoming a more common cause of death in the developing world. For example, in India, IHD had become the leading cause of death by 2004, accounting for 1.46 million deaths (14% of total deaths) and deaths due to IHD were expected to double during 1985–2015. Globally, disability adjusted life years (DALYs) lost to ischemic heart disease are predicted to account for 5.5% of total DALYs in 2030, making it the second-most-important cause of disability (after unipolar depressive disorder), as well as the leading cause of death by this date.

Social determinants of health

Social determinants such as neighborhood disadvantage, immigration status, lack of social support, social isolation, and access to health services play an important role in myocardial infarction risk and survival. Studies have shown that low socioeconomic status is associated with an increased risk of poorer survival. There are well-documented disparities in myocardial infarction survival by socioeconomic status, race, education, and census-tract-level poverty.

Race: In the U.S. African Americans have a greater burden of myocardial infarction and other cardiovascular events. On a population level, there is a higher overall prevalence of risk factors that are unrecognized and therefore not treated, which places these individuals at a greater likelihood of experiencing adverse outcomes and therefore potentially higher morbidity and mortality. Similarly, South Asians (including South Asians that have migrated to other countries around the world) experience higher rates of acute myocardial infarctions at younger ages, which can be largely explained by a higher prevalence of risk factors at younger ages.

Socioeconomic status: Among individuals who live in the low-socioeconomic (SES) areas, which is close to 25% of the US population, myocardial infarctions (MIs) occurred twice as often compared with people who lived in higher SES areas.

Immigration status: In 2018 many lawfully present immigrants who are eligible for coverage remain uninsured because immigrant families face a range of enrollment barriers, including fear, confusion about eligibility policies, difficulty navigating the enrollment process, and language and literacy challenges. Uninsured undocumented immigrants are ineligible for coverage options due to their immigration status.

Health care access: Lack of health insurance and financial concerns about accessing care were associated with delays in seeking emergency care for acute myocardial infarction which can have significant, adverse consequences on patient outcomes.

Education: Researchers found that compared to people with graduate degrees, those with lower educational attainment appeared to have a higher risk of heart attack, dying from a cardiovascular event, and overall death.

Society and culture

Depictions of heart attacks in popular media often include collapsing or loss of consciousness which are not common symptoms; these depictions contribute to widespread misunderstanding about the symptoms of myocardial infarctions, which in turn contributes to people not getting care when they should.

At common law, in general, a myocardial infarction is a disease but may sometimes be an injury. This can create coverage issues in the administration of no-fault insurance schemes such as workers' compensation. In general, a heart attack is not covered; however, it may be a work-related injury if it results, for example, from unusual emotional stress or unusual exertion. In addition, in some jurisdictions, heart attacks had by persons in particular occupations such as police officers may be classified as line-of-duty injuries by statute or policy. In some countries or states, a person having had an MI may be prevented from participating in activity that puts other people's lives at risk, for example driving a car or flying an airplane.

American Medical Association

From Wikipedia, the free encyclopedia
American Medical Association
FormationMay 7, 1847; 177 years ago
TypeProfessional association
36-0727175
Legal status501(c)(6)
Purpose"To Promote the art and science of medicine and the betterment of public health"
Headquarters330 North Wabash, Chicago, Illinois, United States
Region served
United States
Membership
271,660 as of 2022 
President
Jesse M. Ehrenfeld (MD, MPH)
Revenue (2022)
$493,147,829
Websiteama-assn.org

The American Medical Association (AMA) is an American professional association and lobbying group of physicians and medical students. Founded in 1847, it is headquartered in Chicago, Illinois. Membership was 271,660 in 2022.

The AMA's stated mission is "to promote the art and science of medicine and the betterment of public health." The organization was founded with the goal to raise the standards of medicine in the 19th century primarily through gaining control of education and licensing. In the 20th century, the AMA has frequently lobbied to restrict the supply of physicians, contributing to a doctor shortage in the United States. The organization has also lobbied against allowing physician assistants and other health care providers to perform basic forms of health care. The organization has historically lobbied against various forms of government-run health insurance.

The Association also publishes the Journal of the American Medical Association (JAMA). The AMA also publishes a list of Physician Specialty Codes which are the standard method in the U.S. for identifying physician and practice specialties.

The American Medical Association is governed by a House of Delegates as well as a board of trustees in addition to executive management. The organization maintains the AMA Code of Medical Ethics, and the AMA Physician Masterfile containing data on United States Physicians. The Current Procedural Terminology coding system was first published in 1966 and is maintained by the Association. It has also published works such as the Guides to Evaluation of Permanent Impairment and established the American Medical Association Foundation and the American Medical Political Action Committee. The current president is Jesse Ehrenfeld, an anesthesiologist affiliated with the Medical College of Wisconsin.

History

1847–1900

In 1846, the organization created a committee dedicated to analyzing the methodology of vital records registration. It urged state governments to adopt measures to register births, marriages and deaths within their populations. In 1847, the American Medical Association was founded in Philadelphia by Nathan Smith Davis as a national professional medical organization. The organization educated people about the dangers of patent medicines and called for legislation regulating their production and sale. One resulting legislation was the Drug Importation Act of 1848.

In 1848, the AMA began publishing Transactions of the American Medical Association, which included lists and reports of cases of physiological effects of ether and chloroform at the Massachusetts General Hospital in Boston, the New York Hospital and the clinics of the University of Pennsylvania and Jefferson Medical College.

At the organization's second meeting in 1849, Thomas Wood suggested a committee on medical science to establish a board to analyze quack remedies and nostrums to be published in order to inform the public about the dangers of such remedies. The AMA's attempts to expose quack remedies aided the passage of the first Pure Food and Drug Act in 1906.

The AMA Committee on Ethics advocated for recognition of qualified female physicians in 1869, and the AMA inducted its first female member, Sarah Hackett Stevenson, as an Illinois State Medical Society delegate in 1876.

In 1872, the AMA's book Nomenclature of Diseases was published. In 1883, the AMA launched the Journal of the American Medical Association. The organization's founder, Nathan Smith Davis, served as the first editor of the publication.

In 1897, the AMA was incorporated in the state of Illinois.

AMA pushed for laws requiring compulsory smallpox vaccinations in 1899. In 1899, the AMA appointed a committee to report on tuberculosis, including on its communicability and prevention. The Committee on Tuberculosis presented its report in October 1900.

1901–1920

In 1901, the AMA was reorganized with its central authority shifted to a House of Delegates, a board of trustees, and executive offices. The House of Delegates was modeled after the United States House of Representatives and included representatives from medical organizations across the United States as a formal, reform-minded legislative body. The organization's new president appointed a Committee on Medical Education in order to evaluate medical education in the United States and make recommendations for its improvement.

The AMA's Committee on National Legislation established the Committee on Medical Legislation in 1901.

AMA created the Council on Pharmacy and Chemistry in 1905 to set standards for drug manufacturing and advertising. That same year, the AMA began a voluntary program of drug approval, which would remain in effect until 1955. Drug companies were required to show proof of the effectiveness of their drugs to advertise them in AMA's journal.

In 1906, the AMA established a Physician Masterfile designed to contain data on physicians in the United States as well as graduates of American medical schools and international graduates who are in the United States. Each file is established when an individual either enters medical schools or enters the United States.

The AMA established the Council for the Defense of Medical Research in 1908. AMA's Council on Medical Education and Hospitals first published its annual list of hospitals approved for internships in 1914.

1921–1960

In May 1922, the Woman's Auxiliary to the AMA was organized. The following year, the AMA established standards for medical specialty training residency programs. The AMA later published its first list of hospitals approved for residency training in 1927.

In 1927, Congress passed the Caustic Poison Act, lobbied for by the AMA, which required product labels to include warnings if they included lye or 10 other caustic chemicals.

In 1933, the AMA's general medical guide the Standard Classified Nomenclature of Disease, (referred to as the Standard), was released. Along with the New York Academy of Medicine, the APA provided the psychiatric nomenclature subsection. A number of revisions were produced, with the last in 1961.

The Normal Diet, a comprehensive listing of what Americans should be eating, was published by the AMA in 1938.

A formal partnership between the AMA and the Association of American Medical Colleges formed the Liaison Committee on Medical Education in 1942 in order to establish requirements for certification of medical schools. In 1951, the Joint Commission on Accreditation of Hospitals was created through merging the Hospital Standardization Program with quality standards from the American College of Physicians, the American Hospital Association, and the American Medical Association. The commission, established for evaluation and accreditation of healthcare organizations in the United States, governed by a board of commissioners including physicians, consumers and administrators.

The AMA publicly endorsed the principle of fluoridation of community water supplies in 1951.

1961–1980

The AMA first published the Current Procedural Terminology (CPT) coding system in 1966. The system was created for uniform reporting of outpatient physician services. The first manual was 163 pages and contained only four-digit codes with descriptions of each. A second edition of the book was published in 1970 with a fifth digit added.

The AMA published the first Guides to the Evaluation of Permanent Impairment in 1971. The guides were later republished in 1977 before the AMA Council on Scientific Affairs created 12 committees to review the guides before the second edition was published in 1984.

In the 1970s, the AMA spoke out against gender discrimination in medical institutions. In 1975, the AMA adopted a policy stating that "discrimination based on sexual orientation is improper and unacceptable by any part of the federation of medicine." It adopted a resolution to repeal all state sodomy laws. In 1976, the AMA began encouraging all public facilities to have handicap access.

1981–2000

The AMA released a survey in 1981 that found two short-term effects of dioxin on humans and recommended further studies. By 1983, the AMA accused the news media of conducting a "witch hunt" against the toxic chemical and launched a public information campaign to counter media hysteria.

In May 1983, the Journal of the American Medical Association published a report that reviewed cases of childhood AIDS.

A Federal district judge ruled that the AMA had violated the Sherman Antitrust Act in 1987 by depriving chiropractors of access to the Association. The lawsuit, filed by four chiropractors, accused AMA of conspiring to prevent chiropractors from practicing in the United States.

The Journal of the American Medical Association first documented that Joe Camel cartoons reached more children than adults in December 1991. The Association called for the R. J. Reynolds Tobacco Company to stop using the Joe Camel character in its advertising because of its appeal to youth.

In 1995, Lonnie R. Bristow became the first African-American president of the American Medical Association. Before he became president, Bristow was the first African-American member of the board of trustees and first African-American chairman of the board.

In 1996, the AMA campaigned against health plan "gag clauses", which prohibited doctors from discussing with their patients treatments not covered by the plan, stating that the stipulations inhibit the communication of information and restrict the care doctors can give their patients. The clauses were removed from the contracts of five leading providers, and laws prohibiting such clauses were passed in 16 states.

In 1997, the AMA established the National Patient Safety Foundation as an independent, nonprofit research and education organization focused on patient safety.

Nancy W. Dickey was named president of the American Medical Association in June 1998. She was the first woman to head the organization and had been part of AMA's leadership since 1977.

2000–present

In 2002, the AMA released a report that found a medical liability insurance crisis in at least a dozen states was forcing physicians to either close practices or limit services. The association called for Congress to take action and campaigned for national reform.

In 2008, the AMA issued a formal apology for previous policies that excluded African-Americans from the organization and announced increased efforts to increase minority physician participation.

The AMA officially recognized obesity as a disease in 2013 in an attempt to change how the medical community approaches the issue.

In 2015, the AMA declared there is no medically valid reason to exclude transgender individuals from serving in the U.S. military. The Human Rights Campaign lauded the decision.

Patrice A. Harris became the AMA's 174th president in June 2019, the organization's first African-American woman to hold this position.

The AMA sponsors the Specialty Society Relative Value Scale Update Committee, which is an influential group of 29 physicians, mostly specialists, who help determine the value of different physicians' labor in Medicare prices.

Policy positions

The AMA has one of the largest political lobbying budgets of any organization in the United States. Its political positions throughout its history have often been controversial.

Lobbying

Between 1998 and 2020, the association has spent an average of $18 million annually on lobbying efforts. In the first quarter of 2021, they reported $6.36 million in lobbying expenses.

Restrictions on physician supply

The AMA has at various points in history advocated for restricting the supply of physicians. In the early 20th century, the AMA lobbied lawmakers to shut down medical schools on grounds that they were substandard, which in turn reduced the supply of doctors. The AMA lobbied for reductions in physician supply during the Great Depression. In 1997, the AMA lobbied Congress to restrict the number of doctors that could be trained in the United States, claiming that, "The United States is on the verge of a serious oversupply of physicians." The AMA successfully lobbied Congress to cap how much Medicare could reimburse hospitals for resident physicians, which reduced residency training. In the decades following these restrictions on physician supply, the United States has a shortage of doctors. The United States was forecasted to have a shortage of 46,900 to 121,900 physicians by 2032. As a consequence of the restrictions on medical training in the United States, a quarter of physicians in the United States were trained abroad by 2022.

In the 1930s, the AMA attempted to prohibit its members from working for the health maintenance organizations established during the Great Depression, which violated the Sherman Antitrust Act and resulted in a conviction ultimately affirmed by the US Supreme Court.

In 1982, the Supreme Court of the United States upheld a Federal Trade Commission order that allowed doctors and dentists to advertise without professional association interference. The order restrained the AMA from its power to obstruct agreements between physicians and health maintenance organizations.

The AMA has lobbied to restrict the ability of physician assistants to provide services with less oversight from doctors.

In 2007, the AMA called for state and federal agencies to investigate potential conflicts of interest between the retail clinics and pharmacy chains.

Opposition to expanded health care access

In 1917, the AMA endorsed compulsory health insurance, but the organization faced backlash from its state-level societies for this position. The AMA established a policy of opposition to compulsory health insurance by state or federal government in 1920.

A 1932 editorial in the Journal of the American Medical Society denounced a proposal for government-backed voluntary health insurance system.

In the 1940s, the AMA opposed President Harry Truman's proposed healthcare reforms, which would have expanded healthcare facilities in low-income and rural communities, bolstered public health services, increased investments in medical research and education, and provided a payroll-tax-financed, government-run health insurance plan to help relieve the burden of excessive healthcare bills from sick persons. The AMA condemned Truman's plan as "socialized medicine". The AMA charged each of its members an extra 25 dollars to finance a lobbying campaign against the Truman plan.

In 1961, the AMA opposed the King-Anderson bill proposing Medicare legislation and took out advertisements in newspapers, radio and television against government health insurance. The AMA established the American Medical Political Action Committee, which was separate from AMA though the Association nominated its board of directors. The AMA's efforts to defeat Medicare legislation was called Operation Coffee Cup. the AMA produced the LP, "Ronald Reagan Speaks Out Against Socialized Medicine". The AMA created an "Eldercare" proposal rather than hospital insurance through Social Security. Since the enactment of Medicare, the AMA reversed its position and now opposes any "cut to Medicare funding or shift [of] increased costs to beneficiaries at the expense of the quality or accessibility of care".

The AMA did not take a position on Bill Clinton's proposed health care reform.

The AMA supported the Barack Obama administration's health care reform. In 2009, the American Medical Association released a public letter to the United States Congress and President Barack Obama endorsing his proposed overhaul to the public health care system, including universal health coverage. The following year, it offered "qualified support" for the Patient Protection and Affordable Care Act.

The AMA supported the Medicare Access and CHIP Reauthorization Act of 2015, which introduced Medicare reforms and replaced the SGR formula with increased Medicare physician reimbursement.

The AMA opposed Republicans' proposed repeal of the Affordable Care Act in March 2017, saying millions of Americans would lose health care coverage.

The AMA has historically opposed single-payer health care.

Substance use and addiction

The AMA's Committee on Alcoholism issued a statement in 1956 calling alcoholism an illness and encouraging medical personnel and institutions to admit and treat alcoholic patients.

In 1972, the AMA launched a "war on smoking" and supported legislation that would prohibit tobacco sample disbursement.

In the early 1980s, the AMA advocated for raising the national legal drinking age to 21.

The AMA called for a ban on advertising and promotion of all tobacco products in any form of media. The AMA also proposed declaring snuff and chewing tobacco a health hazard, increasing the tax on cigarettes, prohibiting smoking on public transportation and urged medical facilities to ban smoking on their premises.

In 2014, the Association created the AMA Opioid Task Force to evaluate prescription opioid use and abuse.

Medical malpractice reform

The AMA has supported changes in medical malpractice law to limit damage awards, which, it contends, makes it difficult for patients to find appropriate medical care. In many states, high risk specialists have moved to other states that have enacted reform. For example, in 2004, all neurosurgeons had relocated out of the entire southern half of Illinois. The main legislative emphasis in multiple states has been to effect caps on the amount that patients can receive for pain and suffering. These costs for pain and suffering are only those that exceed the actual costs of healthcare and lost income. At the same time however, states without caps also experienced similar results, suggesting that other market factors may have contributed to the decreases. Some economic studies have found that caps have historically had an uncertain effect on premium rates. A recent report by the AMA found that, in a 12-month period, five percent of physicians had claims filed against them.

Structural racism controversy and outcomes

On a February 2021 JAMA podcast a Deputy Editor of the journal proposed that "structural racism is an unfortunate term to describe a very real problem," and that "taking racism out of the conversation would help" to ensure "all people who lived in disadvantaged circumstance have equal opportunities to become successful and have better qualities of life." In addition to the comments made during the podcast, JAMA then tweeted out the podcast with the caption "No physician is racist, so how can there be structural racism in health care" which further added to the controversy. The subsequent controversy led the Deputy Editor and the JAMA editor-in-chief Howard Bauchner to resign. Kirsten Bibbins-Domingo was chosen as Bauchner's replacement making her the first person of color and second woman to ever lead the journal.

After the podcast structural racism controversy in 2021, the AMA published a paper that included recommendations to help improve health equity and address structural racism which would encourage "explicit conversations about power, racism, gender and class oppression, forms of discrimination and exclusion." Its "Advancing Health Equity: A Guide to Language, Narrative and Concepts" document asked "questions about language and commonly used phrases and terms, with the goal of cultivating awareness about dominant narratives and offering equity-based, equity-explicit, and person-first alternatives."

Political donations

The association has donated between $1.6 million and $3.4 million in election cycles between 1990 and 2020. Their distributions have varied from near parity for both Democrats and Republicans to heavily favoring Republican candidates at 75% in the 1996 and 2004 elections.

Contributions by party of recipient (1990 to 2020)
Cycle Total Democrats % to Dems Republicans % to Repubs
1990 $2,846,407 $1,398,543 49.13% $1,447,864 50.87%
1992 $3,451,005 $1,696,551 49.23% $1,749,454 50.77%
1994 $2,838,629 $1,206,192 42.57% $1,627,437 57.43%
1996 $2,869,846 $695,525 24.23% $2,174,571 75.77%
1998 $2,712,032 $804,018 29.84% $1,890,514 70.16%
2000 $2,290,025 $1,081,268 47.27% $1,206,007 52.73%
2002 $2,704,238 $1,074,695 39.74% $1,629,543 60.26%
2004 $2,353,510 $564,375 24.24% $1,763,950 75.76%
2006 $2,261,629 $743,554 33.05% $1,506,410 66.95%
2008 $1,875,337 $1,044,987 55.74% $829,700 44.26%
2010 $1,624,409 $867,750 53.46% $755,409 46.54%
2012 $2,117,640 $880,062 41.66% $1,232,578 58.34%
2014 $2,062,906 $793,776 38.51% $1,267,640 61.49%
2016 $1,994,697 $739,187 37.12% $1,252,093 62.88%
2018 $1,470,984 $715,539 49.13% $740,805 50.87%
2020 $1,573,836 $830,438 54.14% $703,513 45.86%

Between 1990 and 2020, the majority of contributions came from PAC money.

Contributions by source of funds (1990 to 2020)
Cycle Individuals PACs Soft (Individuals) Soft (Organization)
1990 $19,321 $2,827,086 N/A N/A
1992 $31,425 $3,371,794 $0 $47,786
1994 $26,341 $2,742,156 $0 $70,132
1996 $46,633 $2,617,176 $0 $206,037
1998 $21,666 $2,609,991 $0 $80,375
2000 $41,056 $2,216,104 $350 $32,515
2002 $33,657 $2,656,131 $700 $13,750
2004 $81,800 $2,257,425 $35 $14,250
2006 $61,080 $2,188,884 $665 $11,000
2008 $124,869 $1,749,818 $0 $650
2010 $64,550 $1,538,859 $1,000 $20,000
2012 $70,062 $2,047,578 $0 $0
2014 $66,700 $1,985,716 $490 $10,000
2016 $101,903 $1,880,594 $2,200 $10,000
2018 $62,734 $1,400,190 $2,560 $5,500
2020 $171,963 $1,362,650 $4,223 $35,000

Criticism

During the Civil Rights Movement, the American Medical Association's policy of allowing its constituent groups to be racially segregated in areas with widespread prejudice faced opposition from doctors as well as other healthcare professionals. Pressure from organizations such as the Medical Committee for Human Rights (MCHR) resulted in changed policies by the late 1960s.

Nobel Memorial Prize-winning economist Milton Friedman, as well as his wife, Rose Friedman, have claimed that the organization acts as a guild and has attempted to increase physicians' wages and fees by influencing limitations on the supply of physicians and competition from non-physicians. In the book Free to Choose, the Friedmans stated that "the AMA has engaged in extensive litigation charging chiropractors and osteopathic physicians with the unlicensed practice of medicine, in an attempt to restrict them to as narrow an area as possible." The AMA was also criticized for holding up licensing of foreign-trained medical professionals who, after Adolf Hitler came to power, were fleeing to the U.S. from Nazi-controlled Germany and adjacent nations. Profession and Monopoly also criticized the AMA for limiting the supply of physicians and inflating the cost of medical care in the U.S. as well as its influence on hospital regulation. In a 1987 antitrust court case, a federal district judge called the AMA's behavior toward chiropractors "systematic, long-term wrongdoing". The AMA was accused of limiting the associations between physicians and chiropractors. In the 1960s and 1970s, the association's Committee on Quackery was said to have targeted the chiropractic profession, and for many years the AMA held that it was unethical for physicians to refer patients to chiropractors or to receive referrals from chiropractors.

In October 2020, the association used Twitter and Facebook to publicly oppose scope of practice creep, where non-physicians are permitted to provide healthcare services without physician oversight. The posts were removed the same day and the AMA commented that they were committed to "team-based healthcare guided by a physician" to "optimize patient outcomes." The American Academy of Physician Assistants published a letter expressing their frustration at the social media posts. Rebekah Bernard from the advocacy group Physicians for Patient Protection publicly criticized the AMA for retracting their social media posts.

Structure

The AMA is composed of policy discussion groups that meet twice a year for an annual meeting and an Interim meeting. Within the AMA, there are sections that include Medical Students, Resident and Fellows, Academic physicians, Medical School Deans and Faculty, Physicians in group practice setting, Retired and Senior Physicians, International Medical graduates, Woman physicians, Physician Diversity and Minority health, GLBT, USAN, AMA board of Trustees, Foundation and Council. External organizations, called AMA member organizations, come to these meetings by sending representatives. Representatives come from a state, specialty or the federal services/government service medical societies.

Human extinction

From Wikipedia, the free encyclopedia https://en.wikipedia.org/wiki/Human_ext...