第 4 章,共 4 章18% 占考试比重

Cardiac Anatomy, Physiology, and Common Conditions

About 18% of the exam tests the anatomy and physiology behind the tracing. This is the smallest domain but the one that makes every other domain make sense: chest lead placement follows the position of the heart in the chest, escape rhythms follow the inherent rates of the conduction system, and the ischemic changes on a 12-lead follow the coronary anatomy. This chapter covers the chambers and valves, the path of blood, the conduction system and its intrinsic rates, the mechanics of the cardiac cycle, and the common cardiac conditions a technician will see referenced on requisitions every day.

Chambers, Valves, and the Path of Blood

The heart is a four-chambered pump enclosed in the pericardial sac. Its wall has three layers: the endocardium lining the chambers, the myocardium that does the contracting, and the epicardium on the outer surface. The right side is a low-pressure pump that sends blood a short distance to the lungs; the left side is a high-pressure pump that supplies the entire body, which is why the left ventricle wall is roughly three times thicker even though both ventricles eject about the same volume each beat. Deoxygenated blood returns from the body through the superior and inferior venae cavae into the right atrium, crosses the tricuspid valve into the right ventricle, and exits through the pulmonic valve to the lungs. Oxygenated blood returns through the pulmonary veins into the left atrium, crosses the mitral valve into the left ventricle, and leaves through the aortic valve to the systemic circulation.

Right side to the lungs, left side to the body
Pulmonary circulation is right heart to lungs and back; systemic circulation is left heart to body and back.
Atrioventricular valves
Tricuspid on the right, mitral (bicuspid) on the left. They close at the start of ventricular systole to prevent backflow into the atria.
Semilunar valves
Pulmonic guards the right ventricular outflow, aortic guards the left. They close at the end of systole to prevent backflow into the ventricles.
Three layers of the heart wall
Endocardium inside, myocardium in the middle doing the work, epicardium outside, all within the pericardial sac.

The Electrical Conduction System and Its Intrinsic Rates

The impulse begins in the sinoatrial node in the upper right atrium, spreads across both atria to produce the P wave, and arrives at the atrioventricular node. There it is deliberately delayed about a tenth of a second, giving the atria time to finish contracting and top off ventricular filling; that delay is the flat segment inside the PR interval. The impulse then travels through the bundle of His, divides into the right and left bundle branches, and finishes in the Purkinje fibers, which spread it rapidly through the ventricular muscle to produce the QRS. Each level of this system can pace the heart on its own, and each has a slower inherent rate than the one above it, which is exactly why an escape rhythm's rate tells you where it originated.

Conduction pathway order
SA node, then AV node, then bundle of His, then right and left bundle branches, then Purkinje fibers.
SA node: 60 to 100 beats per minute
The primary pacemaker, which is why normal sinus rhythm is defined by that rate range.
AV junction: 40 to 60 beats per minute
The backup pacemaker. A rhythm in this range with inverted, absent, or post-QRS P waves is a junctional escape rhythm.
Purkinje fibers: 20 to 40 beats per minute
The pacemaker of last resort. Because the impulse starts below the junction, the QRS is wide and no P waves precede it.
The AV delay is protective
It allows atrial contraction to complete before the ventricles fire, and it limits how many atrial impulses reach the ventricles in atrial flutter or fibrillation.

Depolarization, Repolarization, and the Cardiac Cycle

Depolarization is the electrical discharge across the cell membrane that stimulates contraction; repolarization is the recovery back to the resting state. The EKG records only these electrical events, which is why an organized rhythm can appear on the screen while the heart produces no pulse at all, a condition called pulseless electrical activity. That single fact is the reason a technician always confirms the patient rather than treating the monitor. Mechanically, the cycle alternates between systole, when the ventricles contract and eject blood, and diastole, when they relax and fill. Cardiac output is the product of heart rate and stroke volume, normally about 4 to 8 liters per minute in an adult, so both an extremely slow and an extremely fast rate can reduce output, the slow rate by too few beats and the fast rate by cutting filling time short.

Depolarization equals stimulus to contract
Atrial depolarization produces the P wave; ventricular depolarization produces the QRS. Ventricular repolarization produces the T wave.
Systole and diastole
Systole is contraction and ejection with the AV valves closed. Diastole is relaxation and filling with the AV valves open.
Cardiac output = heart rate x stroke volume
Normally about 4 to 8 liters per minute. Stroke volume is the amount ejected by the left ventricle each beat.
Coronary arteries fill during diastole
The right and left coronary arteries branch from the base of the aorta and perfuse the myocardium mainly when it is relaxed, which is why very fast rates can provoke ischemia.
Electrical activity does not guarantee a pulse
Always assess the patient. A normal-looking rhythm on the monitor in an unresponsive patient is an emergency, not a reassuring finding.

Common Cardiac Conditions and Their EKG Signs

Technicians are not permitted to diagnose, but recognizing the tracings that require urgent attention is part of the job. Coronary artery disease narrows the vessels that feed the myocardium. When the narrowing produces temporary oxygen shortage during exertion, the result is angina, typically relieved within minutes by rest or nitroglycerin and often accompanied by transient ST depression or T wave inversion. When a vessel occludes completely and muscle begins to die, the result is a myocardial infarction, classically showing ST segment elevation in a group of anatomically related leads and later pathologic Q waves. Congestive heart failure is a pumping problem rather than a conduction problem: the weakened ventricle cannot move the volume delivered to it, so fluid backs up into the lungs on the left side and into the peripheral tissues on the right. Chronic hypertension forces the left ventricle to work against high resistance until the muscle thickens, producing the increased voltage of left ventricular hypertrophy.

Angina versus infarction
Angina is temporary, exertional, relieved by rest or nitroglycerin, and causes no permanent damage. Infarction is prolonged occlusion causing tissue death.
ST elevation in related leads suggests acute injury
Leads II, III, and aVF view the inferior wall; V1 through V4 view the anterior wall; I, aVL, V5, and V6 view the lateral wall. Report the finding to the provider immediately.
Congestive heart failure
Left-sided failure causes shortness of breath and orthopnea from pulmonary congestion; right-sided failure causes peripheral edema and jugular venous distention.
Hypertension and hypertrophy
Chronic pressure overload thickens the left ventricle, producing tall R waves in the left-sided leads and deep S waves in V1 and V2.
Recognize, report, do not diagnose
Describe the finding, notify the nurse or physician at once for anything urgent, and leave the interpretation and the conversation with the patient to the provider.
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Last updated: July 2026

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