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Cardiovascular physiology

Hemodynamics

Connect pressure, flow, ventricular loading, valve disease, and shock to explain clinical findings and choose what to measure before changing treatment.

A patient can have a respectable blood pressure and inadequate cardiac output. Another can have a low pressure while pumping a large volume each minute. Hemodynamics becomes useful when you separate flow, the pressure gradient driving that flow, and the resistance or obstruction between two measurement sites. Before choosing a treatment, decide which part of that relationship has failed.

Pressure needs an address

Cardiac output is heart rate multiplied by stroke volume. A rate of 80 per minute and stroke volume of 60 mL produce 4.8 L/min. Cardiac index divides output by body surface area, allowing a more useful comparison between differently sized adults. An apparently normal output may still be inadequate for unusually high metabolic demand. Oxygen delivery also depends on hemoglobin and arterial oxygen saturation, so output alone cannot establish that tissues receive enough oxygen.

CO = HR × SV
SV = EDV − ESV
EF = SV ÷ EDV
SVR = 80 × (MAP − RAP) ÷ CO

Use cardiac output in L/min and pressures in mmHg for systemic vascular resistance in dyn·s·cm⁻⁵. For example, MAP 70, right atrial pressure 10, and output 4 give SVR 1,200. The approximation MAP ≈ CO × SVR requires consistent units and neglects right atrial pressure. A resistance calculated from pressure and output is a description of the circulation, not a direct measurement of myocardial strength. [1]

Systemic veins → RA → RV
RAP or CVP describes the pressure receiving systemic venous return.

RV → pulmonary arteries → lungs
PVR = (mean PA pressure − PAWP) ÷ CO, expressed in Wood units.

Pulmonary veins → LA → mitral valve → LV
A valid wedge pressure estimates upstream left atrial pressure. An obstructed mitral valve can separate it from LV diastolic pressure.

LV → aortic valve → arteries
A stenotic aortic valve can separate LV systolic pressure from aortic systolic pressure.

Read a pressure at its actual location. A high pressure upstream of an obstruction does not establish adequate filling downstream.

Check transducer leveling, waveform quality, respiratory conditions, and whether a wedge measurement is technically valid. Positive intrathoracic pressure can raise measured filling pressures without the same increase in distending pressure. PAWP and LV end-diastolic pressure also sample different aspects of the cycle. Their relationship is particularly unreliable with mitral disease or large atrial pressure waves. [7]

Try it here · Checkpoint 1 of 3

Make your prediction before reading the choices. A first attempt is just a starting point.

Case 1

A patient receiving circulatory monitoring has MAP 70 mmHg, mean RAP 10 mmHg, and cardiac output 4.0 L/min. Which calculated systemic vascular resistance is correct?

Show answer and explanations for case 1
  1. A. 15 dyn·s·cm⁻⁵ (Why this does not fit)

    Fifteen is the pressure gradient divided by output in Wood units. Conversion to dyn·s·cm⁻⁵ requires multiplication by 80.

  2. B. 1,400 dyn·s·cm⁻⁵ (Why this does not fit)

    This uses MAP alone. Subtracting the measured downstream right atrial pressure gives a gradient of 60 mmHg.

  3. C. 1,200 dyn·s·cm⁻⁵ (Best answer)

    The calculation is 80 × (70 − 10) ÷ 4.0. The measured right atrial pressure belongs in the gradient.

  4. D. 320 dyn·s·cm⁻⁵ (Why this does not fit)

    Multiplying output by 80 omits the pressure gradient and does not calculate resistance.

Takeaway: Resistance requires a pressure difference, flow, and the correct unit conversion.

Case sources: [1]

Read the ventricle in pressure and volume

Preload is myocardial stretch before contraction. End-diastolic volume is a practical surrogate, but pressure is not volume. Compliance describes how much volume changes for a pressure change, ΔV/ΔP. A stiff chamber develops a larger pressure increase for the same added volume. Diastolic elastance, ΔP/ΔV, is the local inverse of compliance. The diastolic relationship is curved, so compliance depends on the operating volume as well as the tissue. External pericardial pressure also affects distension. [5]

Afterload is the load opposing systolic shortening. Arterial resistance matters, but so do aortic pressure, arterial properties, valve obstruction, chamber radius, and wall thickness. The simplified wall-stress relationship links higher pressure or radius to greater stress and a thicker wall to lower stress. A patient with severe aortic stenosis can therefore have very high LV afterload despite an ordinary cuff pressure.

Contractility describes force generation at comparable loading conditions; EF is influenced by both loading and contraction. Preserved EF does not exclude HFpEF. The ASE approach integrates mitral inflow, tissue velocities, pulmonary pressure estimates, atrial findings, rhythm, and the clinical setting; E/A alone cannot establish a complete diastolic diagnosis. [10] [3]

A competent-valve left ventricular pressure-volume loop Filling proceeds rightward along the bottom from point one to two. Both valves remain closed during the vertical rise from two to three. Ejection proceeds leftward across the top to four. Both valves remain closed during the vertical fall back to one. Loop width is stroke volume. LV pressureLV volume → 1234 Ejection ←Filling → SV
1 mitral opening, 2 mitral closure, 3 aortic opening, 4 aortic closure. The drawing is schematic, with no patient pressure scale. A vertical side requires constant ventricular volume.

Loop width is EDV minus ESV. Enclosed area represents external ventricular stroke work, not all myocardial energy use. In a controlled comparison, extra preload widens the loop; increased afterload leaves more end-systolic volume; increased inotropy permits a smaller end-systolic volume. The end-systolic pressure-volume relationship describes systolic chamber behavior. It must not be confused with the diastolic stiffness curve. A tall pressure loop alone does not prove higher contractility. [4]

Valves decide where the volume goes

Four lesions, four useful distinctions
LesionMain pressure or flow problem
Aortic stenosisLV systolic pressure exceeds aortic pressure across the obstructed outlet. Chronic pressure loading favors concentric hypertrophy.
Aortic regurgitationDiastolic aortic runoff returns blood to the LV. Chronic adaptation can produce a large total stroke volume and wide pulse pressure.
Mitral stenosisLA pressure must exceed LV diastolic pressure across the narrowed inlet. Tachycardia shortens the time available for filling.
Mitral regurgitationSystolic LV emptying includes backward flow into the LA. Total ejection can overstate effective systemic output.

A Doppler peak gradient estimates the greatest simultaneous pressure difference using 4v² when proximal velocity is negligible. The mean gradient averages instantaneous gradients over ejection. Catheter peak-to-peak subtraction compares LV and aortic maxima occurring at different times; it is not interchangeable with either Doppler value. [26]

Regurgitation also changes the loop itself. With mitral leakage, LV volume can fall before the aortic valve opens. With aortic leakage, LV volume can increase during the interval normally called isovolumetric relaxation. Do not preserve normal vertical sides on a schematic that is supposed to show substantial leakage. A wide loop does not automatically mean a large forward stroke volume. [4] [2]

Timing matters. A chronically regurgitant aortic valve may be accommodated by a dilated LV. Abrupt severe regurgitation into an unadapted chamber can instead cause a sharp filling-pressure increase, pulmonary edema, and poor forward output. The classic bounding pulse and large cavity may be absent early. [38] In chronic severe primary MR, an EF around 55% is already concerning because ejection into the LA partly masks impaired LV performance.

After repair, a lower EF may reflect changed loading, and postoperative dysfunction can persist. New hypotension with a marked decline warrants urgent assessment of ventricular and valve function rather than assuming a harmless loading effect. [13] [23] [7]

Typical bedside findings connect the lesion to the cycle: AS can produce a systolic ejection murmur radiating toward the carotids and a delayed carotid upstroke; chronic AR can produce an early diastolic decrescendo murmur and a wide pulse pressure. MS produces a diastolic rumble, sometimes with an opening snap; MR commonly produces an apical systolic murmur. Murmur intensity and peripheral findings depend on flow, chronicity, and lesion mechanism, so their absence cannot exclude severe acute disease. [38] [40]

A large wedge V wave supports a systolic LA pressure surge. It can occur with MR, but reduced atrial compliance can also generate it without important regurgitation. Confirm the valve mechanism with imaging. Conversely, the absence of an enormous V wave does not exclude severe MR. [14]

Pressure loading commonly adds sarcomeres in parallel; chronic volume loading commonly adds them in series. These describe tendencies, not permanent guarantees of geometry or compliance. Fibrosis can make a dilated chamber stiff. A significant left-to-right ASD chiefly loads the right heart with volume; a significant left-to-right VSD increases pulmonary return and LV volume loading. Hypertension and coarctation impose LV pressure load. [25] Sarcomeric hypertrophic cardiomyopathy has a different cause and may produce dynamic outflow obstruction, which often intensifies when ventricular filling falls. [5] [18]

The right heart can limit the left heart

Acute pulmonary embolism raises RV afterload. A failing, distended RV may reduce blood reaching the LV and shift the septum toward it. The resulting low systemic output can coexist with a high CVP and a relatively low wedge pressure. A large RV is not an instruction to give more fluid. Consider filling, congestion, perfusion, and the cause together; additional volume can worsen septal interaction when the RV is already distended.

RV infarction also impairs right-sided output, but the primary defect is contraction rather than a new pulmonary arterial obstruction. A small primary RV-infarction study documented increased filling pressures without improved cardiac index after volume loading, supporting assessment of the actual response rather than a universal bolus rule. [37] [16]

Pulmonary vascular resistance uses the gradient from mean PA pressure to wedge pressure, divided by output. Mean PA pressure 35, PAWP 10, and output 5 give PVR 5 Wood units. Current precapillary PH criteria require mean PA pressure above 20 mmHg, PAWP at most 15, and PVR above 2 Wood units. Classification matters because left-heart disease and pulmonary vascular disease need different treatment strategies.

Hypoxia and acidosis can increase pulmonary vasoconstriction; hypoxic vasoconstriction differs from the local systemic response to hypoxia. Isolated nocturnal obstructive sleep apnea generally does not cause sustained PH; associated lung disease or hypoventilation with daytime hypercapnia changes that assessment. Oxygen addresses hypoxemia, while nitric oxide, prostacyclin-pathway drugs, and PDE5 inhibitors have selected pulmonary indications. They are not interchangeable treatments for every raised PA pressure. [17]

Tamponade restricts filling through external pressure. Chamber collapse timing and respiratory variation on echocardiography support the diagnosis; pressure equalization is an approximate pattern affected by existing disease. Constriction more often permits rapid early filling before abrupt limitation, producing a prominent jugular y descent and sometimes a dip-and-plateau tracing. Restrictive myocardial disease can also produce that tracing. Respiratory discordance of LV and RV systolic pressure favors constriction over restriction. Constriction can be inflammatory and transient, so calcification is not required. [15]

A normal wedge pressure does not exclude a cardiac explanation for ascites. Severe RV failure, tricuspid disease, or constriction can cause systemic venous congestion. Identify which vascular bed is congested before calling an effusion or ascites noncardiac. [24] [15]

Try it here · Checkpoint 2 of 3

Make your prediction before reading the choices. A first attempt is just a starting point.

Case 14

A patient with acute RV pressure overload has a dilated RV, septal flattening, marked systemic venous congestion, and poor LV filling. Why might another large fluid bolus worsen output?

Show answer and explanations for case 14
  1. A. Added volume directly raises LV systolic afterload (Why this does not fit)

    The immediate concern in this RV pressure-overload setting is ventricular interaction and LV underfilling, not a direct rise in aortic loading.

  2. B. Added volume corrects the pulmonary vascular obstruction (Why this does not fit)

    Volume does not relieve the cause of RV afterload and can worsen the already distended RV.

  3. C. Further RV distension can aggravate ventricular interaction and impede LV filling (Best answer)

    The ventricles share the septum and pericardial space. Additional distension may impair left-sided filling instead of improving forward delivery.

  4. D. The high RAP indicates that the LV is also already volume overloaded (Why this does not fit)

    RAP and LV volume are not interchangeable; the stem documents poor LV filling despite right-sided congestion.

Takeaway: Treating a failing RV requires assessing both preload benefit and the cost of further distension.

Case sources: [16]

Use shock patterns as starting hypotheses

Typical untreated patterns, with room for mixed disease
MechanismFlow and examinationPressure pattern
HypovolemicLow output, often cool extremitiesUsually low filling pressures and compensatory high SVR
LV cardiogenicLow output with pulmonary congestionOften high PAWP and compensatory high SVR
DistributiveOften warm with low vascular toneLow SVR; output may be high, normal, or low
ObstructiveOutput limited by mechanical interferenceDepends on the obstruction; PE and tamponade are not identical

Hemorrhage, dehydration, and major burns can reduce effective circulating volume. MI or myocarditis can impair the pump. Sepsis, anaphylaxis, and loss of sympathetic vascular tone in neurogenic shock can reduce resistance. PE, tamponade, and tension pneumothorax can mechanically limit flow. These are mechanism examples; associated pathology can create mixed patterns. [39] These patterns describe mechanisms, not mutually exclusive diagnoses.

Sepsis may include vasodilation, depleted effective circulating volume, and myocardial dysfunction simultaneously. A low output does not exclude sepsis or prove that infection has reached a particular time stage. High mixed venous oxygen saturation can reflect reduced extraction or shunting and does not guarantee sufficient tissue oxygenation. Lactate can rise through several mechanisms, including adrenergic stimulation and impaired clearance.

Reassess perfusion using examination, urine output, laboratory trends, and appropriate flow assessment. Current shock guidance favors echocardiography as an initial imaging tool. For further fluid decisions, a reversible preload test with measured stroke volume or output is more informative than a static CVP alone. An increase during passive leg raising indicates potential fluid responsiveness; pulmonary congestion or absence of hypoperfusion may still make fluid administration inappropriate. [7] [9]

For adults with sepsis-induced hypoperfusion or septic shock, the 2026 sepsis guideline conditionally suggests at least 30 mL/kg crystalloid within three hours, with low-certainty evidence, individualized delivery, and frequent reassessment. Norepinephrine remains the first-line vasopressor for adult septic shock. Subsequent fluid administration should follow the patient's response and tolerance, rather than continue automatically until lactate normalizes. A guideline starting strategy does not eliminate the need to assess concurrent cardiac or renal disease. [8]

The older Forrester framework classified depressed cardiac index as at most 2.2 L/min/m² and high pulmonary capillary pressure as above 18 mmHg. Subset I has CI above 2.2 and pressure at most 18; II has CI above 2.2 and pressure above 18; III has CI at most 2.2 and pressure at most 18; IV has CI at most 2.2 and pressure above 18.

These are historical classification thresholds, not universal normal ranges or automatic drug orders. [20] Congestion and hypoperfusion need separate assessment. In decompensated HF, ESC guidance permits considering inotropes with systolic pressure below 90 mmHg and hypoperfusion despite standard treatment, with fluid assessment appropriate to the patient. A low EF or a cold extremity alone does not establish that indication. [11]

Predict what the intervention actually changes

Standing initially reduces central venous return through dependent pooling. The baroreflex then increases sympathetic activity. Exercise adds a skeletal muscle pump, respiratory effects, venoconstriction, faster heart rate, and increased contractility. State whether a question concerns the initial mechanical effect or the combined adapted circulation before assigning one mechanism.

Phenylephrine increases vascular tone through alpha-1 receptors; norepinephrine combines alpha-mediated vasoconstriction with beta-mediated cardiac effects. [31] [32] Angiotensin II contracts vascular smooth muscle through AT1 receptors; vasopressin acts through vascular V1 receptors. [33] [34] Nitrates often reduce venous filling at lower doses; arterial dilation becomes more relevant with greater exposure. [21] Hydralazine acts predominantly on arterioles. [35] Nitroprusside reduces arterial and venous tone and can increase forward output by reducing afterload even without direct positive inotropy. [36] An output increase after vasodilation is therefore not proof of stronger myocardium. [3]

Acute inotropy is a different target from long-term disease modification. Digoxin inhibits Na-K ATPase and increases intracellular calcium availability; milrinone inhibits PDE3 and increases cAMP, combining inotropy with vasodilation. [28] [29] Beta blockers can initially reduce adrenergic inotropy. Verapamil, a nondihydropyridine calcium-channel blocker, can reduce contractility; calcium-channel blockers differ in cardiac and vascular selectivity. [30] These mechanisms do not make the drugs interchangeable treatments for low output.

Dobutamine produces rapid beta-adrenergic inotropy but can also change heart rate and vascular resistance. A higher output at an unchanged wedge pressure suggests improved performance; it does not establish unchanged end-diastolic volume. A microaxial LV-to-aorta pump directly drains the LV and supplies systemic flow. This can lower LV volume and filling pressure without proving myocardial recovery; different support configurations have different loading effects. [27] Follow actual device and native-heart performance rather than assuming a fixed resistance response. [12] [2]

Finally, avoid turning a population tendency into a required finding. Preeclampsia includes differing output phenotypes; fetal growth restriction may accompany lower output. In chronic AR, exercise changes rate, diastolic duration, vascular resistance, and myocardial reserve. A small primary exercise study found less regurgitation and greater forward flow as SVR fell, while severe AR could still produce high exercise filling pressures. Shorter diastole alone cannot establish exercise safety or make every beta blocker inappropriate. The useful prediction names the variable changed, then checks what happened to perfusion and congestion. [19] [22]

Try it here · Checkpoint 3 of 3

Make your prediction before reading the choices. A first attempt is just a starting point.

Case 16

After initiation of a temporary microaxial pump that drains the LV into the aorta, systemic flow improves and LV end-diastolic volume and PAWP fall. Which statement best describes the immediate physiology?

Show answer and explanations for case 16
  1. A. The improved flow quantifies the increase in native myocardial contractility (Why this does not fit)

    Assisted flow can improve independently of intrinsic recovery. Native function requires separate assessment.

  2. B. Mechanical unloading and assisted systemic flow can improve circulation together (Best answer)

    The device can reduce ventricular loading while contributing to systemic delivery. Lower native ventricular volume need not mean lower total systemic flow.

  3. C. The measured changes establish that systemic resistance fell (Why this does not fit)

    Neither the arterial pressure gradient nor resistance is specified. Device flow does not impose a fixed SVR response.

  4. D. The lower PAWP represents reduced volume delivery to the systemic circulation (Why this does not fit)

    The pump delivers blood from the LV to the aorta, allowing unloading and increased systemic flow together.

Takeaway: Improved supported output does not establish recovery of the native myocardium.

Case sources: [27] [2]

Apply the pressure and flow relationships

Case 2

A 76-year-old with exertional presyncope has a calcified aortic valve, a late-peaking systolic murmur, and concentric LV hypertrophy. During simultaneous catheter recording, LV systolic pressure exceeds aortic systolic pressure. What best explains the ventricular adaptation?

Show answer and explanations for case 2
  1. A. Chronic pressure load across an obstructed outlet (Best answer)

    Aortic stenosis adds a valvular load between the LV and aorta. Increased wall thickness can partially limit the resulting systolic wall stress.

  2. B. Primary diastolic regurgitation into the LV (Why this does not fit)

    Aortic regurgitation returns blood during diastole and primarily produces a volume load. It does not explain the stated obstructive gradient.

  3. C. A required increase in intrinsic contractility (Why this does not fit)

    Hypertrophy and a high intracavitary pressure do not establish stronger myocardium. Loading conditions must be considered when assessing contractility.

  4. D. Primary systolic regurgitation into the LA (Why this does not fit)

    MR primarily produces volume loading. The measured LV-to-aorta systolic gradient identifies an obstructed outlet.

Takeaway: Aortic valve obstruction can markedly increase LV afterload despite an ordinary systemic arterial pressure.

Case sources: [3] [4]

Case 3

A 49-year-old with rheumatic mitral stenosis develops dyspnea during atrial fibrillation with a rapid ventricular rate. Mean PAWP is 28 mmHg and LV end-diastolic pressure is 8 mmHg. Which interpretation is best?

Show answer and explanations for case 3
  1. A. The wedge measurement proves a large LV end-diastolic volume (Why this does not fit)

    PAWP reflects pressure upstream of the mitral valve. Mitral obstruction prevents equating it with LV filling pressure or volume.

  2. B. An obstructed mitral inlet permits high LA pressure despite lower LV diastolic pressure (Best answer)

    The pressure separation is expected across a narrowed mitral valve. Tachycardia further limits diastolic filling time.

  3. C. The low LV pressure proves severe total-body hypovolemia (Why this does not fit)

    A single intracavitary pressure cannot establish circulating volume. The valve lesion itself can explain the pressure separation.

  4. D. Mean PAWP minus LVEDP is the Doppler mean transmitral gradient (Why this does not fit)

    The two values summarize different parts of the cycle. A true mean diastolic transmitral gradient requires time-matched pressure differences or appropriate Doppler measurement.

Takeaway: Inlet obstruction separates upstream congestion from downstream filling.

Case sources: [7] [10]

Case 4

A 32-year-old with an actively bleeding splenic injury is cool, tachycardic, and hypotensive. Focused imaging shows small cardiac chambers without pericardial fluid. Which untreated hemodynamic pattern best fits?

Show answer and explanations for case 4
  1. A. High output with low SVR (Why this does not fit)

    This more closely resembles a hyperdynamic vasodilated circulation. It does not fit the evidence of acute blood loss and limited filling.

  2. B. Low output with high PAWP from primary LV failure (Why this does not fit)

    Primary LV failure commonly raises pulmonary venous pressure. Small chambers after major blood loss favor insufficient filling.

  3. C. Low output with a newly high pulmonary vascular gradient (Why this does not fit)

    A pulmonary vascular obstruction could impair RV output, but the stem identifies bleeding and does not describe RV pressure overload.

  4. D. Low output with low filling pressures and compensatory high SVR (Best answer)

    Loss of circulating blood reduces venous return and stroke volume. Sympathetic vasoconstriction attempts to defend arterial pressure.

Takeaway: The bleeding source and filling pattern identify the mechanism more reliably than hypotension alone.

Case sources: [7] [6]

Case 5

A patient with infective endocarditis suddenly develops severe aortic regurgitation, pulmonary edema, and hypotension. Echocardiography shows a nondilated LV. Why is the absence of marked LV enlargement unsurprising?

Show answer and explanations for case 5
  1. A. A large pre-existing chamber compliance buffers the new volume load (Why this does not fit)

    An unadapted nondilated LV lacks the chronic volume accommodation that would be expected to buffer the abrupt load.

  2. B. The chamber has not had time to accommodate the abrupt diastolic volume load (Best answer)

    Acute severe regurgitation can produce pulmonary congestion and low forward output before chronic dilation or a bounding pulse develops.

  3. C. Reduced venous return prevents the regurgitant lesion from raising LV filling pressure (Why this does not fit)

    Regurgitant inflow can sharply raise LV diastolic pressure despite limited forward flow; pulmonary edema supports the pressure burden.

  4. D. Concentric remodeling is the immediate response to the regurgitant flow (Why this does not fit)

    Neither concentric hypertrophy nor chronic dilation develops immediately. The acute insult is diastolic volume loading.

Takeaway: Acute regurgitation can produce high filling pressure before the classic chronic chamber changes appear.

Case sources: [38] [5]

Case 6

After myocardial infarction, a patient develops pulmonary edema and a large V wave on the wedge tracing. Which next interpretation best avoids overdiagnosis?

Show answer and explanations for case 6
  1. A. The waveform alone establishes papillary muscle rupture (Why this does not fit)

    A large V wave can accompany acute MR, but reduced LA compliance can also produce it. The structural mechanism needs imaging.

  2. B. The V wave primarily measures impaired LV relaxation before atrial contraction (Why this does not fit)

    A wedge V wave represents an atrial pressure rise during ventricular systole, rather than a direct measurement of LV relaxation.

  3. C. Urgent echocardiography should assess MR and other causes of the pressure surge (Best answer)

    Acute MR is important in this setting, but the waveform cannot determine valve anatomy or exclude alternative atrial pressure-volume behavior.

  4. D. The amplitude establishes the regurgitant volume without imaging (Why this does not fit)

    V-wave amplitude is influenced by atrial compliance as well as regurgitant flow; it is not a stand-alone regurgitant-volume measurement.

Takeaway: A pressure waveform supports a mechanism but does not replace assessment of valve anatomy.

Case sources: [14] [13]

Case 7

A 71-year-old with hypertension has exertional dyspnea, concentric LV remodeling, EF 62%, and invasively documented high LV filling pressure during exercise. Which statement is most accurate?

Show answer and explanations for case 7
  1. A. Preserved EF can coexist with impaired filling and clinically important heart failure (Best answer)

    EF is a fraction of chamber emptying. It does not measure filling pressure, relaxation, or exercise reserve.

  2. B. An EF above 60% excludes a cardiac cause of dyspnea (Why this does not fit)

    Preserved EF does not exclude HFpEF. Evidence of abnormal filling pressure is particularly relevant in this scenario.

  3. C. Concentric geometry proves every aspect of systolic function is normal (Why this does not fit)

    Global EF can remain preserved despite abnormalities of longitudinal function or contractile reserve. Geometry does not prove normal myocardial function.

  4. D. An E/A ratio alone would be sufficient to grade all diastolic abnormalities (Why this does not fit)

    Current assessment integrates several Doppler and structural measures and accounts for rhythm and clinical setting.

Takeaway: A normal ejection fraction is not a normal filling-pressure measurement.

Case sources: [10]

Case 8

A febrile patient with pneumonia has MAP 54 mmHg, RAP 6 mmHg, and measured output 8.0 L/min. Extremities are warm. Which finding best explains the low arterial pressure?

Show answer and explanations for case 8
  1. A. SVR approximately 1,200 dyn·s·cm⁻⁵ (Why this does not fit)

    The observed pressure gradient is only 48 mmHg. With output 8.0 L/min, resistance is 480, not 1,200.

  2. B. SVR approximately 540 dyn·s·cm⁻⁵ (Why this does not fit)

    This uses 80 × MAP / CO and omits RAP. Subtracting RAP gives 80 × 48 / 8 = 480.

  3. C. SVR approximately 6 dyn·s·cm⁻⁵ (Why this does not fit)

    Six is the pressure-gradient-to-flow ratio before conversion. Multiply by 80 to express SVR in dyn·s·cm⁻⁵.

  4. D. SVR approximately 480 dyn·s·cm⁻⁵ (Best answer)

    Using 80 × (54 − 6) ÷ 8 yields 480. Low resistance explains the pressure despite substantial systemic flow.

Takeaway: High output does not rescue arterial pressure when vascular tone is markedly reduced.

Case sources: [1] [8]

Case 9

After an anterior myocardial infarction, a patient is confused and cool with pulmonary edema. Cardiac index is 1.5 L/min/m² and PAWP is 27 mmHg. Which mechanism best fits the combined findings?

Show answer and explanations for case 9
  1. A. Isolated loss of circulating volume (Why this does not fit)

    Pure volume depletion generally produces low filling pressures. The high wedge pressure and pulmonary edema indicate left-sided congestion.

  2. B. LV pump dysfunction with congestion and inadequate forward flow (Best answer)

    Low indexed output explains hypoperfusion while high PAWP explains pulmonary congestion. These findings fit LV cardiogenic shock.

  3. C. Isolated systemic vasodilation with preserved pump function (Why this does not fit)

    Vasodilation can cause hypotension, but the measured low output and pulmonary congestion require assessment of LV function.

  4. D. Pulmonary congestion with preserved effective systemic perfusion (Why this does not fit)

    Confusion, cool extremities, and a very low cardiac index indicate inadequate forward perfusion despite high filling pressure.

Takeaway: Congestion and forward perfusion are separate dimensions of heart failure.

Case sources: [7] [11]

Case 10

A patient with preeclampsia and fetal growth restriction undergoes indicated maternal cardiovascular assessment. Cardiac output is lower than expected for gestation. How should this result be interpreted?

Show answer and explanations for case 10
  1. A. It is incompatible with preeclampsia and requires reclassification as isolated fetal growth restriction (Why this does not fit)

    The primary study included a low-output group with both preeclampsia and fetal growth restriction.

  2. B. It quantifies the maternal plasma-volume deficit (Why this does not fit)

    Cardiac output is a flow measurement affected by loading and performance; it is not a direct measure of plasma volume.

  3. C. It is compatible with a recognized lower-output preeclampsia phenotype (Best answer)

    Prospective observations identify lower output when preeclampsia is accompanied by fetal growth restriction. Individual assessment remains necessary.

  4. D. It identifies low peripheral resistance as the dominant hemodynamic abnormality (Why this does not fit)

    Low output alone cannot calculate resistance. In the cited combined phenotype, peripheral resistance was increased.

Takeaway: A disease label does not require a single cardiac output pattern.

Case sources: [19]

Case 11

During monitored treatment of selected low-output shock, dobutamine raises output from 3.1 to 4.5 L/min within minutes while PAWP remains 20 mmHg. Which conclusion is justified?

Show answer and explanations for case 11
  1. A. Cardiac performance has improved, but unchanged PAWP does not prove unchanged EDV (Best answer)

    Dobutamine can rapidly increase inotropy and alter vascular tone. A pressure measurement alone cannot establish constant ventricular volume.

  2. B. A preload increase is established because output rose (Why this does not fit)

    Output can rise through inotropy, rate, and afterload changes. The observation does not establish increased EDV.

  3. C. A fall in SVR is established from the output change alone (Why this does not fit)

    SVR calculation also requires the arterial-to-right-atrial pressure gradient; output alone is insufficient.

  4. D. The measured output increase can be assigned entirely to stroke volume (Why this does not fit)

    Heart rate can also change with dobutamine. Without its measurement, the output change cannot be assigned wholly to stroke volume.

Takeaway: An acute drug response demonstrates performance under the new conditions, not permanent recovery or fixed preload.

Case sources: [12] [5]

Case 12

A patient with chronic aortic regurgitation has total LV stroke volume 140 mL and aortic regurgitant volume 65 mL per cycle. There is no other valve leak or shunt. What is effective systemic stroke volume?

Show answer and explanations for case 12
  1. A. 205 mL (Why this does not fit)

    Adding the returning volume counts recirculated blood twice. Net systemic delivery requires subtracting the regurgitant component.

  2. B. 75 mL (Best answer)

    Net systemic stroke volume is 140 − 65 = 75 mL. The large total LV ejection includes blood that returns during diastole.

  3. C. 140 mL (Why this does not fit)

    That is total LV ejection, not net systemic delivery, when substantial blood returns through the aortic valve.

  4. D. 65 mL (Why this does not fit)

    That is the regurgitant portion. It is the volume excluded from effective systemic delivery.

Takeaway: Total ejection and effective forward delivery diverge when blood recirculates through a leaking valve.

Case sources: [2] [4]

Case 13

A patient with malignancy develops hypotension, jugular venous distension, a large pericardial effusion, and echocardiographic evidence of hemodynamic compromise. What primarily limits cardiac output?

Show answer and explanations for case 13
  1. A. Primary loss of LV contractility from diffuse myocardial injury (Why this does not fit)

    Reduced myocardial contraction can cause low output, but the documented effusion and hemodynamic compromise identify external filling restriction here.

  2. B. A fixed obstruction at the aortic valve (Why this does not fit)

    No aortic lesion is described. Pericardial pressure limits chamber filling before systolic ejection.

  3. C. A reduction in chamber filling caused primarily by intrinsic myocardial stiffness (Why this does not fit)

    Tamponade restricts distension externally. Intrinsic stiffness is a different mechanism, as in restrictive myocardial disease.

  4. D. External pericardial pressure reducing effective chamber distension (Best answer)

    Tamponade reduces transmural filling pressure and available filling volume. A high intracavitary pressure can coexist with inadequate filling.

Takeaway: External pressure can impair filling despite apparently high measured intracardiac pressures.

Case sources: [15]

Case 15

A patient with obstructive hypertrophic cardiomyopathy has a louder systolic murmur during the strain phase of Valsalva. Which immediate change most directly contributes?

Show answer and explanations for case 15
  1. A. Reduced LV filling and a smaller cavity favor dynamic outflow obstruction (Best answer)

    Lower filling can increase interaction between the mitral apparatus and the outflow tract, increasing the dynamic gradient.

  2. B. Increased venous return during sustained strain augments the ejection murmur (Why this does not fit)

    Sustained strain generally reduces venous return. The filling reduction can intensify dynamic obstruction.

  3. C. Increased cavity size increases systolic contact between the septum and mitral apparatus (Why this does not fit)

    A smaller cavity favors the obstructive interaction in this setting; the proposed size change has the wrong direction.

  4. D. Greater systemic arterial afterload is the principal cause of the louder dynamic murmur (Why this does not fit)

    The relevant provocative effect during strain is reduced filling; increased arterial loading generally opposes rather than explains this obstruction response.

Takeaway: Dynamic obstruction depends on loading conditions as well as anatomy.

Case sources: [18]

Case 17

A patient after myocardial infarction has cardiac index 1.8 L/min/m² and PAWP 24 mmHg. Using the historical Forrester thresholds, which description fits?

Show answer and explanations for case 17
  1. A. Adequate indexed flow without pulmonary congestion (Why this does not fit)

    Both measurements are on the opposite side of the historical thresholds for this profile.

  2. B. Low indexed flow with low wedge pressure (Why this does not fit)

    The index is low, but the wedge pressure exceeds the historical congestion threshold of 18 mmHg.

  3. C. Adequate indexed flow with high wedge pressure (Why this does not fit)

    The wedge pressure is high, but the index is below the historical 2.2 L/min/m² threshold.

  4. D. Low indexed flow with high wedge pressure (Best answer)

    The values meet the historical low-flow, congested profile. This classification does not by itself dictate an inotrope or another treatment.

Takeaway: A hemodynamic quadrant describes the patient; treatment still requires clinical perfusion and cause assessment.

Case sources: [20] [11] [7]

Case 18

A patient with LV systolic dysfunction receives monitored nitroprusside. Before treatment, MAP is 90, RAP 10, and output 4.0 L/min. After treatment, MAP is 75, RAP 5, and output 5.0 L/min. Which interpretation is correct?

Show answer and explanations for case 18
  1. A. SVR increased from 1,120 to 1,600 dyn·s·cm⁻⁵ (Why this does not fit)

    The order is reversed. The calculated resistance falls after treatment despite the increase in output.

  2. B. SVR fell from 1,800 to 1,200 dyn·s·cm⁻⁵ (Why this does not fit)

    These values omit RAP at both time points. The relevant gradients are 80 and 70 mmHg.

  3. C. SVR fell from 1,600 to 1,120 dyn·s·cm⁻⁵ (Best answer)

    Before treatment, 80 × 80 ÷ 4 = 1,600. After treatment, 80 × 70 ÷ 5 = 1,120. Reduced loading can improve output.

  4. D. SVR fell from 20 to 14 dyn·s·cm⁻⁵ (Why this does not fit)

    Those pressure-to-flow ratios need multiplication by 80 for the stated units.

Takeaway: A vasodilator can lower arterial pressure while improving forward flow.

Case sources: [1] [36] [3]

Case 19

A patient with ascites and preserved EF has rapid early ventricular filling followed by an abrupt plateau. Simultaneous LV and RV recordings show discordant systolic pressure changes with respiration. Which diagnosis is favored?

Show answer and explanations for case 19
  1. A. Constrictive pericardial physiology (Best answer)

    The respiratory discordance supports enhanced ventricular interdependence from pericardial constraint. The dip-and-plateau finding alone would be less specific.

  2. B. Restrictive myocardial disease solely because a plateau is present (Why this does not fit)

    Restriction can produce a similar diastolic contour, but respiratory LV-RV concordance is more typical than the stated discordance.

  3. C. Tamponade solely because both ventricles have high pressures (Why this does not fit)

    Tamponade commonly limits early filling and attenuates the y descent. The provided respiratory and filling findings favor constriction.

  4. D. Isolated aortic stenosis (Why this does not fit)

    An aortic outflow lesion does not explain the characteristic respiratory ventricular interaction described here.

Takeaway: Use respiratory ventricular interaction to distinguish causes that share a diastolic pressure contour.

Case sources: [15]

Case 20

A patient with an inferior myocardial infarction has RV dysfunction, RAP 20 mmHg, PAWP 7 mmHg, and worsening output after a fluid challenge. Which inference is best?

Show answer and explanations for case 20
  1. A. The low PAWP is sufficient evidence that more volume will improve LV output (Why this does not fit)

    Low downstream pressure can coexist with failure of the congested RV to transfer blood. The measured adverse response argues against repeated uncritical loading.

  2. B. The RV may be unable to transfer additional venous volume to the left heart (Best answer)

    The measurements and response suggest right-sided pump limitation with congestion. Filling interventions must be reassessed rather than repeated by one pressure target.

  3. C. The high RAP establishes simultaneous LV volume overload (Why this does not fit)

    The wedge is low and the impaired RV can limit left-sided delivery. RAP alone does not measure LV volume.

  4. D. Primary LV systolic failure best explains the isolated right-sided pressure burden (Why this does not fit)

    The stated RV infarction, high RAP, and low PAWP favor impaired right-sided transfer. Associated LV injury can coexist but is not established as the main cause here.

Takeaway: A low left-sided filling pressure can result from failure of the pump upstream.

Case sources: [37] [16]

Case 21

After repair of severe chronic MR, a patient has an EF decrease from 55% to 30% with new hypotension. Which response is most appropriate physiologically?

Show answer and explanations for case 21
  1. A. Observe the EF decline as an isolated loading effect before assessing the new hypotension (Why this does not fit)

    Loading changes are relevant, but hypotension makes urgent assessment necessary; persistent myocardial dysfunction or a procedural complication must not be dismissed.

  2. B. Use preoperative EF 55% as evidence against pre-existing LV dysfunction (Why this does not fit)

    In severe primary MR, EF 55% is already concerning because total ejection includes regurgitant flow.

  3. C. Attribute the hypotension to residual regurgitation based on the EF change alone (Why this does not fit)

    The EF change does not establish residual MR. Imaging and assessment of loading, perfusion, and myocardial function are required.

  4. D. Assess altered loading while urgently evaluating ventricular and valve function and ischemic causes (Best answer)

    Eliminating the low-impedance regurgitant outlet changes ejection conditions. This mechanism may contribute, but does not exclude injury or a repair complication.

Takeaway: A plausible loading explanation does not justify dismissing new postoperative instability.

Case sources: [23] [13] [7]

Case 22

A patient has ascites, hepatomegaly, severe tricuspid regurgitation, and high RAP. PAWP is 11 mmHg. Which conclusion is most defensible?

Show answer and explanations for case 22
  1. A. Normal PAWP excludes any cardiac contribution to ascites (Why this does not fit)

    Systemic venous congestion can arise from right-sided disease without high left atrial pressure.

  2. B. High RAP can be discounted because only left-sided pressure causes cardiac ascites (Why this does not fit)

    Hepatic and systemic veins drain toward the RA. Right-sided pressure can cause congestion despite normal wedge pressure.

  3. C. Right-sided cardiac congestion remains a plausible cause (Best answer)

    Severe tricuspid disease and high RAP can transmit venous pressure to the liver and abdominal circulation despite a normal wedge pressure.

  4. D. Ascites requires reduced LV EF if its cause is cardiac (Why this does not fit)

    Right-sided failure and pericardial disease can produce ascites even with preserved LV EF.

Takeaway: Localize venous congestion to the affected circulation.

Case sources: [24] [15]

Case 23

A healthy adult stands after lying down. Considering the initial mechanical effect before baroreflex compensation, what change is expected?

Show answer and explanations for case 23
  1. A. Reduced central venous return and LV stroke volume (Best answer)

    Dependent venous pooling initially reduces cardiac filling. Reflex tachycardia and vasoconstriction follow this perturbation.

  2. B. A primary increase in arteriolar resistance before venous redistribution (Why this does not fit)

    Arteriolar constriction participates in reflex compensation. Dependent venous pooling is the initial mechanical event isolated by the question.

  3. C. An obligatory primary increase in LV contractility (Why this does not fit)

    Sympathetic inotropy can occur as compensation, but it is not the initiating mechanical effect of standing.

  4. D. Increased venous return from gravitational pooling in the legs (Why this does not fit)

    Pooling retains blood in dependent capacitance vessels and initially reduces central return.

Takeaway: Separate the initiating loading change from the subsequent reflex response.

Case sources: [6] [2]

Case 24

A patient with abrupt dyspnea and hypotension has a confirmed pulmonary embolism, acute RV dilation, high RAP, and a small LV. What is the principal initial cardiac load abnormality?

Show answer and explanations for case 24
  1. A. A new increase in LV aortic outflow resistance (Why this does not fit)

    The obstruction is in the pulmonary circulation, directly increasing the load faced by the RV.

  2. B. An acute increase in RV afterload (Best answer)

    Pulmonary arterial obstruction limits RV ejection. Reduced pulmonary flow and ventricular interaction can then impair LV filling and systemic output.

  3. C. Primary LV volume overload from regurgitation (Why this does not fit)

    No regurgitant valve lesion is described, and the LV is underfilled rather than primarily volume loaded.

  4. D. Primary loss of RV contractility without a change in its vascular load (Why this does not fit)

    RV contraction can deteriorate secondarily, but obstruction of the pulmonary vasculature is the initial afterload insult.

Takeaway: Pulmonary vascular obstruction can cause systemic shock by limiting RV output and downstream LV filling.

Case sources: [16] [17]

Case 25

Right-heart catheterization during evaluation of dyspnea shows mean PA pressure 35 mmHg, PAWP 10 mmHg, and cardiac output 5.0 L/min. Which classification is supported?

Show answer and explanations for case 25
  1. A. Combined postcapillary and precapillary PH with PVR 5 Wood units (Why this does not fit)

    Combined PH requires PAWP above 15 mmHg as well as increased PVR. The wedge pressure of 10 supports a precapillary pattern here.

  2. B. Precapillary PH with PVR 2 Wood units (Why this does not fit)

    PAWP divided by output gives 2 but is not the PVR equation. Use the mean PA minus wedge gradient: 25 / 5 = 5.

  3. C. Precapillary PH with PVR 7 Wood units (Why this does not fit)

    This omits PAWP. The correct gradient is 35 minus 10, not mean PA pressure alone.

  4. D. Precapillary PH with PVR 5 Wood units (Best answer)

    PVR is (35 − 10) ÷ 5 = 5. Mean PA pressure exceeds 20, wedge is at most 15, and PVR exceeds 2.

Takeaway: Calculate pulmonary resistance using the transpulmonary gradient, then classify before selecting therapy.

Case sources: [17]

Case 26

A teaching model is being corrected to represent substantial mitral regurgitation. Which feature of a normal LV pressure-volume loop should no longer be assumed?

Show answer and explanations for case 26
  1. A. Ventricular volume changes during diastolic filling (Why this does not fit)

    Diastolic filling still changes ventricular volume. The correction concerns leakage during an otherwise closed-valve interval.

  2. B. A pressure rise before substantial aortic ejection (Why this does not fit)

    LV pressure can still rise before aortic opening; the abnormality is that regurgitant flow permits volume loss during that interval.

  3. C. A fully vertical contraction limb before aortic opening (Best answer)

    Blood can leave the LV through the incompetent mitral valve while pressure rises, so ventricular volume need not remain constant.

  4. D. EDV minus ESV represents total chamber ejection (Why this does not fit)

    The difference still measures total volume expelled by the LV, but it does not distinguish aortic from regurgitant ejection.

Takeaway: An isovolumetric interval requires effective closure of both routes into and out of the ventricle.

Case sources: [4] [2]

Case 27

A patient with septic shock has low SVR, global LV systolic dysfunction on echocardiography, and low cardiac output despite initial resuscitation. Which interpretation best fits?

Show answer and explanations for case 27
  1. A. Distributive and cardiac pump mechanisms can coexist (Best answer)

    Sepsis can combine vasodilation and myocardial dysfunction. The output need not be high, and the mixed pattern should guide reassessment.

  2. B. The LV finding requires discarding a distributive mechanism (Why this does not fit)

    The low SVR supports vasodilation while the LV findings support a concurrent pump component.

  3. C. The output establishes when myocardial dysfunction began relative to the infection (Why this does not fit)

    A single hemodynamic observation cannot determine onset or a fixed disease stage.

  4. D. Low SVR establishes enough preload reserve to justify another fluid bolus (Why this does not fit)

    Resistance does not establish fluid responsiveness or tolerance. Additional fluid decisions require reassessment.

Takeaway: Shock mechanisms can overlap, and a measured response is more useful than a rigid category.

Case sources: [7] [8]

Case 28

A young adult with a significant secundum ASD has right atrial and RV enlargement and no primary pulmonary vascular disease. Which chronic loading pattern best explains these changes?

Show answer and explanations for case 28
  1. A. Primary LV systolic pressure overload (Why this does not fit)

    An ASD does not create an LV-to-aortic systolic obstruction. Its main initial consequence is extra right-sided flow.

  2. B. Right-sided volume loading from a left-to-right atrial shunt (Best answer)

    Blood recirculating through the right heart increases RV filling and pulmonary flow, favoring right-sided enlargement.

  3. C. Primary RV pressure loading from pulmonary arteriolar disease (Why this does not fit)

    Pulmonary vascular disease can complicate a shunt, but the stem excludes it as the cause of the current enlargement.

  4. D. Predominant LV volume loading from increased pulmonary venous return (Why this does not fit)

    An atrial shunt recirculates blood through the right heart. Predominant LV volume loading better describes a significant ventricular-level left-to-right shunt.

Takeaway: Identify the chamber receiving extra flow before predicting its remodeling pattern.

Case sources: [25]

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