PG Prep
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Wiggers diagram of the cardiac cycle

Subject module

Physiology

Cardiac cycle, pressure–volume loops, acid–base, nephron transport and action potentials — number-driven concepts with easy marks.

By the end of this module you can

  • Predict how preload, afterload and contractility deform the PV loop.
  • Work through any arterial blood gas in four ordered steps.
  • Localise a diuretic's action and predict its electrolyte side effects.
  • Explain each phase of the cardiac and neuronal action potential by ion current.
Left ventricular pressure–volume loop with its four phases
Left ventricular pressure–volume loop with its four phasesWikimedia Commons

Four phases: isovolumetric contraction, ejection, isovolumetric relaxation, filling. Loop width = stroke volume; loop area = stroke work.

Why this is true

The loop is simply pressure plotted against volume through one beat, bounded by two physiological limits. The end-systolic pressure–volume relationship (ESPVR) is the maximum pressure the ventricle can generate at any volume — its slope *is* contractility, independent of load. The end-diastolic pressure–volume relationship (EDPVR) is passive ventricular compliance. Every haemodynamic intervention moves the loop between these two curves: preload shifts the right-hand corner, afterload shifts where ejection begins, and inotropes rotate the ESPVR itself. Reading a loop is therefore reading which of those three was changed.

Key points

  • Increased preload → loop widens rightward, stroke volume rises (Frank–Starling), end-systolic volume barely changes.
  • Increased afterload → ejection starts at a higher pressure, stroke volume falls, end-systolic volume rises.
  • Increased contractility → steeper ESPVR, smaller end-systolic volume, larger stroke volume at the same preload.
  • Aortic stenosis: tall, narrow loop with a high systolic pressure. Aortic regurgitation: wide loop with no true isovolumetric relaxation.
  • Mitral regurgitation loses the isovolumetric contraction phase — blood escapes backwards as soon as pressure rises.

Valve lesion → loop signature

LesionLoop changeMissing phase
Aortic stenosisTall and narrow, high peak pressureNone
Aortic regurgitationWide, shifted rightIsovolumetric relaxation
Mitral regurgitationWide, low end-systolic volumeIsovolumetric contraction
Mitral stenosisSmall loop, low preloadNone

Common traps

  • Ejection fraction looks deceptively normal in mitral regurgitation because the ventricle unloads into the low-pressure atrium.
  • Contractility cannot be judged from stroke volume alone — only the ESPVR slope is load-independent.

Test yourself

A patient's PV loop shows no isovolumetric contraction segment and a markedly increased loop width with reduced end-systolic volume.

High-yield

Loss of the isovolumetric contraction segment on the PV loop = mitral regurgitation.

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