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Cardiac Action Potential

Foundations

Cardiac Action Potential

How a working ventricular cell rests at −90 mV, fires, holds a plateau for about 200 ms and repolarises: the ion channels and currents behind each phase, and why the long action potential matters.

Level
+300-40-90mV0123440 ms20040060080010001200Na⁺ inCa²⁺ inK⁺ outMain flowSmaller flowNone
Two action potentials of a ventricular cell at 75 beats a minute, phases 0 to 4. Under them, which ions move, and which way.

Introduction

An action potential is a brief change in the electrical charge across a cell's membrane. In the heart it passes from cell to cell, and in each muscle cell it starts a contraction. A cardiac action potential lasts about 250 to 300 ms, about a hundred times longer than one in a nerve.

The heart has two main types of cell:

  • Contractile cells, the muscle cells of the atria and ventricles. They rest at a steady charge, fire quickly, and then hold their charge for a long time (the plateau).
  • Pacemaker cells, in the sinoatrial (SA) and atrioventricular (AV) nodes. They never rest: their charge rises slowly by itself until they fire. They are the subject of the next chapter.

This chapter follows a muscle cell of the ventricle.

The resting membrane potential

At rest, the inside of the cell is about 90 mV more negative than the outside. This difference is the membrane potential. It comes from three ions, each kept at a different concentration on each side of the membrane:

IonMostlyTends to move
Na⁺ (sodium)OutsideIn
K⁺ (potassium)InsideOut
Ca²⁺ (calcium)OutsideIn

Ions cross the membrane only through channels, protein pores that open and close. At rest, most of the open channels let K⁺ through. K⁺ leaks out, carrying positive charge with it, and the inside is left negative.

A pump in the membrane uses energy to push Na⁺ back out and bring K⁺ back in. It keeps the concentrations the same from beat to beat.

The ions that move

The whole action potential comes from three ions crossing the membrane:

  • Na⁺ moving in makes the inside positive. It fires the cell.
  • Ca²⁺ moving in keeps the inside positive for longer, and starts the contraction.
  • K⁺ moving out makes the inside negative again. It holds the cell at rest and brings it back to rest.

Positive charge moving in makes the inside more positive (depolarisation). Positive charge moving out makes it more negative again (repolarisation).

Reading the figures

Each figure shows the same ventricular cell, drawn by the model that builds the ECG elsewhere on this site, at 75 beats a minute: two action potentials, 800 ms apart. The phases are numbered 0 to 4 and keep the same colour in every figure.

Under the first figure, one bar for each ion shows when it moves: dark for the main flow at that moment, grey for a smaller one. The phase figures below each highlight one phase. Phases 0 and 1 last only a few milliseconds, so their figures add a magnified view of the first 40 ms.

Phase 4: the resting membrane potential

+300-40-90mV4440 ms20040060080010001200
Phase 4: the cell at rest between action potentials, at about −90 mV.

Between beats the cell rests at about −90 mV.

  • K⁺ channels are open, and a little K⁺ leaks out. This keeps the inside negative.
  • Na⁺ and Ca²⁺ channels are closed.
  • The pump keeps returning Na⁺ out and K⁺ in.

A healthy ventricular cell does not fire on its own. It waits in phase 4 until a neighbouring cell fires and passes its charge on.

Phase 0: rapid depolarisation

+300-40-90mV000 ms20040060080010001200First 40 ms, magnified
Phase 0: the upstroke, from about −90 to about +30 mV in one to two milliseconds.

A neighbouring cell's positive charge spreads into this cell and lifts its inside to about −65 mV, the threshold.

  • At threshold, the Na⁺ channels open.
  • Na⁺ rushes into the cell, because there is much more Na⁺ outside and the inside is negative.
  • Each Na⁺ that enters opens more Na⁺ channels, so the rise speeds itself up.
  • The inside swings from −90 to about +30 mV in one to two milliseconds.

Within a millisecond or two the Na⁺ channels close and lock shut. They cannot open again until the cell has returned to rest. This is why the cell cannot be fired again straight away.

The more Na⁺ channels a cell has ready, the faster it fires, and the faster it passes the signal on to the next cell.

Phase 1: early rapid repolarisation

+300-40-90mV110 ms20040060080010001200First 40 ms, magnified
Phase 1: a short fall from the peak, which makes a small notch before the plateau.

At the peak, the Na⁺ channels close, and Na⁺ stops entering.

  • A brief set of K⁺ channels opens, and K⁺ moves out.
  • The inside becomes a little less positive. This makes a small notch at the top of the action potential.

The notch is deeper in some parts of the heart than others: deepest in the outer layer of the ventricle (the epicardium).

Phase 2: the plateau

+300-40-90mV220 ms20040060080010001200
Phase 2: the plateau, about 200 ms near 0 mV.

This is the phase that makes heart muscle different from nerve and skeletal muscle. For about 200 ms the inside stays near 0 mV.

  • Ca²⁺ channels open, and Ca²⁺ moves into the cell. This adds positive charge.
  • At the same time, more K⁺ channels open slowly, and K⁺ moves out. This removes positive charge.
  • The two flows almost balance, so the charge hardly changes.

The Ca²⁺ that enters also does a second job. It makes the cell release a much larger store of Ca²⁺ from inside it, and this Ca²⁺ makes the cell contract. The plateau links the electrical signal to the heartbeat.

Phase 3: final rapid repolarisation

+300-40-90mV330 ms20040060080010001200
Phase 3: back to rest, slowly at first, then fast, then slowing again.

At the end of the plateau:

  • The Ca²⁺ channels close, and Ca²⁺ stops entering.
  • More and more K⁺ channels are open, and K⁺ moves out quickly.
  • With positive charge now only leaving, the inside falls back to −90 mV.

The cell is back in phase 4, ready for the next beat.

The faster the heart beats, the shorter the action potential becomes, so that each beat has time to finish before the next.

Refractoriness

ARPRRPARPRRP+300-40-90mV0 ms20040060080010001200
The absolute (ARP) and relative (RRP) refractory periods of each action potential.

After it fires, a cell cannot fire again until its Na⁺ channels have unlocked. They unlock only as the cell returns towards rest.

  • The absolute refractory period lasts from the upstroke to about −50 mV in phase 3. During it, the cell cannot fire at all, however strong the stimulus.
  • The relative refractory period lasts from there to the end of phase 3. Some Na⁺ channels have unlocked: a strong stimulus can fire the cell, but the action potential is weaker and spreads more slowly.

On the ECG, the absolute refractory period of the ventricles ends at about the peak of the T wave, and the relative refractory period matches its downslope. A beat that arrives in this window can start a dangerous rhythm.

The long action potential matters for two reasons:

  • The heart cannot stay contracted. Skeletal muscle stimulated fast enough stays contracted. Heart muscle cannot fire again until it has begun to relax, so the chambers always relax and refill between beats.
  • Calcium from outside helps the contraction. The Ca²⁺ that enters during the plateau starts the release of the cell's own Ca²⁺ store.

Not every cell is the same

This chapter follows a ventricular cell. Other heart cells have the same phases, with different proportions:

  • Atrial cells have a shorter action potential, with a lower, sloping plateau.
  • Purkinje fibres, the fast wiring of the ventricles, fire fastest and have the longest action potential. They pass the signal on at 2 to 3 metres a second.
  • Across the ventricular wall, the action potential is longest in the middle layer and shortest in the outer layer (the epicardium).

Cardiac AP to ECG shows these tissues together ("All together"), and how each one's action potential contributes to the ECG.

References

  1. Cardiac muscle physiology — BJA Education, 2023
  2. Action Potentials in Cardiac Muscle Cells. Principles of Human Physiology — BYU-Idaho, 2024
  3. Cardiac cellular electrophysiology: past and present — Physiological Reviews, 2021