IB Biology HL Nerves & Signalling Paper 1 & 2 ~11 min read

Nerve Impulses

A neurone doing nothing is not really doing nothing. It is spending energy every second to hold a charge across its membrane, like keeping a battery charged so it is ready the instant you need it.

📚 What you need to know

What an impulse actually is

It is worth clearing this up straight away, because the picture most people start with is wrong.

An impulse is not electricity running down the neurone the way current runs down a copper wire. Nothing is flowing from one end to the other. What actually moves is a change in charge across the membrane — a small patch of membrane flips its charge, that flip triggers the next patch, and so on down the axon. What travels is the flipping, not the charge.

Definition Membrane potential = the difference in electrical charge between the inside and the outside of the membrane. You will also see it called the potential difference or the voltage across the membrane.
Think of a line of dominoes rather than a hosepipe. No single domino travels the length of the line, but the falling does. That is why an impulse does not get weaker as it goes — every section is knocked over just as hard as the one before it.

Building the resting potential

In an axon that is not carrying an impulse, the inside always has a negative electrical potential compared with the outside. That difference is the resting potential, and it is usually about −70 mV. That number means the inside is 70 millivolts more negative than the outside.

Two processes build it, and one extra factor helps.

1. Active transport by the sodium–potassium pump

2. Different rates of diffusion back

3. Proteins that cannot leave

Large negatively charged proteins are stuck inside the axon. They cannot cross the membrane, so they sit there adding to the negative charge on the inside. This is a supporting factor rather than a main one, but it is worth a mark if the question asks for everything contributing to resting potential.

How the resting potential is set upOUTSIDE THE AXON — high Na⁺, low K⁺3 Na⁺ pumped out 2 K⁺ in K⁺ leaks out fast Na⁺ leaks in slowly ATPINSIDE THE AXON — low Na⁺, high K⁺, negative overallpump: active transport, 3 out for every 2 in channels: far more open to K⁺ than to Na⁺More positive ions end up outside, so the inside sits at −70 mV the pumps never stop, even while an impulse is passing
The pump does two jobs at once: it builds the concentration gradients, and because it moves three positives out for two in, it directly removes positive charge from the inside.
A resting axon is polarised outside the membrane is positive+ + + + + ++ + + + + + cytoplasm of the axon −70 millivolts voltmeterinside the membrane is negative — this gap is the resting potential
The charges only build up in a thin layer right against the membrane. The bulk of the cytoplasm is not negative — it is the imbalance across the membrane that counts.

From resting to firing

Once resting potential is reached, the membrane is said to be polarised. To start an impulse, the membrane has to be depolarised.

Where the energy goes. The gradients built by the pump are stored energy, like water held behind a dam. Depolarisation does not need ATP — it just opens the gates and lets the ions rush down gradients that were paid for earlier. That is why an impulse can be so fast.

Worked examples

WE 1

Explain how a resting potential is established

Explain how a resting potential of −70 mV is established and maintained across the membrane of an axon. (4 marks)

Point 1: the pump Sodium–potassium pumps use ATP to actively transport 3 Na⁺ out for every 2 K⁺ in. Point 2: the gradients This creates a concentration gradient for both ions — high sodium outside, high potassium inside. Point 3: unequal diffusion The membrane is more permeable to potassium than sodium, so K⁺ diffuses back out faster than Na⁺ diffuses back in. Point 4: the outcome More positive ions end up outside than inside; negatively charged proteins inside add to this, leaving the inside about 70 mV more negative. Pump out unevenly, leak back unevenly, inside ends up negative both processes must appear — a full answer about the pump alone usually caps at 2 marks
WE 2

Predict the effect of a respiratory inhibitor

A neurone is treated with a chemical that stops mitochondria producing ATP. Predict and explain the effect on the resting potential. (3 marks)

Step 1: what needs ATP Only the sodium–potassium pump needs ATP; diffusion through channels does not. Step 2: what stops Without ATP the pump stops, so no more ions are actively transported and the gradients are no longer topped up. Step 3: what happens next Ions keep diffusing down the existing gradients until those gradients disappear, so the charge difference across the membrane falls towards zero. Resting potential is gradually lost — the neurone can no longer fire say gradually. The gradients already there take time to run down, so the effect is not instant

💡 Exam tips

⚠ Common mistakes

Up next: Nerve Impulses: Skills — what makes one neurone faster than another, and how to handle the correlation maths the IB attaches to it.

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