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

Cell Signalling

A cell in your toe has no idea what your brain is doing. It does not need to. It only needs to recognise one specific molecule when that molecule arrives. That is the whole trick behind how a body made of trillions of separate cells behaves like one organism.

📚 What you need to know

Why cells need to talk

A single-celled organism has a simple life. Everything it senses, it deals with itself. A multicellular organism has a problem: the cell that detects something is almost never the cell that needs to do something about it.

Cell signalling solves that. It is the process by which messages are sent to cells, and it allows an organism to control and coordinate its body and respond to its environment. Signalling pathways can coordinate the activities of cells that sit at opposite ends of the body.

The four stages of a signalling pathway

The four stages of a cell signalling pathway The message changes form at every step, but the information survives 1 2 3 4 STIMULUS a signal arrives RECEPTOR detects the signal TRANSDUCTION signal is converted EFFECTOR makes the response Transduction is the step students forget: the signal is changed into a form the cell can pass on. Detect it, convert it, pass it on, act on it.
Every pathway you meet in this topic is a version of this diagram. Only the molecules change.
If a question says “outline the stages of a cell signalling pathway”, write all four and name transduction explicitly. Students routinely jump from receptor straight to response and lose a mark for the missing middle.

Ligands: the messages themselves

A signalling molecule is called a ligand. Ligands come in several chemical families:

Whatever the chemistry, the journey is the same:

🧩 The life of a ligand

  1. The ligand is secreted from a cell (the sending cell) into the extracellular space.
  2. It is transported through that space to a target cell.
  3. It binds to a receptor specific to that ligand. These receptors are often proteins with binding sites, such as a glycoprotein.
  4. The message is relayed through a chain of chemical messengers inside the cell.
  5. A response is triggered.

Why only some cells respond

Here is the part worth understanding properly. A hormone released into the blood washes past almost every cell in the body. Yet only a handful react.

That is because a ligand can only bind to a receptor with a complementary shape. A cell without that receptor simply has nothing for the ligand to attach to, so the ligand drifts past and nothing happens. Specificity comes from the receptor, not from the ligand.

The same ligand, two different cells A cell can only hear a message it has the receptor for sending cell ligands receptor target cell has the matching receptor non-target cell no receptor, no response The ligand reaches both cells. Only one can do anything about it.
The pink chain inside the target cell is the relay of chemical messengers that carries the message from the membrane to wherever the response happens.

Quorum sensing in bacteria

Bacteria signal too, and they use it to answer a surprising question: how many of us are there?

A quorum is the minimum number of individuals that must be present for something to go ahead. Bacteria estimate their own population size using ligands, and when the number is high enough they change their gene expression, which changes what the colony does.

🧩 How quorum sensing works

  1. Bacteria release ligands that bind to receptors on other bacteria.
  2. The more bacteria there are, the more ligand is released, so the concentration climbs.
  3. When a threshold number of receptors is occupied, a change in gene expression is triggered.
  4. That change in gene expression produces a change in activity, which signals that a quorum has been met.

Vibrio fischeri and the bobtail squid

Vibrio fischeri is a marine bacterium that forms a mutualistic association with some squid, including the bobtail squid. Both sides gain:

PartnerWhat it gains
The squidIncreased camouflage. The bacteria emit light by bioluminescence, lighting the underside of the squid so it is less visible against the bright sky from below.
The bacteriaAmino acids and sugar from the squid’s metabolic processes.

The light is switched on by quorum sensing:

Quorum sensing: counting by chemistry Each cell releases autoinducer, so concentration reports population size FEW BACTERIA little autoinducer released threshold not reached no luciferase, no light MANY BACTERIA lots of autoinducer released threshold reached luciferase made, colony glowsBlue dots are autoinducer molecules. Nothing counts the cells — the concentration does it for them. A single bacterium glowing would be a waste. A whole colony is a light organ.
This is why bioluminescence only appears when the colony is large enough to switch on luciferase synthesis. One cell alone would produce light nobody could see.
Notice what is being controlled. Quorum sensing does not switch a protein on and off — it switches a gene on and off. The response is a change in gene expression, which is slower than a nerve impulse but much longer lasting.

Worked examples

WE 1

Outline a cell signalling pathway

Outline the basic stages of a cell signalling pathway. (4 marks)

Stage 1: detection A stimulus or signal is received by a receptor. Stage 2: transduction The signal is converted into a signal that can be passed on; this conversion is called transduction. Stage 3: transmission The signal is transmitted to a target, known as the effector. Stage 4: response The effector carries out an appropriate response. Receptor → transduction → transmission → response four marks means four stages — do not merge transduction and transmission into one
WE 2

Explain why only some cells respond

A ligand is released into the blood and reaches every cell in the body, but only certain cells respond. Explain why. (3 marks)

Point 1: binding needs a match A ligand can only bind to a receptor with a complementary shape, so binding is specific to that ligand. Point 2: target cells Only target cells carry that receptor, so only they can bind the ligand and start a chain of chemical messengers inside the cell. Point 3: non-target cells Cells without the receptor have nothing for the ligand to bind to, so no transduction occurs and no response is made. The specificity is in the receptor, not in the ligand say “complementary” — it is the word the mark scheme uses
WE 3

Explain bioluminescence in Vibrio fischeri

Explain how quorum sensing allows Vibrio fischeri to produce light only when its population is large. (4 marks)

Point 1: the ligand Each bacterium releases a ligand called an autoinducer, so more bacteria means a higher autoinducer concentration. Point 2: the receptor Autoinducer enters other bacterial cells and binds to the receptor LuxR in the cytoplasm. Point 3: the threshold Once enough autoinducer–LuxR complexes form, a threshold is reached and transcription of DNA leads to synthesis of the enzyme luciferase. Point 4: the light Luciferase catalyses an oxidation reaction that releases energy as bioluminescence. Concentration reports population size, and only a high enough concentration switches the gene on name LuxR and luciferase — a generic “a receptor and an enzyme” answer will not get full marks

💡 Exam tips

⚠ Common mistakes

Up next: Signalling Molecules. We have called them all “ligands”, but a hormone travelling in your blood for hours behaves nothing like a neurotransmitter crossing a 20 nm gap in a millisecond. Next we sort them into types.

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