IB Biology SL Topic 2 — Cell Membranes & Transport Paper 1 & 2 Structure and function ~10 min read

Membrane Proteins

The phospholipid bilayer is a good wall, but a wall with no doors, no doorbell and no name plate is not much use to a cell. Everything the membrane does beyond simply blocking things is done by proteins stuck into it — and where a protein sits depends entirely on which parts of it are hydrophobic.

📘 What you need to know

Integral or peripheral

The rule is simple. A protein sits where its own surface chemistry lets it sit.

Where a protein sits, and why hydrophobic regions go inside, hydrophilic regions stay out OUTSIDE THE CELL INSIDE THE CELL INTEGRAL: spans the bilayer INTEGRAL: one layer PERIPHERAL: outside PERIPHERAL: inside Only a protein with a hydrophobic band can sit inside the bilayer. Peripheral proteins are hydrophilic all over, so they can only hold on at the surface.
Notice that an integral protein is amphipathic for exactly the same reason a phospholipid is. The two fit together because they are built on the same principle.
Protein content is not fixed. A membrane that mainly separates things needs few proteins. The inner membrane of a mitochondrion is stuffed with them, because it is packed with electron carriers doing respiration. If a question tells you what a membrane does, you can predict how protein-rich it will be.

The jobs proteins do

Four proteins, four different jobs all sitting in the same bilayer ATP OUTSIDE INSIDE CHANNEL a pore for ions CARRIER PUMP changes shape, uses ATP RECEPTOR a hormone binds here ENZYME active site faces outwards Green arrow moves down the gradient. Red arrow goes against it, which is why it needs ATP.
The pump and the channel both move ions, but only one of them can push against a concentration gradient. That difference is the whole of the next page.

Transport: channels and carriers

A channel is a doorway; a carrier is a revolving door. Both let things through, but only the revolving door has to physically move — which is why carrier proteins, not channels, are the ones used for active transport.
FunctionWhat the protein doesExample
Transport — channelForms a pore that specific ions pass through; some are gatedSodium ion channel; voltage-gated potassium channel
Transport — carrierBinds a substance and changes shape to move it acrossSodium–potassium pump; electron carriers such as cytochrome
ReceptorBinds a signalling molecule, which triggers reactions inside the cellInsulin receptor; neurotransmitter receptors
Immobilised enzymeIntegral protein with its active site exposed on the membrane surfaceMaltase in the small intestine lining
Cell adhesionAttaches a cell to neighbouring cells so tissues hold togetherAdhesion proteins between cells in a tissue
Cell-to-cell recognitionActs as a marker or antigen so other cells can identify itGlycoprotein antigens, including the ABO blood group markers
AnchoringHolds the membrane to structures inside or outside the cellAnchor proteins linked to the extracellular matrix

🤔 Why specificity is the point

Each transport protein only handles one type of ion or molecule, because the binding site or pore has a shape and charge that suit that one substance. That sounds like a limitation, but it is what gives the cell control. If the cell wants more glucose in, it puts more glucose transporters in the membrane. Nothing else comes in with it.

Worked examples

WORKED EXAMPLE

Explain why integral proteins are described as amphipathic. [3]

Point 1 They are embedded in the bilayer, so part of the protein is surrounded by hydrophobic fatty acid tails. Point 2 That region has hydrophobic amino acid R groups on its surface, so it is stable there. Point 3 The parts sticking out into the cytoplasm or extracellular fluid are hydrophilic, so the protein has both types of region. Hydrophobic middle, hydrophilic ends Link it back to R groups if you can — it shows you understand why, not just that.
WORKED EXAMPLE

The inner membrane of a mitochondrion has a much higher protein content than the membrane of a lysosome. Suggest why. [2]

Point 1 The inner mitochondrial membrane carries out aerobic respiration, so it contains many electron carriers and pumps. Point 2 A lysosome membrane mainly acts as a barrier holding enzymes in, so it needs far fewer proteins. Protein content matches the number of jobs the membrane has “Suggest” means apply the idea to an unfamiliar case. The reasoning is the mark.
WORKED EXAMPLE

A membrane protein is hydrophilic across its whole surface and is found attached to the inner face of the membrane. Identify the type of protein and explain your answer. [2]

Step 1: use the surface chemistry No hydrophobic region means it cannot sit among the fatty acid tails. Step 2: name it It must stay at the surface, attached to an integral protein or anchored by a hydrocarbon chain. A peripheral protein The location is a clue, but the hydrophilic surface is the actual reason.

💡 Exam tip

⚠ Common mix-up

Up next: Membrane Transport — diffusion, osmosis, facilitated diffusion and active transport, and how to tell instantly which one a question is describing.

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