IB Biology HL Organelles & Compartments Paper 1 & 2 ~10 min read

Vesicle Formation

A vesicle is the cell’s delivery van: a small bag of membrane that carries cargo from one compartment to another. The interesting question is how a flat sheet of membrane becomes a sealed sphere, and the answer is a protein called clathrin.

📚 What you need to know

Four kinds of vesicle

Vesicles come in several kinds Same basic structure, sorted by what they carry. Peroxisomes contain enzymes that digest fatty acids and break down toxic by-products Lysosomes contain lytic enzymes that digest cellular waste and harmful material Transport vesicles move molecules between compartments inside the cell, e.g. ER to Golgi Secretory vesicles carry substances out of the cell by exocytosis, e.g. hormones, enzymesTwo that digest, two that deliver.
Lysosomes and peroxisomes are the ones people forget are vesicles at all. They are: membrane-bound sacs holding a set of enzymes.

Clathrin and how a vesicle forms

Clathrins are proteins that help with the formation of vesicles. They assemble into a curved scaffold on the cytoplasmic face of the membrane, and as more of them join, that scaffold pulls the flat membrane into a rounded pit. They line the vesicles that transport molecules between membrane-bound compartments.

How a clathrin-coated vesicle forms A flat sheet of membrane becomes a sealed sphere in four steps. 1. A clathrin pit forms clathrin proteins (red) gather on the inside of the membrane; receptors (blue) face out 2. Target molecules bind the target molecules (green) attach to the receptor proteins on the cell surface 3. The pit deepens and seals cytoskeleton proteins (blue bars) pinch the neck shut 4. The vesicle is released a clathrin-coated vesicle, cargo sealed insideThe coat builds the curve; the cytoskeleton closes the neck.
Because receptors do the catching, this is selective. A cell takes in the molecules it has receptors for, and leaves the rest outside.

🧩 The four steps in words

  1. A clathrin-coated pit forms on the surface of the cell membrane.
  2. Receptor proteins on the cell surface bind to the target molecules.
  3. Once enough target molecules are attached, cytoskeleton proteins help the clathrin pit to deepen and eventually seal off, trapping the target molecules inside.
  4. A vesicle is now formed, and it can move away through the cytoplasm.
Notice how neatly this joins up with earlier pages. The receptors are membrane proteins. The pinching-off only works because the bilayer is fluid. And what has just happened is endocytosis — this page is the close-up view of a process you already met.

Vesicles are not vacuoles

This distinction is worth getting right, because the words get used loosely in everyday biology.

FeatureVesicleVacuole
SizeSmallLarger
Can its membrane fuse with other membranes?Yes — this is how it delivers its cargoNo
Typical roleTransport and short-term storageStorage, and support in plant cells
ExampleA secretory vesicle carrying insulinThe large permanent vacuole of a plant cell

The fusion point is the important one. A vesicle’s whole purpose is to merge with a target membrane and hand over what it is carrying — with the Golgi, with a lysosome, or with the plasma membrane during exocytosis. A vacuole cannot do that.

🧠

Clathrin as scaffolding

Think of clathrin as scaffolding poles clipping together on the inside of a flat wall. Each new piece added forces a little more curvature, until the wall has been bent into a ball. Then the scaffolding comes off and is used again.

Worked examples

WE 1

Describing the process

Describe the role of clathrin in the formation of a vesicle at the cell surface membrane. (3 marks)

Point 1: where it sits Clathrin proteins gather on the cytoplasmic side of the membrane and form a coated pit. Point 2: what they do They line the developing vesicle and cause the membrane to curve inwards. Point 3: what finishes the job Cytoskeleton proteins then deepen the pit and seal it off, trapping the target molecules inside a completed vesicle. clathrin shapes the pit; the cytoskeleton closes it be clear that clathrin is on the inside — it never touches the extracellular side
WE 2

Explaining selectivity

Explain how this process allows a cell to take in a specific molecule from the extracellular fluid while leaving others outside. (3 marks)

Point 1: the receptors Receptor proteins on the cell surface bind to the target molecule. Point 2: why that is selective Each receptor has a binding site of a particular shape, so it is specific to one molecule and will not bind others. Point 3: the consequence Only molecules bound to those receptors are trapped when the pit seals, so everything else stays outside. specific receptors decide what gets into the vesicle specificity always comes back to complementary shape — same idea as enzymes
WE 3

Predicting the effect of a fault

A mutation prevents a cell from producing functional clathrin. Suggest two effects this would have on the cell. (3 marks)

Effect 1: taking things in The cell could not form coated pits, so endocytosis of specific molecules would be greatly reduced and it could not take up the substances it needs. Effect 2: internal transport Vesicles carrying molecules between compartments, such as from the ER to the Golgi, would not form properly. The knock-on Proteins destined for secretion or for lysosomes could not be delivered, so secretion would fail. no coated pits means no receptor-mediated uptake and no internal delivery “suggest two effects” — give one at the cell surface and one inside, not two versions of the same thing

💡 Exam tips

⚠ Common mistakes

That completes Organelles & Compartments. Read the five pages back as one argument: a membrane creates a compartment, a compartment concentrates and protects what is inside it, two organelles took that idea so far they built compartments within compartments, four organelles pass a protein along a production line, and vesicles are how anything moves between them. Every one of those steps depends on the membrane you met at the start of the previous sub-topic.

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