IB Biology HL Organelles & Compartments Paper 1 & 2 ~13 min read

Organelles in Protein Synthesis

Take one protein — insulin, say — and follow it from the gene that codes for it to the moment it leaves the cell. Four organelles handle it on the way, each doing one job and passing it on. This page is that journey.

📚 What you need to know

The nucleus and its envelope

The nucleus is present in all eukaryotic cells and is relatively large. Its double membrane creates an area where the DNA and everything that acts on it can be kept apart from the rest of the cell.

A sealed compartment would be useless, though, so the envelope is studded with nuclear pores. These are channels, not holes: they control traffic in both directions.

The outer membrane of the nuclear envelope does not stop at the nucleus. It is continuous with the endoplasmic reticulum, so mRNA leaving through a pore emerges right next to the machinery that will use it. Where ribosomes are attached to that membrane it is called rough ER; where they are not, it is smooth ER.

The nuclear envelope is not permanent. During prophase of mitosis and meiosis it breaks up into vesicles so the chromosomes can be separated, and at telophase it reassembles around each new set. Membranes are fluid, which is exactly what makes that possible.

Ribosomes

A ribosome is the site of protein synthesis, and it is not an organelle in the strict sense because it has no membrane. It is built from two subunits:

Each ribosome has three tRNA binding sites and one mRNA binding site. The mRNA sits in a groove between the two subunits, and the ribosome moves along it, adding one amino acid at a time and leaving a growing polypeptide behind.

An enzyme that is not a protein. The rRNA catalysing peptide bond formation makes the ribosome a ribozyme — a catalyst made of RNA rather than protein. Worth remembering as a counterexample if you are ever asked whether all enzymes are proteins.

Free or bound: two destinations

Every ribosome starts free in the cytoplasm. What happens next depends on the protein it turns out to be making.

Where a ribosome works decides where its protein goes Same ribosome, same process, two different destinations.FREE RIBOSOME BOUND RIBOSOME mRNA into the cytosol• floats freely in the cytoplasm • makes proteins used inside the cell • also supplies mitochondria • e.g. enzymes of glycolysis ER lumen ER membrane• attached to the ER, forming rough ER • feeds the polypeptide into the lumen • e.g. insulin, digestive enzymesStaying in the cell, or leaving it: the protein decides.
The ribosome does not choose. The signal sequence at the start of the polypeptide it is building is what sends it to the ER.

🧩 How a ribosome ends up bound to the ER

  1. Translation begins on a free ribosome in the cytoplasm, like every other protein.
  2. A signal sequence appears at the beginning of the growing polypeptide chain, coded for by the mRNA.
  3. A signal recognition protein binds to that sequence, which pauses translation.
  4. The ribosome binds to a receptor protein on the ER membrane. That patch of ER is now rough ER.
  5. Translation restarts and the polypeptide chain is fed into the ER as it is made.
  6. The signal sequence is removed and the finished protein is carried onward in a vesicle.

The Golgi apparatus

The Golgi apparatus is a stack of flattened membrane sacs called cisternae, which is why it looks similar to rough ER. Its role is to modify proteins and lipids and then package them into Golgi vesicles for delivery.

It has a distinct orientation, and the two sides have names:

Proteins passing through the Golgi typically end up in one of three places: exported from the cell (hormones such as insulin), placed into lysosomes (hydrolytic enzymes), or delivered to another membrane-bound organelle.

A useful way to remember cis and trans: cis is the same side as the ER, and in chemistry “cis” means “on the same side”. Trans means “across” — the far side, facing out of the cell.

The whole pathway

One protein, five stations This is the route taken by any protein that leaves the cell. 1 2 3 4 5 cis face trans face nucleus DNA is transcribed into mRNArough ER a ribosome translates it into a polypeptideGolgi apparatus the protein is modified and packagedsecretory vesicle carries the protein to the plasma membraneout of the cell exocytosis releases the finished proteinEvery arrow between stations is a vesicle.
Station 3 has a direction: vesicles arrive at the cis face nearest the ER and leave from the trans face nearest the membrane.

Worked examples

WE 1

Predicting the organelles in a cell

Pancreatic cells secrete large quantities of digestive enzymes. Predict two organelles that would be unusually abundant in these cells, and explain why. (4 marks)

Organelle 1 Rough endoplasmic reticulum, because enzymes for secretion are made on ribosomes bound to the ER and fed into its lumen. Organelle 2 Golgi apparatus, because the enzymes must be modified and packaged into secretory vesicles before they can leave. A third, if you have room Mitochondria would also be abundant, since making and secreting protein requires a great deal of ATP. rough ER and Golgi — the two stations on the secretory pathway every “predict the organelles” question is really asking you to name the pathway
WE 2

Tracing a labelled amino acid

A cell is supplied with radioactively labelled amino acids. Describe the order in which the label would appear in the cell’s organelles as a secreted protein is made. (3 marks)

Step 1: where it starts The label appears first in the rough endoplasmic reticulum, where the amino acids are joined into a polypeptide. Step 2: the middle It then appears in the Golgi apparatus, carried there in transport vesicles, where the protein is modified. Step 3: the end Finally it appears in secretory vesicles, and then outside the cell after exocytosis. rough ER → Golgi → secretory vesicle → outside this is a real classic (the Palade experiment) — note the nucleus is not on the list, because amino acids are not used there
WE 3

Explaining the sorting mechanism

Explain how a cell ensures that only proteins destined for secretion are made on ribosomes attached to the endoplasmic reticulum. (3 marks)

Point 1: the tag Proteins for secretion begin with a signal sequence at the start of the polypeptide chain, coded for by the mRNA. Point 2: recognising it A signal recognition protein binds to that sequence and pauses translation. Point 3: the result The ribosome is then carried to a receptor on the ER membrane, translation restarts, and the polypeptide is fed into the ER. Proteins without a signal sequence stay on free ribosomes. a signal sequence in the protein itself directs the ribosome to the ER the sorting information is in the protein, not in the ribosome — say so explicitly

💡 Exam tips

⚠ Common mistakes

Up next: Vesicle Formation — every arrow in that pathway was a vesicle. Time to find out how a cell actually builds one.

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