IB Biology HL Topic 4 — Genetics, Inheritance & Change Paper 1 & 2 Core idea ~9 min read

Translation

The mRNA has left the nucleus and found a ribosome. Now the cell has to turn a string of bases into a string of amino acids — two completely different chemical languages. That swap is translation, and it happens three bases at a time.

📘 What you need to know

The cast list

Four things have to be in the same place for translation to work. If you can name all four and say what each does, you can answer almost any question on this page.

Picture a builder following instructions written on a long tape. The ribosome is the builder, the mRNA is the tape, and the tRNAs are the labourers carrying one brick each. The builder never carries bricks — it just checks that the right one has turned up and cements it on.

Codon, anticodon, triplet — which is which?

All three words mean “a group of three bases”, so it is easy to muddle them. The difference is simply which molecule they sit on.

NameWhich molecule it sits onHow it relates to the others
TripletDNAThe original three bases in the gene
CodonmRNAComplementary to the DNA triplet on the template strand
AnticodontRNAComplementary to the mRNA codon it pairs with
The pairing rule in RNA A pairs with U  •  C pairs with G
Quick check. If an mRNA codon is CAG, the tRNA anticodon must be GUC. Flip each base to its partner and remember there is no T anywhere — both molecules are RNA.
The shape of a tRNA molecule Amino acid at one end, anticodon at the other aa the amino acid this tRNA carries folded RNA held by H-bonds anticodon loop U A C anticodon: three bases The anticodon is what makes each tRNA specific to one codon This tRNA reads AUG, so it is the one that carries methionine.
The molecule folds back on itself and hydrogen bonds hold the folds in place — that is what gives tRNA its clover shape.

What happens at the ribosome

🧩 The cycle, one codon at a time

  1. Attach. The mRNA binds to the small subunit of the ribosome.
  2. First tRNA arrives. A tRNA whose anticodon matches the first codon pairs with it by hydrogen bonding. The start codon is AUG, so the first amino acid brought in is methionine.
  3. Second tRNA arrives. A second tRNA pairs with the next codon. Now two amino acids are sitting side by side inside the ribosome.
  4. Bond them. A peptide bond forms between the two amino acids by condensation. This needs ATP, supplied by the mitochondria.
  5. Move on. The ribosome shifts one codon along the mRNA. The first tRNA is released (without its amino acid) and can go and collect another one.
  6. Repeat. Steps 3 to 5 happen over and over, and the polypeptide chain grows.
  7. Stop. When a stop codon is reached there is no matching tRNA, so no amino acid is added. The finished polypeptide is released from the ribosome.
A ribosome reading mRNA three bases at a time Each tRNA anticodon pairs with the matching codon on the mRNA Met Ala peptide bond forms here Ribosome UAC CGA AUG GCU CAA mRNA start codon next codon read after this Two tRNAs sit in the ribosome at once, so their amino acids can be joined The ribosome then shifts one codon along and repeats until a stop codon.
Notice the anticodons: UAC pairs with AUG, and CGA pairs with GCU. Every pairing in this diagram follows A–U and C–G.

Why it has to stop

Three of the 64 codons are stop codons. No tRNA carries an anticodon for them, so when the ribosome reaches one, nothing arrives and nothing can be added. That gap is the signal: the chain is finished, and the polypeptide is released.

Without stop codons a ribosome would keep reading straight past the end of the gene and produce a protein of the wrong length, which almost certainly would not fold or work properly.

A neat way to remember the energy point: making bonds between amino acids builds something up, so it is anabolic, and anabolic reactions cost energy. That energy is ATP, and ATP comes from respiration in the mitochondria. Examiners like that whole chain in one sentence.

Worked examples

WORKED EXAMPLE

From codons to anticodons

An mRNA strand reads AUG GCC UUA CAG. Write the anticodons of the tRNA molecules that will bind to it, in order.

Step 1: Remember both molecules are RNA So pair A with U and C with G. No T anywhere. Step 2: Flip each codon base by base AUG → UAC GCC → CGG UUA → AAU CAG → GUC UAC, CGG, AAU, GUC Keep the order the same as the mRNA — the tRNAs arrive in that sequence.
WORKED EXAMPLE

Counting bonds and bases

A polypeptide is 8 amino acids long. How many peptide bonds does it contain, and what is the shortest possible length of the mRNA that coded for it (including the stop codon)?

Step 1: Peptide bonds Bonds sit between amino acids, so there is always one fewer bond than amino acid. 8 − 1 = 7 peptide bonds Step 2: Codons needed 8 amino acids = 8 codons, plus 1 stop codon = 9 codons Step 3: Turn codons into bases 9 × 3 = 27 bases 7 peptide bonds; at least 27 bases of mRNA “At least”, because real mRNA also has untranslated regions at each end.
WORKED EXAMPLE

Explaining a result

A drug stops mitochondria from producing ATP. Explain why protein synthesis in the cell slows down almost immediately.

Step 1: Find the step that needs energy Forming a peptide bond is a condensation reaction. It is anabolic, so it requires energy. Step 2: Link the energy source That energy comes from ATP, which is supplied by the mitochondria. Step 3: Join the chain of reasoning No ATP → peptide bonds cannot form → polypeptide chains cannot be extended. Translation stalls because peptide bond formation needs ATP “Explain” questions want the chain, not just the last link.

💡 Exam tip

⚠ Common mix-up

Up next: The Genetic Code — we have been using codons all the way through this page, so now let us look at how 64 codons manage to describe only 20 amino acids, and why that turns out to be very good news.

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