The genetic code
CIE A-Level BiologyΒ· 35 min read
1. Codons and the triplet codeβ β ββββ± 10 min
Triplet code
A sequence of three nucleotide bases that codes for one amino acid. Three-base units are called triplets in DNA and codons in mRNA.
Example:
The mRNA codon AUG codes for the amino acid methionine.
A triplet code is required because 1 base can only make 4 combinations, and 2 bases can only make combinations, which is not enough for the 20 standard amino acids used by cells. A 3-base triplet gives possible combinations, enough for all amino acids plus stop signals.
Calculate how many codons are present in a length of DNA that is 90 base pairs long.
- 1
Each codon is made of 3 bases, so divide the total number of bases by 3:
- 2
- 3
A 90 base pair DNA sequence contains 30 codons, coding for 30 amino acids before accounting for the stop codon.
Exam tip:
Always check if the question refers to base pairs (DNA) or bases (RNA) β the calculation is the same for 90 base pairs and 90 RNA bases.
2. Key properties: Non-overlapping and degenerateβ β β βββ± 15 min
The genetic code has two core properties that are frequently tested in exams: it is non-overlapping and degenerate.
Degenerate code
Most amino acids are coded for by more than one codon. Only methionine and tryptophan are coded for by a single codon.
Example:
Leucine is coded for by six different codons: UUA, UUG, CUU, CUC, CUA, CUG.
A non-overlapping code means each base is only part of one codon. Degeneracy has an important protective effect: many point mutations that change the third base of a codon still result in the same amino acid being added.
Explain why a point mutation changing DNA triplet GAA to GAG does not alter the amino acid sequence.
- 1
First, transcribe the DNA triplets to mRNA codons: DNA GAA β mRNA CUU, DNA GAG β mRNA CUC
- 2
Both CUU and CUC code for the amino acid leucine, due to the degeneracy of the genetic code
- 3
Since the same amino acid is incorporated into the polypeptide, the primary sequence remains unchanged.
3. Start/stop codons and universalityβ β ββββ± 12 min
Start and stop codons
The start codon initiates translation and always codes for methionine. Stop codons do not code for any amino acid and terminate polypeptide synthesis.
The genetic code is described as universal because the same codons code for the same amino acids in almost all organisms, from bacteria to humans. This is the basis for genetic engineering, where genes from one organism can be expressed in another.
Explain why human insulin can be produced by genetically modified bacteria.
- 1
The genetic code is universal, so the same codons code for the same amino acids in humans and bacteria
- 2
When the human insulin gene is inserted into bacterial DNA, the bacterial transcription and translation machinery reads the codons correctly
- 3
This produces the correct amino acid sequence for human insulin, resulting in a functional protein.
4. Triplets, codons and anticodonsβ β β βββ± 10 min
Students often confuse these three terms, which are commonly tested in multiple choice questions. The table below summarises their key differences:
Feature | DNA Triplet | mRNA Codon | tRNA Anticodon |
|---|---|---|---|
Location | Genomic DNA | Messenger RNA | Transfer RNA |
Complementary to | mRNA codon | DNA triplet, tRNA anticodon | mRNA codon |
Core role | Template for mRNA | Specifies amino acid | Matches codon to amino acid |
Test your understanding:
Which molecule carries an anticodon?
A. DNA
B. mRNA
C. tRNA
D. Ribosome
Reveal answer
C βAnticodons are three-base sequences on tRNA that bind to complementary mRNA codons during translation.
Exam tip:
Always double-check which molecule the question asks about before answering.
5. Common Pitfalls
Wrong move:
Stating that stop codons code for an amino acid.
Why:
Stop codons only signal the end of translation, they do not add any amino acid to the polypeptide.
Correct move:
Write that stop codons do not code for an amino acid and terminate translation.
Wrong move:
Confusing codons and anticodons, claiming codons are on tRNA.
Why:
This is one of the most common multiple choice traps in CIE exams.
Correct move:
Remember: Codons = mRNA, Anticodons = tRNA.
Wrong move:
Defining degenerate code as one codon coding for multiple amino acids.
Why:
Degeneracy is the reverse of this common misconception.
Correct move:
Define degenerate code as 'most amino acids are coded for by more than one codon'.
Wrong move:
Forgetting to subtract one for the stop codon when calculating the number of amino acids.
Why:
Exam questions often ask for the number of amino acids in the final polypeptide.
Correct move:
Always check if you need to exclude the stop codon that does not code for an amino acid.
6. Quick Reference Cheatsheet
Feature | Key Fact |
|---|---|
Triplet code | 3 bases = 1 amino acid, 64 total possible codons |
Non-overlapping | Each base is only part of one codon |
Degenerate | Multiple codons per amino acid, reduces mutation harm |
Universal | Same codons = same amino acids across almost all organisms |
Start codon | AUG, codes for methionine, starts translation |
Stop codons | UAA, UAG, UGA, do not code for amino acid |
Triplet location | DNA |
Codon location | mRNA |
Anticodon location | tRNA |
7. Frequently Asked
Is the genetic code really universal?
With rare exceptions (e.g. some mitochondrial genomes), the same codons code for the same amino acids across all living organisms, so it is described as universal for A-Level purposes.
When this came up on past exams
AI-estimated based on syllabus patterns β cross-check with official past papers for accuracy. Use only as revision-focus signals.
- 2023 Β· 11
Multiple choice on code properties
- 2022 Β· 22
Structured question on codon calculation
- 2021 Β· 12
Distinguish codon vs anticodon
Going deeper
What's Next
Now that you understand the structure and key properties of the genetic code, you are ready to learn about translation, where the genetic code is used to assemble polypeptide chains at the ribosome. Mastery of this topic is critical for understanding how mutations alter protein structure and function, a core theme in genetics and variation questions. It also underpins all topics related to genetic engineering and gene technology, which are covered in later units of the CIE 9700 syllabus. Building a solid foundation here will make more complex topics like recombinant DNA technology and gene editing much easier to understand and answer correctly in exams.
