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

Gene Mutations

Copying three billion bases without a single slip is impossible, and your cells do it over and over again. Mistakes happen. Most are corrected or harmless, but the ones that survive are called mutations — and there are three ways a base sequence can go wrong, with very different consequences.

📘 What you need to know

The three ways a sequence can change

Every gene is read in groups of three, so what matters is not just which base changed but whether the grouping survives.

Insertions and deletions are the dangerous ones. This re-grouping is called a frameshift mutation, and it can change the whole rest of the polypeptide.

Substitution, insertion and deletion compared The vertical bands show where each triplet begins and ends Original A T G C C A G T C Substitution A T G C A A G T C one triplet changed Insertion A T G T C C A G T C all shifted along Deletion A T G C A G T C all shifted back A substitution stays inside one triplet; the other two re-group everything Red bands are triplets that no longer read the same as the original.
The bands never move — the cell always reads in threes from the same starting point. It is the letters that slide, and that is what does the damage.
Try it with a sentence. “THE BIG CAT SAW THE DOG” still makes sense if you swap one letter: “THE BIG CAR SAW THE DOG”. Now delete the H: “TEB IGC ATS AWT HED OG”. Nothing after the deletion means anything. That is a frameshift.

What causes mutations?

Some mutations arise from nothing more than the sheer volume of copying a cell does. Others are caused by things in the environment. Anything that raises the mutation rate is called a mutagen or a mutagenic agent.

CauseExamplesHow it acts
High-energy radiationUV lightCauses chemical changes in the DNA molecule
Ionising radiationX-rays, gamma rays, alpha particlesDamages bases and breaks the DNA strand
Chemical mutagensBenzo[a]pyrene and nitrosamines in tobacco smoke; mustard gasReact with DNA and alter bases
Internal mutagensCertain enzymes inside the cellBreak down DNA or make mutagenic substances
Copying errorsReplication and repair in S phaseA wrong nucleotide is added and missed by proofreading
What raises the mutation rate Mutagens come from outside the cell; copying errors come from inside Radiation UV, X-rays, gamma Chemicals in tobacco smoke Copying errors during replication DNA mutation rate increases Mutagens do not choose which gene they hit They raise the chance of a change anywhere in the genome.
This is the reason UV exposure and smoking are linked to cancer: more mutations means a greater chance that one lands in a gene controlling cell division.

Why most errors never become mutations

DNA polymerase does not just build new strands — it proofreads them. If it detects that the wrong nucleotide has been added, it removes it and replaces it before carrying on. A mutation only survives when that check misses the error.

Even then, most surviving changes do nothing. They may land in non-coding DNA, or the genetic code’s degeneracy may mean the amino acid is unchanged.

Random, but not evenly spread

Mutations can occur anywhere, in any organism, on any chromosome — that is how new strains of bacteria and viruses appear. But some places are more vulnerable than others:

No mutation on demand. Cells have no mechanism for deliberately changing a base to gain a useful trait. Proofreading can undo an error, but nothing in a cell can decide to make a change. Mutations are accidents, not solutions.
This is the point where students slip into saying things like “the bacteria mutated so they could resist the antibiotic”. They did not. The mutation happened first, by chance, and the antibiotic then favoured the bacteria that already had it.

Worked examples

WORKED EXAMPLE

Re-grouping the triplets

A coding sequence reads ATG CCA GTC. Write the new triplets after (a) the fifth base is substituted for A, and (b) the fifth base is deleted.

Step 1: Write the sequence without gaps ATGCCAGTC — the fifth base is C. (a) Substitution: swap that C for an A ATGCAAGTC → ATG CAA GTC Only the middle triplet has changed. (b) Deletion: remove that C ATGCAGTC → ATG CAG TC Every triplet from the second one onwards is different. (a) one triplet altered   (b) a frameshift Always rewrite the sequence with no gaps first, then re-group in threes from the left.
WORKED EXAMPLE

Naming the mutation type

The original sequence is GCT AAG CCA. Name the type of mutation in each case: (a) GCT AAG CGA, (b) GCT AAT GCC A, (c) GCT AGC CA.

(a) Count the bases Still 9 bases; one letter differs → substitution (b) Count the bases 10 bases, one more than before → insertion (a frameshift) (c) Count the bases 8 bases, one fewer → deletion (a frameshift) (a) substitution   (b) insertion   (c) deletion Counting the bases is faster and safer than trying to spot the change by eye.
WORKED EXAMPLE

Comparing the damage

Explain why a deletion is usually more harmful to a protein than a substitution.

Step 1: What a substitution does It changes only the triplet it lands in, so at most one amino acid is altered — and often none, because the code is degenerate. Step 2: What a deletion does Removing a base shifts every triplet after it, so the ribosome reads a completely different set of codons — a frameshift. Step 3: Consequence for the protein Every amino acid after the mutation may be wrong, and a premature stop codon may appear, so the polypeptide folds incorrectly or is cut short. A deletion alters the whole sequence after the mutation, not just one triplet Use the word “frameshift” — it usually carries a mark of its own.

💡 Exam tip

⚠ Common mix-up

Up next: Consequences of Mutations — now that you can name the three types, we look at what each one actually does to the finished protein, and why a mutation in a skin cell matters far less than the same mutation in an egg cell.

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