IB Biology HL Topic 4 — Replicating DNA Paper 1 & 2 Practical skill ~13 min read

Electrophoresis & PCR

A single cell’s worth of DNA is far too little to work with, and a mixture of fragments tells you nothing until you sort them. PCR fixes the first problem by copying DNA a billion times over. Gel electrophoresis fixes the second by racing the fragments through jelly. Almost every technique in genetics starts with these two.

📘 What you need to know

Gel electrophoresis

Gel electrophoresis is used widely in the analysis of DNA, RNA and proteins. The separation happens for three reasons at once.

1. The electrical charge molecules carry

2. The size of the molecules

3. The type of gel

The charge point is the one students drop. DNA is always negative, so it always runs to the positive electrode — which means the wells must be cut at the negative end of the gel, or the samples run off the wrong way.
A gel electrophoresis tank, seen from above Wells at the negative end, because DNA runs towards the positive one power supply cathode − anode + large fragments stay near the wells small fragments travel furtherDistance travelled is a measure of fragment size. Each row of bands is one sample; each band is one length of DNA.
The black rectangles on the left are the wells the samples were loaded into. Everything to the right of them is DNA that has migrated.

Preparing DNA for the gel

DNA can be collected from almost anywhere on the body — the root of a hair, saliva from a cup. Before it can be run on a gel and then sequenced or analysed for genetic profiling, it has to be prepared:

🧩 The gel electrophoresis method

  1. Create an agarose gel plate in a tank. Wells — a row of small rectangular holes — are cut into the gel at one end.
  2. Submerge the gel in an electrolyte solution, a salt solution that conducts electricity.
  3. Load the DNA fragments into the wells using a micropipette.
  4. Apply an electrical current. The negative electrode must be at the end with the wells, so the negatively charged phosphates of DNA are pulled towards the anode.
  5. Fragments with a smaller mass move faster and further from the wells than larger ones.
  6. The fragments are not visible, so they are transferred onto absorbent paper or nitrocellulose, which is then heated to separate the two DNA strands.
  7. Add probes to produce a visible result — either a radioactive label such as a phosphorus isotope, which darkens X-ray film into a pattern of dark bands, or a fluorescent stain or dye, which shines under UV light to give coloured bands.

The Polymerase Chain Reaction

PCR is used in most applications of gene technology — DNA profiling, identifying criminals, determining paternity, genetic engineering. During the COVID-19 pandemic it was used in routine diagnostic testing to amplify small amounts of viral RNA.

It is best described as the in vitro method of DNA amplification: it produces large quantities of a specific fragment of DNA or RNA from very small quantities — even a single molecule. Within a few hours, scientists can produce billions of identical copies ready for analysis.

What each reaction needs

ComponentWhat it is for
Target DNA or RNAThe sequence being amplified. The whole genome is not copied — only specific sections that vary between individuals.
PrimersShort sequences that bind to the target section, identifying where copying should start.
DNA polymeraseBuilds the new strand. Usually Taq polymerase, from the thermophilic bacterium Thermus aquaticus, because it does not denature at the high temperature of the first stage.
Free nucleotidesThe building blocks of the new strands.
Buffer solutionProvides the optimum pH for the reactions.
Why Taq is the clever bit. Every cycle heats the tube to 95 °C, which would denature an ordinary polymerase and mean adding fresh enzyme every single round. Taq comes from a bacterium that lives in hot springs, so it survives the heat and the reaction can be left to run itself.

The three stages of a cycle

PCR runs in a thermal cycler, which automatically provides the optimal temperature for each stage and controls how long is spent at each one.

One PCR cycle, three temperatures The thermal cycler simply repeats this pattern, over and over 95 72 55 40denature anneal extend one cycle and again, and again time temperature / degrees CExtension is the longest step, because the enzyme has actual work to do.
Notice the temperature never returns to room temperature. The tube simply bounces between three set points for a couple of hours.

🧩 What happens at each temperature

  1. Denaturation — 95 °C. The double-stranded DNA is heated, which breaks the hydrogen bonds holding the two strands together.
  2. Annealing — 50 to 60 °C. The temperature is lowered so the primers can anneal to the ends of the single strands.
  3. Elongation — 72 °C for at least a minute. This is the optimum for Taq polymerase, which builds the complementary strands to produce new identical double-stranded DNA molecules.

Why the numbers get big so fast

Each whole cycle takes a few minutes, and each cycle doubles the DNA. That is the key to the whole technique.

The rule copies after n cycles = 2n  •  starting from one molecule
Doubling does not look like much, at first The first six cycles of a run that will go on for thirty 1 2 4 8 16 32 640 1 2 3 4 5 6 number of cycles copies of the targetTwenty-four more cycles would take this past a billion. That is why a few hours is enough to work from a single molecule.
Exponential growth always looks flat before it looks vertical. The last cycle in a run adds more copies than every earlier cycle put together.
CyclesCopies from one starting molecule
10210 = 1024
20220 = 1 048 576, roughly a million
30230 = 1 073 741 824, just over a billion
Careful with this calculation — several textbooks quote 231 for a 30-cycle run, which is one doubling too many. After n cycles you have 2n copies, so 30 cycles gives 230. Both numbers are “just over a billion”, so the point still stands, but write the exponent that matches the number of cycles you were given.

Worked examples

WORKED EXAMPLE

Explain why DNA fragments move towards the anode during gel electrophoresis, and why smaller fragments end up further from the wells. [3]

Deal with charge first DNA carries a negative charge because of its phosphate groups. Opposite charges attract, so it is pulled towards the positive anode. Now size The gel contains tiny pores, so smaller fragments pass through more easily and travel further in the same time two separate reasons, two separate explanations. Do not merge them.
WORKED EXAMPLE

A PCR run starts with 5 copies of a target sequence and is run for 20 cycles. Calculate the number of copies produced. [2]

Step 1: work out the multiplying factor Each cycle doubles the DNA, so after 20 cycles the amount is multiplied by 220 = 1 048 576 Step 2: multiply by the starting number 5 × 1 048 576 = 5 242 880 About 5.24 × 106 copies the starting number is easy to forget. Read the question twice.
WORKED EXAMPLE

Explain why Taq polymerase is used in PCR rather than human DNA polymerase. [3]

Say what happens in the first stage The mixture is heated to 95 °C to break the hydrogen bonds and separate the strands. What that would do to a normal enzyme A human enzyme would denature at that temperature, so fresh enzyme would be needed every cycle. Now the property of Taq Taq comes from a thermophilic bacterium and is not denatured by the heat, so it works cycle after cycle naming Thermus aquaticus is a nice extra if you can remember it.

💡 Exam tip

⚠ Common mix-up

Up next: Electrophoresis & PCR: Applications — putting both techniques to work on paternity tests and crime scenes.

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