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

The Mechanism of DNA Replication

DNA polymerase has one stubborn limitation: it can only build in one direction. The two template strands point opposite ways, and the fork only opens one way. Those three facts collide, and the awkward compromise the cell reaches is the whole reason the lagging strand exists.

📘 What you need to know

Why direction matters at all

Like transcription and translation, DNA replication must occur in the 5′ to 3′ direction. To see why that is a physical fact rather than a rule someone invented, look at a single nucleotide.

When DNA polymerase extends a strand, the 5′ phosphate group of the incoming nucleotide bonds to the free 3′-OH group on the growing strand. The new nucleotide brings its own free 3′-OH, ready for the next one. The chain can therefore only ever grow at the 3′ end.

One nucleotide, and where things attach Phosphate on the 5′ carbon, base on the 1′ carbon, free OH on the 3′ carbonphosphate group P 5′ O 1 2 3 4 nitrogenous base (A, T, C or G) pentose sugar (deoxyribose) 3′ OH free 3′ OH: the next nucleotide joins hereA strand can only grow at the end that has a free 3′ OH. That single fact forces everything else on this page.
Every nucleotide arrives with a phosphate at one end and a free OH at the other, so the chain has a built-in direction, like a queue of people all facing the same way.

The leading and lagging strands

Double-stranded DNA consists of two antiparallel strands: one runs 5′ to 3′ while the other runs 3′ to 5′.

During replication the strands are unzipped and DNA polymerase moves along each template, linking nucleotides to form a new strand. Now the collision:

So the two new strands cannot be made the same way:

Why one strand comes out in pieces Both new strands are built 5′ to 3′, which is exactly why they look so differentleading strand made continuously, follows the fork 3′ 5′ unwinding RNA primer starts each stretch lagging strand made in short Okazaki fragments DNA ligase joins the fragmentsThe leading strand chases the fork; the lagging strand runs away from it. Teal = template, red = new DNA, yellow = primer, green = ligase.
Follow the red arrowheads. On the leading strand the arrow points at the fork; on the lagging strand every arrow points away from it. That is the whole difference.

Primers

Before new DNA nucleotides can be added, an RNA primer must be laid down to create a binding point for DNA polymerase III.

A neat way to remember which is which: the lagging strand lags behind because it has to keep stopping to start again. Every new fragment needs a fresh primer, so it is always a step behind the fork.

The enzymes, as a team

Replication is carried out by a complex system of enzymes working together. Learn what each one does, and in what order it acts.

Enzyme or proteinWhat it does
HelicaseUnwinds the double helix at the replication fork, then breaks the hydrogen bonds between the two strands so they can separate.
Single-stranded binding proteinsKeep the separated strands apart while the template is being copied.
DNA primaseGenerates a short RNA primer on the template strand, providing an initiation point for DNA polymerase III.
DNA polymerase IIIStarts replication next to the RNA primer, linking nucleotides in a 5′ to 3′ direction to form the new strand. It also proofreads.
DNA polymerase IRemoves the RNA primers on the leading and lagging strands and replaces them with DNA.
DNA ligaseJoins up the Okazaki fragments by catalysing the formation of sugar-phosphate bonds.
Two polymerases, two jobs. Polymerase III does the building. Polymerase I does the tidying up, swapping the RNA primers for DNA. If a question asks which enzyme removes the primers, the answer is I, not III.

Proofreading

Each time a human cell replicates, about 3 billion new base pairs have to be synthesised to copy the genome. The copying process is not 100% perfect, and the mistakes that do occur are called mutations. Mutations can be harmful to the functioning of the new cell and can lead to diseases such as cancer.

In prokaryotes, mistakes are reduced because DNA polymerase III acts as a proof-reader of the new daughter strand:

🧩 How proofreading works

  1. The enzyme recognises an incorrect nucleotide in the daughter strand.
  2. It reverses direction to remove the incorrect nucleotide from the 3′ end of the strand.
  3. The correct nucleotide is inserted, and polymerase III continues replication as normal.
Proofreading only works because of complementary base pairing. An incorrectly paired base cannot form the right number of hydrogen bonds, so it sits slightly out of shape — and that shape is what the enzyme detects. Accuracy is built into the chemistry, not bolted on afterwards.

Worked examples

WORKED EXAMPLE

Explain why one new DNA strand is synthesised continuously and the other discontinuously. [4]

Fact 1: the limitation of the enzyme DNA polymerase can only add nucleotides in the 5′ to 3′ direction. Fact 2: the shape of the molecule The two template strands are antiparallel, so synthesis must run in opposite directions on each. Fact 3: the fork The replication fork opens in one direction only. Now put them together One strand can follow the fork continuously; the other must be made in short fragments running away from it all three facts are needed. Missing the antiparallel point costs the answer.
WORKED EXAMPLE

Outline the roles of DNA primase, DNA polymerase I and DNA ligase in replication. [3]

Primase Generates a short RNA primer, giving DNA polymerase III a point to start from. DNA polymerase I Removes those RNA primers and replaces them with DNA. DNA ligase Joins the Okazaki fragments by forming sugar-phosphate bonds between them three enzymes, three distinct jobs. Do not let them blur together.
WORKED EXAMPLE

A cell has a faulty DNA ligase. Suggest the effect on the new DNA strands. [3]

Ask what ligase was supposed to do Ligase joins the Okazaki fragments on the lagging strand. So what fails? The fragments would not be joined, so the lagging strand would stay in separate pieces. And the consequence The sugar-phosphate backbone would have breaks in it, so the new strand would not be continuous note that the leading strand would be largely unaffected — a good extra point.

💡 Exam tip

⚠ Common mix-up

That is the end of the Replicating DNA chain. Up next: DNA Replication — go back to the start and see how much more of the mechanism makes sense the second time.

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