IB Biology HL Topic 4 — Genetics, Inheritance & Change Paper 1 & 2 Core idea ~10 min read

Cell Cycle

Mitosis gets all the attention, but it is a small slice of a cell’s life. Most of the time a cell is in interphase, growing, working and quietly copying its DNA. And the decision to divide at all is not casual — it is controlled by a chemical timer that has to be satisfied at three separate checkpoints.

📘 What you need to know

Where proliferation happens

Plants and animals both begin as a zygote that divides repeatedly to form an embryo. That rapid increase in cell number is called proliferation, and it continues in particular places throughout life.

In plants: meristems

In animals: embryos, replacement and repair

The shape of the cycle

The proportions matter as much as the order. A cell spends most of its life in interphase; mitosis and cytokinesis are brief by comparison.

The cell cycle, drawn as a timeline Interphase takes most of the time; division is quick INTERPHASE G1 S G2 M growth and normal work DNA replicated checks and prep mitosis cytokinesis Interphase is not a resting phase; it is the busiest part G1 growth, S replication, G2 checking, then M and cytokinesis.
The widths are roughly to scale. This is why, on any slide, most of the cells you can see are in interphase.

The length of the cycle varies with environmental conditions, cell type and organism. Onion root tip cells divide roughly once every 20 hours; human intestinal epithelial cells roughly every 10 hours.

Inside interphase

PhaseWhat “G” or “S” stands forWhat happens
G1GrowthCell makes RNA, enzymes and other proteins needed for growth; a signal to divide may be received here
SSynthesis of DNADNA in the nucleus replicates, so each chromosome consists of two identical sister chromatids
G2GrowthCell continues to grow, the new DNA is checked and errors repaired, and tubulin is made for the spindle
G0. Some cells never receive the signal to divide again. They leave the cycle at G1 and enter G0, where they continue to function but no longer divide. Mature nerve cells are a familiar example.

Control by cyclins

Movement from one phase to the next is triggered by chemical signals called cyclins. The cycle has three checkpoints, at G1, G2 and M, which must be passed before the next stage can begin.

There are four cyclins, D, E, A and B, whose concentrations rise and fall over the cycle, each triggering specific events. The mechanism works like this:

The point of all this is timing: it ensures DNA replication, organelle multiplication and protein synthesis happen in the right order and at the right moment.

How cyclins switch the next stage on A cyclin binds a kinase, and the complex activates a target 1. Cyclin builds up cyclin concentration rises to a threshold 2. Complex forms it binds a cyclin- dependent kinase 3. Target activated the complex adds a phosphate to a protein that protein triggers the next stage of the cycle Checkpoints at G1, G2 and M must be passed first When the job is done the cyclin breaks down and the kinase switches off.
You are not expected to know what each individual cyclin does — only the mechanism and why timing matters.

Worked examples

WORKED EXAMPLE

Proportion of the cycle spent in mitosis

A cell cycle lasts 20 hours, of which mitosis takes 1.5 hours. Calculate the percentage of the cycle spent in mitosis, and comment on what this means for a stained slide.

Step 1: Set up the calculation Percentage = (time in mitosis ÷ total cycle time) × 100 Step 2: Substitute (1.5 ÷ 20) × 100 = 7.5% Step 3: Interpret Only about 7.5% of the cells on a slide would be caught in mitosis; the rest would be in interphase. 7.5% Proportion of cells in a stage is proportional to the time that stage takes.
WORKED EXAMPLE

Which phase makes the most mRNA?

Identify the phase of the cell cycle in which a cell would be producing the greatest number of mRNA molecules, and explain your answer.

Step 1: Link mRNA to a process mRNA is made by transcription, the first stage of protein synthesis. Step 2: Find where protein synthesis peaks In G1 the cell makes RNA, enzymes and other proteins needed for growth. Step 3: Rule out the rest S phase is dominated by DNA replication, and during mitosis the chromosomes are condensed and not being transcribed. G1 phase Condensed chromosomes cannot be transcribed — a useful point to add.
WORKED EXAMPLE

Blocking a kinase

A drug prevents cyclins from binding to cyclin-dependent kinases. Predict the effect on a population of dividing cells.

Step 1: What the binding does Binding forms an activated complex that phosphorylates target proteins. Step 2: What is lost Without it, no target protein is activated, so the trigger for the next stage never arrives. Step 3: Predict the outcome Cells would be held at a checkpoint and would not progress into division. The cells stop advancing through the cycle and cease dividing Drugs of this general type are used to slow rapidly dividing cancer cells.

💡 Exam tip

⚠ Common mix-up

Up next: Uncontrolled Division & Tumours — you have just seen how carefully division is regulated. Now we look at what happens when the genes running that control system are the ones that mutate.

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