IB Biology HL Topic 4 — Genetics, Inheritance & Change Paper 1 & 2 Practical skill ~7 min read

Mitotic Index (Skills)

The mitotic index is the simplest calculation in this whole chapter: count the dividing cells, count all the cells, divide one by the other. The marks are lost in the counting, not the maths — and the formula is not given to you in the exam.

📘 What you need to know

Where to look, and why

Plant growth happens in meristems, so that is where dividing cells are concentrated. The root tip meristem sits just behind the protective root cap, and contains a zone of cell division full of cells undergoing mitosis.

Pre-prepared slides can be used, or you can make a temporary slide using the squash technique: stain the root tip, then gently squash it so the cells spread into a thin layer. Squashing matters — in a thick block of tissue the cells overlap and you cannot count anything reliably.

Where to look in a root tip The dividing cells sit just behind the root cap root tip meristem root cap older cells Cells here are dividing, so mitotic stages are visible Stain the tip, then squash it into a thin layer of cells.
Sample from the wrong region and your mitotic index will be far too low — older cells have stopped dividing and are elongating instead.

The formula

Learn this — it is not given in the exam mitotic index = number of cells with visible chromosomes ÷ total number of cells

“Cells with visible chromosomes” means cells in prophase, metaphase, anaphase or telophase — all four. Cells in interphase have chromatin rather than visible chromosomes, so they go in the total but not in the top of the fraction.

🧩 How to work through a micrograph

  1. Count the dividing cells. Go systematically across the image, marking each cell with visible chromosomes as you go so you do not double-count.
  2. Count the total. Every cell in the field, dividing or not.
  3. Divide the first number by the second.
  4. Check the units asked for. A proportion (a decimal) or a percentage — and check how many decimal places the question wants.
Counting for the mitotic index Count every cell, then count those with visible chromosomes dividing (6) not dividing (18) mitotic index = 6 / 24 = 0.25 Divide the dividing cells by the total number of cells Multiply by 100 if the question asks for a percentage.
Note the denominator: the total is 24, not 18. The dividing cells are part of the total too.

Worked examples

WORKED EXAMPLE

A straightforward count

A student counts 60 cells in a field of view, 15 of which have visible chromosomes. Calculate the mitotic index, giving your answer to 2 decimal places.

Step 1: Write the formula mitotic index = cells with visible chromosomes ÷ total cells Step 2: Substitute 15 ÷ 60 Step 3: Calculate = 0.25 0.25 To 2 decimal places, write 0.25 — do not drop the trailing zero if the answer needs it.
WORKED EXAMPLE

Working from a table of stages

The table shows counts from an onion root tip: interphase 48, prophase 12, metaphase 6, anaphase 4, telophase 10. Calculate the mitotic index to 2 decimal places.

Step 1: Add up the dividing cells Prophase + metaphase + anaphase + telophase 12 + 6 + 4 + 10 = 32 Step 2: Find the total, including interphase 48 + 32 = 80 Step 3: Divide 32 ÷ 80 = 0.40 0.40 Interphase cells belong in the total but never in the top of the fraction.
WORKED EXAMPLE

Comparing two tissues

Tissue A has a mitotic index of 0.08 and tissue B has a mitotic index of 0.42. Express each as a percentage and comment on what the difference suggests.

Step 1: Convert to percentages 0.08 × 100 = 8% 0.42 × 100 = 42% Step 2: Compare A much higher proportion of cells in tissue B are undergoing mitosis. Step 3: Suggest a reason Tissue B is dividing far more rapidly — a growth region such as a meristem, or possibly a tumour. 8% and 42%; tissue B is dividing much more rapidly A raised mitotic index is one of the things pathologists look at in a biopsy.

💡 Exam tip

⚠ Common mix-up

That completes Cell & Nuclear Division. Try summarising the whole chapter in one line: DNA is copied in interphase, packed into chromosomes, shared out by mitosis or halved by meiosis, and the whole thing is controlled by cyclins — until a mutation stops it being controlled at all.

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