IB Biology SL Topic 4 — Cell & Nuclear Division Paper 1 & 2 Practical skill ~7 min read

Mitosis: Identifying Phases

Knowing PMAT is one thing. Being handed a micrograph of root tip cells and asked which phase a particular cell is in is another. The good news is that each phase has one giveaway feature, and once you know what to look for it takes seconds.

📘 What you need to know

What to look for

PhaseThe giveawayAlso look for
InterphaseNo separate chromosomes visible; the nucleus looks dark and evenly filledMost of the cells in any field of view will look like this
ProphaseChromosomes visible, all in one groupThe edge of the nucleus looks broken or fuzzy as the envelope goes
MetaphaseChromosomes in a neat line across the middle of the cellNothing between the line and the poles
AnaphaseTwo sets pulling apart, with V shapes pointing inwardsThe V shape comes from being dragged centromere first
TelophaseChromosomes in two groups at opposite polesThey look fuzzier as they uncoil; a new envelope is forming
CytokinesisA furrow pinching in (animal) or a cell plate across the middle (plant)Two nuclei already present, one on each side
A simplified field of view I P M A T I interphase, P prophase, M metaphase, A anaphase, T telophase
Notice how many cells are in interphase. In a real root tip that proportion is what the mitotic index measures.

The one that catches people out

Prophase and telophase can look surprisingly similar in a photomicrograph — in both, the chromosomes are visible and the nuclear envelope is somewhere between present and absent. Use this:

Count the groups. In prophase there is only one group of chromosomes in the cell. In telophase there are two, one at each pole. That single check settles it almost every time.
Prophase or telophase? Count the groupsPROPHASE TELOPHASE ONE group of chromosomes TWO groups, one at each poleIn telophase the envelope is reforming around each group, not breaking down
One group means the cell is on its way into division. Two groups means it is on its way out.

Mitotic index

Once you can identify phases, you can measure how actively a tissue is dividing. The mitotic index is the proportion of cells in a sample that are in mitosis:

Mitotic index mitotic index = number of cells in mitosis ÷ total number of cells

Count every cell you can see, then count how many of those are in prophase, metaphase, anaphase or telophase. Cells in interphase are not in mitosis, so they go in the total but not in the top of the fraction. The answer is a decimal, or a percentage if you multiply by 100.

A high mitotic index means a lot of division is going on — normal in a root tip or a growing embryo, but a warning sign in a tissue sample that should be quiet.

Count carefully and count everything. The most common error is not miscounting the dividing cells but forgetting to include all the interphase ones in the total.

Worked examples

WORKED EXAMPLE

Calculate a mitotic index

In a field of view of a root tip there are 45 cells. Of these, 4 are in prophase, 2 in metaphase, 2 in anaphase and 1 in telophase. Calculate the mitotic index as a percentage.

Step 1: Add up the cells in mitosis 4 + 2 + 2 + 1 = 9 cells Step 2: Divide by the total number of cells 9 ÷ 45 = 0.2 Step 3: Convert to a percentage 0.2 × 100 = 20 Mitotic index = 20% The total is all 45 cells, not just the 9. Interphase cells count in the denominator.
WORKED EXAMPLE

Estimate how long a phase lasts

A population of cells has a cell cycle lasting 20 hours. The mitotic index is 0.2. Estimate how long the cells spend in mitosis.

Step 1: State the assumption The proportion of cells seen in a phase is roughly the proportion of time spent in it. Step 2: Multiply 0.2 × 20 hours = 4 hours About 4 hours in mitosis So 16 of the 20 hours are interphase — which is why most cells you see are in interphase.
WORKED EXAMPLE

Justify an identification

A student says a cell in a micrograph is in anaphase. State two features they should point to as evidence.

Feature 1 There are two sets of chromosomes moving apart, away from the middle towards opposite poles. Feature 2 The chromosomes show the characteristic V shape, because they are being pulled centromere first. Two sets separating, V-shaped “State two features” wants observations from the image, not a description of what anaphase means.

💡 Exam tip

⚠ Common mix-up

Up next: Meiosis — the division that halves the chromosome number, why a sexual life cycle needs it, and how it manufactures variation.

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