IB Biology HL Topic 4 — Genetics & Inheritance Paper 1 & 2 Core idea ~9 min read

Genetic Inheritance & Crosses

Every one of your genes came in two copies — one from each parent. That single fact is the whole of inheritance. Once you can see where those two copies come from, Punnett grids stop being a memory test and start being simple counting.

📚 What you need to know

Where the two alleles come from

Body cells are diploid. In humans that means 46 chromosomes, arranged as 23 matching pairs. One chromosome of each pair came from your mother, the other from your father.

Meiosis halves that number when gametes are made. A sperm cell or an egg cell carries just 23 chromosomes — one from each pair. So a gamete carries one allele of every gene, never two.

At fertilisation the two haploid nuclei fuse. The full number is restored, and the new zygote has two alleles of every gene again: one from mum, one from dad.

Fertilisation puts the two alleles back together each gamete brings one allele of every gene n sperm 23 chromosomes + n egg 23 chromosomes 2n zygote 46 chromosomes haploid + haploid = diploid the zygote now holds two alleles of every gene, one from each parent
The egg is much bigger because it carries food stores for the early embryo — but it passes on exactly the same number of chromosomes as the tiny sperm.
Students often say “the sperm gives half the DNA and the egg gives the rest of it”. That is right for the nucleus, and it is what exam questions mean. Mitochondrial DNA is the odd one out — it comes from the egg only.

The words you must use precisely

Marks are lost here more than anywhere else in genetics, so nail the vocabulary early.

WordWhat it meansExample
GeneA length of DNA that codes for one polypeptide, sitting at a fixed place on a chromosomeThe gene for coat colour in mice
AlleleOne version of that gene, differing by a few basesB (black) or b (brown)
GenotypeThe two alleles an individual carriesBB, Bb or bb
PhenotypeThe feature you can actually see or measureBlack fur or brown fur
HomozygousThe two alleles are the sameBB or bb
HeterozygousThe two alleles are differentBb

Dominant and recessive

A dominant allele shows up in the phenotype whenever it is present, even if there is only one copy. A recessive allele only shows in the phenotype when there is no dominant allele to hide it — so you need two copies of it.

That is why Bb and BB look identical from the outside. Both make black mice. Only bb makes a brown one.

Why one copy is enough. The dominant allele usually codes for a working protein. One working copy is often plenty to do the job, so the phenotype looks normal. The recessive allele often codes for a protein that does not work — and you only notice that when there is no working copy left.

Building a Punnett grid

🧩 The five steps

  1. Write the parental phenotypes and, under them, the parental genotypes.
  2. Write the gametes each parent can make. Circle them — it reminds you they are haploid.
  3. Put one parent’s gametes along the top of a grid and the other parent’s down the side.
  4. Fill each box by combining the gamete at the top with the gamete at the side.
  5. Count the genotypes, then convert them to phenotypes and give both ratios.
Show the gametes even if you can do the cross in your head. The gamete line is usually worth its own mark, and a missing line is the most common way to drop marks on an otherwise perfect answer.
One gene, two alleles: where the 3 : 1 ratio comes from BB black × bb brown F1: all Bb, all black 1 BB 2 Bb 1 bb black black brown genotypes 1 : 2 : 1 but phenotypes 3 black : 1 brown
The brown phenotype disappears in the F1 and comes back in the F2. It was never lost — the recessive allele was just hidden inside the heterozygotes.

Worked examples

WORKED EXAMPLE 1

A pure-breeding black mouse (BB) is crossed with a pure-breeding brown mouse (bb). Give the genotype and phenotype of the F1.

Step 1: parental genotypes BB (black) × bb (brown) Step 2: gametes BB can only make B. bb can only make b. A homozygous parent makes just one kind of gamete — that is what “pure-breeding” is telling you. Step 3: combine B + b → Bb, every single time 100% Bb, all black Genotype ratio and phenotype ratio are both 1 : 0 here, because there is only one possible outcome.
WORKED EXAMPLE 2

Two F1 mice from that cross are bred together. They have 24 pups. How many would you expect to be brown?

Step 1: parents and gametes Bb × Bb, so each parent makes B or b Step 2: grid B×B = BB, B×b = Bb, b×B = Bb, b×b = bb Step 3: read off the ratio 1 BB : 2 Bb : 1 bb → 3 black : 1 brown Step 4: apply it to 24 pups 24 ÷ 4 = 6 brown, 18 black About 6 brown pups Say “about” or “expected”. Each pup is an independent 1-in-4 chance, so a real litter might give 4 or 8.
GametesBb
BBB — blackBb — black
bBb — blackbb — brown

Crosses in flowering plants

Mendel worked with pea plants for a good reason: he could control exactly which pollen reached which flower. Pollen carries the male gamete, the ovary holds the female gametes, and moving pollen by hand meant he always knew both parents.

Many plants can self-pollinate, because one flower carries both male and female parts. Growers use this to keep a useful feature. To combine two useful features from different plants, they cross-pollinate instead. Genetic crosses let them predict the outcome before they plant a whole field.

💡 Exam tip

⚠ Common mix-up

Up next: Inheritance: Key Terms — we slow right down on genotype, phenotype, locus and the two ways alleles can share a phenotype.

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