IB Biology SL Topic 8 — Genetics & Inheritance Paper 1 & 2 Core skill ~11 min read

Pedigree Charts

A pedigree chart is a puzzle with the answer hidden inside it. Nobody tells you whether the allele is dominant or recessive, or whether it sits on an autosome or the X — you have to deduce both from the pattern. There is a reliable method, and once you have it these become some of the most satisfying marks in the paper.

📘 What you need to know

The conventions

The symbols are fixed, and using them correctly is worth marks in its own right if you are asked to complete a chart.

FeatureWhat it means
SquareMale
CircleFemale
Shaded or cross-hatched symbolIndividual affected by the condition
Unshaded symbolIndividual not affected (though possibly a carrier)
Horizontal line joining two symbolsA couple who have produced children
Vertical line dropping to a horizontal barThe children of that couple, eldest on the left
Roman numeral at the sideThe generation number

Reading a chart

Here is a three-generation family in which a condition appears twice. Everything you need to identify the type of inheritance is present, and it takes two observations to get there.

READING A FAMILY PEDIGREE two observations are enough to identify the mode of inheritanceI II III I-1 I-2 II-1 II-2 II-3 II-4 III-1 III-2 III-3 unaffected male affected male unaffected female affected femaletwo unaffected parents, an affected daughterso the allele must be recessive and autosomal, because II-1 is affected but her father I-1 is notHunt for the informative individuals, not the whole chart One affected child of unaffected parents settles the question in a single step
Individual II-1 is doing all the work here. She proves the allele is recessive (her parents are unaffected) and she rules out X-linkage (an X-linked recessive female would need an affected father).

Deducing the mode of inheritance

Rather than staring at the whole chart, look for the specific pieces of evidence below. Each one lets you eliminate a possibility, and two of them together are usually enough.

FOUR CHECKS THAT CRACK ANY PEDIGREE work out the pattern first, assign genotypes afterwardsWHAT YOU SEE WHAT IT MEANS two unaffected parents have an affected child the allele is RECESSIVE affected individuals appear in every generation the allele is DOMINANT an affected female has an unaffected father the gene is AUTOSOMAL affected individuals are almost all male suspect X-LINKED recessiveDeduce the pattern before assigning any genotypes Two of these checks together are normally enough to pin the mode of inheritance down
The first check is the strongest, because it is a proof rather than a suggestion. The fourth is only a hint — in a small family, an all-male pattern can happen by chance.

🧩 A method that works every time

  1. Find an affected individual whose parents are both unaffected. If one exists, the allele is recessive and both parents are carriers.
  2. If instead every affected person has an affected parent, and the condition appears in each generation, treat it as dominant.
  3. Now test for sex linkage. For an X-linked recessive condition, an affected female must have an affected father. If she does not, the gene is autosomal.
  4. Write the known genotypes onto the chart: every affected individual under a recessive model is homozygous recessive. That is your anchor.
  5. Work outwards from there. An unaffected parent of an affected child must be heterozygous.
  6. For anyone unaffected whose genotype is not forced, give both possibilities: homozygous dominant or heterozygous.
Step 6 catches people out. If an individual is unaffected and nothing in the chart forces the issue, the honest answer is “AA or Aa”. Writing a single genotype you cannot justify loses the mark; writing both, with a reason, gains it.

Why relatives are a genetic risk

Pedigree charts make plain something that is otherwise abstract. Harmful recessive alleles are usually rare, so two unrelated people are unlikely to carry the same one. Close relatives, however, share a recent common ancestor and therefore share a much higher proportion of their alleles.

That raises the chance that both partners are carriers of the same harmful recessive allele, which in turn raises the chance of a child inheriting two copies and being affected. This is the biological reason marriage between close relatives is prohibited in many countries.

Inductive and deductive reasoning

Pedigree work is a good illustration of two kinds of scientific reasoning, and the distinction sometimes appears in a nature-of-science question.

Deductive reasoning moves from known evidence to a specific conclusion. If two unaffected parents have an affected child, you can deduce that the condition is recessive and that both parents are carriers. That conclusion follows necessarily.

Inductive reasoning moves from a limited sample to a general conclusion. If you notice across several pedigrees that affected individuals are nearly always male, you might generalise that the condition is sex-linked. That is a reasonable inference, but it could be overturned by the next family you look at.

Worked examples

WORKED EXAMPLE

In a pedigree tracing albinism, two unaffected parents have a son with albinism. Deduce the type of allele responsible and explain your reasoning. [3]

Identify the informative individuals the affected son and his two unaffected parents Reason from them the allele cannot be dominant, because a dominant allele would show in at least one parent so the son must have inherited one recessive allele from each parent, making both parents carriers State the conclusion Albinism is caused by a recessive allele; the parents are both heterozygous if females are affected elsewhere in the chart, add that it is autosomal rather than X-linked
WORKED EXAMPLE

In the same pedigree, state the possible genotypes of an unaffected sister of the affected son, and explain why more than one is possible. [2]

Fix what is certain both parents are Aa, so their children can be AA, Aa or aa Use the information you are given she is unaffected, so she is not aa; she must have at least one dominant allele AA or Aa — there is no way to distinguish them from her phenotype alone among unaffected children of two carriers, two out of three are heterozygous

💡 Exam tips

⚠️ Common mix-ups

Up next: Continuous Variation — what happens when a characteristic is controlled by many genes at once, and the statistics you need to describe it.

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