IB Biology SL Topic 8 — Genetics & Inheritance Paper 1 & 2 Core skill ~12 min read

Sex Determination

Twenty-two of your chromosome pairs are matched. The twenty-third may not be, and that single asymmetry produces two of the most reliably examined ideas in genetics: why the father determines a child’s sex, and why haemophilia affects far more males than females.

📘 What you need to know

The one pair that does not match

Most characteristics are determined by one gene or a handful of genes. Sex is different: it is determined by which whole chromosome you inherit as the twenty-third pair. Two X chromosomes give a female, an X and a Y give a male.

Worth noting, because questions occasionally probe it: the XX and XY rule applies to mammals, not to all species. Birds, some insects and some reptiles use entirely different systems.

Why the father determines the sex

The mother is XX, so every egg she produces carries an X. There is no alternative. The father is XY, so meiosis gives him two kinds of sperm in equal numbers: half carrying his X, half carrying his Y. Whichever sperm happens to reach the egg first decides the outcome.

THE SPERM DECIDES mother XX, father XY — here chromosomes replace alleles in the boxesMOTHER’S EGGS FATHER’S SPERM X X X Y XX XX XY XYevery egg carries an X, so the mother cannot vary the outcome2 XX : 2 XY, a ratio of 1 : 1 50 per cent chance of a girl, 50 per cent chance of a boy, at every fertilisationOnly the father can supply a Y chromosome His daughters get his X, his sons get his Y — which is why sons never inherit his X-linked alleles
The last line is the one to remember. A father passes his X only to daughters, so an X-linked condition never goes from father to son.

What the X and Y actually carry

The X chromosome is considerably larger than the Y and has its centromere more centrally placed. As a result the Y codes for far fewer genes — the X carries roughly sixteen times as many.

Crucially, many of the genes on the X have nothing to do with sex. Certain blood clotting factors are coded for on the X and not on the Y, which is where sex-linked disease comes from. The Y, meanwhile, carries genes for male characteristics, including the SRY gene, which is involved in the development of testes in male embryos and in the production of testosterone. Females do not receive these genes, so ovaries develop instead and female sex hormones are expressed.

A VERY UNEQUAL PAIR this mismatch is the whole reason sex linkage exists X chromosome Y chromosome SRY: triggers testis development and testosterone production around 16 times more genes many with nothing to do with sex, such as blood clotting factorsIn a male there is no second copy of most X genes Nothing is available to mask a recessive allele, so it is expressed whatever it does
The gene bands are schematic, but the size difference is not. Everything about sex-linked inheritance follows from the Y being too small to carry partners for most X genes.

Sex-linked disorders: haemophilia

A sex-linked gene sits on one sex chromosome and not the other, so the sex of an individual affects which alleles they can pass on. If the gene is on the X, a male (XY) has only one copy while a female (XX) has two.

That asymmetry gives females three possible phenotypes — normal, carrier, or affected — but males only two: normal or affected. There is no such thing as a male carrier for an X-linked condition.

Haemophilia is the standard example. A gene on the X codes for a protein called factor VIII, which is needed for blood to clot. The dominant allele F codes for normal factor VIII; the recessive allele f results in a lack of it. A person with only the recessive allele cannot produce factor VIII and their blood does not clot normally.

CARRIER MOTHER, UNAFFECTED FATHER neither parent has haemophilia, yet a son canMALE GAMETES FEMALE GAMETES XF Y XF XfXFXF normal female XFY normal male XFXf carrier female XfY affected malethe son has only one X, so one recessive allele is enough to cause it1 normal female : 1 carrier female : 1 normal male : 1 male with haemophilia so a 1 in 4 chance overall, but a 1 in 2 chance among the sonsRead the question: all children, or only the boys? The same grid gives two different correct probabilities depending on what was asked
Notice there is no box containing a male carrier. A male has one X, so he either has the working allele or he has the condition — there is nothing in between.

The notation

Write the chromosome as an upper case X or Y, with the allele as a superscript next to it. So XfXf is a homozygous female who has haemophilia, XFXf is a heterozygous female who is a carrier, and XfY is a male who has haemophilia. The Y never takes a superscript, because the gene is not on it.

Why males are affected more often. A female needs two copies of the recessive allele; a male needs only one, because he has no second X to carry a working version. Stating both halves of that comparison is what earns the mark — saying only “males have one X” is half an answer.

Worked examples

WORKED EXAMPLE

A man with haemophilia and a woman who is not a carrier have children. Determine the phenotypes of their sons and daughters. [3]

Write the parental genotypes father X(f)Y, mother X(F)X(F) List the gametes father gives X(f) or Y; mother gives X(F) only Combine daughters: X(F)X(f) — all carriers, none affected sons: X(F)Y — all completely unaffected All daughters are carriers; all sons are normal the sons get the father’s Y, so they cannot inherit his faulty allele at all
WORKED EXAMPLE

Explain why haemophilia is far more common in males than in females. [3]

Locate the gene the factor VIII gene is on the X chromosome and is not present on the Y Compare the two sexes directly a male is XY, so he has only one copy; a single recessive allele is expressed because there is no dominant allele to mask it a female is XX, so she needs the recessive allele on both X chromosomes to be affected 3 marks: gene located on X, males have one copy so it is expressed, females need two copies the phrase “no second X to mask it” is doing the real work here

💡 Exam tips

⚠️ Common mix-ups

Up next: Pedigree Charts — how to look at a family tree and deduce, without being told, whether an allele is dominant or recessive and whether it sits on an autosome or the X.

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