IB Biology HL Topic 4 — Genetics, Inheritance & Change Paper 1 & 2 Core skill ~12 min read

Fertilisation & Implantation

Thousands of sperm arrive, and exactly one gets in. The egg does not simply get lucky — the instant the first sperm fuses with it, it chemically slams the door on every other one. That block, and the week-long journey that follows, are pure HL material.

📚 What you need to know

Getting through the coats

Many sperm are released and are attracted towards the secondary oocyte by chemical signals. Two layers stand between them and the oocyte membrane: an outer layer of follicle cells and, beneath it, the zona pellucida, a layer of glycoproteins.

To reach the membrane, sperm release digestive enzymes from the acrosome, a structure in the head, which digest the glycoproteins of the zona pellucida. This is the acrosome reaction. The first sperm to digest its way through reaches the oocyte cell surface membrane, where complementary receptors on the head of the sperm bind with proteins on the oocyte membrane. The two cell surface membranes then fuse, and the sperm nucleus enters the oocyte.

At that moment, meiosis II continues in the oocyte, leading to the release of the second polar body and the formation of the mature ovum.

The cortical reaction: shutting the door

The fusion of the two membranes triggers a series of vesicles called cortical granules to move from the outer layer of the ovum cytoplasm to the cell surface membrane. By exocytosis, they release enzymes that do two things: they digest the binding proteins on the cell surface of the ovum, and they cause the zona pellucida to harden.

Follow the logic. With the binding proteins destroyed, no further sperm can attach. With the zona pellucida hardened, no further sperm can digest their way in. Polyspermy is prevented. Inside the ovum, the male and female nuclei then fuse and fertilisation is complete.

One sperm in, then the door closes Two barriers, and both are dealt with chemically. follicle cells zona pellucida oocyte cytoplasm, with cortical granules1. acrosome enzymes digest the zona pellucida 2. sperm binds receptors on the oocyte membrane 3. membranes fuse and the sperm nucleus enters 4. cortical granules harden the zona: no more spermPurple dots are the cortical granules waiting to fire.
Steps one and two are the sperm working; steps three and four are the oocyte responding. Only the first sperm ever gets past step two.
Two reactions, easily confused. The acrosome reaction is the sperm digesting its way in; the cortical reaction is the oocyte keeping everyone else out. Name which cell each belongs to and you will not mix them up.

Why polyspermy has to be prevented

The zygote must be diploid. One haploid sperm nucleus plus one haploid ovum nucleus gives 46 chromosomes. If a second sperm entered, the cell would have 69 chromosomes, the chromosomes could not pair or separate correctly at mitosis, and the embryo would not develop.

Blastocyst development and implantation

Once fertilised, the ovum divides by mitosis to form two diploid nuclei, and the cytoplasm divides equally to give a two-cell embryo. Mitosis continues to a four-cell embryo and onwards until the embryo takes the shape of a hollow ball called a blastocyst, with an internal group of cells called blastomeres that will eventually develop into the foetus.

Up to this point the embryo is still in the oviduct. After about seven days it consists of around 125 cells and has reached the uterus. The zona pellucida, which has protected it throughout, breaks down and is lost at around seven days of age.

By now the blastocyst has used up the nutrient supplies of the egg cell and needs an external supply. It obtains one by implanting into the endometrium. The outer layer of the blastocyst develops finger-like projections that penetrate the lining, and at this stage there is already an exchange of nutrients and oxygen with the mother’s blood. The embryo then grows and develops rapidly.

🧩 From fertilisation to implantation, in order

  1. Fertilisation in the oviduct produces a diploid zygote.
  2. Mitosis gives a two-cell embryo, then four cells, then more.
  3. A hollow ball of cells, the blastocyst, forms while still travelling down the oviduct.
  4. At around 7 days and roughly 125 cells, the blastocyst reaches the uterus and the zona pellucida is lost.
  5. Implantation: finger-like projections penetrate the endometrium and exchange with maternal blood begins.

Worked examples

WORKED EXAMPLE

Explain how the entry of more than one sperm into an oocyte is prevented. [4]

Step 1 — the trigger When the first sperm fuses with the oocyte cell surface membrane, cortical granules move to the membrane. Step 2 — the release The granules release their enzymes by exocytosis. Step 3 — the two effects These enzymes digest the binding proteins on the ovum surface, so no further sperm can attach, and they cause the zona pellucida to harden, so no further sperm can digest through it. Step 4 — the outcome Polyspermy is prevented, which keeps the zygote diploid. 4 marks Both effects are separate marking points. Give the two of them explicitly.
WORKED EXAMPLE

Explain why the blastocyst must implant in the endometrium around seven days after fertilisation. [3]

Point 1 — the problem By this stage the blastocyst has used up the nutrient supplies that were stored in the egg cell cytoplasm. Point 2 — the solution It implants into the endometrium, developing finger-like projections that penetrate the uterus lining. Point 3 — what implantation provides This allows an exchange of nutrients and oxygen with the mother’s blood, supporting the rapid growth that follows. 3 marks Link the timing to the loss of the zona pellucida if the question asks about that structure.

💡 Exam tip

⚠ Common mix-up

Up next: Hormones in Pregnancy — the hormone the embryo starts making almost immediately, and the feedback loop that eventually delivers a baby.

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