IB Biology SL Topic 2 — Carbohydrates & Lipids Paper 1 & 2 Structure and function ~8 min read

The Role of Glycoproteins

Stick a short carbohydrate chain onto a protein and you get a glycoprotein. It sounds like a small detail. It is actually how your cells tell each other apart, how hormones find the right target, and why giving someone the wrong blood can kill them. Sugar on the outside of a cell is a name badge.

📘 What you need to know

What a glycoprotein actually is

Carbohydrates and polypeptides can bond together covalently. When they do, you get a glycoprotein — a protein with a short branched sugar chain attached. Because the protein part is embedded in the membrane and the sugar part faces outwards, the sugar is the bit the outside world touches first.

That position is the whole point. Anything arriving at the cell — a hormone, a virus, another cell — meets the carbohydrate chain before it meets anything else.

Sugar chains face outwards, and that is the point a slice through the cell surface membrane OUTSIDE THE CELL PROTEIN carbohydrate chain this is the cell's name badge glycolipid glycoprotein INSIDE THE CELL No sugar chain ever points inwards. They all face the outside world. Purple circles are phosphate heads and orange lines are the fatty acid tails of the bilayer.
The protein is anchored in the membrane and the sugar hangs outside like a label. That is why a cell can be identified without anything having to go inside it.

The four jobs they do

Notice how many of these are about specificity. A particular shape of carbohydrate is recognised by a particular molecule and nothing else. That idea — complementary shapes — runs through enzymes, antibodies and receptors, so it is worth getting comfortable with here.

Antigens: self and non-self

An antigen is any molecule that the immune system can recognise. Glycoproteins on your own cells are read as “self” and left alone. A cell carrying an antigen your body does not recognise is “non-self”, and an immune response follows.

This is helpful when the non-self cell is a bacterium. It is a serious problem when the non-self cell is a red blood cell from a transfusion or an organ from a donor.

Blood groups: glycoproteins with consequences

Your ABO blood group depends on which glycoprotein antigens sit on the surface of your red blood cells.

Your blood group is written on the outside of your cells green squares are A antigens, blue circles are B antigens TYPE A TYPE B TYPE AB TYPE O antigen A only antigen B only antigens A and B no antigens plasma: anti-B plasma: anti-A plasma: neither plasma: anti-A and anti-B You carry antibodies against the antigen you do not have. Type O has no antigens to attack, which is why O blood can be given to anyone. Type AB has no antibodies, which is why an AB person can receive from anyone.
Read the pattern rather than memorising four separate facts: you make antibodies against whatever antigen you are missing.
FeatureGroup AGroup BGroup ABGroup O
Antigens on red blood cellsABA and BNone
Antibodies in plasmaAnti-BAnti-ANoneAnti-A and anti-B
Can safely receive fromA, OB, OA, B, AB, OO only
Can donate toA, ABB, ABAB onlyA, B, AB, O

🤔 Why the wrong blood is dangerous

Say group B blood is given to a group A patient. The patient’s plasma is full of anti-B antibodies. Each antibody can bind more than one antigen, so it links the donated cells together and they clump — this is agglutination. The clumps are far bigger than a single cell and get stuck in narrow blood vessels, blocking blood flow to tissues. This can be fatal, which is why blood is always cross-matched before a transfusion.

🧠 A way to remember donors and recipients

O for “Owes nothing” — no antigens on its cells, so nobody’s antibodies can attack it. Universal donor. AB for “Accepts Both” — no antibodies in its plasma, so nothing gets attacked. Universal recipient.

Worked examples

WORKED EXAMPLE

Explain why blood group O can be given to a patient of any blood group. [2]

Point 1 Group O red blood cells carry neither A nor B antigens on their surface. Point 2 So the recipient’s anti-A or anti-B antibodies have nothing to bind to, and no agglutination happens. No antigens → no antibody binding → no clumping Answer about the donated cells, not about the donor’s plasma.
WORKED EXAMPLE

A patient with blood group A is accidentally given blood from a group B donor. Describe what happens and why it is dangerous. [3]

Step 1: what the patient already has A group A patient has anti-B antibodies in their plasma. Step 2: what arrives The donated cells carry B antigens, which are recognised as non-self. Step 3: the consequence Antibodies bind the B antigens and link the cells into clumps (agglutination). Clumps block blood vessels, so tissues are starved of oxygen. Can be fatal. Three stages: antibodies present, antigens arrive, clumping blocks vessels.
WORKED EXAMPLE

Suggest why a hormone affects only certain cells in the body, even though it travels in the blood to all of them. [2]

Point 1 The hormone binds to a glycoprotein receptor in the cell surface membrane. Point 2 The receptor has a shape complementary to the hormone, and only target cells have that receptor. No matching receptor, no response “Complementary shape” is the phrase mark schemes look for.

💡 Exam tip

⚠ Common mix-up

Up next: Lipids — why oil refuses to mix with water, how a triglyceride is put together, and why fat stores so much more energy than sugar.

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