IB Biology HL Carbohydrates & Lipids Paper 1 & 2 ~14 min read

Carbohydrates: Function & Examples

Starch, glycogen and cellulose are all made of glucose. One stores energy in plants, one stores it in animals, and one holds up a tree. The whole difference comes from which isomer of glucose was used, and where the branches are.

📚 What you need to know

Monosaccharides

Monosaccharides have the general formula CnH2nOn, where n is the number of carbon atoms. That formula applies to monosaccharides only — not to disaccharides or polysaccharides, because water is lost each time a bond forms.

They are colourless crystalline molecules and are soluble in water. Different types are named by how many carbon atoms they contain.

TypeCarbon atomsExampleRing shape
Triose3GlyceraldehydeNo ring
Pentose5RiboseFive-point ring
Hexose6GlucoseSix-point ring
You are expected to recognise ring structures, not to draw every atom. Count the corners: a five-point ring is a pentose such as ribose, and a six-point ring is a hexose such as glucose. That one check answers most structure-recognition questions.

Glucose and its two isomers

The best known carbohydrate monomer is glucose, molecular formula C6H12O6. It is the most common monosaccharide, the main substrate used in respiration to release energy for the production of ATP, and it is produced during photosynthesis.

Glucose exists in two structurally different forms, alpha glucose and beta glucose. These are the isomers of glucose: same atoms, different arrangement.

Alpha and beta glucose one hydroxyl group, in one of two places RING OF GLUCOSE RING OF GLUCOSECH₂OH CH₂OH 1 1OH OHALPHA (α) GLUCOSE OH below the ring BETA (β) GLUCOSE OH above the ringOne tiny difference, and the polymers built from them do completely different jobs. Starch and glycogen come from alpha glucose; cellulose comes from beta glucose.
Always check carbon 1, on the right-hand corner of the ring. Below the ring is alpha; above the ring is beta.

This seemingly minor example of isomerism has far-reaching consequences for the polymers built from it. Different polysaccharides are formed from the two isomers: starch and glycogen from alpha glucose, cellulose from beta glucose.

Properties of glucose

PropertyReason
Stable structureCovalent bonds are strong and hard to break
Soluble in waterThe molecule is polar
Easily transportableFollows from its water solubility
A source of chemical energyEnergy is released when its covalent bonds are broken

What polysaccharides are for

Carbohydrates function as energy storage molecules and as structural molecules.

Storage: starch and glycogen

Structure: cellulose

Four polysaccharides, four shapes the shape is what decides the job AMYLOSE AMYLOPECTIN GLYCOGEN CELLULOSEunbranched helix 1,4 bonds only branched 1,4 and 1,6 bonds highly branched 1,4 and 1,6 bonds straight chains held by hydrogen bondsplant storage plant storage animal storage plant structureMore branches means more free ends, so glucose is released faster. Cellulose is the odd one out: beta glucose, so the chains lie flat and lock together.
Read the shapes from left to right and the story is one of increasing branching, then a complete change of direction for cellulose.

Starch

Starch is the storage polysaccharide of plants, stored as granules in chloroplasts, and made of alpha glucose monomers. It is constructed from two different polysaccharides.

Glycogen

Cellulose

Individually a hydrogen bond is weak. The point about cellulose is that there are an enormous number of them, side by side along the whole length of the chains. Thousands of weak bonds acting together is what holds a tree upright.

Summary table

FeatureAmyloseAmylopectinGlycogenCellulose
MonomerAlpha glucoseAlpha glucoseAlpha glucoseBeta glucose
BranchesNoYes, about every 20 monomersYes, about every 10 monomersNo
Helix shapeYesNoNoNo
Glycosidic bonds1,41,4 and 1,61,4 and 1,61,4
Found inPlant cellsPlant cellsAnimal cellsPlant cells

Worked examples

WE 1

Why storage molecules are insoluble

Explain why it is important that starch and glycogen are insoluble. (3 marks)

Point 1: what solubility would do Soluble molecules would dissolve in the cytoplasm and lower the water potential of the cell. Point 2: the consequence Water would then move into the cell by osmosis. Point 3: the damage If too much water enters an animal cell, the cell will burst. Insoluble means no osmotic effect on the cell “compact” is a separate mark — large amounts stored in a small space
WE 2

Glycogen versus amylopectin

Suggest why animals store glycogen rather than a molecule like amylopectin. (3 marks)

Point 1: the structural difference Glycogen is more branched than amylopectin. Point 2: what branching gives you More branches means more terminal glucose molecules, so there are more free ends for enzymes to act on during hydrolysis. Point 3: why animals need it Glucose can therefore be released quickly, meeting the higher metabolic demands of animal cells during respiration. More branches, more free ends, faster release the word “terminal” is worth using — it shows you know where hydrolysis happens
WE 3

From isomer to function

Explain how the structure of cellulose makes it suitable for its function in plant cell walls. (4 marks)

Point 1: the monomer Cellulose is a polymer of beta glucose, so every alternate molecule must be inverted to form a glycosidic bond. Point 2: the shape This gives straight, unbranched chains that lie parallel to each other. Point 3: the bonding Hydrogen bonds form between the chains, linking them into microfibrils and adding strength. Point 4: the function The result is strong, durable, insoluble and chemically inert, so it supports the cell and resists digestion. Beta glucose → inverted chains → hydrogen bonds → strength start from the isomer; answers that begin at “it is strong” miss the first two marks

💡 Exam tips

⚠ Common mistakes

Up next: The Role of Glycoproteins — what happens when a carbohydrate is attached to a protein and put on the outside of a cell.

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