IB Biology SL Topic 2 — Carbohydrates & Lipids Paper 1 & 2 Structure and function ~11 min read

Carbohydrates: Function & Examples

Starch, glycogen and cellulose are all built from glucose. Same monomer, near enough. Yet one feeds a potato, one feeds your muscles, and one is so tough that cows need bacteria to get through it. The difference comes down to a single hydroxyl group pointing up instead of down. This page is about how that tiny change ends up mattering so much.

📘 What you need to know

Monosaccharides: the small ones

These are the single sugar units. They are colourless crystalline solids, they dissolve well in water, and they taste sweet. Their formula follows a neat pattern: for every carbon there is one oxygen and two hydrogens.

Monosaccharides only CnH2nOn  →  a 6-carbon sugar is C6H12O6
Careful. That formula works for monosaccharides and nothing else. Maltose is two glucoses minus a water, so it is C12H22O11, not C12H24O12.
TypeCarbonsExampleWhere you meet it
Triose3GlyceraldehydeAn intermediate in respiration
Pentose5Ribose, deoxyriboseThe sugar in RNA and DNA
Hexose6Glucose, fructose, galactoseRespiration and food sugars
In an exam diagram, count the corners of the ring. A five-cornered ring is a pentose such as ribose. A six-cornered ring is a hexose such as glucose. Do not forget that one of those corners is an oxygen, not a carbon.

Glucose, and the two versions of it

In water, the straight chain of glucose curls round and its ends join, forming a ring. Depending on which way the ring closes, the hydroxyl group on carbon 1 ends up either below the ring or above it. That gives you the two isomers.

One hydroxyl group, two different worlds the only difference is the OH on carbon 1 α-GLUCOSE β-GLUCOSE O CH₂OH OH OH OH OH C1 O CH₂OH OH OH OH OH C1 OH points DOWN, below the ring OH points UP, above the ring Starch and glycogen are built from the green one. Cellulose is built from the blue one. The CH₂OH group on carbon 6 always sits above the ring in both isomers.
Only the group on carbon 1 moves. Every other atom is in the same place, which is exactly why students miss it in exam diagrams — check carbon 1 first, then stop looking.

What makes glucose so useful

Joining sugars up

Two hydroxyl groups, one on each monosaccharide, react. Water is removed and a glycosidic bond forms between them. Between carbon 1 of one sugar and carbon 4 of the next you get a 1,4 glycosidic bond; a branch uses carbon 6 instead, giving a 1,6 glycosidic bond.

Making maltose glucose + glucose  →  maltose + H2O

DISACCHARIDES

Two monosaccharides, one glycosidic bond.

  • Maltose = glucose + glucose
  • Sucrose = glucose + fructose (what plants transport)
  • Lactose = glucose + galactose (sugar in milk)

POLYSACCHARIDES

Hundreds or thousands of monosaccharides.

  • Starch — storage in plants
  • Glycogen — storage in animals and fungi
  • Cellulose — structure in plant cell walls

Storage: starch and glycogen

A cell that has spare glucose has a problem. Leaving it as glucose would be a disaster, so it gets packed away as a polysaccharide instead.

🤔 Why storage molecules must be insoluble

Dissolved glucose lowers the water potential inside the cell. Water then moves in by osmosis, and the cell swells — an animal cell with no wall would eventually burst. Lock those thousands of glucose molecules into one big insoluble starch grain and the water potential barely changes at all. Insoluble also means it cannot drift out of the cell, so the store stays where it is put.

Starch

The storage polysaccharide of plants, kept as grains inside chloroplasts. It is made of α-glucose and is really two molecules in one:

Glycogen

The animal and fungal version, stored as visible granules in liver and muscle cells. Also α-glucose, also 1,4 and 1,6 bonds — but more branched than amylopectin.

Follow the logic. More branches → more free ends → more places for enzymes to work at once → glucose released faster. Animals move, so they need energy quickly. Plants sit still, so they can afford a slower store. The structure fits the lifestyle.

Cellulose

Cellulose is made of β-glucose, and that changes everything. Because the OH on carbon 1 now points up, every other glucose has to flip upside down before a glycosidic bond can form. The result is a perfectly straight, unbranched chain rather than a coil.

Straight chains lie neatly side by side. Hydroxyl groups sticking out along them form hydrogen bonds between neighbouring chains. One hydrogen bond is weak; tens of thousands of them are not. Bundles of about 60–70 cellulose molecules bind into microfibrils, which build into fibres and give the cell wall its strength.

Same monomer, three different shapes, three different jobs shape is the reason each one is good at what it does AMYLOSE coiled, unbranched, 1,4 only compact, slower to digest GLYCOGEN, AMYLOPECTIN branched, 1,4 and 1,6 bonds red dots are free ends CELLULOSE straight parallel chains green dashes are hydrogen bonds Branches mean speed. Coils mean compact storage. Straight chains mean strength. Glycogen has even more branches than amylopectin, so animals can mobilise glucose faster.
Enzymes can only chop from a free end. Count the red dots and you can see immediately why a branched store releases glucose faster than a coiled one.
FeatureAmyloseAmylopectinGlycogenCellulose
Monomerα-glucoseα-glucoseα-glucoseβ-glucose
Branched?NoYes, about every 20 monomersYes, about every 10 monomersNo
ShapeCoiled helixBranchedHighly branchedStraight chains
Bonds1,41,4 and 1,61,4 and 1,61,4 plus hydrogen bonds between chains
Found inPlant cellsPlant cellsAnimal and fungal cellsPlant cell walls
JobEnergy storeEnergy storeEnergy storeStructural strength

Worked examples

WORKED EXAMPLE

A monosaccharide contains 5 carbon atoms. State its molecular formula and the name given to this type of sugar. [2]

Step 1: use the general formula CnH2nOn with n = 5 Step 2: fill it in C₅H₁₀O₅ C₅H₁₀O₅, a pentose (e.g. ribose) 5 carbons, so 10 hydrogens and 5 oxygens. Nothing to memorise.
WORKED EXAMPLE

Calculate the relative molecular mass of maltose, given that glucose has a relative molecular mass of 180. [2]

Step 1: two glucose molecules 180 × 2 = 360 Step 2: one condensation, so one water leaves 360 − 18 = 342 Relative molecular mass of maltose = 342 Same −18 trick as the dipeptide. It never changes.
WORKED EXAMPLE

Explain how the structure of starch suits its function as a storage molecule in plants. [4]

Point 1 It is insoluble, so it does not change the water potential of the cell and water does not enter by osmosis. Point 2 It is a large molecule, so it cannot cross the membrane and leave the cell. Point 3 Amylose coils into a helix, so a lot of glucose is packed into a small space. Point 4 Amylopectin is branched with many free ends, so it can be hydrolysed back to glucose quickly when needed. 4 marks: insoluble, large, compact, easily hydrolysed Each point pairs a structure with a consequence. That pairing is the mark.
WORKED EXAMPLE

Cellulose and amylose are both unbranched chains of glucose. Explain why only cellulose is strong enough to support a plant cell. [3]

Point 1 Cellulose is made of β-glucose, so alternate molecules are flipped upside down. Point 2 This gives straight chains that lie parallel to each other, unlike the coiled amylose helix. Point 3 Hydroxyl groups on neighbouring chains form many hydrogen bonds, holding them together as microfibrils. β-glucose → straight chains → hydrogen bonding → strength Say “many” hydrogen bonds. One on its own is weak, and examiners want you to know that.

💡 Exam tip

⚠ Common mix-up

Up next: The Role of Glycoproteins — what happens when a carbohydrate gets attached to a protein, and why it decides whether a blood transfusion saves someone or kills them.

Want this explained one-to-one?

Book a free session with an experienced IB Biology tutor and get your trickiest topics made simple.

Book a Free Session →