IB Biology HL Proteins & Their Structure Paper 1 & 2 ~13 min read

Levels of Protein Structure

A protein is described at four levels, and each one is built on the one below it. Once you can say what holds each level together, most protein questions answer themselves.

📚 What you need to know

The four levels at a glance

The four levels of protein structure PRIMARY the order of the amino acids SECONDARY alpha helix and beta pleated sheet TERTIARY the whole chain folded into 3D QUATERNARY two or more chains togetherEach level is built on the one below it.
Not every protein reaches level four. A protein with a single polypeptide chain has no quaternary structure at all.

Primary structure

The primary structure is simply the sequence of amino acids in the polypeptide, held together by peptide bonds.

That last point is worth sitting with. A protein does not need instructions on how to fold. Put the amino acids in the right order and the folding happens by itself, because the R groups interact in only one arrangement that is comfortable.

Say sequence or order of amino acids when you describe primary structure. Writing “a chain of amino acids” will not be enough — it is the exact position of each amino acid that determines every level above.

Secondary structure

Secondary structure forms when parts of the chain pleat or coil into regular repeating patterns. It is held together by weak hydrogen bonds.

Those hydrogen bonds form between the carbonyl (C=O) group of one amino acid and the amine (N–H) group of another on a parallel strand. Notice what that means: secondary structure hydrogen bonds are along the backbone, not between R groups.

ShapeWhat it looks likeExample
Alpha (α) helixThe chain coils into a spiral, like a spring, with hydrogen bonds running up the insideKeratin in hair, and the coiled parts of most globular proteins
Beta (β) pleated sheetThe chain folds back on itself in a zigzag, and neighbouring strands hydrogen bond side by sideSilk fibres, and the flat regions of many enzymes

Most proteins contain both, in different regions of the same chain, joined by loops that have no regular pattern at all.

Tertiary structure

Tertiary structure is the complex three-dimensional shape into which the secondary structure folds. It gives proteins the very specific shapes they need for function — the active site of an enzyme or a receptor site on a membrane are both tertiary structure.

Folding happens because of interactions between the R groups of the amino acids, and between R groups and the surrounding environment.

What holds the tertiary structure together Four kinds of interaction, all of them between R groups. hydrogen bond between polar R groups disulfide bridge covalent, between two cysteines ionic bond between + and − R groups hydrophobic interaction non-polar R groups tuck insideOnly the disulfide bridge is a covalent bond; the rest are weak. That is why heat and pH can undo the fold without cutting the chain.
Four interactions, one shape. Break the weak three and the protein denatures; the disulfide bridges are much harder to shift.

Quaternary structure

Some proteins are made of more than one polypeptide chain working together as a single protein. Each chain is called a subunit, and the way they fit together is the quaternary structure.

ProteinSubunitsConjugated?Detail to quote
Haemoglobin4YesEach subunit carries a haem prosthetic group containing an iron ion, Fe2+
Insulin2NoThe two chains are joined by disulfide bridges
Collagen3NoA fibrous protein whose three chains are wound into a helix
Why the haem group matters. Oxygen does not bind to the protein part of haemoglobin at all — it binds to the iron ion in the haem group. The four polypeptide subunits are there to hold the haem groups in place and to pass the message along when one of them picks up oxygen.

Which bonds belong to which level

BondPrimarySecondaryTertiary
Peptide
Hydrogen✓ between amine and carbonyl groups✓ between R groups
Disulfide
Ionic
Hydrophobic interactions

Peptide bonds appear at every level because the chain never stops being a chain. Everything else is added on top.

🧠

The hydrogen bond trap

Secondary hydrogen bonds are between the backbone groups (C=O and N–H). Tertiary hydrogen bonds are between the R groups. Same bond, different location — and examiners test it every year.

Seeing proteins: cryo-EM

Technology lets us image structures that no eye could ever see. Cryogenic electron microscopy (cryo-EM) is the technique that changed protein science.

Before cryo-EM, proteins had to be crystallised and studied by X-ray crystallography. That caused problems:

Worked examples

WE 1

Comparing secondary and tertiary hydrogen bonds

Distinguish between the hydrogen bonds found in the secondary structure of a protein and those found in the tertiary structure. (2 marks)

Point 1: secondary In secondary structure the hydrogen bonds form between the carbonyl (C=O) and amine (N–H) groups of the backbone on parallel strands, producing alpha helices and beta pleated sheets. Point 2: tertiary In tertiary structure they form between polar R groups in different parts of the folded chain. Secondary = backbone groups. Tertiary = R groups. a “distinguish” question needs both sides written out, not just one
WE 2

Haemoglobin and quaternary structure

Explain why haemoglobin is described as having a quaternary structure and as being a conjugated protein. (3 marks)

Point 1: quaternary It consists of four polypeptide subunits that function together as one protein, and a protein needs more than one chain to have a quaternary structure. Point 2: conjugated Each subunit contains a non-protein prosthetic group, called haem. Point 3: the detail Each haem group contains an iron ion (Fe2+), which is what oxygen actually binds to. Four subunits = quaternary; haem prosthetic group = conjugated contrast it with insulin and collagen, which have quaternary structure but are non-conjugated
WE 3

The effect of one changed amino acid

A mutation changes one amino acid in the primary structure of an enzyme. Explain how this could stop the enzyme working. (4 marks)

Point 1: a different R group The new amino acid has a different R group, so it can make different interactions from the one it replaced. Point 2: the fold changes Hydrogen bonds, ionic bonds, disulfide bridges or hydrophobic interactions may be lost or added, so the chain folds differently. Point 3: the shape changes The tertiary structure changes, and that can change the shape of the active site. Point 4: the consequence The substrate no longer fits, so no enzyme-substrate complexes form and the enzyme has no activity. One R group changed → different bonding → different shape → no function a change far away from the active site can still matter, because the whole fold shifts

💡 Exam tips

⚠ Common mistakes

Up next: Globular & Fibrous Proteins — the last step, where tertiary structure sorts proteins into two families with completely different jobs.

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