IB Biology HL DNA, RNA & the Genetic Code Paper 1 & 2 Nature of Science ~8 min read

The Hershey–Chase Experiment

For decades most scientists backed the wrong molecule. Protein looked like the obvious carrier of heredity — until two researchers found a way to label DNA and protein separately and simply watch which one went inside the cell.

📘 What you need to know

Which biomolecule is the heritable material?

DNA had been identified back in 1869, but for a long time most scientists assumed that protein was the heritable material. Their reasoning was not unreasonable: there are 20 amino acids and only 4 nucleotide bases, so protein simply looked like it had more room to store complex information.

In the 1950s, Alfred Hershey and Martha Chase settled the question. They showed that DNA, not protein, is a factor of heredity responsible for carrying genetic information from one generation to the next.

Why viruses were the perfect tool

They used viruses that infect bacteria. These viruses are ideal because they consist of only two things: DNA encapsulated by a protein coat. Nothing else is present to confuse the results.

So if you can work out which of those two parts enters the bacterium and makes it produce new viruses, you have found the molecule of heredity.

The method, step by step

Hershey and Chase took advantage of a chemical difference between the two molecules:

The key chemical difference DNA contains phosphorus but no sulfur
Amino acids contain sulfur but no phosphorus

That difference is what makes the whole experiment possible — it means each molecule can be labelled separately.

StepWhat was doneWhy
1. LabellingBacteria were grown in separate media containing either radioactive sulfur (35S) or radioactive phosphorus (32P), then infected with virusesThe progeny viruses ended up with either 35S labelled protein coats or 32P labelled DNA
2. InfectionUnlabelled bacteria were infected separately with each type of virusThe bacteria should take in whichever molecule is the heritable material
3. BlendingA blender removed viruses still attached to the outside of the bacterial cellsAnything left outside the cell cannot be the heritable material
4. CentrifugationThe mixture was spun to separate the two componentsViruses are small, so stayed in the supernatant. Bacteria are larger, so formed a pellet
5. MeasuringEach fraction was tested for radioactivityRadioactivity in the pellet means that molecule went inside the bacteria
The Hershey–Chase experiment PROTEIN COAT LABELLED WITH RADIOACTIVE ³⁵S DNA LABELLED WITH RADIOACTIVE ³²P infect unlabelled bacteria infect unlabelled bacteria blend, then centrifuge blend, then centrifuge ³⁵S here radioactivity in SUPERNATANT no label here radioactivity in PELLETprotein stayed outside DNA went inside
Small viruses stay suspended in the supernatant; larger bacteria are forced to the bottom as a pellet. Where the radioactivity ends up tells you which molecule entered the cell.

The result and what it proved

Only the bacteria infected by the 32P labelled viruses (DNA) were shown to be radioactive.

This suggested that DNA, and not protein, was transferred into the bacteria — and therefore that DNA is the hereditary (genetic) material.

Why this design is so elegant. The experiment does not need to measure anything complicated. It only asks one question — which molecule got inside? — and answers it with a label you can detect from outside the cell.

Nature of Science: technology opens new possibilities

The IB uses this experiment to make a point about how science actually progresses: technological developments can open up new possibilities for experiments.

The idea being tested was not new — people had wondered for years whether DNA or protein carried heredity. What was new was the tool. Keep that distinction in mind for Nature of Science questions: sometimes progress comes from a better question, and sometimes from better equipment.

Worked examples

WE 1

Explain the use of two different radioactive labels

Explain why Hershey and Chase used radioactive sulfur and radioactive phosphorus in their experiment. (3 marks)

Point 1: state the chemical difference DNA contains phosphorus but no sulfur, while the amino acids in proteins contain sulfur but no phosphorus. Point 2: what each label marks So 35S labels only the protein coat and 32P labels only the DNA. Point 3: why that is useful This allowed the two molecules to be tracked separately, so they could see which one entered the bacterial cells. Different elements → separate labels → each molecule can be followed on its own state both halves of the chemical difference — the “but no” part is what makes the labels specific
WE 2

Interpret the results of the experiment

Explain how the results of the Hershey–Chase experiment showed that DNA is the genetic material. (4 marks)

Point 1: the separation Blending removed viruses attached to the outside of the bacteria, and centrifugation separated small viruses in the supernatant from larger bacteria in the pellet. Point 2: the sulfur result With 35S labelled viruses, the radioactivity was found in the supernatant, so the protein coat stayed outside the bacteria. Point 3: the phosphorus result With 32P labelled viruses, the radioactivity was found in the pellet, so the DNA had entered the bacteria. Point 4: the conclusion Since only DNA was transferred into the cells that then produced new viruses, DNA must be the hereditary material. Protein stayed outside, DNA went inside — so DNA carries the genetic information describe both results, not just the DNA one. The control comparison is where the marks are.

💡 Exam tips

⚠ Common mistakes

Up next: Chargaff’s Data — the base-counting results that made complementary base pairing obvious in hindsight, and destroyed a rival theory in the process.

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 →