IB Biology SL Topic 3 — Disease & Immunity Paper 1 & 2 Core idea ~12 min read

Vaccines & Immunity

A vaccine is a trick played on your own immune system. It hands over the antigens of a pathogen without the pathogen doing any damage, so you get all the memory cells and none of the illness. Everything on this page follows from that one idea.

📘 What you need to know

What is actually in a vaccine

The essential ingredient is antigens — or instructions for making them. Nothing else is needed, because antigens are all the immune system ever responds to.

TypeWhat it contains
Live attenuatedA weakened version of the pathogen, which can trigger a response but not the disease
InactivatedKilled, non-living components of the pathogen, or even just the antigens on their own
GeneticDNA or RNA coding for the antigen, so your own cells make it and display it
The whole point in one line antigens without the pathogen → a primary response → memory cells, but no illness

Vaccination in action

A vaccine triggers a primary immune response: T helper cells activate B cells, plasma cells secrete specific antibodies, and memory cells are produced and remain in the blood. When the real pathogen turns up, those memory cells recognise the antigen and produce a faster and larger secondary response, destroying the pathogen before symptoms develop.

Two people, same infection, very different day the vaccine is given on day 0; both meet the real pathogen on day 60 VACCINATED NOT VACCINATED small response to the vaccine, no illness0 25 50 75 100 antibody concentration0 15 30 45 60 75 90vaccine given real pathogen arrivesTime is in days. The unvaccinated person is having their primary response now. That slow climb after day 60 is exactly the period during which they feel ill.
The vaccinated person’s secondary response is already peaking before the unvaccinated person’s antibodies have got going. Nothing about the immune system has changed — only the timing.
Read the green curve from the left and you will see the vaccine produce exactly the same shape as a real first infection: slow, small, and leaving memory cells behind. The difference is that it happens without a pathogen damaging anything.

Herd immunity

Vaccination protects the person who receives it. Vaccinate enough people and something extra happens: the pathogen runs out of places to go.

A pathogen can only reproduce inside the body of a susceptible person. If a large enough percentage of the population is vaccinated, there are very few such bodies available, so chains of transmission keep dying out. Unvaccinated people are then protected too, simply because they are unlikely to meet an infected person. This is herd immunity.

Herd immunity: protecting people you never vaccinated each circle is one person in a population of ten NOBODY VACCINATED disease spreads through the whole populationSOME VACCINATED spread continues through part of the populationMOST VACCINATED spread is contained, and the unvaccinated are protected too unvaccinated vaccinated infectedIn row three the blue person was never vaccinated, and is still safe. That is the whole argument for vaccinating people who are not personally at much risk.
Herd immunity matters most for people who cannot be vaccinated — newborns, and patients whose immune systems are suppressed. Their protection depends entirely on everyone around them.

The reverse is also true. If the number of people vaccinated against a disease drops, the rest of the population is left at risk of mass infection, because they are far more likely to come across someone infected and contagious. Both the number of infections and the number of deaths rise.

Why children? Many vaccinations are given to children because they are seen regularly by medical practitioners and can be protected early, which keeps the vaccinated proportion of the whole population high.

Eradication

Some vaccination programmes aim not merely to control a disease but to eradicate it. Smallpox was officially eradicated in 1980, following a World Health Organisation programme running since the mid-1950s. It remains the standard example of what a vaccination programme can achieve.

The nature of science: publishing, peer review and the media

Data collected by scientists is peer reviewed, meaning other scientists in the same field judge the accuracy and validity of the conclusions before publication. Published work can then be used by others to build on.

Problems arise when the media report findings before peer review is complete. Side effects may be reported while tests are still running, public views may be biased towards an inaccurate presentation, and that can damage the progression and implementation of a genuinely useful new medicine.

When evaluating a new medicine or vaccine, scientists take a pragmatic approach: they weigh the overall practicality and effectiveness for the population, rather than certainty about any one individual. A vaccine may be safe and effective for the vast majority while causing unpleasant side effects in a very small number of people. The overall conclusion can still be that it should be rolled out, even though no individual can be promised they will have no reaction.

This is exactly what happened with COVID-19 vaccine development, where the pragmatic approach was applied to produce an effective vaccine as quickly as possible. Trials showed the vaccine was safe and effective for the vast majority, though a small number of people experienced medical difficulties — and coverage of those cases contributed to public distrust despite the high efficacy.

This is a genuinely useful idea to carry beyond biology. “Safe” in medicine never means “guaranteed harmless for everyone”. It means the benefits across a population clearly outweigh the risks. Exam questions on this reward students who can hold both halves of that at once.

Worked examples

WORKED EXAMPLE

Explain how vaccination provides long-term immunity to a disease. [4]

1. What is given The vaccine contains antigens, or DNA/RNA coding for antigens, from the pathogen but does not cause the disease. 2. Primary response This triggers a specific immune response: B cells are activated and plasma cells secrete specific antibodies. 3. Memory Memory cells are also produced and remain circulating in the blood for years. 4. Secondary response If the real pathogen is later encountered, memory cells recognise the antigen and produce a faster, larger secondary response, destroying it before symptoms develop. Antigens → primary response → memory cells → fast secondary response “memory cells” must appear — without them there is no long-term immunity
WORKED EXAMPLE

A baby is too young to be vaccinated against measles but does not catch it. Explain how vaccination of others protects them. [3]

Where the pathogen can reproduce The measles virus can only reproduce inside the body of a susceptible, unvaccinated person. What high vaccination does If a large enough percentage of the population is vaccinated, there are very few such people, so chains of transmission die out. The effect on the baby The baby is unlikely ever to meet an infected, contagious person, so is protected without being vaccinated. This is herd immunity. Fewer hosts means fewer chances to meet the pathogen name herd immunity explicitly — it is usually a marking point
WORKED EXAMPLE

Explain why scientists take a pragmatic approach when deciding whether to approve a new vaccine. [3]

What pragmatic means here They consider the overall practicality and effectiveness across a population rather than certainty for each individual. The reality of trial data A vaccine can be safe and effective for the vast majority while a very small number of people experience side effects. The decision that follows The overall conclusion can still be to roll it out, because the benefit to the population outweighs the risk, even though no individual can be guaranteed no reaction. Population-level benefit, individual-level uncertainty do not argue for or against vaccination — explain how the judgement is made

💡 Exam tip

⚠ Common mix-up

Up next: Evaluating COVID-19 Data — the two percentage calculations you need for data questions, and how to tell which one a question is asking for.

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