IB Biology HL Natural Selection Paper 1 & 2 ~12 min read

Types of Natural Selection

Selection always works the same way, but the shape of the result depends on which individuals are being removed. Take out one extreme and the population slides. Take out both extremes and it tightens. Take out the middle and it splits.

📚 What you need to know

Directional selection

In directional selection the population changes towards one extreme of a range of variation, because that extreme becomes better adapted. This tends to happen when environmental conditions change.

Directional selection The average moves one way, towards one extreme variable, for example body size number of individuals before selection after selectionOne extreme is now the best adapted The spread stays similar; it is the position of the peak that has moved
The dashed curve is the population before the environment changed. The solid curve is the same population a number of generations later.

The frost example

Suppose average temperatures fall, so plants now face frosts — spells where the air temperature drops below 0°C.

A subtle but examinable point. A disadvantageous allele does not have to be fatal. It only has to prevent the individual from reproducing successfully, because from an evolutionary point of view that is the same thing — the allele disappears from the gene pool when its carrier dies without offspring.

Because a strong new pressure can act on every individual at once, a species can change its genome abruptly by directional selection. It is the fastest of the three types.

A second good example: as oceans warm, fish metabolism speeds up and their oxygen demand rises, while warmer water actually holds less oxygen. Larger fish have greater metabolic needs, so they feel this most, and selection pushes populations towards smaller body sizes. Same graph, different story.

Stabilising selection

Stabilising selection selects in favour of the average individual. It occurs when environmental conditions are stable and do not change, so the phenotype that already works keeps on working. This is the most common form of natural selection, which makes sense — most of the time, most environments are not changing dramatically.

Stabilising selection The average stays put and the spread gets narrower variable, for example birth mass number of individuals before selection after selectionBoth extremes are selected against Diversity within the population goes down, because the unusual phenotypes are removed
The peak looks taller only because the same number of individuals is now squeezed into a narrower range of phenotypes.

Disruptive selection

Disruptive selection selects against the average individual. It is the rarest of the three forms. Like directional selection, it happens when habitats or resources undergo a change — but here two different extremes each turn out to work, and the middle option works worst.

Disruptive selection The middle is selected against, so one peak becomes two variable, for example beak size number of individuals before selection after selectionTwo new averages, where there used to be one If the two groups stop interbreeding, this is how one species can become two
The dip in the middle is the whole diagram. If you can see a dip where the old mean was, the answer is disruptive selection.

Because it pulls a population apart, disruptive selection can lead to the formation of an entirely new species, a process called speciation. For that reason it is sometimes called diversifying selection.

Darwin’s finches

The finches of the Galápagos Islands are one of the best known examples. Fifteen different species evolved from a single common ancestor, and multiple beak types adapted to different food sources over time.

On the island of Santa Cruz, ground finches eat mostly seeds and some arthropods, tree finches eat more fruits and arthropods, vegetarian finches feed on leaves and fruit, and warblers take mainly arthropods.

When food is abundant their diets overlap and beak shape hardly matters. When food is scarce, each specialisation lets that species compete for one particular food better than the others can — which is how each species ends up occupying its own niche.

FeatureDirectionalStabilisingDisruptive
Who is favouredOne extremeThe averageBoth extremes
Who is selected againstThe other extremeBoth extremesThe average
ConditionsEnvironment changingEnvironment stableHabitat or resources change
Effect on the meanMoves towards one extremeStays the sameSplits into two
Effect on diversityRoughly unchangedDecreasesIncreases
How commonCommon when conditions shiftThe most common formThe rarest form
Classic exampleFrost resistance in plantsHuman birth massBeak size in finches
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Reading the graph in three seconds

Peak has moved sideways, same shape → directional. Peak in the same place but narrower → stabilising. Two peaks with a dip in the middle → disruptive.

Worked examples

WE 1

Identify the type of selection

Data on human infants shows that mortality is highest at very low and very high birth masses, and lowest around the mean. Identify the type of natural selection acting and justify your answer. (2 marks)

Identification Stabilising selection. Justification Both extremes of the range are selected against and the average individual is favoured, so the mean stays the same while the spread of the distribution narrows. Both tails removed, mean unchanged: stabilising “justify” means quote the evidence from the data, not just describe the type in general
WE 2

Directional selection in a plant population

Average winter temperatures in a region fall over 30 years. Explain how directional selection could change a plant population, and state what would happen if no suitable allele existed. (4 marks)

Point 1: variation exists Some plants carry an allele giving a degree of frost protection, perhaps coding for a protein that lowers the freezing point of the cell contents. Point 2: differential survival Those plants survive the frost and go on to reproduce successfully, so they have a selective advantage. Point 3: shift in the population The allele increases in frequency each generation, so the mean of the population moves towards the frost-tolerant extreme. Point 4: if no allele exists If no allele for frost resistance is present, the species becomes extinct in that habitat if the cold conditions last more than one generation. Selection can only use alleles that are already in the gene pool the extinction point is worth a mark on its own and is often left out
WE 3

From disruptive selection to speciation

A population of birds lives on an island where only very small seeds and very large seeds are available. Explain how this could eventually lead to two species. (3 marks)

Point 1: the middle is worst off Birds with medium beaks handle neither seed type well, so they are selected against, while both extremes feed successfully. Point 2: two groups form Small-beaked and large-beaked birds each survive and reproduce, so the distribution develops two peaks and diversity increases. Point 3: isolation If the two groups feed in different places and stop interbreeding, their gene pools separate and they accumulate more differences until they can no longer produce fertile offspring. Disruptive selection, then reproductive isolation, then speciation say each group occupies its own niche — it is the phrase examiners look for

💡 Exam tips

⚠ Common mistakes

Up next: Hardy-Weinberg Principle. You can now describe how allele frequencies change. The next page gives you the equations that predict what those frequencies should be if nothing is changing them at all.

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