IB Biology HLB4.1 — Adaptation to EnvironmentPaper 1 & 2Core idea~13 min read
Abiotic Factors & Distribution
Why does marram grass grow on a bare sand dune where almost nothing else will? Not because it is tougher in some vague way — because it has specific structures that solve a specific problem. This page works through two named examples in the detail examiners expect, then explains the idea that ties the whole topic together: range of tolerance.
📘 What you need to know
Abiotic factors are the non-living features of a habitat that affect the organisms in it.
They act as limiting factors, so they help decide where a species is and is not found.
Marram grass is a xerophyte adapted to dry, salty, low-nutrient sand dunes.
Its adaptations all work the same way: trap moist air next to the leaf so less water evaporates.
Mangroves deal with high salinity, little fresh water and very low oxygen around their roots.
Every species has a range of tolerance with an optimum. Outside that range, the species is absent.
Species adapted to extremes often have a wide tolerance or an unusual optimum, and win where competition is low.
What counts as an abiotic factor
Abiotic simply means non-living. These are the physical and chemical conditions of a habitat:
Light intensity and wavelength
Temperature
Turbidity (cloudiness) of water
Humidity
Soil or water pH
Soil or water salinity
Soil composition
Oxygen or carbon dioxide concentration
Abiotic factor
Why it matters to living things
Light intensity
Plants need light for photosynthesis, so shade limits where they grow.
Temperature
It changes the rate of enzyme-controlled reactions, and enzymes denature if it gets too high.
Water availability
Every living organism needs water to survive.
Soil pH and minerals
Different plants need different pH levels and different nutrient concentrations.
Wind speed
Fast-moving air carries water vapour away, so more water evaporates from leaves.
Carbon dioxide concentration
Plants need it as the raw material for photosynthesis.
Oxygen concentration
Any organism doing aerobic respiration needs it.
Biotic factors are the living ones — predators, competitors, disease. If a question says “abiotic”, do not write about competition. It is a guaranteed nil.
Adapting to dry conditions: marram grass
Marram grass grows on sand dunes. That habitat throws three abiotic problems at a plant:
Low water availability — water drains straight through sand.
High salinity — salt spray blows in off the sea.
Low nutrient levels — there is barely any organic matter in bare sand.
Marram is a xerophyte: a plant adapted to survive dry conditions. To understand its adaptations you have to understand the problem properly, because every one of them is the same solution to the same thing.
The problem, in two steps
Dry air means a steep concentration gradient between the wet inside of the leaf and the air outside. Water evaporates fast from cell surfaces inside the leaf and is lost to the environment.
Because soil water is low, whatever is lost cannot easily be replaced. So the plant has to stop the loss rather than make up for it.
The one idea behind all of it
Trap moist air next to the leaf → the gradient gets shallower → less water evaporates
The leaf curls so the stomata face inwards. Wind cannot reach them, so the water vapour they release has nowhere to go.
The four adaptations, and what each one does
Leaves rolled up — the surfaces are no longer exposed to the wind, so water vapour stays trapped inside the roll.
Stomata sunk in pits — the pit holds a pocket of water vapour right where it is released.
Inner surface covered in tiny hairs — the hairs hold still, humid air against the leaf.
Thick waxy cuticle on the outside — this one is different: it is a physical barrier that stops evaporation straight through the leaf surface.
Say the mechanism, not just the feature. “Rolled leaves reduce water loss” is one mark. “Rolled leaves trap water vapour, raising humidity around the stomata and reducing the concentration gradient, so less water evaporates” is three.
Adapting to salt and low oxygen: mangroves
Mangrove swamps are tropical coastal habitats that are regularly submerged in sea water. That gives three abiotic problems:
High salinity
Low fresh water availability
Low oxygen availability, because the soil is waterlogged
The three challenges
Root cells that are underwater cannot take in oxygen for respiration.
The surrounding water is salty, so there is very little fresh water to take up.
Sea water has a higher solute concentration than the root cells, so the tree risks losing water by osmosis out of its own roots.
That third point is the one people miss. Salt is not just an inconvenience here — it actively pulls water out of the plant. A mangrove standing in the sea is at risk of drying out.
Solving the oxygen problem: aerial roots
Mangroves grow aerial root systems: parts of the root stick up above the water and take in oxygen for respiration. Two species do it in different ways:
Red mangroves have prop roots. These arch down from the trunk into the mud, and are partly above the water. They also give stability in unstable soil, and the underwater tangle gives shelter for marine animals.
Black mangroves have pneumatophores: narrow structures that grow vertically upwards out of the waterlogged soil, like a field of snorkels.
Solving the salt problem: two opposite strategies
Red mangroves keep salt out. Their root cells do not allow salt to enter the water-transport system, so the tree takes up fresh water only. Those same cells also stop water moving outwards, which prevents water loss by osmosis.
Black mangroves let salt in, then throw it out. They take salt water into their cells and excrete the excess salt through salt glands in their leaves.
Prop roots also anchor the tree in soft mud, and the tangle underwater shelters young fish and other marine animals.
Range of tolerance
Now the idea that links all of this together. Abiotic factors act as limiting factors on where a species can live, and every species has a range of tolerance.
There is an optimum — the level of the factor at which the species does best.
Some variation either side of the optimum can be tolerated. That whole tolerable span is the range of tolerance.
Push the factor beyond the range and the species is not found there at all.
Mangroves are a good example. They grow best at a salinity of roughly 3–27 parts per thousand, but they can survive in fresh water and in salt concentrations up to about 75 ppt. The optimum is narrow; the tolerance is wide.
Every species has a curve like this for every abiotic factor. Where all those curves overlap is where the species can actually live.
Species that live in extremes
Species adapted to harsh places often have an especially wide range of tolerance, which lets them live where others cannot. They may also have an optimum that is higher or lower than average — marram grass, for example, has a lower optimum for water availability than most plants.
There is a trade-off, and examiners like it:
In the extreme habitat, these species do well because competition is low — almost nothing else can survive there.
In a mild, comfortable habitat they often do worse, because they are outcompeted by species whose optimum sits right in the middle of those conditions.
One more thing. A species has a range of tolerance for every abiotic factor at once. Some matter more than others, but it is the combination of all of them that decides where the species is found.
Worked examples
WORKED EXAMPLE
Explain how two named adaptations of marram grass reduce water loss. [4]
Adaptation 1: name it, then explain itRolled leaves: water vapour is trapped inside the roll, so humidity around the stomata rises and the concentration gradient out of the leaf is reduced.Adaptation 2: same patternSunken stomata: the pits hold water vapour right where it is released, again lowering the gradient.Two adaptations, each with its mechanism = four marksthe words “concentration gradient” are what turns a description into an explanation.
WORKED EXAMPLE
Mangrove roots sit in salty water. Explain why this is a problem, and how red mangroves solve it. [3]
Start with the osmosis reasoningSea water has a higher solute concentration than the root cells.So which way does water move?Water tends to move out of the root cells by osmosis, so the tree risks losing water.Now the adaptationRed mangrove root cells block salt entering, and also stop water moving outwardsname the direction of water movement — “osmosis” on its own is not enough.
WORKED EXAMPLE
A plant species is found only on very dry soil, even though it grows faster in the lab when watered well. Suggest why. [3]
Notice the clue: it grows better with water, so water is not the limit
Its range of tolerance clearly includes wetter conditions.
So something else keeps it out of the wet sitesOn moist soil it is outcompeted by species whose optimum matches those conditions.And why it survives on the dry soilOn dry soil competition is low, because few other species tolerate itthis is the classic “wide tolerance but poor competitor” answer.
💡 Exam tip
For every adaptation, write feature → how it works → benefit. Three steps, and usually three marks.
Use the phrase concentration gradient in any water-loss question. It is the mark scheme’s favourite.
Know which mangrove does which: red excludes salt at the root, black excretes it at the leaf.
Pneumatophores and prop roots are worth learning by name and spelling.
When a question gives tolerance data, look for the optimum and the limits separately — they usually want both.
If asked why an extreme specialist is rare in mild habitats, the answer is almost always competition.
⚠ Common mix-up
Writing biotic factors in an abiotic question. Predators and competitors are biotic.
Saying rolled leaves “stop water escaping”. They do not seal it — they raise the humidity so less evaporates.
Thinking mangroves are short of water because there is none around. There is plenty of water; it is just too salty to use safely.
Getting osmosis backwards. Water moves towards the higher solute concentration, which is the sea water.
Swapping red and black mangrove strategies. An easy detail to lose.
Treating range of tolerance as on or off. Numbers drop gradually through the zones of stress first.
Forgetting the thick waxy cuticle works differently from the other marram adaptations — it is a barrier, not a humidity trap.
Up next: Species Distribution — how you actually go out and measure where a species is, and how the abiotic factor changes alongside it.
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