IB Biology SL Topic 3 — Ecological Niches & Nutrition Paper 1 & 2 Core idea ~14 min read

Methods of Nutrition

Every organism on Earth needs organic molecules to fuel respiration. There are only two ways to get them: build your own, or take somebody else’s. Everything on this page is a variation on those two.

📚 What you need to know

Why nutrition exists at all

Organisms need energy in the form of ATP. The energy stored in ATP comes from organic molecules such as carbohydrates, and it is transferred to ATP during respiration.

So every organism has the same underlying problem: it needs a steady supply of organic molecules to feed into respiration. How it solves that problem is its mode of nutrition.

Watch your language on energy. Energy is never produced or created — it is only transferred from one form to another. Photoautotrophs do not produce energy; they produce their own food by transferring light energy into chemical energy. Examiners mark this strictly.

The whole family, in one picture

Two ways to get organic molecules, then four ways to do it Build your own, or take somebody else’s MODE OF NUTRITION AUTOTROPH makes its own organic molecules from simple inorganic substances HETEROTROPH gains organic molecules from the tissues of other organisms PHOTOAUTOTROPH uses light energy e.g. plants, algae CHEMOAUTOTROPH uses energy from oxidising chemicals HOLOZOIC internal digestion e.g. most animals SAPROTROPH external digestion e.g. fungi, bacteria MIXOTROPH — uses both e.g. Euglena, corals, dinoflagellatesThe dividing line is always: where do the organic molecules come from?
Holozoic and saprotrophic are two ways of being a heterotroph. The difference between them is simply where the digestion happens.

Autotrophs

An autotroph synthesises its own organic molecules from simple inorganic substances in its environment. The two types are named after where the energy comes from.

Photosynthesis

Photosynthetic organisms use light energy to convert carbon dioxide from the air into organic molecules such as carbohydrates. Photosynthetic pigments, chiefly chlorophyll, absorb the light energy that makes this possible.

Photosynthesis carbon dioxide + water → glucose + oxygen
requires light energy and chlorophyll

Because they make their own organic molecules without relying on any other organism, photosynthetic organisms are called producers. They matter for two reasons that go well beyond feeding themselves:

Heterotrophs

A heterotroph gains its organic molecules from the tissues of other organisms. All animals are heterotrophs, and so are all fungi.

Holozoic nutrition

Holozoic organisms take food into the body and break it down inside. Four steps, in order:

🧩 The four stages, and what each one means

  1. Ingestion — eating; taking the food into the body.
  2. Digestion — breaking larger molecules down into smaller ones.
  3. Absorption — transporting those small molecules from the digestive tract into the cells.
  4. Assimilation — using the molecules to build the organism’s own cells and tissues.
The point that carries the mark: holozoic nutrition involves INTERNAL digestion. A house fly secretes enzymes onto its food and absorbs the products. It is still a heterotroph, but it is not holozoic, because the digestion happens outside its body.

Saprotrophs

Saprotrophs are heterotrophs that feed on dead organisms and waste material. They secrete enzymes onto the food, digest it externally, and then absorb the products. Fungi and many bacteria work this way, and they are also described as decomposers.

Inside or outside? That is the whole difference Both are heterotrophs; both digest; only the location changes digestion happens in here then absorbed into the cells dead material enzymes out products in digestion happens out hereHOLOZOIC NUTRITION food is taken in, then digested inside the body ingest, digest, absorb, assimilateSAPROTROPHIC NUTRITION enzymes are secreted onto the food outside digest outside, then absorb the productsNot all the products get absorbed — and that turns out to matter.
The leftovers from external digestion stay in the soil, which is precisely how plants get their mineral ions back.

🤔 Why saprotrophs hold ecosystems together

Saprotrophs secrete a very wide range of digestive enzymes, so they can hydrolyse a huge variety of biological molecules and release a huge variety of products. Those products include mineral ions such as ammonium and phosphate.

Crucially, they do not absorb all of it. What is left stays in the surrounding soil, where plants can take it up. Without saprotrophs, the nutrients locked inside dead bodies and waste would never be released, and plants would eventually run out of minerals. That is why they are treated as an essential part of every ecosystem and food web.

Decomposers are not the same as detritivores. Both feed on dead material, but decomposers (such as fungi) are saprotrophs using external digestion, while detritivores (such as earthworms) take the material in and use holozoic, internal digestion.

Mixotrophs

Some organisms use more than one mode of nutrition — typically both autotrophy and heterotrophy. These are mixotrophs.

Euglena: a cell that hedges its bets Photosynthesises when there is light, and eats bacteria when there is not flagellum for movement chloroplasts carry out photosynthesis nucleus lysosomes digest engulfed bacteria contractile vacuole pumps out excess water light-sensitive spot positions it in the light Autotroph in the light, heterotroph in the dark. Bacteria are taken in by endocytosis and digested by enzymes in the lysosomes.
The light-sensitive spot is what makes the autotrophic half work: the cell can swim to where the light is strongest for its chloroplasts.

Other mixotrophs worth knowing:

Nutrition in archaea

Archaea form one of the three domains of life, and they are metabolically the most varied group of the three. You are not expected to name archaea at species level — only to know the categories.

GroupWhere the ATP energy comes fromWhere the carbon compounds come from
Phototrophic archaeaLight, absorbed by a pigment that pumps H+ ions across a membrane; the resulting gradient drives ATP synthaseFrom other organisms, so these are photoheterotrophs, not autotrophs
Chemoautotrophic archaeaEnergy released by oxidising chemicals such as hydrogen, ammonia, methane or hydrogen sulfideThey make their own, by chemosynthesis
Chemoheterotrophic archaeaChemicals, used to drive ATP production directlyFrom other organisms
Heterotrophic archaeaFrom the carbon compounds they take inFrom other organisms, e.g. breaking down dead plant material

🧠 Decoding any of these words in two seconds

Split the word in half. The first half tells you the energy source: photo- means light, chemo- means chemicals. The second half tells you the carbon source: -autotroph means it makes its own, -heterotroph means it takes it from others. So a photoheterotroph runs on light but eats its carbon.

Worked examples

WORKED EXAMPLE

Distinguish between holozoic and saprotrophic nutrition. [3 marks]

Point 1: what they have in common Both are modes of heterotrophic nutrition, gaining organic molecules from the tissues of other organisms. Point 2: holozoic In holozoic nutrition food is ingested and digestion takes place inside the body, before absorption and assimilation. Point 3: saprotrophic In saprotrophic nutrition enzymes are secreted onto dead material and digestion takes place outside the organism, with the soluble products then absorbed. Same goal, opposite location for the digestion The words “internal” and “external” are what the mark scheme is looking for. Use them explicitly.
WORKED EXAMPLE

Explain why saprotrophs are essential to ecosystems. [3 marks]

Step 1: what they break down They secrete a wide range of enzymes onto dead organisms and waste material, hydrolysing a large variety of biological molecules. Step 2: what that releases This releases mineral ions such as ammonium and phosphate ions into the surrounding soil. Step 3: why it matters no saprotrophs → nutrients stay locked in dead matter → plants run short of minerals → food webs collapse Because not all the products are absorbed by the saprotroph, plants can take up what is left. They recycle nutrients that would otherwise be locked away
WORKED EXAMPLE

State the mode of nutrition of each: (a) a bread mould growing on old fruit, (b) an earthworm eating dead leaves, (c) a bacterium that oxidises hydrogen sulfide to build its own sugars. [3 marks]

(a) bread mould A fungus feeding on dead material by secreting enzymes onto it and digesting externally. saprotroph (a decomposer) (b) earthworm It takes the leaves into its body and digests them internally, so despite feeding on dead matter it is not a saprotroph. holozoic heterotroph (a detritivore) (c) the bacterium It uses energy from oxidising a chemical, and makes its own organic molecules. chemoautotroph Saprotroph, holozoic detritivore, chemoautotroph Part (b) is the trap. Feeding on dead material does not automatically make something a saprotroph.

💡 Exam tip

⚠ Common mix-up

Up next: Nutrition in Hominidae (Skills) — using teeth and jaws to work out what an animal ate, including species that died out long before anyone could watch them eat.

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