IB Biology HL Transport in Animals & Plants Paper 1 & 2 ~12 min read

Translocation in Plants

Xylem only ever goes one way: up. Phloem is the clever one. It carries sugar from wherever the plant is making it to wherever the plant is spending it, and because those places change with the seasons, the direction of flow changes too. Same tube, opposite journeys.

📚 What you need to know

Sources and sinks

A source is anywhere organic solutes enter the phloem. A sink is anywhere they leave it. Everything else about translocation follows from those two definitions.

SourcesSinks
Mature green leaves and green stems, where photosynthesis makes glucose that is converted to sucroseMeristems, where cells are actively dividing
Storage organs such as tubers and tap roots, unloading their stores at the start of a growth periodGrowing roots, and roots actively taking up mineral ions
Food stores in germinating seedsYoung leaves still in bud
 Anywhere solutes are being stored: developing seeds, fruits, storage organs
A source can become a sink, and back again. A potato tuber is a sink in summer, filling with starch made by the leaves. In spring it is a source, breaking that starch down to sucrose and exporting it to the new shoots. Nothing about the tuber has changed except which way the sugar is moving.
Sap flows towards the sinks, whichever way that is One mature leaf can supply the shoot above it and the roots below it mature leaf – source tuber – source or sink young leaves – sink fruit – sink growing root tip – sink The arrows are phloem sap: up to the shoot, down to the roots, at the same time
Xylem could never do this. Water only ever travels from root to leaf; phloem sap goes wherever it is needed.

How phloem is built

Phloem is a complex tissue, meaning it contains more than one type of cell. The two you need are the sieve tube elements that carry the sap and the companion cells that keep them working.

Sieve tube elements

FeatureWhy it helps
Cells joined end to end into a continuous tubeSap can flow from one cell straight into the next without crossing full end walls
Perforated sieve plates between cellsHoles let assimilates pass through while the plate still supports the tube
No nucleus, vacuole or ribosomes in mature cellsMaximises the space available for sap
Thin layer of cytoplasm, few organellesReduces friction so sap moves freely
Cellulose cell wallStrong enough to withstand the hydrostatic pressures that drive the flow

Companion cells

FeatureWhy it helps
Nucleus and full set of organellesProvides metabolic support for the sieve tube element, which has lost its own
Many mitochondriaProduce the ATP needed for active loading and unloading
Transport proteins in the plasma membraneMove assimilates into and out of the sieve tube
Plasmodesmata linking the two cellsCytoplasmic bridges that let assimilates pass into the sieve tube
A sieve tube element has thrown away almost everything a cell normally needs, purely to leave room for sap. It only survives because the companion cell next door runs its metabolism for it. If a question asks why companion cells have so many mitochondria, the answer is active loading needs ATP – not “for respiration”.

Mass flow: the mechanism

The five steps in order
  1. Active transport loads sucrose from the source into the phloem, using ATP from the companion cells.
  2. The high solute concentration lowers the water potential of the sieve tube, so water enters by osmosis, mostly from the neighbouring xylem.
  3. This raises the hydrostatic pressure at the source. Since pressure at the sink is lower, a pressure gradient exists and the whole contents of the phloem flow along it.
  4. At the sink, sucrose is unloaded into the surrounding cells, lowering their water potential.
  5. Water follows the sucrose out of the phloem by osmosis, which keeps the pressure at the sink low and so maintains the gradient.
Mass flow from source to sink Load the sugar, the water follows, and the pressure does the rest SOURCE photosynthesising leaf SINK growing root or fruit high pressure low pressure 1 sucrose loaded using ATP 4 sucrose unloaded3 sap flows down the pressure gradient XYLEM water under tension XYLEM water returns 2 water enters by osmosis 5 water leaves againLoading at one end and unloading at the other keep the gradient alive
Notice that step 5 is not an afterthought. If water did not leave at the sink, the pressure there would rise, the gradient would disappear and the flow would stop.
🧠

Push, don’t pull

Xylem works by pulling (tension from the leaves). Phloem works by pushing (pressure from the source). One is passive and one costs ATP – and that is the cleanest way to tell them apart in an exam.

Xylem and phloem side by side

XylemPhloem
CarriesWater and mineral ionsSucrose, amino acids and other assimilates
DirectionRoots to leaves onlySource to sink, up or down
CellsDead, hollow, no contentsLiving sieve tubes with companion cells
WallsLignifiedCellulose, no lignin
Driven byTranspiration pull – tensionHydrostatic pressure gradient – positive pressure
EnergyPassive; no ATP usedActive loading and unloading need ATP

Worked examples

WE 1

Explaining mass flow

Explain how sucrose loaded at a source causes phloem sap to move towards a sink. (4 marks)

Step 1: loading Sucrose is actively transported into the sieve tube, using ATP produced by the companion cells. Step 2: osmosis The solute concentration rises so the water potential of the sieve tube falls, and water enters from the xylem by osmosis. Step 3: pressure The extra water raises the hydrostatic pressure at the source above that at the sink. Step 4: flow Sap moves by mass flow down this pressure gradient; unloading at the sink, followed by water leaving, keeps the gradient in place. Load sucrose → water in → high pressure → mass flow to the sink the marks are in the sequence – write it as a chain and each link picks one up
WE 2

Calculating the rate of translocation

A radioactive tracer fed to a leaf was detected 84 cm further down the stem after 20 minutes. Calculate the rate of translocation in cm min−1 and in m h−1, and comment on the result. (4 marks)

Step 1: rate per minute 84 cm ÷ 20 min = 4.2 cm min−1 Step 2: convert to metres per hour 4.2 × 60 = 252 cm h−1 = 2.52 m h−1 Step 3: comment This is far faster than diffusion could achieve over such a distance, which supports the idea that the sap is being moved in bulk by a pressure gradient rather than diffusing. 4.2 cm min−1, which is 2.52 m h−1 watch the units the question asks for, and keep the same number of significant figures as the data
WE 3

Interpreting a ringing experiment

A complete ring of bark, including the phloem, was removed from the trunk of a young tree. Several weeks later the trunk had swollen just above the ring, and the leaves were still healthy. Explain these observations. (3 marks)

Point 1: what was cut Removing the bark removes the phloem but not the xylem, which lies deeper in the trunk. Point 2: the swelling Sucrose travelling down from the leaves cannot pass the gap, so assimilates accumulate above the ring and the tissue there swells. Point 3: the healthy leaves Water and mineral ions still reach the leaves through the intact xylem, so transpiration and photosynthesis continue in the short term. Phloem cut, xylem intact – sugar piles up above the ring a strong answer adds that the roots will eventually starve, since they are a sink cut off from their source

💡 Exam tips

⚠ Common mistakes

That completes Transport in Animals & Plants. Look back and the whole topic is one question asked twice: how do you move something over a distance too great for diffusion? An animal builds a pump and a closed loop of vessels. A plant has no pump at all, so it uses evaporation to pull water up and a sugar gradient to push sap along – two very different answers to exactly the same problem.

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