B3.2 Transport

Transport systems move materials through animal blood vessels, plant xylem and phloem, and heart-driven circuits using specialised structures and pressure gradients.

Syllabus
First assessment 2025
Topic
B3.2
Level
SL

Learning objectives

B3.2.1Capillary adaptations• Capillaries are narrow, highly branched, and close to cells• One-cell-thick endothelial walls reduce diffusion distance• Fenestrations in some capillaries allow rapid exchange and tissue fluid formationB3.2.2Artery and vein structure• Arteries and veins have endothelium, smooth muscle, elastic tissue, and collagen• Arteries have thicker walls and smaller lumens to withstand high pressure• Veins have wider lumens and thinner walls for low-pressure returnB3.2.3Artery adaptations• Thick artery walls and collagen prevent rupture under high pressure• Elastic fibres stretch and recoil to even out pulse pressure and maintain flow• Smooth muscle in arteries and arterioles regulates blood distributionB3.2.4Pulse rate measurement• Ventricular contraction creates a pressure wave felt as a pulse• Pulse rate can be measured at radial or carotid arteries• Counting for a full minute is most accurate; shorter counts can be scaledB3.2.5Vein adaptations• Veins have valves that prevent backflow toward capillaries• Thin flexible walls allow surrounding muscles to compress veins• Large lumens reduce friction during low-pressure blood returnB3.2.6Coronary artery occlusion• Atherosclerosis forms plaques beneath damaged coronary artery endothelium• Plaque rupture can trigger thrombosis and occlude coronary arteries• Reduced oxygen supply can kill cardiac muscle and cause myocardial infarctionB3.2.7Water transport in plants• Transpiration from leaf mesophyll creates tension in xylem water columns• Cohesion between water molecules transmits tension from leaves to roots• Adhesion to xylem walls helps maintain an unbroken transpiration streamB3.2.8Xylem vessel adaptations• Mature xylem vessels are dead, hollow tubes with absent or perforated end walls• Lignified walls resist collapse under negative pressure and waterproof the vessel• Pits allow lateral movement of water between vessels and surrounding tissuesB3.2.9Stem tissue distribution• Dicot stems have epidermis, cortex, pith, and vascular bundles in a ring• Each vascular bundle contains xylem, phloem, cambium, and supporting fibres• Plan diagrams show tissue positions without drawing individual cellsB3.2.10Root tissue distribution• Dicot roots have epidermis with root hairs, cortex, endodermis, and central vascular tissue• Xylem forms a central cross with phloem between its arms• The Casparian strip blocks apoplast flow and forces selective symplast entry to xylem

Capillaries Slow Blood to Enable Exchange

Capillaries are narrow, highly branched exchange vessels whose structure maximizes contact with tissues while minimizing diffusion distance.

Simple capillary bed beside body cells, showing branching, single-cell wall, and one fenestration allowing plasma to leave.

Branching produces a very large total surface area. A lumen only slightly wider than a red blood cell brings blood close to the wall, and a one-cell-thick endothelium provides a short path for diffusion.

Arteries and Veins Solve Different Pressure Problems

Arteries carry blood away from the heart under higher pressure; veins return blood at lower pressure and need valves and muscle assistance.

Thick elastic and muscular artery walls absorb pulse pressure. Veins have wider lumens, thinner walls and valves that prevent backflow as surrounding muscles compress them.

Artery Walls Store and Redistribute Pulse Energy

Arteries have thick muscular and elastic walls that maintain a lumen and smooth pressure pulses from the heart.

Elastic recoil helps keep blood moving between heartbeats, while smooth muscle adjusts diameter and resistance. The wall must withstand higher pressure than a vein.

Separate pulse smoothing from resistance control: which wall feature does each job?

Measure Pulse as Repeated Arterial Pressure Waves

Pulse rate is the number of arterial pressure waves per minute, normally corresponding to ventricular contractions.

Place fingertips—not the thumb—lightly over the radial artery at the wrist or the carotid artery in the neck. Count waves for a known interval while the subject is still and use a full minute when maximum accuracy is needed.

Counting 18 pulses in 15 s gives 18 × (60/15) = 72 beats min⁻¹. Repeat after recovery and compare with a digital heart-rate sensor recorded over the same interval.

Valves and Muscles Return Low-Pressure Venous Blood

Veins use large lumens, valves and skeletal-muscle contractions to return blood to the heart despite low pressure.

Two-state vein diagram showing a valve closed during backflow and open during forward flow while leg muscles squeeze the vessel.

A wide lumen reduces resistance, valves stop reverse flow and muscle compression raises local pressure. Breathing movements can also help draw venous blood toward the chest.

Coronary Occlusion Cuts ATP Supply to Heart Muscle

A ruptured atherosclerotic plaque can trigger a thrombus that blocks a coronary artery. Oxygen delivery falls, aerobic ATP production fails and prolonged ischaemia kills cardiac muscle: myocardial infarction.

  • plaque grows beneath damaged endothelium → the lumen narrows and the wall loses elasticity
  • plaque rupture → platelets and clotting form a thrombus
  • coronary occlusion → oxygen falls → aerobic ATP production fails → cardiac muscle dies

Transpiration Pulls One Cohesive Water Column

Transpiration creates tension—a negative pressure potential—that pulls a continuous water column from roots to leaves through xylem.

Water evaporating from moist mesophyll cell walls draws replacement water through the wall by capillary action and out of nearby xylem. This lowers pressure in the leaf xylem and transmits tension down the vessel.

Dead, Lignified Xylem Forms a Low-Resistance Tube

Mature xylem vessel elements form dead, hollow, lignified tubes adapted to carry water under tension with little resistance.

Scanning electron micrograph shows spiral xylem vessels.

Lignin thickens and waterproofs the wall and prevents collapse under negative pressure. Unlignified pits allow water to enter or leave laterally, bypass a blockage, and move between xylem and surrounding tissue.

A Dicot Stem Separates Water and Assimilate Routes

A transverse section of a young dicot stem has an outer epidermis, cortex beneath it, vascular bundles arranged in a ring and a central pith.

Within each vascular bundle, phloem lies toward the outside, xylem toward the centre and cambium between them. The ring links transport around the stem while lignified xylem and supporting fibres add strength.

A Dicot Root Combines Absorption with Selective Entry

A transverse section of a young dicot root has an outer epidermis, a broad cortex and a central vascular cylinder containing xylem and phloem.

A labeled root diagram shows root hairs and a transverse section identifying the epidermis, cortex, endodermis, Casparian strip, phloem, and central xylem.

Root hairs extend from epidermal cells to increase absorption area. The endodermis forms the inner boundary of the cortex, surrounding the central vascular tissue and controlling entry to xylem.

SL Summary: Flow Structures

Route Structural solution
artery elastic-muscular wall for high pressure
capillary one-cell wall + many branches for exchange
vein wide lumen + valves for low-pressure return
xylem hollow lignified tube for tension

Capillary adaptations

3 marks

Explain how the structure of capillaries relates to their functions.

Artery and vein structure

8 marks

Explain the structures and functions of arteries and veins.

Artery adaptations

5 marks

Explain how the structure of an artery allows it to carry out its function efficiently.

Pulse rate measurement

2 marks

Outline one method that the researchers could have used to measure heart rate in this study.

Vein adaptations

2 marks

Deduce what the experiment demonstrated about the circulation of blood.

Coronary artery occlusion

2 marks

Outline the causes and consequences of blood clot formation in coronary arteries.

Water transport in plants

8 marks

Explain the process of water uptake and transport by plants.

Xylem vessel adaptations

3 marks

Joints are part of the musculoskeletal system of animals, which provides support and movement to the body. Xylem provides support in plants and also transports water and minerals. Explain the adaptations of xylem for its functions.

Stem tissue distribution

2 marks

Describe the distribution of vascular tissues in the stem of dicotyledonous plants.

Root tissue distribution

2 marks

Label tissues X and Y .