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

Tissue Fluid

Your cells never touch blood. What actually bathes them is tissue fluid – plasma that has been squeezed out through the walls of a capillary. Whether it leaves the capillary or returns to it comes down to a tug of war between two forces.

📚 What you need to know

The tug of war at a capillary

Two opposing forces act on the fluid inside a capillary, and which one wins depends on where along the capillary you look.

The solute gradient is roughly constant along the capillary. The hydrostatic pressure is not – it falls as blood travels through, because of distance from the heart and the slow, high-resistance flow through the capillary. So the balance flips.

Which force wins depends where you look ARTERIAL END VENOUS END pushed out pulled in pushed out pulled inhydrostatic pressure is greater the solute gradient is greater NET MOVEMENT OUT NET MOVEMENT IN tissue fluid is formed about 90% is reabsorbed
The arrow thicknesses show the relative sizes of the two forces. Only the red one changes much along the capillary.
The whole idea in one line fluid leaves where the push beats the pull, and returns where the pull beats the push
The specification only requires you to know about pressure filtration and the fall in pressure at the venous end. The solute gradient is included here because without it the reabsorption makes no sense – if only pressure mattered, fluid would simply leak out and stay out.

What is in tissue fluid

Tissue fluid is plasma minus the things that were too big to get through the gaps, and altered by what the cells have taken out and put in.

SubstanceBlood plasmaTissue fluid
Blood cellsRed blood cells, phagocytes, lymphocytes and plateletsPhagocytes only, which squeeze through the gaps
ProteinsMany large plasma proteinsVery few, and only smaller ones
GlucoseHigher concentrationLower, because cells absorb it for respiration
Amino acidsHigher concentrationLower, because cells absorb them for protein synthesis
OxygenHigher concentrationLower, because cells use it in respiration
Carbon dioxideLower concentrationHigher, because cells produce it as waste

Exchange between cells and blood happens through this fluid. Carbon dioxide made in a cell diffuses out into the tissue fluid, and from there into the capillary.

Where the leftover fluid goes

About 90% of the fluid is reabsorbed at the venous end. The remaining 10% would build up and cause swelling if there were no way to collect it – and that is the job of the lymphatic system.

Where the leftover fluid ends up blood capillary tissue fluid around the cells about 90% returns here about 10% drains in here lymph capillary, closed at one end Valves keep lymph moving one way, towards veins near the heart Lymph nodes along the way contain macrophages that engulf bacteria
Lymph vessels have no pump either. Movement of the body squeezes them, and valves make sure the fluid can only travel one way.
Why ankles swell on a long flight. Sitting still means no muscle movement, so lymph is not squeezed along and fluid accumulates in the lower limbs. The same reasoning explains swelling after an injury or when lymph nodes are removed.

Worked examples

WE 1

How tissue fluid forms

Explain how tissue fluid is formed at the arterial end of a capillary. (3 marks)

Point 1: the pressure At the arterial end the hydrostatic pressure of the blood is high, because the capillary is close to the arteriole. Point 2: the filtration This forces plasma out through the gaps in the capillary wall; the process is called pressure filtration. Point 3: what leaves and what stays Water and small solutes such as glucose, amino acids and oxygen pass out, but plasma proteins and red blood cells are too large and remain in the blood. High pressure pushes small molecules out; big ones stay behind use the term hydrostatic pressure and name at least one substance that cannot leave
WE 2

Why fluid returns

Explain why most tissue fluid returns to the capillary at the venous end. (3 marks)

Point 1: pressure has fallen Blood pressure is much lower at the venous end, because of the distance from the heart and the slow flow through the capillary, so less fluid is pushed out. Point 2: the solute gradient Plasma proteins stayed behind, so the blood has a higher solute concentration than the tissue fluid. Point 3: osmosis wins Water therefore moves back into the capillary by osmosis, and this inward pull is now greater than the outward push. The push has weakened but the pull has not say which force is greater at each end – that comparison is what earns the mark
WE 3

Swelling in the tissues

A patient has a very low concentration of plasma proteins. Suggest why their tissues become swollen. (3 marks)

Point 1: what proteins normally do Plasma proteins stay in the capillary and create the solute gradient that draws water back in at the venous end. Point 2: the effect of losing them With fewer proteins the blood is less concentrated, so the inward osmotic pull is much weaker. Point 3: the result Less tissue fluid is reabsorbed, so fluid accumulates around the cells faster than the lymph system can drain it, and the tissues swell. No solute gradient means no reabsorption the same reasoning explains swelling when lymph vessels are blocked – the drainage route is lost instead

💡 Exam tips

⚠ Common mistakes

Up next: Circulatory Systems – why a fish gets away with one circuit and a mammal needs two.

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