D2.3.5—Effects on cells without wall
Cells without walls can lyse in hypotonic solutions and crenate in hypertonic solutions because water movement changes cellular volume and shape.
- Syllabus
- First assessment 2025
- Objective
- D2.3.5
- Level
- SL
Cells without walls can lyse in hypotonic solutions and crenate in hypertonic solutions because water movement changes cellular volume and shape.

Coverage 2017–2025 · Updated 16 Jul 2026
Cells without a wall can burst in hypotonic solution or shrink in hypertonic solution because their plasma membrane cannot resist large volume changes.
| Environment | Net water movement | Wall-less cell response |
|---|---|---|
| Hypotonic | Into cell | Swelling; excessive entry may cause lysis or haemolysis |
| Hypertonic | Out of cell | Shrinkage; animal cells such as red blood cells become crenated |
| Isotonic | Balanced | Stable average volume |
Freshwater unicellular organisms continually gain water from their hypotonic environment, so contractile vacuoles collect and expel excess water. Multicellular animals instead maintain near-isotonic tissue fluid around cells.
A plasma membrane can deform but does not provide the rigid mechanical restraint of a cell wall; active water removal is an adaptation, not a reversal of osmosis.
This objective is assessed through structured response, multiple choice, commonly using Deduce / Outline / Predict.
Deduce / Outline / Predict / Explain / Describe / Suggest
Build the answer around this relationship: Hypotonic solutions can cause animal cells to swell or lyse.
Calling crenated animal cells turgid, a term that applies to walled plant cells.
Representative question
Explain the effect of placing red blood cells in distilled water (0.000 M NaCl).
| a | red blood cells are hypertonic/more concentrated/have lower water potential/higher solute concentration (than distilled water)/vice versa; |
| b | water moves into cells by osmosis; |
| c | water moves from an area of higher water potential/concentration/ solution (in water) to lower water potential/concentration (in cell) OR water moves from a more dilute solution to a more concentrated solution OR water moves from hypotonic to hypertonic solution; |
| d | through a (selectively) permeable membrane; |
| e | cells swell and (eventually) burst/ complete/100\% hemolysis; |
Water forms hydration shells around ions and polar solutes; hydrogen bonding and charge attraction reduce free water movement. Water moves by osmosis across partially permeable membranes from hypotonic/lower solute solutions toward hypertonic/higher solute solutions. Osmosis direction depends on internal and external solute concentration; isotonic conditions have dynamic water movement but no net osmosis. Plant tissue changes mass or length in sucrose solutions; percentage change graphs estimate isotonic or osmotic concentration. Animal cells can lyse in hypotonic solutions and crenate in hypertonic solutions; freshwater protists use contractile vacuoles to expel excess water. Plant cells become turgid in hypotonic solutions as vacuoles swell; hypertonic solutions cause flaccidity and plasmolysis from water loss. Isotonic saline prevents harmful water gain or loss in body cells; IV fluids and transplant organ baths must match tissue osmotic concentration.