Chapter summary
Movement of substances, at a glance
Scan the key ideas, or hide the answers and try to recall them.
01
Diffusion
Why does oxygen move into a respiring cell?
Key idea and reminders
Diffusion is the net movement of particles from a region of higher concentration to a region of lower concentration, down a concentration gradient.
- At equal concentrations, particles still move in both directions. There is no net movement.
- Diffusion supports nutrient absorption and gas exchange in humans and plants. It does not require energy supplied by respiration.
Keep in mind: Particles continue moving randomly in both directions. Equal rates of movement mean no net movement; they do not mean no movement.
02
Osmosis
Which way will water move across a cell membrane?
Key idea and reminders
Osmosis is the net movement of water molecules from higher to lower water potential through a partially permeable membrane.
- For the same solute at equal pressure, adding more dissolved solute lowers water potential.
- Only water movement is called osmosis. Water still crosses both ways when there is no net movement.
Keep in mind: For these solutions at the same pressure, more dissolved sugar means lower water potential. Be precise: solute concentration and water potential change in opposite directions.
03
Osmosis in plant and animal cells
Why can a plant cell become firm while an animal cell bursts?
Key idea and reminders
Both cell types gain or lose water by osmosis. A plant cell has a rigid cell wall that limits expansion; an animal cell does not.
- Water enters: an animal cell swells and may burst; a plant cell becomes turgid as its vacuole expands and its wall resists further expansion.
- Water leaves: an animal cell shrinks; a plant cell loses turgor and becomes flaccid. After sufficient loss, its membrane pulls away from its wall: plasmolysis.
- The cell membrane is partially permeable. The plant cell wall allows water through and provides support.
Keep in mind: Water can pass through the freely permeable cell wall. The partially permeable cell membrane is the relevant barrier for osmosis; the wall provides mechanical support.
04
Investigating osmosis
What can a change in potato mass tell you about water movement?
Key idea and reminders
A gain in potato mass suggests net water entry; a loss suggests net water loss. Use percentage change to compare pieces with different starting masses.
- Percentage mass change = (final mass - initial mass) / initial mass x 100.
- Positive: net water entry. Negative: net water loss. Approximately zero: no net water movement, not no molecular movement.
- Control the source and dimensions of tissue, time, temperature, solution volume and blotting method. Repeat measurements and calculate means.
Keep in mind: Water can still move both ways. Zero change indicates approximately equal movement in and out overall, within the limits of the measurements.