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100

The region on an enzyme where the substrate binds to undergo a chemical reaction.

Active Site 

100

The green pigment located in thylakoid membranes that absorbs light energy for photosynthesis.

Chlorophyll

100

The metabolic process occurring in the cytoplasm that breaks down glucose into two pyruvate molecules without requiring oxygen.

Glycolysis

100

Passive movement of water molecules across a semi-permeable membrane from an area of high water concentration to low water concentration.

Osmosis 

100

The stage of the cell cycle where DNA is replicated before mitosis occurs.

Interphase (The S- Phase)

200

The minimum amount of energy required for a chemical reaction to begin, which enzymes lower.

Activation Energy

200

The specific site inside the chloroplast where the light-independent phase (Calvin cycle) occurs.

Stroma

200

The folds of the inner mitochondrial membrane that increase the surface area for the electron transport chain.

Cristae

200

The movement of substances against a concentration gradient using transport proteins and cellular energy (ATP).

Active Transport

200

The enzyme responsible for unwinding and unzipping the DNA double helix during replication.

Helicase

300

What happens to an enzyme's active site when exposed to high temperatures or extreme pH, preventing it from functioning.

Denaturation

300

Stacks of thylakoids inside a chloroplast that increase internal surface area for light absorption.

Grana 

300

The byproduct of anaerobic respiration in human or animal muscle cells that causes localised fatigue.

Lactic Acid

300

What happens to the Surface Area-to-Volume (SA:V) ratio of a cell as the cell grows larger.

SA:V ration decreases 

300

Why DNA replication is described as "semi-conservative".

Each new DNA molecule consists of one original strand and one newly synthesised strand?

400

Model of enzyme action where the enzyme changes shape slightly to fit the substrate more tightly upon binding.

Induced Fit Model 

400

What happens to water during the light-dependent phase, and what useful gas is released as a byproduct.

Water is split into hydrogen and oxygen gas (O2) is released

400

The ultimate biological purpose of cellular respiration in all living cells.

To produce ATP (the cells energy currency, for life processes). 

400

What happens to a plant cell placed in a hypertonic (high solute) solution.

It becomes plasmolysed (loses water and the cell membrane pulls away from the cell wall)

400

The primary purpose of mitosis in multicellular organisms.

Growth, repair of damaged tissues, and cell replacement

500

Why increasing substrate concentration increases reaction rate only up to a point, after which the rate plateaus.

All active sites become saturated (occupied) with substrate, making enzyme concentration the limiting factor

500

Why leaves growing in deep shade are often darker green and thinner than leaves growing in full sunlight.

Shade leaves produce higher concentrations of chlorophyll (darker green) and have a higher surface area-to-volume ratio (thinner) to maximise light capture in low light

500

Why muscle cells maintain high numbers of mitochondria compared to skin epithelial cells.

Muscle cells have high metabolic energy demands for contraction, requiring large amounts of ATP produced via aerobic respiration

500

Why cells must divide via mitosis once they reach a maximum size limit, referring specifically to transport rates.

As a cell grows, its volume increases faster than its surface area; a low SA:V ratio means diffusion becomes too slow to supply nutrients and remove wastes fast enough to sustain the cell.

500

Why DNA replication occurs continuously on the leading strand but discontinuously (forming Okazaki fragments) on the lagging strand.

DNA polymerase can only synthesize DNA in the 5' to 3' direction, and since DNA strands are antiparallel, one strand must be built backwards in short fragments