DP Biology · HL / SL · D - Continuity and Change

D2.1 Cell and nuclear division

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What is Cell Division and Why Does It Matter?

Cell Division: Cell division is the process by which a parent cell (or mother cell) divides to produce two daughter cells, each inheriting genetic material and cellular components from the parent.

Cell division is fundamental to life. Every multicellular organism , from a tiny fern to a blue whale , begins as a single cell and grows by dividing. Here's why cell division is so essential:

  • Growth and development: A fertilised egg divides repeatedly to form tissues and organs.
  • Tissue repair and maintenance: Damaged or worn-out cells (like skin cells) are constantly replaced.
  • Reproduction: Unicellular organisms reproduce entirely by cell division; multicellular organisms produce gametes through a specialised form of division.
Note

A key principle of biology is that all cells arise from pre-existing cells. This traces back to the very first cells and means that every cell in your body is connected by an unbroken chain of divisions to the zygote , the single cell formed when a sperm and egg fused.

Warning

When a parent cell divides, it ceases to exist as a separate entity , it becomes two daughter cells. This is different from how we think of reproduction in animals, where parents remain separate from offspring.

Before a cell can divide, it must replicate its DNA so that each daughter cell receives a complete set of genetic instructions. This replication occurs during interphase, before division begins.

The Cell Cycle: Interphase and Division

Cell division does not happen in isolation , it is one part of a repeating sequence of events called the cell cycle.

Cell Cycle: The cell cycle is the ordered sequence of events a cell undergoes from its formation to the point at which it divides into two daughter cells.

The cell cycle consists of two major phases:

1. Interphase , Preparation for Division

Interphase is the longest part of the cell cycle. It is divided into three sub-stages:

Sub-stageNameKey Events
G1​First Gap (Growth 1)Cell grows; organelles increase in number; proteins synthesised
SSynthesisDNA is replicated , each chromosome is duplicated into two sister chromatids
G2​Second Gap (Growth 2)Cell continues growing; proteins needed for division are synthesised; DNA checked for errors
Note

During interphase, the cell is not resting , it is highly active, carrying out its normal functions and preparing for division. Chromosomes are not visible under a light microscope during interphase because DNA exists as loosely packed chromatin.

2. Mitotic Phase (M Phase) , Division

Following interphase, the cell undergoes nuclear division (mitosis or meiosis) followed by cytokinesis.

Cell Cycle Regulation: Cyclins and Checkpoints

The cell cycle is tightly regulated to prevent uncontrolled division. Two key mechanisms control progression through the cycle:

Cyclins and CDKs:

  • Cyclins are regulatory proteins whose concentration rises and falls at specific points in the cell cycle.
  • Cyclin-dependent kinases (CDKs) are enzymes that are only active when bound to a cyclin.
  • Cyclin–CDK complexes act as molecular switches, triggering progression from one stage to the next (e.g., from G2​ into mitosis).
  • When cyclins are degraded, CDK activity drops and the cycle is held in check.

Checkpoints:
Checkpoints are quality-control stops in the cell cycle where the cell monitors whether conditions are suitable to proceed:

CheckpointLocationWhat is checked?
G1​ checkpointEnd of G1​Is the cell large enough? Is DNA undamaged? Are growth signals present?
G2​ checkpointEnd of G2​Has DNA been fully and correctly replicated?
Spindle assembly checkpointMetaphaseAre all chromosomes correctly attached to spindle fibres?
Warning

If checkpoints fail , for example due to mutations in genes that regulate cyclins or CDKs , cells can divide uncontrollably. This is a key mechanism underlying the development of cancer.

Exam Tip

Think of cyclins as the accelerator pedal and checkpoints as traffic lights. Cyclins drive the cycle forward; checkpoints stop it if something is wrong.

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10 more sections in this topic

← Previous topicD1.3 Mutations and gene editingNext topic →D2.2 Gene expression (HL)
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