Skip to content

9700 · 5.2

Chromosome behaviour in mitosis — common mistakes

Common exam mistakes on 9700 Chromosome behaviour in mitosis. Learn what loses marks, then practise the topic with Examiner’s Ink.

Exam tip 1

When drawing mitotic stages for plant cells, remember to depict a rigid cell wall and the formation of a cell plate during cytokinesis, rather than a cleavage furrow seen in animal cells. Always label your diagrams clearly, indicating the cell wall, nuclear envelope (or absence), spindle fibres, and chromosomes/chromatids, showing their correct number and morphology!

What is chromosome behaviour in mitosis 9700?

In Cambridge 9700 Biology, chromosome behaviour in mitosis refers to the precise, orchestrated movements and structural changes of chromosomes through prophase, metaphase, anaphase, and telophase. This ensures that each new daughter cell receives an exact, identical set of chromosomes. You can master these stages with our free premium lessons and practice using past papers!

Why is mitosis important for living organisms?

Mitosis is essential for several vital processes: it enables growth in multicellular organisms by increasing cell numbers, facilitates the repair of damaged tissues and replacement of worn-out cells, and serves as the basis for asexual reproduction in many species. Its primary role is to produce genetically identical daughter cells, maintaining genetic stability.

How do plant and animal cells differ during mitosis?

While the fundamental chromosome movements are similar, key differences exist. Animal cells form a cleavage furrow during cytokinesis to divide the cytoplasm, and they possess centrioles within their centrosomes which organise the spindle fibres. Plant cells, however, form a cell plate to build a new cell wall between daughter cells and typically lack centrioles, forming their spindle directly from microtubule-organising centres.

What controls the progression of the cell cycle?

The cell cycle is controlled by a set of regulatory proteins, primarily cyclins and cyclin-dependent kinases (CDKs). These proteins work at specific checkpoints (e.g., G1, G2) to ensure that cellular processes like DNA replication are complete and accurate before allowing the cell to proceed to the next stage, such as mitosis.