Overview
DNA replication is the process by which a cell copies its genome before cell division. It is semi-conservative: each daughter molecule contains one original strand and one newly synthesized strand.
Key Enzymes
| Enzyme | Function |
|---|---|
| Helicase | Unwinds the double helix at the origin of replication |
| Primase | Synthesizes a short RNA primer to provide a 3’-OH start |
| DNA Polymerase III | Synthesizes new DNA in the 5’→3’ direction |
| DNA Polymerase I | Removes RNA primers and replaces with DNA |
| DNA Ligase | Seals nicks between Okazaki fragments on the lagging strand |
| Topoisomerase | Relieves torsional stress ahead of the replication fork |
Leading vs. Lagging Strand
Because DNA polymerase can only extend in the 5’→3’ direction:
- Leading strand — synthesized continuously toward the replication fork.
- Lagging strand — synthesized discontinuously as short Okazaki fragments (~100–200 nt in eukaryotes) that are later joined by ligase.
Fidelity and Repair
The error rate of DNA Pol III alone is ~1 in 10⁷ bases. Proofreading (3’→5’ exonuclease activity) and mismatch repair reduce this to ~1 in 10⁹–10¹⁰. Key repair pathways include:
- Nucleotide excision repair (NER) — removes bulky adducts (e.g., UV-induced thymine dimers)
- Base excision repair (BER) — removes chemically altered bases
Clinical Relevance
Many chemotherapy agents target DNA replication enzymes. For example, hydroxyurea inhibits ribonucleotide reductase, depleting the dNTP pool; nucleoside analogues (e.g., gemcitabine) act as false substrates that terminate chain elongation.