DNA Replication
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Semi-Conservative Replication
- DNA replication is semi-conservative: each new DNA molecule contains one original (parent) strand and one newly synthesised strand.
- The original strand is called the template strand; the new strand is built from free nucleotides by complementary base pairing.
- Base pairing rules: adenine pairs with thymine, and cytosine pairs with guanine.
- Hydrogen bonds form only between correctly paired bases on the template and new strands.
- Replication occurs in the nucleus and is important for growth, replacement of old/damaged cells, and reproduction.
- Crick and Watson proposed the semi-conservative model; Meselson and Stahl later provided experimental evidence.
The Role of Helicase and DNA Polymerase
- Helicase unwinds the DNA double helix and breaks the hydrogen bonds between base pairs, exposing bases on each strand.
- Each single strand acts as a template for the formation of a new strand.
- DNA polymerase links nucleotides together to form a new strand, using the pre-existing strand as a template.
- DNA polymerase catalyses condensation reactions between the deoxyribose sugar and phosphate groups of adjacent nucleotides, forming the sugar-phosphate backbone.
- DNA polymerase always builds the new strand in the 5' to 3' direction, attaching to the 3' end of the template strand and reading it in a 3' to 5' direction.
Directionality and Strand Synthesis
- DNA polymerase only works in a 5' to 3' direction, adding nucleotides to the 3' end of a growing strand.
- The 5' phosphate group of an incoming nucleotide bonds to the free 3'-OH group on the growing strand.
- Double-stranded DNA consists of two antiparallel strands: one runs 5' to 3', the other 3' to 5'.
- The leading strand is synthesised continuously, following the replication fork as it opens.
- The lagging strand is synthesised discontinuously in short fragments called Okazaki fragments, away from the fork.
- Okazaki fragments are later joined together by DNA ligase to form a continuous strand.
Enzymes in DNA Replication
- Helicase unwinds the double helix and breaks hydrogen bonds between strands at the replication fork.
- Single-stranded binding proteins keep the separated strands apart while the template is copied.
- DNA primase generates a short RNA primer on the template strands, providing an initiation point for DNA polymerase III.
- DNA polymerase III starts replication next to the RNA primer, linking nucleotides in a 5' to 3' direction.
- DNA polymerase I removes the RNA primers and replaces them with DNA.
- DNA ligase joins Okazaki fragments by catalysing the formation of sugar-phosphate bonds.
- An RNA primer is needed once on the leading strand but several times on the lagging strand to initiate each fragment.
Proofreading and Accuracy
- Each human cell replication requires synthesis of about 3 billion new base pairs.
- Mistakes during replication are called mutations and can be harmful, leading to diseases such as cancer.
- In prokaryotes, DNA polymerase III acts as a proof-reader of the new daughter strand.
- It recognises incorrect nucleotides, reverses direction to remove the incorrect nucleotide from the 3' end, then inserts the correct one and continues replication.
- Semi-conservative replication ensures genetic continuity with high accuracy between generations of cells.
Gel Electrophoresis
- Gel electrophoresis separates DNA, RNA, and proteins according to their size (mass) and net charge.
- DNA is negatively charged due to its phosphate groups, so it moves towards the anode (positive pole).
- Smaller molecules move faster and further through the gel pores; larger molecules move more slowly.
- Agarose gel is used for DNA; polyacrylamide gel is used for proteins.
- Method: create an agarose gel plate with wells, submerge it in electrolyte solution, load DNA fragments into wells, and apply an electric current.
- The negative electrode must be connected to the end with the wells so DNA fragments move towards the anode.
- Fragments are visualised using radioactive labels (X-ray film) or fluorescent stains (UV light).
Polymerase Chain Reaction (PCR)
- PCR is an in vitro method of DNA amplification used to produce large quantities of specific DNA or RNA fragments from very small samples.
- Requirements: target DNA/RNA, DNA polymerase (commonly Taq polymerase), free nucleotides, buffer solution, and primer sequences.
- Taq polymerase comes from the thermophilic bacterium×Thermus aquaticus×and does not denature at high temperatures.
- PCR occurs in a thermal cycler and involves three stages per cycle.
- Denaturation: heated to 95°C to break hydrogen bonds between DNA strands.
- Annealing: cooled to 50–60°C so primers bind to the single strands.
- Elongation/Extension: heated to 72°C for Taq polymerase to build complementary strands.
- Each cycle doubles the DNA; 30 cycles can generate over 1 billion copies by exponential amplification.
DNA Profiling and Its Applications
- DNA profiling (genetic fingerprinting) identifies suspects, victims, and ancestry relationships.
- The regions analysed are VNTRs (Variable Number Tandem Repeats): short, non-coding repeating DNA sequences 20–50 bases long.
- Every person (except identical twins) has a unique combination of VNTRs.
- Steps: DNA extraction, PCR amplification, cutting with restriction endonucleases, gel electrophoresis, adding probes, and visualisation.
- In paternity testing, a parent shares about 50% of the offspring's bands; any band in the child must be present in the mother or father.
- In forensics, samples from a crime scene are compared to suspects, victims, and control samples; care must be taken to avoid contamination.
- Reliability is increased by using more VNTR markers, reducing the chance of a false match.
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1.Which of the following correctly describes the role of DNA polymerase in DNA replication?
Easy- AForms hydrogen bonds between the bases of the new nucleotides and the template strand.
- BUnwinds the DNA double helix at the replication fork.
- CCovalently bonds new DNA nucleotides together.
- DJoins up the Okazaki fragments on the lagging strand.
2.To which part of the DNA molecule will new nucleotides be covalently bonded during DNA replication?
Easy- ANitrogenous base
- B5’ phosphate group of a pentose sugar
- C1’ carbon of a pentose sugar
- D3’ -OH group of a pentose sugar
3.In gel electrophoresis, DNA moves towards the _________.
Easy- ACathode
- BNegatively charged electrode
- CAnode
- DTiny pores in the gel
4.Which of the following processes takes place in a thermal cycler?
Easy- AGenetic modification
- BPolymerase chain reaction
- CGel electrophoresis
- DGenetic fingerprinting
5.Which of the following statements about semi-conservative replication of DNA are correct? (select all that apply)
Medium- ADNA polymerase always builds a new strand of DNA in the 3′ to 5′ direction.
- BThe action of DNA polymerase is followed by that of helicase.
- COne strand of original DNA remains in each daughter molecule; the other strand has been made from free nucleotides.
- DCrick and Watson proposed the hypothesis of semi-conservative replication, whereas experimental evidence was later provided by Meselson and Stahl.
6.During the process of semi-conservative replication of DNA, which activity relating to bonding does not take place?
Medium- ABreaking of hydrogen bonds.
- BDNA polymerase forms an enzyme-substrate complex with free nucleotides.
- CFormation of new covalent bonds between nucleotides.
- DFormation of new glycosidic bonds between deoxyribose molecules.
7.Which of the following are necessary for successfully conducting PCR in a forensic examination at a crime scene? (select all that apply)
Medium- AAn active sample of human DNA or RNA polymerase
- BBuffer solution
- CA sample of target DNA or RNA
- DFree nucleotides
- EPrimer sequences
8.Okazaki fragments are short sections of DNA formed during DNA replication. Which of the following statements correctly describes why they form?
Easy- ATo help the DNA helix unwind
- BTo enable replication of the leading strand
- CTo act as a template for DNA polymerase
- DTo enable replication of the lagging strand
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