This MCQ module is based on: Regulation Human Genome
Regulation Human Genome
This assessment will be based on: Regulation Human Genome
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Regulation Human Genome
6.7 Regulation of Gene Expression
Cells don't translate ALL genes ALL the time. They turn genes ON or OFF in response to environmental cues — a process called gene regulation. The most studied example is the lac operon in E. coli.
6.7.1 The Lac Operon — An Inducible System (Jacob & Monod, 1961)
The lac operon controls how E. coli digests lactose. The operon has these components:
| Component | Symbol | Function |
|---|---|---|
| Regulator gene | i | Codes for the repressor protein (always made) |
| Promoter | p | Where RNA polymerase binds |
| Operator | o | Where repressor binds (between promoter and structural genes) |
| Structural gene 1 | z | β-galactosidase — splits lactose into glucose + galactose |
| Structural gene 2 | y | Permease — transports lactose into cell |
| Structural gene 3 | a | Transacetylase |
6.7.2 How the Lac Operon Works
When lactose is ABSENT (operon OFF):
- The repressor protein (made by gene i) binds to the operator (o).
- RNA polymerase cannot move past — transcription is blocked.
- The cell does NOT waste energy making enzymes it doesn't need.
When lactose is PRESENT (operon ON):
- A small amount of lactose enters the cell and is converted to allolactose (the inducer).
- Allolactose binds the repressor, changing its shape — repressor falls OFF the operator.
- RNA polymerase transcribes the structural genes z, y, a as a single polycistronic mRNA.
- The cell makes enzymes to metabolise lactose. Lactose induces its own breakdown.
6.7.3 The Trp Operon — A Repressible System
The trp operon works in reverse. It produces enzymes that synthesize the amino acid tryptophan. When tryptophan is plentiful in the environment, the cell doesn't need to make it. So:
- Trp absent: The trp repressor is INACTIVE → operon is ON (enzymes made, trp synthesized).
- Trp present: Trp binds repressor and ACTIVATES it → repressor binds operator → operon is OFF (no enzymes; no need).
Trp itself is a corepressor. The trp operon is a repressible operon — repressed when its end-product is plentiful.
6.8 The Human Genome Project (HGP)
The Human Genome Project (1990–2003) was a massive international effort to map and sequence the entire human genome.
6.8.1 Goals of the HGP
- Identify all the genes in human DNA (~25,000 genes estimated).
- Determine the sequence of all 3.2 billion DNA base pairs.
- Store this information in databases.
- Improve tools for data analysis.
- Address the ethical, legal, and social issues (ELSI) raised by the project.
6.8.2 Salient Features of the Human Genome
- The human genome contains 3.2 × 10⁹ base pairs.
- The average gene is ~3000 bases. The largest gene is dystrophin (2.4 million bp).
- About 30,000 genes were initially predicted; current estimate is ~20,000–25,000.
- Less than 2% of the genome codes for proteins. The rest includes regulatory regions, introns, repetitive sequences.
- Repeated sequences make up large fractions; their function is mostly unknown ("junk DNA" — but increasingly we find some are functional!).
- Chromosome 1 has the most genes (~2968), Y has the fewest (~231).
- Humans share more than 99.9% of DNA with each other; the differences (~0.1%) account for variations between individuals.
- Identified ~1.4 million SNPs (Single Nucleotide Polymorphisms).
6.8.3 Methodology
Two approaches were used:
- Hierarchical sequencing (BAC): Genome cut into pieces, cloned in BAC vectors, mapped, then sequenced — public consortium method.
- Shotgun sequencing: Random fragments sequenced and computationally assembled — Celera Genomics' approach.
6.9 DNA Fingerprinting
DNA fingerprinting (DNA profiling) is a technique to identify individuals from a DNA sample. Developed by Alec Jeffreys in 1984. The technique is based on:
6.9.1 Variable Number Tandem Repeats (VNTRs)
The human genome contains regions where short DNA sequences are repeated multiple times in tandem (VNTRs / minisatellites). The number of repeats varies dramatically between individuals:
- Person A might have 12 repeats of "CAGT" at a particular location.
- Person B might have 25 repeats at the same location.
- Many such loci exist; combining them gives a unique pattern for each person.
6.9.2 Steps in DNA Fingerprinting
- Isolate DNA from sample (blood, hair, saliva).
- Digest DNA with restriction enzyme — cuts at specific sequences.
- Separate fragments by gel electrophoresis (small fragments move faster).
- Transfer to nylon membrane (Southern blotting).
- Hybridise with radioactive VNTR-specific probe.
- Expose to X-ray film — VNTR-containing fragments appear as bands of different sizes (the "fingerprint").
- Compare fingerprints between samples.
6.9.3 Applications of DNA Fingerprinting
- Forensics: identify criminals from blood/hair at crime scenes; exonerate the innocent.
- Paternity / maternity testing.
- Identification of human remains in disasters, war.
- Tracing genealogy — finding biological relatives.
- Conservation: identifying poached endangered species DNA.
- Disease diagnosis: some genetic disorders are detected via specific DNA patterns.
🧬 Interactive: DNA Fingerprint Matcher
Compare a crime-scene fingerprint with three suspects. Click each suspect to see if there's a match.
Crime Scene
Suspect A
Suspect B
Suspect C
Setup: A mutant E. coli has a defective i gene that cannot make a functional repressor protein. It is grown on (a) glucose-only medium (b) lactose medium.
Mutant (no functional repressor) — operon is ALWAYS ON, regardless of lactose:
- (a) Glucose only: lac operon is ON (wasteful — makes lactose-digesting enzymes that aren't needed).
- (b) Lactose: lac operon is ON (normal lactose metabolism, just like wild type).
Normal (wild-type) E. coli: Operon is OFF in glucose, ON in lactose. Energy-efficient.
Lesson: The repressor is essential for "off" state. This is called constitutive expression — the gene is always expressed regardless of regulation.
Worked Examples
Worked Example 1: Operator Mutation
What happens to the lac operon if a mutation makes the operator unable to bind repressor?
Reasoning:
- The operator is the binding site for the repressor.
- If the operator can't bind repressor, transcription is never blocked.
- RNA polymerase always transcribes the structural genes z, y, a.
- This is constitutive expression — the cell wastes energy making enzymes when no lactose is present.
Worked Example 2: HGP Math
The human genome has ~3.2 billion bp and ~25,000 genes. (a) What is the average gene size? (b) Why don't 25,000 genes "fill" the genome?
Average gene size = 3.2 × 10⁹ / 25,000 = 128,000 bp ≈ 128 kb.
But typical gene is only ~3,000–10,000 bp of coding sequence. So 25,000 × 3,000 = 75 million bp ≈ 2.3% of genome.
(b) The other 97.7% includes:
- Introns within genes (often much longer than exons).
- Promoters and regulatory regions.
- Repetitive sequences (LINEs, SINEs, transposons) — ~50% of genome.
- Telomeres and centromeres.
- Pseudogenes — gene-like sequences that don't make protein.
🎯 Competency-Based Questions
Q1. The lac operon is regulated by:L1 Remember
Q2. Fill in the blank: DNA fingerprinting was developed by _____ in 1984. L2 Understand
Q3. In the trp operon, the corepressor is _____. Explain how it functions. L3 Apply
- The trp repressor is normally INACTIVE (cannot bind operator).
- When Trp is plentiful in the cell, Trp binds the repressor and changes its shape — repressor becomes ACTIVE.
- The active repressor binds the operator → blocks transcription → no more Trp synthesised.
- This is feedback inhibition: the end-product (Trp) shuts off its own production pathway when there's enough.
Q4. Compare: List 3 differences between the lac and trp operons. L4 Analyse
| Feature | Lac operon | Trp operon |
|---|---|---|
| Type | Inducible | Repressible |
| Function | Catabolism (digest lactose) | Anabolism (synthesize trp) |
| Repressor default state | Active (bound to operator) | Inactive |
| Regulator molecule | Allolactose (inducer) | Tryptophan (corepressor) |
| When ON | Lactose present | Trp absent |
Q5. HOT (Create): Design a use of DNA fingerprinting to verify a tiger's identity in an anti-poaching operation. List the materials needed and the analysis steps. L6 Create
- Reference database: National Tiger DNA Database with profiles of every known wild and captive tiger.
- Field sample: Hair, scat, blood from poached tiger or product (skin, bone).
- DNA extraction: Use kit-based protocols suited to degraded samples.
- PCR amplification: Target tiger-specific microsatellite markers (12–15 STR loci).
- Capillary electrophoresis: Separate amplified fragments by size.
- Profile generation: Record allele sizes at each locus → unique numerical profile.
- Database match: Compare profile against the National Database.
- If match → identifies the tiger; helps trace its origin (which forest, which family).
- If no match → new individual; flag for monitoring.
- Forensic application: Match seized tiger products to specific poaching incidents.
- Conservation: Track movement, family lines, genetic health of populations.
🧠 Assertion–Reason Questions
Choose: (A) Both true, R explains A. (B) Both true, R doesn't explain A. (C) A true, R false. (D) A false, R true.
A: The lac operon is OFF when lactose is absent.
R: The repressor protein binds the operator in the absence of inducer.
A: DNA fingerprinting can distinguish even identical twins.
R: VNTR patterns differ between any two individuals.
A: Less than 2% of the human genome codes for proteins.
R: The rest of the genome is junk DNA with no function.