DNA Fingerprinting
1. What is DNA Fingerprinting?
DNA fingerprinting is a technique used to identify an individual by analyzing
specific variable regions of their DNA, particularly highly polymorphic
repetitive DNA sequences.
The fundamental idea is:
Different individuals have different patterns of repetitive DNA
sequences, producing a characteristic DNA banding pattern. Thus, DNA fingerprinting as a rapid
way of comparing DNA sequences between individuals without having to sequence
their entire genomes.
Why is it possible?
Although humans are overwhelmingly similar genetically, some regions of
DNA show considerable variation among individuals. These variable regions are
particularly useful for identification.
Key concept
DNA fingerprinting → DNA polymorphism → repetitive DNA → VNTR →
characteristic banding pattern
2. Historical Background
DNA fingerprinting was developed by Sir Alec Jeffreys in the 1980s.
He discovered highly variable repetitive DNA sequences called minisatellites,
which could be used to distinguish individuals.
Jeffreys = Fingerprints
Just as fingerprints identify a person through physical patterns, DNA
fingerprints identify a person through characteristic DNA patterns.
3. Basis of DNA Fingerprinting
The technique is based primarily on DNA polymorphism.
What is polymorphism?
Polymorphism means the occurrence of genetic variation within a
population.
In DNA fingerprinting, the important variation is the variation in the
number of repeated DNA units at particular loci. Thus:
Variation in repeat number → variation in DNA fragment length → different
banding patterns
Important distinction
|
Term |
Meaning |
|
Polymorphism |
Genetic variation among individuals |
|
DNA containing repeated sequences |
|
|
Highly repetitive DNA |
|
|
A class of satellite DNA |
|
|
VNTR |
Variable Number Tandem Repeat |
|
DNA fingerprint |
Characteristic pattern generated
from variable DNA regions |
4. Repetitive DNA
The human genome contains many DNA sequences that are repeated. These are
called repetitive DNA.
A repetitive sequence can be represented simply as:
ABC ABC ABC ABC ABC
The same short DNA sequence occurs repeatedly. The number of repetitions
can differ between individuals. For example:
Person A
ABC – ABC – ABC – ABC
→ 4 repeats
Person B
ABC – ABC – ABC – ABC – ABC – ABC
→ 6 repeats
The difference in repeat number produces DNA fragments of different
lengths. That difference can ultimately be detected as different bands.
5. Satellite DNA
Highly repetitive DNA sequences are often referred to as satellite DNA.
Satellite DNA can be classified into different types based on the size of
the repeated units and arrangement; the most important relationship is:
VNTR → minisatellite → satellite DNA
VNTR belongs to a class of satellite DNA called minisatellite.
Important Point
Do not confuse: VNTR with satellite DNA.
VNTR is a type of variable repetitive sequence; i.e. VNTR is a type of minisatellite
DNA.
6. VNTR- Variable Number Tandem Repeat
This is the single most important term to remember for DNA
fingerprinting.
Break the term down:
Variable
→ number of repeats differs between individuals
Number
→ the number of copies is being considered
Tandem
→ repeats occur one after another
Repeat
→ the same sequence is repeated
Therefore:
VNTRs are DNA sequences in which a particular sequence is repeated
tandemly, with the number of repeats varying among individuals.
The number of repeats shows a very high degree of polymorphism,
making VNTRs useful for DNA fingerprinting.
7. Why are VNTRs useful?
Suppose a particular VNTR consists of:
AGCT AGCT AGCT AGCT
One person may have 4 copies. Another person may have:
AGCT AGCT AGCT AGCT AGCT AGCT → 6 copies.
Because the number of repeats is different, the total length of the DNA
region differs.
Therefore: Different repeat number → different fragment size
When these fragments are separated, they produce different positions of
bands. This produces an individual's characteristic DNA pattern.
8. Why are VNTRs called highly polymorphic?
A DNA region is useful for identification if it varies significantly
among individuals. VNTRs show a high degree of polymorphism because the
number of tandem repeats can vary.
For example:
|
Individual |
Number of repeats |
|
A |
4 |
|
B |
7 |
|
C |
5 |
|
D |
10 |
Consequently, their DNA fragments can have different lengths. This
variation makes VNTRs excellent genetic markers for identification.
9. Size of VNTR
The size of VNTR regions varies approximately from: 0.1 kb to 20 kb
This is a potentially testable factual point.
10. What is a Tandem Repeat?
"Tandem" means one after another. For example:
ATGC ATGC ATGC ATGC
The repeated sequence is arranged consecutively. It is therefore a: Tandem
repeat
If the number of these repeats varies among individuals:
→ Variable Number Tandem Repeat (VNTR)
11. Basic Principle of DNA Fingerprinting
The entire concept can be understood in one chain:
Step 1
Individuals possess repetitive DNA sequences.
Step 2
Some repetitive regions are highly polymorphic.
Step 3
VNTRs are repetitive sequences where the number of repeats varies.
Step 4
Different numbers of repeats produce DNA fragments of different lengths.
Step 5
DNA fragments are separated according to size.
Step 6
Specific VNTR-containing fragments are detected using a probe.
Step 7
The detected fragments produce a characteristic pattern.
Step 8
The pattern can be compared between individuals. Therefore:
DNA fingerprinting identifies individuals by comparing characteristic
patterns generated from highly polymorphic repetitive DNA sequences, especially
VNTRs.
12. Classical DNA Fingerprinting- Overall Procedure
A simplified classical procedure is:
Isolation of DNA
↓
Digestion of DNA using restriction endonucleases
↓
Separation of DNA fragments by gel electrophoresis
↓
Transfer/blotting of DNA fragments onto a membrane
↓
Hybridisation with labelled VNTR probe
↓
Detection by autoradiography
↓
Characteristic banding pattern
13. Step 1- Isolation of DNA
DNA is first isolated from the biological sample.
Possible biological sources include:
- Blood
- Hair roots
- Saliva
- Semen
- Tissue
- Other nucleated cells
The important point is: DNA must first be obtained from the sample.
14. Step 2 — Digestion by Restriction Endonucleases
The isolated DNA is treated with restriction endonucleases. These
enzymes cut DNA at specific recognition sequences. As a result:
Large DNA molecule
↓
Many DNA fragments
The resulting fragments contain regions of different lengths.
Why is this important?
Different individuals can have differences in the lengths of DNA
fragments containing VNTRs. This produces different patterns after separation
and detection.
15. Step 3- Separation by Gel Electrophoresis
DNA fragments are separated according to their size. DNA has an overall negative
charge because of its phosphate backbone. Therefore, during
electrophoresis: DNA moves towards the positive electrode (anode).
Important fact
DNA → negatively charged → moves towards positive electrode
Smaller DNA fragments generally migrate farther through the gel than
larger fragments. Thus:
Smaller fragment → travels farther
Larger fragment → travels less
This allows fragments of different sizes to be separated.
16. Step 4- Southern Blotting
The separated DNA fragments are transferred from the gel onto a membrane.
This is known as Southern blotting.
Important exam association
Southern blotting → DNA
Remember:
- Southern → DNA
- Northern → RNA
- Western → protein
17. Step 5- Hybridization with a VNTR Probe
The DNA fragments on the membrane are exposed to a labelled probe.
The probe is complementary to particular repetitive DNA sequences.
What is a probe?
A probe is a labelled nucleic acid sequence used to detect a
complementary DNA sequence through hybridization. In classical DNA
fingerprinting, a VNTR probe is used.
The probe binds to complementary VNTR-containing DNA fragments.
18. What is Hybridization?
Hybridization is the pairing of complementary nucleic acid sequences. For
example:
DNA sequence:
5′ — ATGC — 3′
Complement:
3′ — TACG — 5′
The probe binds to its complementary sequence. Thus:
VNTR-containing DNA + complementary labelled probe → hybridization
19. Step 6- Autoradiography
The hybridized fragments are detected using autoradiography in the
classical method when a radioactive label is used. This produces visible bands.
After hybridization with a VNTR probe, the autoradiogram gives many bands of
differing sizes.
These bands collectively constitute the DNA fingerprint.
20. The Final DNA Fingerprint
The final result is a pattern of DNA bands. For example:
Individual A
│
│ █
│
│
█
│
│ █
│
│
█
│
│
█
│
Individual B
│
│ █
│
│ █
│
│
█
│
│ █
│
│ █
│
The positions of the bands are compared.
If the relevant banding pattern matches, the samples may have originated
from the same individual, subject to appropriate forensic interpretation.
21. Why does each person have a different DNA fingerprint?
Because the number and arrangement of highly polymorphic repetitive DNA
sequences vary among individuals. Thus:
Different VNTR pattern
→ different fragment sizes
→ different band positions
→ different DNA fingerprint.
The resulting pattern as characteristic of an individual and states that
it differs among individuals in a population, except in the case of monozygotic
(identical) twins.
22. Identical Twins- Important Exception
Monozygotic (identical) twins generally have the same DNA fingerprint
pattern because they originate from the same zygote and have essentially the
same nuclear DNA sequence. Therefore:
Normal individuals
Different DNA fingerprints
Monozygotic twins
Essentially identical DNA fingerprints
23. Why doesn't DNA fingerprinting require sequencing the entire genome?
The human genome is extremely large. Sequencing an entire genome just to
distinguish two individuals would be unnecessary for the classical
identification problem. Instead, DNA fingerprinting focuses on highly
variable repetitive regions. Thus:
Whole genome sequencing
❌ unnecessary for classical DNA fingerprinting
Selected highly polymorphic repetitive regions
✅ useful for identification
24. Applications of DNA Fingerprinting
DNA fingerprinting has several important applications.
One of its most important applications is identification of
individuals in forensic investigations. DNA obtained from a crime scene can
be compared with DNA from suspects or other individuals. For example:
Crime-scene sample
vs.
Suspect A
vs.
Suspect B
The banding pattern can be compared.
B. Paternity and maternity testing
DNA fingerprinting can help establish biological relationships. A child
inherits genetic material from both parents. Therefore, DNA patterns can be
compared among:
- Child
- Mother
- Alleged father
The child's genetic markers should be consistent with inheritance from
the biological parents.
C. Identification of missing persons
DNA profiles can be compared with:
- Biological relatives
- Previously collected samples
- Reference samples
to assist in identification.
D. Identification of deceased individuals
DNA fingerprinting can be useful when conventional identification is
difficult, including certain mass-casualty or disaster situations.
E. Population studies
DNA fingerprinting has applications in determining population and
genetic diversities.
25. DNA Fingerprinting and Genetic Diversity
Different populations may show different frequencies of genetic variants.
Analysis of polymorphic DNA sequences can therefore help researchers study:
- Genetic variation
- Population structure
- Genetic diversity
- Relationships among populations
26. PCR and DNA Fingerprinting
The sensitivity of DNA fingerprinting has been enhanced by the use of PCR-
Polymerase Chain Reaction.
PCR allows amplification of DNA. Therefore, even a very small amount of
starting DNA can potentially provide enough material for analysis. The sensitivity
of DNA fingerprinting has increased with PCR and that DNA from a single cell
can be sufficient for DNA fingerprinting analysis.
PCR → amplification of DNA
Therefore:
Tiny DNA sample
↓
PCR amplification
↓
More DNA available for analysis
27. PCR- Quick Revision
Since PCR is linked to DNA fingerprinting, remember its three major
cyclic steps:
1. Denaturation
DNA double strand separates into two single strands.
2. Annealing
Primers bind to complementary sequences.
3. Extension
DNA polymerase extends the primers and synthesizes new DNA.
Memory trick
D → A → E
Denaturation → Annealing → Extension
28. Modern DNA Profiling vs Classical DNA Fingerprinting
This distinction is useful for avoiding confusion. The classical DNA
fingerprinting discussion focuses on:
VNTR/minisatellite DNA + probe + hybridization + banding pattern
Modern forensic DNA profiling often uses short tandem repeat (STR)
markers, which are different from the classical minisatellite VNTR
approach.
29. VNTR vs STR- Conceptual Difference
|
Feature |
VNTR |
STR |
|
Full form |
Variable Number Tandem Repeat |
Short Tandem Repeat |
|
Repeat arrangement |
Tandem |
Tandem |
|
Classical NCERT DNA fingerprinting |
Yes |
Not the primary NCERT term |
|
Repeat unit |
Relatively longer |
Shorter |
|
Important for modern forensic
profiling |
Less commonly used than STRs |
Very important |
30. DNA Fingerprinting- Complete Flowchart
Biological sample
↓
Isolation of DNA
↓
Restriction digestion
↓
DNA fragments
↓
Gel electrophoresis
↓
Southern blotting
↓
VNTR probe hybridisation
↓
Autoradiography
↓
DNA banding pattern
↓
Comparison of patterns
↓
Identification / relationship analysis
Ultra-short sequence
DNA → Restriction enzyme → Gel → Southern blot → VNTR probe →
Autoradiography → Fingerprint
31. What Exactly Makes the Pattern Different?
This is an important conceptual question. The difference is primarily due
to:
Variation in the number of tandem repeats.
Suppose a VNTR repeat unit has length r. If one individual has n
repeats, the repeated region has an approximate length:
n × r
If another individual has m repeats:
m × r
When n ≠ m:
→ fragment lengths differ
→ electrophoretic migration differs
→ band positions differ.
Thus:
Variable repeat number is converted into a variable DNA fragment length,
which becomes a variable band position.
32. Alleles and VNTRs
At a particular VNTR locus, different numbers of repeats correspond to
different alleles.
For example:
VNTR allele 1 → 5 repeats
VNTR allele 2 → 8 repeats
The two homologous chromosomes may carry different numbers of repeats. This
creates genetic variation.
33. Maternal and Paternal Contribution
A person receives:
- One homologous chromosome from
the mother
- One homologous chromosome from
the father
Therefore, at a particular VNTR locus, the individual may have two
different alleles.
For example:
Maternal chromosome → 5 repeats
Paternal chromosome → 8 repeats
This contributes to the individual's DNA profile.
Paternal and maternal alleles can contain different copy numbers of
VNTRs.
34. Why is the DNA Fingerprint Highly Individual-Specific?
Consider multiple VNTR loci. At one locus: A and B may coincidentally
have the same allele. At another locus: They may differ.
At several loci together, the probability that unrelated individuals will
have exactly the same pattern becomes very low. Therefore:
Analysis of multiple polymorphic regions provides a highly
individual-specific DNA profile. This is the fundamental logic behind DNA-based identification.
35. Important Terms- One-Line
Definitions
DNA Fingerprinting
Technique of identifying individuals by analysing polymorphic DNA
patterns.
DNA Polymorphism
Variation in DNA sequence among individuals in a population.
Repetitive DNA
DNA containing sequences repeated multiple times.
Satellite DNA
Highly repetitive DNA sequences.
Minisatellite
A class of satellite DNA containing tandemly repeated sequences.
VNTR
Variable Number Tandem Repeat; a repetitive DNA sequence in which the
number of tandem repeats varies.
Probe
A labelled nucleic acid sequence that hybridizes with a complementary
target sequence.
Hybridization
Pairing of complementary nucleic acid sequences.
Autoradiography
Technique used to detect radioactive signals on a medium, producing
detectable bands/images.
Southern Blotting
Technique for transferring DNA fragments from a gel onto a membrane for
subsequent detection.
PCR
Polymerase Chain Reaction; technique used to amplify a specific DNA
sequence.
36. High-Yield Facts
- DNA fingerprinting was developed
by Alec Jeffreys.
- DNA fingerprinting is based on DNA
polymorphism.
- It analyses specific variable
regions of DNA.
- Important regions are repetitive
DNA sequences.
- The major NCERT marker is VNTR.
- VNTR = Variable Number Tandem
Repeat.
- VNTR belongs to minisatellite
DNA.
- Minisatellite is a type of satellite
DNA.
- VNTR shows a high degree of
polymorphism.
- NCERT gives VNTR size as
approximately 0.1–20 kb.
- VNTR differences generate
different DNA fragment sizes.
- DNA fragments can be separated by
gel electrophoresis.
- DNA fragments are transferred
using Southern blotting.
- Detection involves hybridisation
with a VNTR probe and, classically, autoradiography.
- DNA fingerprinting can be used in
forensics, relationship testing, identification, and population/genetic
diversity studies.
37. DNA Fingerprinting vs Fingerprint
|
Conventional fingerprint |
DNA fingerprint |
|
Physical ridge pattern |
DNA pattern |
|
Obtained from fingers |
Obtained from biological samples |
|
Skin ridge characteristics |
DNA polymorphism |
|
Not based on VNTR |
Based classically on VNTR |
|
Anatomical/physical identification |
Genetic identification |
38. DNA Fingerprinting vs DNA Sequencing
|
DNA Fingerprinting |
DNA Sequencing |
|
Analyses selected polymorphic
regions |
Determines nucleotide sequence |
|
Classical method uses VNTRs |
Determines exact base order |
|
Produces a characteristic pattern |
Produces sequence information |
|
Useful for identification |
Useful for detailed genetic analysis |
|
Does not require sequencing the
whole genome |
Can determine sequence of selected
regions or entire genomes |
39. DNA Fingerprinting vs PCR
|
DNA Fingerprinting |
PCR |
|
Identification/profile generation
technique |
DNA amplification technique |
|
Uses polymorphic DNA markers |
Amplifies selected DNA regions |
|
Classical method involves VNTR
analysis |
Uses primers and DNA polymerase |
|
Produces DNA profile/banding pattern |
Produces amplified DNA |
|
PCR can improve sensitivity |
PCR can support DNA fingerprinting |
40. DNA Fingerprinting vs Southern Blotting
These are also not identical.
DNA fingerprinting
The overall identification procedure/application.
Southern blotting
One laboratory step/technique used in the classical procedure.
Therefore: Southern blotting is a technique involved in classical DNA
fingerprinting; it is not synonymous with DNA fingerprinting.
41. Most Important Exam Associations
|
Question |
Answer |
|
DNA fingerprinting developed by |
Alec Jeffreys |
|
Basis |
DNA polymorphism |
|
Important DNA sequences |
Repetitive DNA |
|
Major marker |
VNTR |
|
VNTR full form |
Variable Number Tandem Repeat |
|
VNTR belongs to |
Minisatellite DNA |
|
Minisatellite belongs to |
Satellite DNA |
|
Separation of DNA fragments |
Gel electrophoresis |
|
Blotting technique |
Southern blotting |
|
Detection probe |
VNTR probe |
|
Classical detection |
Autoradiography |
|
Amplification technique |
PCR |
|
Important application |
Forensic science |
|
Exception to individual uniqueness |
Monozygotic twins |
|
DNA charge |
Negative |
|
DNA migration |
Towards positive electrode |
|
VNTR size in NCERT |
0.1–20 kb |
42. Diagram Logic
When interpreting the DNA fingerprinting figure, understand it like this:
CHROMOSOME
│
├── VNTR region
│ │
│ ├── repeat × 4
│ │
│ └── repeat × 8
│
↓
Different fragment lengths
↓
Gel electrophoresis
↓
Different migration distances
↓
Different bands
↓
DNA fingerprint
The critical idea is:
Copy number of VNTR varies → DNA fragment size varies → band position
varies.
43. Why is a Probe Needed?
After restriction digestion and electrophoresis, the DNA contains an
enormous number of fragments. A probe helps identify the fragments containing
the particular repetitive sequence of interest. Thus:
DNA fragments
↓
VNTR-specific labelled probe
↓
Probe binds to complementary VNTR sequences
↓
Only relevant fragments are detected
This makes the pattern interpretable.
44. Why Does PCR Increase Sensitivity?
Imagine that the sample contains only a very small quantity of DNA. Direct
analysis may be difficult. PCR can amplify the DNA:
1 copy
↓
2
↓
4
↓
8
↓
16
↓
...
After repeated cycles, the target DNA can be amplified enormously. Therefore,
a very small starting sample may provide enough DNA for analysis. DNA from a
single cell can be sufficient.
45. One-Minute Revision
DNA Fingerprinting
→ Developed by Alec Jeffreys
→ Based on DNA polymorphism
→ Analyses repetitive DNA
→ Important sequences = VNTR
→ VNTR = Variable Number Tandem Repeat
→ VNTR is a minisatellite
→ Minisatellite = satellite DNA
→ Number of repeats varies among individuals
→ Different repeats → different fragment sizes
→ Restriction digestion
→ Gel electrophoresis
→ Southern blotting
→ VNTR probe hybridization
→ Autoradiography
→ Characteristic banding pattern
→ Used in forensics / relationship testing / identification / genetic
diversity
→ PCR increases sensitivity
→ Monozygotic twins are the important exception to
individual-specific patterns.
46. Super-High-Yield Memory Chain
J → P → R → V → M → S → P → A
J = Jeffreys
↓
P = Polymorphism
↓
R = Repetitive DNA
↓
V = VNTR
↓
M = Minisatellite
↓
S = Southern blotting
↓
P = Probe
↓
A = Autoradiography
And remember: VNTR → Variable Number Tandem Repeat. This is
probably the most important single phrase in the topic.
51. Final Exam Checklist
Before moving on from this topic, make sure you can answer all of these
without looking at your notes:
- Who developed DNA fingerprinting?
- What is the basis of DNA
fingerprinting?
- What is DNA polymorphism?
- What is repetitive DNA?
- What is satellite DNA?
- What is a minisatellite?
- What does VNTR stand for?
- Why are VNTRs highly polymorphic?
- Why does repeat-number variation
produce different bands?
- What is the role of restriction
enzymes?
- What is gel electrophoresis?
- Why does DNA move towards the
positive electrode?
- What is Southern blotting?
- What is a VNTR probe?
- What is hybridization?
- What is autoradiography?
- Why is PCR useful?
- What are the major applications?
- Why are monozygotic twins an
exception?
For this chapter, the highest-yield chain is:
Alec Jeffreys → DNA polymorphism → repetitive DNA → VNTR → minisatellite
→ restriction digestion → electrophoresis → Southern blotting → VNTR probe → hybridization
→ autoradiography → characteristic DNA fingerprint →
forensic/relationship/population applications.