Genome: A Complete Quick Revision Guide
Introduction
The genome is the complete set of hereditary material present in
an organism. It contains all the genetic instructions necessary for growth,
development, reproduction, metabolism, adaptation and evolution. In most living
organisms, the genome consists of DNA, while in some viruses it consists of
RNA. The study of genomes is known as genomics, one of the most rapidly
developing branches of biology. It has revolutionized medicine, agriculture,
biotechnology, forensic science and evolutionary biology.
What Is a Genome?
A genome is the complete genetic material present in the haploid set of
chromosomes of an organism. The term Genome was introduced by Hans Winkler in 1920.
It includes:
- Protein-coding genes
- Regulatory DNA
- Introns
- Exons
- Non-coding RNAs
- Repetitive DNA
- Structural DNA sequences
GENOME VS GENE
|
Gene |
Genome |
|
A segment of DNA |
Entire hereditary material |
|
Codes for one functional RNA or
protein |
Contains all genes and non-coding
DNA |
|
Functional unit of heredity |
Complete genetic blueprint |
Types of Genomes
Living organisms possess different types of genomes.
Nuclear Genome
- Present inside the nucleus.
- Largest genome in eukaryotes.
- Contains most genes.
Mitochondrial Genome
- Circular DNA.
- Inherited maternally in humans.
- Contains 37 genes.
- Size: 16,569 base pairs.
Chloroplast Genome
- Present in plants and algae.
- Responsible for photosynthetic
functions.
Viral Genome
May consist of:
- DNA
or - RNA
Prokaryotic VS Eukaryotic Genome
|
Feature |
Prokaryotes |
Eukaryotes |
|
Chromosomes |
Usually one |
Multiple |
|
Shape |
Circular |
Linear |
|
Histones |
Absent in bacteria |
Present |
|
Introns |
Rare |
Common |
|
Gene Density |
High |
Lower |
|
Repetitive DNA |
Minimal |
Abundant |
Coding and Non-Coding DNA
The human genome contains both coding and non-coding DNA.
Coding DNA
Produces proteins. Accounts for only about 1–2% of the genome.
Non-coding DNA
Includes:
- Introns
- Regulatory sequences
- Telomeres
- Centromeres
- Repetitive DNA
- Non-coding RNA genes
Although it does not encode proteins, it performs essential regulatory
and structural functions.
Genome Size
Genome size is measured in:
- Base pairs (bp)
- Kilobases (kb)
- Megabases (Mb)
- Gigabases (Gb)
Human Genome
Approximately: 3.2 billion base pairs (3.2 Gb)
C-Value
The C-value is the amount of DNA present in the haploid nucleus of an
organism.
The C-value paradox states that genome size does not necessarily
correlate with the complexity of an organism because much of the DNA is
non-coding or repetitive.
Genome Organization
DNA is highly organized to fit inside the nucleus. Packaging levels are:
DNA
↓
↓
Chromatin Fiber
↓
Looped Domains
↓
Chromosome
Nucleosome
The nucleosome is the basic structural unit of chromatin. It
consists of:
- Approximately 146 base pairs
of DNA
- Wrapped around a histone octamer:
- 2 × H2A
- 2 × H2B
- 2 × H3
- 2 × H4
Histone H1 binds linker DNA.
Euchromatin and Heterochromatin
Euchromatin
- Loosely packed
- Gene-rich
- Transcriptionally active
- Lightly stained
Heterochromatin
- Highly condensed
- Gene-poor
- Transcriptionally inactive or
less active
- Darkly stained
Exons and Introns
Exons
Remain in mature mRNA. Usually code for proteins.
Introns
Removed during RNA splicing. Help regulate gene expression and allow
alternative splicing.
Repetitive DNA
Major types include:
- Satellite DNA
- Minisatellites
- Microsatellites (STRs)
Functions:
- Chromosome stability
- Gene regulation
- DNA fingerprinting
- Genome evolution
Telomeres
Specialized DNA sequences present at chromosome ends. Human telomeric
repeat:
TTAGGG
Functions:
- Protect chromosome ends.
- Prevent chromosome fusion.
- Maintain chromosome stability.
Centromere
The centromere is the primary constriction where spindle fibres attach
through the kinetochore during cell division.
The Human Genome
The human genome consists of:
- 23 chromosomes (haploid)
- 46 chromosomes (diploid)
Genome size: 3.2 Gb
Protein-coding genes: Approximately 19,000–21,000 (NCERT
historically mentions 20,000–25,000). DNA in one diploid cell measures
approximately 2 metres when fully stretched.
Human Genome Composition
Approximate composition:
|
Component |
Percentage |
|
Protein-coding DNA |
1–2% |
|
Non-coding DNA |
>98% |
The non-coding fraction includes regulatory DNA, introns, repetitive DNA
and structural elements.
Genetic Variation
Although all humans are remarkably similar, approximately 99.9% of
DNA sequence is identical between unrelated individuals. Variation arises from:
- Mutations
- Recombination
- Independent assortment
- Random fertilization
SNPs
Single Nucleotide Polymorphisms (SNPs) are the most common type of genetic variation.
Applications:
- Disease prediction
- Pharmacogenomics
- Population genetics
Copy Number Variations (CNVs)
CNVs involve deletion or duplication of DNA segments. They influence:
- Gene dosage
- Disease susceptibility
- Individual variation
The Human Genome Project (HGP)
The Human Genome Project was one of the largest international scientific
collaborations.
Timeline
|
Event |
Year |
|
Started |
1990 |
|
Draft Genome |
2000 |
|
Completed |
2003 |
Duration: 13 years
Objectives of the HGP
- Identify all human genes.
- Sequence the complete human
genome.
- Develop genomic databases.
- Improve sequencing technology.
- Develop bioinformatics tools.
- Address ethical, legal and social
issues.
Methods Used
Major steps:
- DNA isolation
- Fragmentation
- Cloning into BAC vectors
- Physical mapping
- DNA sequencing
- Computer assembly
- Genome annotation
The principal sequencing method was Sanger chain-termination
sequencing.
Bioinformatics combines biology, computer science and statistics to analyze
genomic data. Applications include:
- Sequence analysis
- Genome assembly
- Gene prediction
- Comparative genomics
- Drug discovery
Major Findings of the HGP
- Human genome contains
approximately 3.2 billion base pairs.
- Humans possess approximately 20,000–25,000
genes (NCERT; current annotation identifies about 19,000–21,000
protein-coding genes).
- Only 1–2% of the genome
directly encodes proteins.
- Approximately 99.9% of
human DNA is identical among unrelated individuals.
- A large proportion of the genome
consists of repetitive and non-coding DNA.
Modern Genomics
The Human Genome Project gave rise to several specialized branches.
Comparative Genomics
Compares genomes of different species to study evolution and gene
function.
Functional Genomics
Studies gene function and gene regulation.
Structural Genomics
Studies genome organization and protein structures.
Transcriptomics
Studies the complete RNA population (transcriptome).
Proteomics
Studies the complete protein complement (proteome).
Metabolomics
Studies all metabolites produced by cells.
Epigenomics
Studies heritable changes in gene expression without changing the DNA
sequence. Major mechanisms are:
- DNA methylation
- Histone modification
- Non-coding RNAs
Pharmacogenomics
Studies how genes influence responses to medicines. Used in personalized
drug therapy.
Precision Medicine
Uses genomic information to customize healthcare according to an
individual's genetic makeup.
CRISPR-Cas9
CRISPR-Cas9 is the most widely used genome-editing technology.
Functions:
- Deletes genes
- Inserts genes
- Repairs mutations
- Modifies DNA precisely
Applications:
- Gene therapy
- Cancer research
- Crop improvement
- Biotechnology
Applications of Genomics
Medicine
- Genetic diagnosis
- Prenatal testing
- Cancer genomics
- Precision medicine
- Gene therapy
Agriculture
- Disease-resistant crops
- High-yield varieties
- Stress-tolerant plants
Forensic Science
- DNA fingerprinting
- Paternity testing
- Criminal investigations
Evolutionary Biology
- Human origins
- Comparative genomics
- Population genetics
HIGH-YIELD NEET FACTS
✔ Genome = Complete hereditary material.
✔ Coined by Hans Winkler (1920).
✔ Human genome = 3.2 Gb.
✔ Human haploid chromosomes = 23.
✔ Human diploid chromosomes = 46.
✔ Protein-coding DNA = 1–2%.
✔ Human mitochondrial genome = 16,569 bp; 37 genes.
✔ Nucleosome = 146 bp DNA + histone octamer.
✔ Human telomeric sequence = TTAGGG.
✔ Human Genome Project = 1990–2003.
✔ Human DNA similarity = 99.9%.
✔ Most common genetic variation = SNP.
✔ Genome editing = CRISPR-Cas9.
✔ DNA fingerprinting mainly uses VNTRs/STRs.
MEMORY MAP
GENOME
│
├── Nuclear Genome
├── Mitochondrial Genome
├── Coding DNA
├── Non-coding DNA
│
├── Genome Organisation
│
├── Chromatin
│
├── Nucleosome
│
├── Euchromatin
│
├── Heterochromatin
│
├── Human Genome
│
├── 3.2 Gb
│
├── 23 Chromosomes
│
├── 20,000–25,000 genes (NCERT)
│
├── Human Genome Project
│
├── 1990–2003
│
├── Sequencing
│
├── Bioinformatics
│
└── Modern Genomics
├── Comparative
├── Functional
├── Transcriptomics
├── Proteomics
├── Epigenomics
├── Pharmacogenomics
└── CRISPR
One-Page Final Revision
|
Topic |
Key Fact |
|
Genome |
Complete hereditary material |
|
Coined by |
Hans Winkler (1920) |
|
Human Genome |
~3.2 Gb |
|
Haploid Chromosomes |
23 |
|
Diploid Chromosomes |
46 |
|
Protein-Coding DNA |
1–2% |
|
Human Protein-Coding Genes |
~19,000–21,000 (NCERT:
20,000–25,000) |
|
Mitochondrial Genome |
16,569 bp, 37 genes |
|
Nucleosome |
~146 bp DNA + histone octamer |
|
Euchromatin |
Active chromatin |
|
Heterochromatin |
Condensed, less active chromatin |
|
Telomeric Repeat |
TTAGGG |
|
HGP Duration |
1990–2003 |
|
Human DNA Similarity |
~99.9% |
|
Most Common Variation |
SNP |
|
Genome Editing |
CRISPR-Cas9 |
|
DNA Fingerprinting |
VNTRs and STRs |