Major Molecular Mechanisms of Carcinogenesis


1. Initiation (Genetic Damage Begins)

The process starts when a carcinogen (chemical, radiation, viruses, or environmental factors) causes irreversible DNA damage or mutations in a normal cell.

Functions:
Produces mutations in DNA sequence
Alters genes controlling cell growth
Creates abnormal cellular behavior
Damage may affect oncogenes or tumor suppressor genes

Examples of initiators:
Tobacco smoke chemicals
UV radiation
Ionizing radiation
Viral infections
Environmental toxins

2. Activation of Oncogenes

Normal cells contain proto-oncogenes that regulate growth and division. Mutations convert them into oncogenes, causing excessive cell proliferation.

Functions:
Stimulate continuous cell division
Increase growth signaling
Reduce dependence on external growth factors

Common oncogenes:
RAS → controls signal transduction pathways
MYC → regulates cell proliferation
HER2 → promotes cell growth
BCR-ABL → causes uncontrolled kinase activity



3. Inactivation of Tumor Suppressor Genes

Tumor suppressor genes normally prevent excessive cell growth and repair DNA damage. Loss of function leads to uncontrolled proliferation.

Functions:
Regulate cell cycle checkpoints
Promote DNA repair
Trigger apoptosis if damage is severe

Major tumor suppressor genes:
TP53 ("guardian of genome")
RB1
BRCA1
BRCA2



4. DNA Repair Defects

Cells possess DNA repair systems to maintain genomic stability. Defects lead to accumulation of mutations.

Functions:
Detect DNA errors
Repair damaged DNA strands
Maintain genome integrity

Important repair mechanisms:
Mismatch repair
Nucleotide excision repair
Base excision repair
Double-strand break repair

Consequences:
Genomic instability
Increased mutation rate
Cancer progression



5. Evasion of Apoptosis

Apoptosis is programmed cell death that removes damaged cells. Cancer cells escape this process.

Functions:
Prevent elimination of abnormal cells
Allow survival of mutated cells
Promote tumor persistence

Important molecules:
BCL-2
Caspases



6. Sustained Angiogenesis

Tumors require blood vessels to obtain nutrients and oxygen.

Functions:
Supplies oxygen
Delivers nutrients
Supports tumor growth and metastasis

Major angiogenic factor:
VEGF



7. Invasion and Metastasis

Cancer cells acquire the ability to spread beyond the primary site.

Functions:
Break extracellular matrix
Enter blood and lymphatic systems
Colonize distant organs

Molecules involved:
Matrix metalloproteinases (MMPs)
Cell adhesion molecules
Integrins



8. Immune Evasion

Cancer cells avoid recognition by the immune system.

Functions:
Escape immune destruction
Suppress immune responses
Enhance tumor survival

Important immune checkpoint molecules:
PD-1
PD-L1
CTLA-4

Simplified Flow Diagram
Normal Cell

Exposure to Carcinogen

DNA Damage / Mutation

Oncogene Activation + Tumor Suppressor Loss

Defective DNA Repair

Uncontrolled Cell Division

Apoptosis Avoidance

Angiogenesis

Tumor Formation

Invasion and Metastasis

This molecular progression explains how normal cells gradually acquire the characteristics known as the “hallmarks of cancer,” leading to malignant transformation.


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