Transcription of DNA

Last updated: June 19, 2025

Transcription of DNA

POM

POM

Gluconeogenesis
Glycogen metabolism
Amino acid metabolism
Fatty acid synthesis
Fatty acid oxidation
Ketone body metabolism
Cholesterol metabolism
Carbohydrates and sugars
Fats and lipids
Proteins
Cellular structure and function
Cell membrane
Selective permeability of the cell membrane
Extracellular matrix
Cell-cell junctions
Endocytosis and exocytosis
Osmosis
Resting membrane potential
Nernst equation
Cell signaling pathways
Cytoskeleton and intracellular motility
Nuclear structure
DNA structure
Transcription of DNA
Translation of mRNA
Amino acids and protein folding
Protein structure and synthesis
Nucleotide metabolism
DNA replication
Lac operon
DNA damage and repair
Cell cycle
Mitosis and meiosis
DNA mutations
Polymerase chain reaction (PCR) and reverse-transcriptase PCR (RT-PCR)
Gel electrophoresis and genetic testing
ELISA (Enzyme-linked immunosorbent assay)
Karyotyping
DNA cloning
Fluorescence in situ hybridization
Mendelian genetics and punnett squares
Hardy-Weinberg equilibrium
Inheritance patterns
Independent assortment of genes and linkage
Gene regulation
Epigenetics
Evolution and natural selection
Bacterial structure and functions
Free radicals and cellular injury
Necrosis and apoptosis
Ischemia
Hypoxia
Inflammation
Atrophy, aplasia, and hypoplasia
Hyperplasia and hypertrophy
Metaplasia and dysplasia
Oncogenes and tumor suppressor genes
Anticoagulants: Heparin
Anticoagulants: Warfarin
Anticoagulants: Direct factor inhibitors
Antiplatelet medications
Thrombolytics
Blood histology
Blood components
Blood groups and transfusions
Platelet plug formation (primary hemostasis)
Coagulation (secondary hemostasis)
Role of Vitamin K in coagulation
Clot retraction and fibrinolysis
Iron deficiency anemia
Beta-thalassemia
Alpha-thalassemia
Sideroblastic anemia
Anemia of chronic disease
Lead poisoning
Hemolytic disease of the newborn
Glucose-6-phosphate dehydrogenase (G6PD) deficiency
Autoimmune hemolytic anemia
Pyruvate kinase deficiency
Paroxysmal nocturnal hemoglobinuria
Sickle cell disease (NORD)
Hereditary spherocytosis
Aplastic anemia
Fanconi anemia
Megaloblastic anemia
Diamond-Blackfan anemia
Chronic leukemia
Acute leukemia
Microcytic anemia: Pathology review
Non-hemolytic normocytic anemia: Pathology review
Intrinsic hemolytic normocytic anemia: Pathology review
Extrinsic hemolytic normocytic anemia: Pathology review
Macrocytic anemia: Pathology review
Heme synthesis disorders: Pathology review
Coagulation disorders: Pathology review
Platelet disorders: Pathology review
Mixed platelet and coagulation disorders: Pathology review
Thrombosis syndromes (hypercoagulability): Pathology review
Lymphomas: Pathology review
Leukemias: Pathology review
Plasma cell disorders: Pathology review
Myeloproliferative disorders: Pathology review
Thymus histology
Spleen histology
Lymph node histology
Introduction to the immune system
Cytokines
Innate immune system
Complement system
T-cell development
B-cell development
MHC class I and MHC class II molecules
T-cell activation
B-cell activation, differentiation, and contraction
Cell-mediated immunity of CD4 cells
Cell-mediated immunity of natural killer and CD8 cells
Antibody classes
Somatic hypermutation and affinity maturation
VDJ rearrangement
Contracting the immune response and peripheral tolerance
B- and T-cell memory
Anergy, exhaustion, and clonal deletion
Vaccinations
Type I hypersensitivity
Type II hypersensitivity
Type III hypersensitivity
Type IV hypersensitivity

Transcript

Watch video only

Deep within the cell’s nucleus, there’s our DNA. DNA is made up of genes, and each gene is basically a specific part of the DNA that codes for a protein.

And genes become proteins in two steps: transcription and translation.

Transcription is the first step in creating a protein, during which a specific gene is “read” and copied on an individual mRNA, or messenger RNA molecule - which is like a blueprint with instructions on what protein to build.

Now, DNA has two strands, which wrap one around the other to form the characteristic “double helix”.

Each single strand of DNA is composed of four types of nucleotides - which are the individual “letters” or “building blocks” of DNA.

Nucleotides of DNA are made out of a sugar - deoxyribose, a phosphate, and one of the four nucleobases - adenine, cytosine, guanine, and thymine - or, commonly, A, C, G, T for short.

The nucleotides on one strand pair up through hydrogen bonds with nucleotides on the opposing strand, to create the double-stranded DNA : specifically, A bonds with T, and C bonds with G, so they’re called complementary bases.

Now, with these two strands - one strand is called the coding, or the sense strand, and the other strand is called the template, or the anti-sense strand.

The coding strand has a coding sequence of nucleotides that serves as a master blueprint for our protein.

It’s a what-you-see-is-what-you-get kind of thing.

The template strand, on the other hand, has a sequence of nucleotides that is complementary to the sequence on the coding strand.

In addition, the two DNA strands also have a “direction” - the coding strand runs from the 5’ end towards the 3’ end, while the template strand runs from the 3’ to the 5’ end.

A bit like two snakes coiled up together but facing different directions.

So, if the coding strand looks like this:

5’ end - A A T C C A G T A - 3’ end

The template strand will look like this:

3’ end - T T A G G T C A T - 5’ end 

*Disclaimer: no cats were harmed in the making of this strand.

Now, transcription starts with the unpacking of DNA from chromatin and de-helicization - meaning that the double helix unwinds a bit so that individual genes are exposed.

The starting point of a gene is determined by a promoter region, which is a repetitive non-coding sequence of nucleotides - for example, T A T A T A T A sequence is one very famous promoter, called the TATA box - that marks where to begin transcribing.

A few dozen proteins and enzymes come together to form what’s called a pre-initiation complex around the promoter, also featuring an enzyme called RNA polymerase.

Then, a process called elongation occurs, which is where RNA polymerase unzips the two strands by shearing the hydrogen bonds between the complementary nucleotides for the length of around 14 base pairs.

This open area is within the RNA polymerase, and is called the transcription bubble.

The RNA polymerase follows the template strand and uses it to assemble an mRNA molecule, that is the mirrored image of the template strand.

Now, mRNA is slightly different from DNA.

First off, it uses a slightly different set of nucleotides, where the T is replaced by uracil, or U.

The U will normally pair with A, as T would.

Also, mRNA runs in the opposite direction compared to the template strand - so from 5’ end to 3’ end.

So, when reading the template strand, RNA polymerase will move along from the 3’ end of the template strand towards the 5’ end, while creating the mRNA molecule in reverse - from 5’ end to 3’ end.

Key Takeaways

Transcription is the process by which genetic information in DNA is copied into RNA. The process occurs in the nucleus and is critical for gene expression. The three main steps involved in transcription are initiation, elongation, and termination. During initiation, RNA polymerase binds to a specific region of DNA called the promoter. During elongation, RNA polymerase adds complementary RNA nucleotides to the growing RNA chain. Termination occurs when the RNA polymerase reaches a sequence of DNA called the terminator, and the RNA molecule is released. Finally, RNA molecules undergo post-transcriptional processing to prepare them for translation, the process by which proteins are synthesized from RNA. The resulting RNA molecule is called messenger RNA (mRNA) and is transported out of the nucleus and into the cytoplasm, where it serves as a template for protein synthesis.