Your body has a plan.
Your body has a plan.
Cells need to read the plan. A tiny worker reads the DNA. It makes a new copy. This copy is called RNA.
This new copy carries a message. The message helps make things like food for your cells. It tells the cell how to work.
Sometimes, the worker makes a mistake. It is not perfect at copying. But it still helps your body grow.
This is how your body follows its plan. 
Your body has a set of instructions called DNA.
A tiny worker called RNA polymerase reads the DNA. It makes a new strand called RNA. Some RNA carries messages to help make proteins. We call these messenger RNA, or mRNA. 
Transcription has a few main steps. It starts with initiation. This is when the worker finds the right spot to start. Then comes elongation. This is when the worker builds the new RNA strand. Finally, the process ends with termination.
Other parts help control this work. Some parts are called enhancers. They can make a gene work much more. They do this by looping the DNA. This brings them close to the starting spot. Other parts can turn genes off. This can happen through methylation. This is when a small group called a methyl group attaches to the DNA.
Your body uses DNA as a master set of instructions. To use these instructions, cells must make a copy called transcription. 
Transcription works through a few specific steps. It starts with initiation, when RNA polymerase finds a starting spot. Next is promoter escape, where the enzyme moves away from the start. Then comes elongation, the phase where the new strand is built. Finally, the process reaches termination and stops. 
Many parts of the cell help control this work. Enhancers are special regions that can increase transcription by up to 100-fold. They do this by looping the DNA to reach the promoter. 
Cells also use a method called methylation to control genes. This involves adding a methyl group to a part of DNA called cytosine.
Transcription is different from DNA replication in many ways. For example, it does not need an RNA primer to start. It also does not create Okazaki fragments like DNA replication does. Transcription has some ways to check for mistakes. However, these are not as strong as the controls used for DNA. This means transcription has a lower copying fidelity. 
Transcription is a fundamental biological process used to duplicate a DNA segment into an RNA molecule. This process is essential for gene expression, which allows cells to use their genetic instructions. Some transcribed segments become messenger RNA (mRNA), which encodes proteins. Other segments become non-coding RNAs (ncRNAs). Both DNA and RNA are nucleic acids made of nucleotide sequences. 
The mechanism of transcription follows a specific sequence of steps. It begins with initiation, where RNA polymerase and general transcription factors bind to a DNA promoter. This forms an RNA polymerase-promoter closed complex. In this state, the promoter DNA remains fully double-stranded. The enzyme then unwinds about 14 base pairs of DNA. The process moves through promoter escape, elongation, and finally termination.
Transcription involves several distinct parts and regulatory sequences. A DNA transcription unit often contains a coding sequence and regulatory sequences. The regulatory sequence located upstream from the coding sequence is the 5' untranslated region (5'UTR). The sequence downstream is the 3' untranslated region (3'UTR). The DNA strand that is not used as a template is called the coding strand. Its sequence matches the new RNA transcript, except that RNA uses uracil (U) instead of thymine (T). Because transcription has fewer proofreading mechanisms than DNA replication, it has lower copying fidelity.
In mammals, transcription is highly regulated by various cis-regulatory elements. These include core promoters and promoter-proximal elements located near transcription start sites. Other elements, like enhancers, silencers, and insulators, are often located far from the start site. Enhancers play a leading role in initiating transcription. They can increase transcription levels by up to 100-fold. 
Complexes of proteins help coordinate these distant interactions. A large structure called the Mediator complex consists of about 26 proteins. The Mediator communicates signals from transcription factors bound to enhancers directly to RNA polymerase II. There are approximately 1,600 different transcription factors in a human cell. These proteins bind to specific motifs on enhancers to govern transcription levels. Additionally, active enhancers produce two enhancer RNAs (eRNAs) as RNA polymerases act on both DNA strands.
Another layer of control is DNA methylation, which affects about 60% of promoters. This involves adding a methyl group to cytosine, creating 5-methylcytosine (5-mC). This occurs mostly at CpG sites, where a cytosine is followed by a guanine.
Specific proteins like EGR1 demonstrate how cells respond to signals. EGR1 is a transcription factor that can regulate the methylation of CpG islands. In neurons, the binding of EGR1 can recruit TET1 enzymes to methylated promoters. These TET enzymes catalyze the demethylation of 5-methylcytosine. This process allows neurons to initiate the transcription of hundreds of genes following activation. This complex system of loops, factors, and chemical marks ensures that genes are expressed at exactly the right time and place. 
🖼️ Images & Media (8)
More to explore
✨ What else?
Related topics you might enjoy
🔬 Go deeper
More advanced topics to explore
What is Nepedia?
A free, ad-free encyclopedia for children. Every article is written at five reading levels, so the same page works for a five-year-old and a fifteen-year-old — use the level switcher above to see this one change. No account needed to read.