Related Experiment Video
Updated: Aug 20, 2025

Author Spotlight: Exploring the Frontier of mRNA Research with Poly A Tail Analysis Techniques
Published on: January 12, 2024
Birth of a poly(A) tail: mechanisms and control of mRNA polyadenylation
Juan B Rodríguez-Molina1, Matti Turtola2
1MRC Laboratory of Molecular Biology, Cambridge, UK.
Abstract:
During their synthesis in the cell nucleus, most eukaryotic mRNAs undergo a two-step 3'-end processing reaction in which the pre-mRNA is cleaved and released from the transcribing RNA polymerase II and a polyadenosine (poly(A)) tail is added to the newly formed 3'-end. These biochemical reactions might appear simple at first sight (endonucleolytic RNA cleavage and synthesis of a homopolymeric tail), but their catalysis requires a multi-faceted enzymatic machinery, the cleavage and polyadenylation complex (CPAC), which is composed of more than 20 individual protein subunits. The activity of CPAC is further orchestrated by Poly(A) Binding Proteins (PABPs), which decorate the poly(A) tail during its synthesis and guide the mRNA through subsequent gene expression steps. Here, we review the structure, molecular mechanism, and regulation of eukaryotic mRNA 3'-end processing machineries with a focus on the polyadenylation step. We concentrate on the CPAC and PABPs from mammals and the budding yeast, Saccharomyces cerevisiae, because these systems are the best-characterized at present. Comparison of their functions provides valuable insights into the principles of mRNA 3'-end processing.
Insights
Eukaryotic mRNA 3'-end processing involves complex enzymatic machinery for cleavage and polyadenylation. This review details the cleavage and polyadenylation complex (CPAC) and Poly(A) Binding Proteins (PABPs) in mammals and yeast.
Area of Science:
- Molecular Biology
- Biochemistry
- Genetics
Background:
- Eukaryotic mRNA synthesis involves a crucial 3'-end processing step.
- This process includes pre-mRNA cleavage and the addition of a polyadenosine (poly(A)) tail.
- The machinery is complex, involving over 20 protein subunits.
Purpose of the Study:
- To review the structure, mechanism, and regulation of eukaryotic mRNA 3'-end processing.
- To focus on the polyadenylation step.
- To compare the CPAC and PABPs in mammals and Saccharomyces cerevisiae.
Main Methods:
- Literature review of existing research.
- Comparative analysis of CPAC and PABPs in mammals and yeast.
- Focus on biochemical and structural data.
Main Results:
- mRNA 3'-end processing is catalyzed by the cleavage and polyadenylation complex (CPAC).
- Poly(A) Binding Proteins (PABPs) play a key role in poly(A) tail synthesis and mRNA processing.
- Comparative analysis reveals conserved principles in yeast and mammals.
Conclusions:
- Eukaryotic mRNA 3'-end processing is a highly regulated, multi-protein-driven process.
- Understanding CPAC and PABPs is vital for comprehending gene expression.
- Comparative studies enhance our understanding of fundamental biological mechanisms.
More Related Videos
Related Concept Videos
mRNA Stability and Gene Expression
Cis-acting Elements involved in mRNA stability
Regulation of Expression Occurs at Multiple Steps
Transcription results in the generation of precursor (pre-mRNA) that consists of both exons and introns, which needs further processing before being translated to a...
Pre-mRNA Processing: Modification of pre-mRNA Ends
Once about 20-40 ribonucleotides have been joined together by RNA polymerase, a group of enzymes adds a cap to the 5' end of the growing transcript. In this process, a 5' phosphate is replaced by modified guanosine that has a methyl group attached (7-methyl guanosine). This 5' cap helps...
pre-mRNA Processing
Once about 20-40 ribonucleotides have been joined together by RNA polymerase, a group of enzymes adds a “cap” to the 5’ end of the growing transcript. In this process, a 5’ phosphate is replaced by modified guanosine that has a methyl group attached to it (7-Methyl...
Chromatin Structure Regulates pre-mRNA Processing
The chromatin structure, especially...
Regulation of Expression at Multiple Steps

