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Updated: Aug 20, 2026

Identification of Alternative Splicing and Polyadenylation in RNA-seq Data
Published on: June 24, 2021
A large-scale analysis of mRNA polyadenylation of human and mouse genes
Bin Tian1, Jun Hu, Haibo Zhang
1Department of Biochemistry and Molecular Biology, New Jersey Medical School UMDNJ, Newark, NJ 07101, USA. btian@umdnj.edu
Abstract:
mRNA polyadenylation is a critical cellular process in eukaryotes. It involves 3' end cleavage of nascent mRNAs and addition of the poly(A) tail, which plays important roles in many aspects of the cellular metabolism of mRNA. The process is controlled by various cis-acting elements surrounding the cleavage site, and their binding factors. In this study, we surveyed genome regions containing cleavage sites [herein called poly(A) sites], for 13,942 human and 11,155 mouse genes. We found that a great proportion of human and mouse genes have alternative polyadenylation ( approximately 54 and 32%, respectively). The conservation of alternative polyadenylation type or polyadenylation configuration between human and mouse orthologs is statistically significant, indicating that alternative polyadenylation is widely employed by these two species to produce alternative gene transcripts. Genes belonging to several functional groups, indicated by their Gene Ontology annotations, are biased with respect to polyadenylation configuration. Many poly(A) sites harbor multiple cleavage sites (51.25% human and 46.97% mouse sites), leading to heterogeneous 3' end formation for transcripts. This implies that the cleavage process of polyadenylation is largely imprecise. Different types of poly(A) sites, with regard to their relative locations in a gene, are found to have distinct nucleotide composition in surrounding genomic regions. This large-scale study provides important insights into the mechanism of polyadenylation in mammalian species and represents a genomic view of the regulation of gene expression by alternative polyadenylation.
Insights
Alternative polyadenylation is a common process in mammals, generating diverse gene transcripts. This study reveals significant conservation and functional biases in alternative polyadenylation across human and mouse genes.
Area of Science:
- Molecular Biology
- Genomics
- Gene Regulation
Background:
- mRNA polyadenylation is a crucial eukaryotic process involving 3' end cleavage and poly(A) tail addition.
- This process influences mRNA metabolism and is regulated by cis-acting elements and binding factors.
Purpose of the Study:
- To survey polyadenylation sites in human and mouse genes.
- To investigate the prevalence and conservation of alternative polyadenylation (APA).
- To explore functional biases and genomic characteristics of APA.
Main Methods:
- Genome-wide survey of poly(A) sites for 13,942 human and 11,155 mouse genes.
- Analysis of alternative polyadenylation prevalence and conservation between human and mouse orthologs.
- Examination of Gene Ontology annotations for functional group biases and nucleotide composition around poly(A) sites.
Main Results:
- A high proportion of human (approx. 54%) and mouse (approx. 32%) genes exhibit alternative polyadenylation.
- Statistically significant conservation of APA types and configurations between human and mouse orthologs was observed.
- Many poly(A) sites contain multiple cleavage sites, indicating imprecise cleavage and heterogeneous 3' end formation.
- Distinct nucleotide compositions were found in genomic regions surrounding different types of poly(A) sites.
Conclusions:
- Alternative polyadenylation is a widespread mechanism for generating transcript diversity in mammals.
- APA plays a significant role in regulating gene expression, with conserved patterns between human and mouse.
- The study provides a genomic perspective on APA regulation and its implications for mammalian gene expression.
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