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

Nucleic Acids Research
|January 14, 2005
PubMed

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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