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Updated: Jun 1, 2026

Using the E1A Minigene Tool to Study mRNA Splicing Changes
Published on: April 22, 2021
Internal polyadenylation of the parvovirus B19 precursor mRNA is regulated by alternative splicing
Wuxiang Guan1, Qinfeng Huang, Fang Cheng
1Department of Microbiology, Molecular Genetics and Immunology, University of Kansas Medical Center, Kansas City, Kansas 66160, USA.
Abstract:
Alternative processing of parvovirus B19 (B19V) pre-mRNA is critical to generating appropriate levels of B19V mRNA transcripts encoding capsid proteins and small nonstructural proteins. Polyadenylation of the B19V pre-mRNA at the proximal polyadenylation site ((pA)p), which prevents generation of full-length capsid proteins encoding mRNA transcripts, has been suggested as a step that blocks B19V permissiveness. We report here that efficient splicing of the B19V pre-mRNA within the first intron (upstream of the (pA)p site) stimulated the polyadenylation; in contrast, splicing of the B19V pre-mRNA within the second intron (in which the (pA)p site resides) interfered with the polyadenylation, leading to the generation of a sufficient number of B19V mRNA transcripts polyadenylated at the distal polyadenylation site ((pA)d). We also found that splicing within the second intron and polyadenylation at the (pA)p site compete during processing of the B19V pre-mRNA. Furthermore, we discovered that the U1 RNA that binds to the 5' splice donor site of the second intron is fully responsible for inhibiting polyadenylation at the (pA)p site, whereas actual splicing, and perhaps assembly of the functional spliceosome, is not required. Finally, we demonstrated that inhibition of B19V pre-mRNA splicing within the second intron by targeting an intronic splicing enhancer using a Morpholino antisense oligonucleotide prevented B19V mRNA transcripts polyadenylated at the (pA)d site during B19V infection of human erythroid progenitors. Thus, our study reveals the mechanism by which alternative splicing coordinates alternative polyadenylation to generate full-length B19V mRNA transcripts at levels sufficient to support productive B19V infection.
Insights
Alternative splicing of parvovirus B19 (B19V) pre-mRNA regulates polyadenylation. Splicing in the second intron inhibits proximal polyadenylation, ensuring sufficient viral mRNA for infection.
Area of Science:
- Molecular Virology
- RNA Biology
- Gene Expression
Background:
- Parvovirus B19 (B19V) replication relies on precise alternative processing of its pre-mRNA.
- Proximal polyadenylation ((pA)p) of B19V pre-mRNA is a proposed mechanism limiting viral permissiveness by preventing capsid protein mRNA production.
Purpose of the Study:
- To elucidate the interplay between alternative splicing and alternative polyadenylation in B19V pre-mRNA processing.
- To identify the molecular mechanisms coordinating these events to regulate viral gene expression.
Main Methods:
- Analysis of B19V pre-mRNA splicing and polyadenylation in human erythroid progenitors.
- Investigation of the role of U1 RNA binding to splice sites.
- Utilizing Morpholino antisense oligonucleotides to inhibit specific splicing events.
Main Results:
- Splicing within the first intron stimulated polyadenylation, while splicing in the second intron (containing (pA)p) inhibited it.
- Splicing in the second intron and polyadenylation at (pA)p are competing events.
- U1 RNA binding to the second intron's 5' splice site, not splicing itself, inhibits (pA)p polyadenylation.
- Inhibiting second intron splicing with Morpholinos increased distal polyadenylation ((pA)d) during B19V infection.
Conclusions:
- Alternative splicing and alternative polyadenylation are coordinated to control B19V gene expression.
- U1 RNA binding to splice sites is a key regulator of polyadenylation site selection.
- This regulatory mechanism ensures sufficient B19V mRNA for productive viral infection.
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