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Updated: Aug 5, 2025

Using the E1A Minigene Tool to Study mRNA Splicing Changes
Published on: April 22, 2021
Regulation of Arp5 expression by alternative splicing coupled to nonsense-mediated RNA decay
Tsuyoshi Morita1, Ken'ichiro Hayashi2
1Department of Biology, Wakayama Medical University, 580 Mikazura, Wakayama, 641-0011, Japan.
Abstract:
Actin-related protein 5 (ARP5) inhibits the differentiation of skeletal, smooth, and cardiac muscle tissues, and ARP5 expression increases or decreases according to physiological and pathological changes in the muscle differentiation status. However, the regulatory mechanisms of ARP5 expression are largely unknown. Here, we identified a novel Arp5 mRNA isoform that contains premature termination codons in alternative exon 7b and is thus targeted by nonsense-mediated mRNA decay (NMD). In mouse skeletal muscle cells, switching from the canonical Arp5 isoform, i.e., Arp5(7a), to the NMD-targeted isoform Arp5(7b) occurred during differentiation, suggesting that Arp5 expression is regulated by alternative splicing coupled to NMD (AS-NMD). We developed an original method to accurately quantify the proportion of both Arp5 isoforms and measured higher levels of Arp5(7b) in muscle and brain tissues, where ARP5 is less expressed. The 3' splice site in Arp5 exon 7 has an unusual acceptor sequence that often leads to the skip of the authentic splice site and the use of the cryptic splice site localized 16 bases downstream. When the unusual acceptor sequence was mutated to the usual one, the Arp5(7b) isoform was barely detectable. The expression of several splicing factors involved in 3' splice site recognition was reduced after muscle differentiation. Additionally, knockdown of splicing factors increased the levels of Arp5(7b) and decreased the expression of Arp5(7a). Furthermore, strong positive correlations were found between Arp5 expression and the levels of these splicing factors in human skeletal and cardiac muscle tissues. Thus, Arp5 expression in muscle tissues is most likely regulated by the AS-NMD pathway.
Insights
Actin-related protein 5 (ARP5) expression during muscle differentiation is controlled by alternative splicing coupled to nonsense-mediated mRNA decay (AS-NMD). This mechanism regulates ARP5 levels, impacting muscle development.
Area of Science:
- Molecular Biology
- Cell Biology
- Gene Regulation
Background:
- Actin-related protein 5 (ARP5) plays a critical role in muscle differentiation, but its expression regulation remains unclear.
- ARP5 levels fluctuate with muscle differentiation status in various physiological and pathological conditions.
Purpose of the Study:
- To elucidate the regulatory mechanisms governing ARP5 expression during muscle differentiation.
- To identify novel mRNA isoforms of Arp5 and their role in gene regulation.
Main Methods:
- Identification and characterization of a novel Arp5 mRNA isoform (Arp5(7b)) targeted by nonsense-mediated mRNA decay (NMD).
- Development of a quantitative method to measure Arp5(7a) and Arp5(7b) isoforms.
- Mutation analysis of the Arp5 3' splice site and assessment of splicing factor expression and function.
Main Results:
- A novel Arp5 isoform (Arp5(7b)) containing premature termination codons is generated via alternative splicing and targeted by NMD.
- Switching to the Arp5(7b) isoform occurs during muscle differentiation, indicating regulation by alternative splicing coupled to NMD (AS-NMD).
- Reduced expression of splicing factors involved in 3' splice site recognition correlates with increased Arp5(7b) and decreased Arp5(7a) levels in differentiating muscle cells.
Conclusions:
- Arp5 expression in muscle tissues is primarily regulated by the AS-NMD pathway.
- Alternative splicing of Arp5, influenced by splicing factor levels, controls its expression during muscle differentiation.
- This regulatory mechanism provides new insights into muscle development and disease.
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