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.

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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