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December 26, 2002Proceedings of the National Academy of Sciences1,092 citationsOpen Access

Evidence for the widespread coupling of alternative splicing and nonsense-mediated mRNA decay in humans

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BLBenjamin P. LewisRGRichard E. GreenSBSteven E. Brenner

Key Points

  • This research aims to investigate the connection between alternative splicing and nonsense-mediated mRNA decay in human genes.
  • Conducted a large-scale analysis of reliable alternative isoforms of known human genes.
  • Classified each isoform based on splice patterns and supporting evidence.
  • Filtered transcripts to assess the prevalence of premature termination codons.
  • One-third of the alternative transcripts reviewed contain premature termination codons.
  • Most identified transcripts are targeted by nonsense-mediated mRNA decay (NMD), despite rigorous filtering.
  • Findings suggest that regulated unproductive splicing and translation may regulate protein expression through a coupling mechanism.

Abstract

To better understand the role of alternative splicing, we conducted a large-scale analysis of reliable alternative isoforms of known human genes. Each isoform was classified according to its splice pattern and supporting evidence. We found that one-third of the alternative transcripts examined contain premature termination codons, and most persist even after rigorous filtering by multiple methods. These transcripts are apparent targets of nonsense-mediated mRNA decay (NMD), a surveillance mechanism that selectively degrades nonsense mRNAs. Several of these transcripts are from genes for which alternative splicing is known to regulate protein expression by generating alternate isoforms that are differentially subjected to NMD. We propose that regulated unproductive splicing and translation (RUST), through the coupling of alternative splicing and NMD, may be a pervasive, underappreciated means of regulating protein expression.

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Cite This Study

Lewis et al. (2002) studied this question.

synapsesocial.com/papers/69d73482aa68b335b4f30785https://doi.org/10.1073/pnas.0136770100
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