<p>Duchenne muscular dystrophy (DMD) is a muscle-degenerating disease caused by mutations in the <i>DMD</i> gene, which encodes the dystrophin protein<sup><CitationRef CitationID="CR1">1</CitationRef>,<CitationRef CitationID="CR2">2</CitationRef></sup>. Utrophin (<i>UTRN</i>), the genetic and functional paralogue of <i>DMD</i>, is upregulated in some DMD patients<sup><CitationRef AdditionalCitationIDS="CR4" CitationID="CR3">3</CitationRef>–<CitationRef CitationID="CR5">5</CitationRef></sup>. To further investigate this <i>UTRN</i> upregulation, we first developed an inducible messenger RNA (mRNA) degradation system for <i>DMD</i> by introducing a premature termination codon (PTC) in one of its alternatively spliced exons. Inclusion of the PTC-containing exon triggers <i>DMD</i> mutant mRNA decay and <i>UTRN</i> upregulation. Notably, blocking nonsense-mediated mRNA decay results in the reversal of <i>UTRN</i> upregulation, whereas overexpressing <i>DMD</i> does not. Furthermore, overexpressing <i>DMD</i><sup><i>PTC</i></sup> minigenes in wild-type cells causes <i>UTRN</i> upregulation, as does a wild-type <i>DMD</i> minigene containing a self-cleaving ribozyme. To place these findings in a therapeutic context, we used splice-switching antisense oligonucleotides (ASOs) to induce the skipping of out-of-frame exons of <i>DMD</i>, aiming to introduce PTCs. We found that these ASOs cause <i>UTRN</i> upregulation. In addition, when using an ASO to restore the <i>DMD</i> reading frame in myotubes derived from a <i>DMD</i><sup><Emphasis>ΔE52</Emphasis></sup> patient, an actual DMD treatment, <i>UTRN</i> upregulation was reduced. Altogether, these results indicate that an mRNA decay-based mechanism called transcriptional adaptation<sup><CitationRef AdditionalCitationIDS="CR7" CitationID="CR6">6</CitationRef>–<CitationRef CitationID="CR8">8</CitationRef></sup> plays a key role in <i>UTRN</i> upregulation in <i>DMD</i><sup><Emphasis>PTC</Emphasis></sup> patients, and they highlight an unexplored therapeutic application of ASOs, as well as ribozymes, in inducing genetic compensation via&#xa0;transcriptional adaptation.&#xa0;</p>

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Transcriptional adaptation upregulates utrophin in Duchenne muscular dystrophy

  • Lara Falcucci,
  • Christopher M. Dooley,
  • Douglas Adamoski,
  • Thomas Juan,
  • Justin Martinez,
  • Angelina M. Georgieva,
  • Kamel Mamchaoui,
  • Cansu Cirzi,
  • Didier Y. R. Stainier

摘要

Duchenne muscular dystrophy (DMD) is a muscle-degenerating disease caused by mutations in the DMD gene, which encodes the dystrophin protein1,2. Utrophin (UTRN), the genetic and functional paralogue of DMD, is upregulated in some DMD patients35. To further investigate this UTRN upregulation, we first developed an inducible messenger RNA (mRNA) degradation system for DMD by introducing a premature termination codon (PTC) in one of its alternatively spliced exons. Inclusion of the PTC-containing exon triggers DMD mutant mRNA decay and UTRN upregulation. Notably, blocking nonsense-mediated mRNA decay results in the reversal of UTRN upregulation, whereas overexpressing DMD does not. Furthermore, overexpressing DMDPTC minigenes in wild-type cells causes UTRN upregulation, as does a wild-type DMD minigene containing a self-cleaving ribozyme. To place these findings in a therapeutic context, we used splice-switching antisense oligonucleotides (ASOs) to induce the skipping of out-of-frame exons of DMD, aiming to introduce PTCs. We found that these ASOs cause UTRN upregulation. In addition, when using an ASO to restore the DMD reading frame in myotubes derived from a DMDΔE52 patient, an actual DMD treatment, UTRN upregulation was reduced. Altogether, these results indicate that an mRNA decay-based mechanism called transcriptional adaptation68 plays a key role in UTRN upregulation in DMDPTC patients, and they highlight an unexplored therapeutic application of ASOs, as well as ribozymes, in inducing genetic compensation via transcriptional adaptation.