Mitochondrial dysfunction reveals the role of mRNA poly(A) tail regulation in oculopharyngeal muscular dystrophy

Aymeric Chartier1, Pierre Klein2, Stéphanie Pierson1

  • 1mRNA Regulation and Development, Institut de Génétique Humaine, CNRS UPR1142, Montpellier, France.

Plos Genetics
|March 28, 2015
PubMed

Insights

Oculopharyngeal muscular dystrophy (OPMD) involves shortened mRNA poly(A) tails, leading to mitochondrial dysfunction. Reducing deadenylation in models improves muscle function, revealing new therapeutic targets for this genetic muscle disorder.

Area of Science:

  • Molecular Biology
  • Genetics
  • Neuroscience

Background:

  • Oculopharyngeal muscular dystrophy (OPMD) is a late-onset muscle degeneration disorder.
  • It is caused by expanded polyalanine tracts in the nuclear poly(A) binding protein 1 (PABPN1).
  • The precise molecular mechanisms underlying OPMD pathogenesis are not fully understood.

Purpose of the Study:

  • To investigate the molecular mechanisms of OPMD pathogenesis.
  • To identify key molecular players and pathways involved in OPMD progression.
  • To explore potential therapeutic strategies by targeting mRNA regulation.

Main Methods:

  • Utilized Drosophila and mouse models of OPMD.
  • Analyzed poly(A) tail lengths of specific mRNAs.
  • Performed genetic analysis of RNA binding proteins, focusing on Smaug.
  • Assessed mRNA cleavage and polyadenylation reactions in affected muscles.
  • Investigated the role of the CCR4-NOT deadenylation complex.

Main Results:

  • OPMD pathogenesis is linked to altered poly(A) tail lengths of specific mRNAs.
  • MRNAs encoding mitochondrial proteins are downregulated early in OPMD, correlating with shortened poly(A) tails.
  • Genetic reduction of deadenylation partially rescues mRNA levels and improves muscle function.
  • Smaug, a deadenylation regulator, binds to downregulated mRNAs in OPMD muscles.
  • Impaired mRNA cleavage during nuclear polyadenylation is an early defect in OPMD.

Conclusions:

  • Impaired mRNA cleavage and subsequent deadenylation, involving Smaug and CCR4-NOT, lead to mRNA destabilization and mitochondrial dysfunction in OPMD.
  • These findings highlight the critical role of mRNA regulation in OPMD pathogenesis.
  • The study provides insights into potential therapeutic targets for OPMD and related neurodegenerative disorders involving mitochondrial dysfunction.

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