Structural remodeling of an A + U-rich RNA element by cation or AUF1 binding

G M Wilson1, K Sutphen, M Moutafis

  • 1Department of Molecular Genetics and Microbiology, University of Medicine and Dentistry of New Jersey, Robert Wood Johnson Medical School, Piscataway, New Jersey 08854, USA. wilsongm@umdnj.edu

Insights

AUF1 protein binding to AU-rich elements (AREs) on mRNA triggers rapid degradation. This study shows Mg(2+) stabilizes ARE RNA structure, and AUF1 binding induces distinct RNA condensates, potentially remodeling RNA for factor recruitment.

Area of Science:

  • Biochemistry
  • Molecular Biology
  • RNA Biology

Background:

  • AUF1 protein binds to AU-rich elements (AREs) in mRNA, promoting rapid cytoplasmic degradation.
  • Mg(2+) ions influence ARE conformation and AUF1 binding, as previously reported.
  • Understanding RNA structural dynamics is crucial for deciphering gene regulation.

Purpose of the Study:

  • To characterize structural changes in RNA substrates upon cation and AUF1 binding using resonance energy transfer.
  • To investigate the role of cations in stabilizing ARE RNA structure.
  • To elucidate how AUF1 association with AREs affects RNA conformation.

Main Methods:

  • Resonance energy transfer (RET) assays to monitor RNA structural changes.
  • Utilized RNA substrates containing the tumor necrosis factor alpha ARE.
  • Investigated effects of various cations and AUF1 protein binding.

Main Results:

  • The tumor necrosis factor alpha ARE showed a weak conformational transition without cations but was stabilized by Mg(2+).
  • Small, multivalent cations preferentially stabilized the folded RNA structure via counterion neutralization.
  • AUF1 binding induced condensed RNA structures distinct from cation-stabilized conformations.

Conclusions:

  • Mg(2+) and other multivalent cations stabilize ARE RNA structure through counterion binding.
  • AUF1 association with AREs induces unique RNA structural remodeling.
  • RNA structural remodeling by AUF1 may be essential for recruiting other trans-acting factors for mRNA degradation.

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