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Engineering Artificial Factors to Specifically Manipulate Alternative Splicing in Human Cells
Published on: April 26, 2017
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
Abstract:
Association of AUF1 with A + U-rich elements (AREs) induces rapid cytoplasmic degradation of mRNAs containing these sequences, involving the recruitment or assembly of multisubunit trans-acting complexes on the mRNA. Recently, we reported that Mg(2+)-induced conformational changes in the ARE from tumor necrosis factor alpha mRNA inhibited AUF1 binding and oligomerization activities on this substrate (Wilson, G. M., Sutphen, K., Chuang, K., and Brewer, G. (2001) J. Biol. Chem. 276, 8695-8704). In this study, resonance energy transfer was employed to characterize structural changes in RNA substrates in response to cation- and AUF1-binding events. An RNA substrate containing the tumor necrosis factor alpha ARE displayed a weak conformational transition in the absence of added cations but was cooperatively stabilized by Mg(2+). Additional assays demonstrated a strong preference for small, multivalent cations, suggesting that the folded RNA structure was stabilized by counterion neutralization at discrete regions of high negative charge density. Association of AUF1 with cognate RNA substrates also induced formation of condensed RNA structures, although distinct from the folded structure stabilized by multivalent cations. Taken together, these experiments indicate that association of AUF1 with an ARE may function to remodel local RNA structures, which may be a prerequisite for subsequent recruitment of additional trans-acting factors.
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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