JNK activation decreases PP2A regulatory subunit B56alpha expression and mRNA stability and increases AUF1 expression

Nicole D Glaser1, Yevgeniya O Lukyanenko, Yibin Wang

  • 1Department of Biochemistry and Molecular Biology, University of Maryland School of Medicine, 108 N. Greene St., Baltimore, MD 21201, USA.

Insights

Stress-activated pathways in heart cells reduce B56alpha protein by increasing B56alpha mRNA instability. This involves the RNA-binding protein AUF1, impacting gene expression in heart disease.

Area of Science:

  • Molecular biology
  • Cardiovascular research
  • Gene expression regulation

Background:

  • Heart disease involves molecular remodeling of cardiac myocyte signaling pathways.
  • Mitogen-activated protein kinase (MAPK) pathways are implicated in these alterations.
  • Protein phosphatase 2A (PP2A) is a key regulator affected by these pathways.

Purpose of the Study:

  • To investigate novel molecular elements of MAPK-mediated alterations in PP2A gene expression.
  • To determine the role of B56alpha subunit regulation in stress-induced cardiac remodeling.
  • To elucidate the mechanism of B56alpha expression changes in response to JNK activation.

Main Methods:

  • Utilized a model of sustained JNK activation in neonatal and adult cardiomyocytes.
  • Performed mRNA time-course analyses using real-time PCR to assess transcript stability.
  • Investigated the role of the RNA-binding protein AUF1 using gel mobility shift assays and expression analysis.

Main Results:

  • Sustained JNK activation led to a 70% decrease in B56alpha protein and 69% decrease in B56alpha mRNA levels.
  • B56alpha mRNA transitioned from stable to labile, rapidly degrading within minutes.
  • AUF1 protein expression increased fourfold in JNK-activated cells and bound to B56alpha mRNA's 3'-UTR.

Conclusions:

  • Signaling-induced mRNA instability is a key mechanism regulating gene expression in stress-activated pathways within cardiac cells.
  • The findings highlight a novel regulatory role for AUF1 in controlling B56alpha expression during cellular stress.
  • This mechanism provides insights into the molecular basis of cardiac remodeling in heart disease.

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