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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.
Abstract:
A central feature of heart disease is a molecular remodeling of signaling pathways in cardiac myocytes. This study focused on novel molecular elements of MAPK-mediated alterations in the pattern of gene expression of the protein phosphatase 2A (PP2A). In an established model of sustained JNK activation, a 70% decrease in expression of the targeting subunit of PP2A, B56alpha, was observed in either neonatal or adult cardiomyocytes. This loss in protein abundance was accompanied by a decrease of 69% in B56alpha mRNA steady-state levels. Given that the 3'-untranslated region of this transcript contains adenylate-uridylate-rich elements known to regulate mRNA degradation, experiments explored the notion that instability of B56alpha mRNA accounts for the response. mRNA time-course analyses with real-time PCR methods showed that B56alpha transcript was transformed from a stable (no significant decay over 1 h) to a labile form that rapidly degraded within minutes. These results were supported by complementary experiments that revealed that the RNA-binding protein AUF1, known to destabilize target mRNA, was increased fourfold in JNK-activated cells. A variety of other stress-related stimuli, such as p38 MAPK activation and phorbol ester, upregulated AUF1 expression in cultured cardiac cells as well. In addition, gel mobility shift assays demonstrated that p37AUF1 binds with nanomolar affinity to segments of the B56alpha 3'-untranslated region. Thus these studies provide new evidence that signaling-induced mRNA instability is an important mechanism that underlies the changes in the pattern of gene expression evoked by stress-activated pathways in cardiac cells.
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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