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Published on: June 3, 2018
Repression of cardiac phospholamban gene expression is mediated by thyroid hormone receptor-{alpha}1 and involves
Madesh Belakavadi1, Jason Saunders, Noah Weisleder
1Department of Physiology and Biophysics, Robert Wood Johnson Medical School, University of Medicine and Dentistry of New Jersey, Piscataway, New Jersey 08854, USA.
Insights
Thyroid hormone (T3) represses phospholamban (PLB) gene expression in heart cells by TRalpha1 directly binding the PLB promoter. This mechanism involves histone modifications, revealing how T3 regulates cardiac function.
Area of Science:
- Molecular biology
- Cardiovascular research
- Gene regulation
Background:
- Phospholamban (PLB) regulates cardiac calcium cycling, and its gene expression is suppressed by thyroid hormone (T3).
- The precise molecular mechanisms of T3-mediated gene silencing in cardiac muscle remain largely unknown.
- Direct binding of thyroid hormone receptors (TRs) to the PLB gene in vivo and their role in transcriptional repression are unclear.
Purpose of the Study:
- To investigate the regulatory role of TRs in PLB transcription in cardiac myocytes.
- To determine if TRs directly bind the PLB gene promoter in vivo.
- To elucidate the molecular mechanisms underlying T3-dependent PLB gene silencing.
Main Methods:
- Utilized a murine cardiac cell line (HL-1) expressing TRalpha1 and TRbeta1.
- Performed RNA interference assays to assess the role of TR subtypes.
- Employed reporter gene assays with the PLB core promoter.
- Conducted chromatin immunoprecipitation and in vitro binding assays.
- Analyzed changes in histone modifications (acetylation, H3K4 methylation) upon T3 addition.
Main Results:
- TRalpha1, not TRbeta1, is essential for T3-dependent PLB gene repression in HL-1 cells.
- A PLB reporter gene (-156 to +64) showed robust T3-dependent silencing, indicating the core promoter's importance.
- TRalpha1 directly binds to the PLB core promoter region.
- T3 addition induced a decrease in histone H3 acetylation and H3 lysine 4 methylation at the PLB promoter.
Conclusions:
- T3-dependent repression of PLB in cardiac myocytes is directly mediated by TRalpha1 binding to the PLB core promoter.
- This process involves the recruitment of histone-modifying enzymes, leading to transcriptional silencing.
- The findings clarify a key mechanism of thyroid hormone action in regulating cardiac gene expression.
Abstract:
Phospholamban (PLB) is a critical regulator of Ca(2+) cycling in heart muscle cells, and its gene expression is markedly down-regulated by T(3). Nonetheless, little is known about the molecular mechanisms of T(3)-dependent gene silencing in cardiac muscle, and it remains unclear whether thyroid hormone receptors (TRs) directly bind at the PLB gene in vivo and facilitate transcriptional repression. To investigate the regulatory role of TRs in PLB transcription, we used a physiological murine heart muscle cell line (HL-1) that retains cardiac electrophysiological properties, expresses both TRalpha1 and TRbeta1 subtypes, and exhibits T(3)-dependent silencing of PLB expression. By performing RNA interference assays with HL-1 cells, we found that TRalpha1, but not TRbeta1, is essential for T(3)-dependent PLB gene repression. Interestingly, a PLB reporter gene containing only the core promoter sequences -156 to +64 displayed robust T(3)-dependent silencing in HL-1 cells, thus suggesting that transcriptional repression is facilitated by TRalpha1 via the PLB core promoter, a regulatory region highly conserved in mammals. Consistent with this notion, chromatin immunoprecipitation and in vitro binding assays show that TRalpha1 directly binds at the PLB core promoter region. Furthermore, addition of T(3) triggered alterations in covalent histone modifications at the PLB promoter that are associated with gene silencing, namely a pronounced decrease in both histone H3 acetylation and histone H3 lysine 4 methylation. Taken together, our data reveal that T(3)-dependent repression of PLB in cardiac myocytes is directly facilitated by TRalpha1 and involves the hormone-dependent recruitment of histone-modifying enzymes associated with transcriptional silencing.
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