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Histone methyltransferase Smyd1 regulates mitochondrial energetics in the heart.
Citation | “Histone Methyltransferase Smyd1 Regulates Mitochondrial Energetics In The Heart.”. Proceedings Of The National Academy Of Sciences Of The United States Of America, pp. E7871-E7880. . |
Center | Washington University in St Louis |
Author | Junco S Warren, Christopher M Tracy, Mickey R Miller, Aman Makaju, Marta W Szulik, Shin-Ichi Oka, Tatiana N Yuzyuk, James E Cox, Anil Kumar, Bucky K Lozier, Li Wang, June García Llana, Amira D Sabry, Keiko M Cawley, Dane W Barton, Yong Hwan Han, Sihem Boudina, Oliver Fiehn, Haley O Tucker, Alexey Zaitsev V, Sarah Franklin |
Keywords | PGC-1a, Smyd1, heart, Metabolism, systems biology |
Abstract |
Smyd1, a muscle-specific histone methyltransferase, has established roles in skeletal and cardiac muscle development, but its role in the adult heart remains poorly understood. Our prior work demonstrated that cardiac-specific deletion of Smyd1 in adult mice (Smyd1-KO) leads to hypertrophy and heart failure. Here we show that down-regulation of mitochondrial energetics is an early event in these Smyd1-KO mice preceding the onset of structural abnormalities. This early impairment of mitochondrial energetics in Smyd1-KO mice is associated with a significant reduction in gene and protein expression of PGC-1α, PPARα, and RXRα, the master regulators of cardiac energetics. The effect of Smyd1 on PGC-1α was recapitulated in primary cultured rat ventricular myocytes, in which acute siRNA-mediated silencing of Smyd1 resulted in a greater than twofold decrease in PGC-1α expression without affecting that of PPARα or RXRα. In addition, enrichment of histone H3 lysine 4 trimethylation (a mark of gene activation) at the PGC-1α locus was markedly reduced in Smyd1-KO mice, and Smyd1-induced transcriptional activation of PGC-1α was confirmed by luciferase reporter assays. Functional confirmation of Smyd1's involvement showed an increase in mitochondrial respiration capacity induced by overexpression of Smyd1, which was abolished by siRNA-mediated PGC-1α knockdown. Conversely, overexpression of PGC-1α rescued transcript expression and mitochondrial respiration caused by silencing Smyd1 in cardiomyocytes. These findings provide functional evidence for a role of Smyd1, or any member of the Smyd family, in regulating cardiac energetics in the adult heart, which is mediated, at least in part, via modulating PGC-1α. |
Year of Publication |
2018
|
Journal |
Proceedings of the National Academy of Sciences of the United States of America
|
Volume |
115
|
Issue |
33
|
Number of Pages |
E7871-E7880
|
Date Published |
12/2018
|
ISSN Number |
1091-6490
|
DOI |
10.1073/pnas.1800680115
|
Alternate Journal |
Proc. Natl. Acad. Sci. U.S.A.
|
PMID |
30061404
|
PMCID |
PMC6099878
|
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