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14-3-3ε Plays a Role in Cardiac Ventricular Compaction by Regulating the Cardiomyocyte Cell Cycle
Author(s) -
Yasuhiro Kosaka,
Katarzyna A. Cieslik,
Ling Li,
George Lezin,
Colin T. Maguire,
Yukio Saijoh,
Kazuhito Toyooka,
Michael J. Gambello,
Matteo Vatta,
Anthony WynshawBoris,
Antonio Baldini,
H. Joseph Yost,
Luca Brunelli
Publication year - 2012
Publication title -
molecular and cellular biology
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 2.14
H-Index - 327
eISSN - 1067-8824
pISSN - 0270-7306
DOI - 10.1128/mcb.00829-12
Subject(s) - biology , cell cycle , microbiology and biotechnology , cyclin , downregulation and upregulation , left ventricular noncompaction , cardiac cycle , cell growth , cardiomyopathy , medicine , gene , heart failure , genetics
Trabecular myocardium accounts for the majority of the ventricles during early cardiogenesis, but compact myocardium is the primary component at later developmental stages. Elucidation of the genes regulating compact myocardium development is essential to increase our understanding ofl eftv entricularn onc ompaction (LVNC), a cardiomyopathy characterized by increased ratios of trabecular to compact myocardium. 14-3-3ε is an adapter protein expressed in the lateral plate mesoderm, but itsin vivo cardiac functions remain to be defined. Here we show that 14-3-3ε is expressed in the developing mouse heart as well as in cardiomyocytes. 14-3-3ε deletion did not appear to induce compensation by other 14-3-3 isoforms but led to ventricular noncompaction, with features similar to LVNC, resulting from a selective reduction in compact myocardium thickness. Abnormal compaction derived from a 50% decrease in cardiac proliferation as a result of a reduced number of cardiomyocytes in G2 /M and the accumulation of cardiomyocytes in the G0 /G1 phase of the cell cycle. These defects originated from downregulation of cyclin E1 and upregulation of p27Kip1 , possibly through both transcriptional and posttranslational mechanisms. Our work shows that 14-3-3ε regulates cardiogenesis and growth of the compact ventricular myocardium by modulating the cardiomyocyte cell cycle via both cyclin E1 and p27Kip1 . These data are consistent with the long-held view that human LVNC may result from compaction arrest, and they implicate 14-3-3ε as a new candidate gene in congenital human cardiomyopathies.

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