Identification of the Mtus1 Splice Variant as a Novel Inhibitory Factor Against Cardiac Hypertrophy

Author:

Ito Shin1,Asakura Masanori2,Liao Yulin3,Min Kyung‐Duk1,Takahashi Ayako1,Shindo Kazuhiro1,Yamazaki Satoru1,Tsukamoto Osamu4,Asanuma Hiroshi5,Mogi Masaki6,Horiuchi Masatsugu6,Asano Yoshihiro7,Sanada Shoji7,Minamino Tetsuo7,Takashima Seiji4,Mochizuki Naoki1,Kitakaze Masafumi2

Affiliation:

1. Department of Cell Biology, National Cerebral and Cardiovascular Center, Osaka, Japan

2. Department of Clinical Research and Development, National Cerebral and Cardiovascular Center, Osaka, Japan

3. Department of Cardiology, Nanfang Hospital, Southern Medical University, Guangzhou, China

4. Department of Medical Biochemistry, Osaka University Graduate School of Medicine, Osaka, Japan

5. Department of Cardiovascular Medicine, Kyoto Prefectural University of Medicine, Kyoto, Japan

6. Department of Molecular Cardiovascular Biology and Pharmacology, Graduate School of Medicine, Ehime University, Ehime, Japan

7. Department of Cardiovascular Medicine, Osaka University Graduate School of Medicine, Osaka, Japan

Abstract

Background In cardiac hypertrophy and failure, there is a widespread alteration in mRNA splicing, but the role of splice variants in cardiac hypertrophy has not yet been fully elucidated. In this study, we used an exon array to identify novel splice variants associated with cardiac hypertrophy. Methods and Results We performed genome‐wide exon array analysis and developed a splicing profile in murine hearts with hypertrophy induced by transverse aortic constriction for 8 weeks. Following global analysis of splice variants using the Mouse Exon 1.0 ST Array, we identified 46 spliced genes and narrowed our focus to 1 gene, mitochondrial tumor suppressor 1 ( Mtus1 ), whose splice variants were registered in the NCBI RefSeq database. Notably, one of the splice variants Mtus1A was specifically upregulated, although the total expression of the Mtus1 gene remained unchanged. We showed that Mtus1A was localized in the mitochondria, and its expression level increased with the degree of cardiac hypertrophy. In cultured cardiomyocytes, Mtus1A overexpression reduced phenylephrine‐induced reactive oxygen species production and consequent ERK phosphorylation, resulting in a decrease in both cell size and protein synthesis. In vivo, cardiac‐specific Mtus1A transgenic mice showed left ventricle wall thinning and a reduced hypertrophic response to pressure overload and phenylephrine treatment. Conclusions We found that Mtus1 is specifically spliced in hypertrophic hearts and that the Mtus1A variant has an inhibitory effect on cardiac hypertrophy. Mtus1A is, therefore, a possible diagnostic and therapeutic target for cardiac hypertrophy and failure.

Publisher

Ovid Technologies (Wolters Kluwer Health)

Subject

Cardiology and Cardiovascular Medicine

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