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Published on: October 9, 2014
Cardiomyocyte-Specific Long Noncoding RNA Regulates Alternative Splicing of the Triadin Gene in the Heart
Yuanbiao Zhao1, Andrew S Riching1,2,3, Walter E Knight1,2,3
1Division of Cardiology, Department of Medicine (Y.Z., A.S.R., W.E.K., C.C., Y.D., A.V.A., L.A.W., K.C.W., M.R.B., P.M.B., K.S.), University of Colorado Anschutz Medical Campus, Aurora.
Insights
A novel long noncoding RNA, Trdn-as, is crucial for maintaining cardiac function by regulating triadin splicing. Its absence impairs calcium handling and increases arrhythmia risk in heart disease.
Area of Science:
- Cardiology
- Molecular Biology
- Genetics
Background:
- Abnormal calcium (Ca2+) homeostasis is linked to cardiac arrhythmias and heart failure.
- Triadin protein isoforms are critical for Ca2+ handling in cardiomyocytes, and mutations affecting Trisk32 levels cause cardiac dysfunction.
- Mechanisms governing triadin isoform composition in the heart are not well understood.
Purpose of the Study:
- To investigate the role of the cardiomyocyte-specific long noncoding RNA, Trdn-as, in regulating cardiac function and triadin gene splicing.
- To elucidate the molecular mechanisms by which Trdn-as influences triadin levels and cardiomyocyte calcium handling.
Main Methods:
- Analysis of triadin expression in human heart explants and Trdn-as knockout mouse models.
- Assessment of cardiac function and arrhythmogenesis using ECG and catecholamine challenge.
- Measurement of Ca2+ transients in cardiomyocytes.
- Biochemistry, RNA sequencing, and molecular rescue assays were employed.
Main Results:
- Trdn-as knockout in mice led to reduced cardiac triadin, impaired Ca2+ handling, and increased susceptibility to arrhythmias.
- Normalization of cardiac triadin levels restored Ca2+ handling in knockout cardiomyocytes.
- Trdn-as interacts with splicing factors in cardiomyocyte nuclei, facilitating their recruitment to triadin precursor mRNA.
Conclusions:
- Trdn-as regulates cardiac function through alternative splicing of the triadin gene, representing a novel mechanism for long noncoding RNA control.
- Targeting Trdn-as or alternative splicing pathways offers potential therapeutic strategies for heart disease.
Background:
Abnormalities in Ca2+ homeostasis are associated with cardiac arrhythmias and heart failure. Triadin plays an important role in Ca2+ homeostasis in cardiomyocytes. Alternative splicing of a single triadin gene produces multiple triadin isoforms. The cardiac-predominant isoform, mouse MT-1 or human Trisk32, is encoded by triadin exons 1 to 8. In humans, mutations in the triadin gene that lead to a reduction in Trisk32 levels in the heart can cause cardiac dysfunction and arrhythmias. Decreased levels of Trisk32 in the heart are also common in patients with heart failure. However, mechanisms that maintain triadin isoform composition in the heart remain elusive.
Methods:
We analyzed triadin expression in heart explants from patients with heart failure and cardiac arrhythmias and in hearts from mice carrying a knockout allele for Trdn-as, a cardiomyocyte-specific long noncoding RNA encoded by the antisense strand of the triadin gene, between exons 9 and 11. Catecholamine challenge with isoproterenol was performed on Trdn-as knockout mice to assess the role of Trdn-as in cardiac arrhythmogenesis, as assessed by ECG. Ca2+ transients in adult mouse cardiomyocytes were measured with the IonOptix platform or the GCaMP system. Biochemistry assays, single-molecule fluorescence in situ hybridization, subcellular localization imaging, RNA sequencing, and molecular rescue assays were used to investigate the mechanisms by which Trdn-as regulates cardiac function and triadin levels in the heart.
Results:
We report that Trdn-as maintains cardiac function, at least in part, by regulating alternative splicing of the triadin gene. Knockout of Trdn-as in mice downregulates cardiac triadin, impairs Ca2+ handling, and causes premature death. Trdn-as knockout mice are susceptible to cardiac arrhythmias in response to catecholamine challenge. Normalization of cardiac triadin levels in Trdn-as knockout cardiomyocytes is sufficient to restore Ca2+ handling. Last, Trdn-as colocalizes and interacts with serine/arginine splicing factors in cardiomyocyte nuclei and is essential for efficient recruitment of splicing factors to triadin precursor mRNA.
Conclusions:
These findings reveal regulation of alternative splicing as a novel mechanism by which a long noncoding RNA controls cardiac function. This study indicates potential therapeutics for heart disease by targeting the long noncoding RNA or pathways regulating alternative splicing.
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