1. A long noncoding RNA protects the heart from pathological hypertrophy
- Author
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Chien Jung Lin, Daniel Bernstein, Wei Li, Yiqin Xiong, Euan A. Ashley, Jin Yang, Peng Sheng Chen, Bin Zhou, Ching Pin Chang, Ching Shang, Pei Han, Huei Sheng Vincent Chen, Chieh Yu Lin, Sylvia T. Nurnberg, Thomas Quertermous, Huan-Chieh Chien, Kevin K. Jin, Chiou-Hong Lin, and Weihong Xu
- Subjects
Poly (ADP-Ribose) Polymerase-1 ,Repressor ,Cardiomegaly ,Biology ,Editorials: Cell Cycle Features ,Histone Deacetylases ,Mice ,Transcription (biology) ,Gene expression ,Animals ,Humans ,Transcription factor ,Gene ,Regulation of gene expression ,Genetics ,Feedback, Physiological ,Heart Failure ,Multidisciplinary ,Myosin Heavy Chains ,Myocardium ,DNA Helicases ,RNA ,Nuclear Proteins ,Chromatin Assembly and Disassembly ,Chromatin ,Protein Structure, Tertiary ,Organ Specificity ,RNA, Long Noncoding ,Poly(ADP-ribose) Polymerases ,Cardiomyopathies ,Cardiac Myosins ,Protein Binding ,Transcription Factors - Abstract
The role of long noncoding RNA (lncRNA) in adult hearts is unknown; also unclear is how lncRNA modulates nucleosome remodelling. An estimated 70% of mouse genes undergo antisense transcription, including myosin heavy chain 7 (Myh7), which encodes molecular motor proteins for heart contraction. Here we identify a cluster of lncRNA transcripts from Myh7 loci and demonstrate a new lncRNA-chromatin mechanism for heart failure. In mice, these transcripts, which we named myosin heavy-chain-associated RNA transcripts (Myheart, or Mhrt), are cardiac-specific and abundant in adult hearts. Pathological stress activates the Brg1-Hdac-Parp chromatin repressor complex to inhibit Mhrt transcription in the heart. Such stress-induced Mhrt repression is essential for cardiomyopathy to develop: restoring Mhrt to the pre-stress level protects the heart from hypertrophy and failure. Mhrt antagonizes the function of Brg1, a chromatin-remodelling factor that is activated by stress to trigger aberrant gene expression and cardiac myopathy. Mhrt prevents Brg1 from recognizing its genomic DNA targets, thus inhibiting chromatin targeting and gene regulation by Brg1. It does so by binding to the helicase domain of Brg1, a domain that is crucial for tethering Brg1 to chromatinized DNA targets. Brg1 helicase has dual nucleic-acid-binding specificities: it is capable of binding lncRNA (Mhrt) and chromatinized--but not naked--DNA. This dual-binding feature of helicase enables a competitive inhibition mechanism by which Mhrt sequesters Brg1 from its genomic DNA targets to prevent chromatin remodelling. A Mhrt-Brg1 feedback circuit is thus crucial for heart function. Human MHRT also originates from MYH7 loci and is repressed in various types of myopathic hearts, suggesting a conserved lncRNA mechanism in human cardiomyopathy. Our studies identify a cardioprotective lncRNA, define a new targeting mechanism for ATP-dependent chromatin-remodelling factors, and establish a new paradigm for lncRNA-chromatin interaction.
- Published
- 2013