Changes in m6A RNA methylation contribute to heart failure progression by modulating translation

RNA甲基化 脱甲基酶 核糖核酸 甲基化 生物 表观遗传学 基因表达 N6-甲基腺苷 抄写(语言学) 细胞生物学 信使核糖核酸 DNA甲基化 基因 遗传学 甲基转移酶 哲学 语言学
作者
Tea Berulava,Eric Buchholz,Elerdashvili Vakhtang,Tonatiuh Peña Centeno,Rezaul Islam,Dawid Lbik,Belal A. Mohamed,André Renner,Dirk von Lewinski,Michael Sacherer,Katherine E. Bohnsack,Markus T. Bohnsack,Gaurav Jain,Vincenzo Capece,Nicole Cleve,Susanne Burkhardt,Gerd Hasenfuß,André Fischer,Karl Toischer
出处
期刊:European Journal of Heart Failure [Wiley]
卷期号:22 (1): 54-66 被引量:227
标识
DOI:10.1002/ejhf.1672
摘要

ABSTRACT Aims Deregulation of epigenetic processes and aberrant gene expression are important mechanisms in heart failure. Here we studied the potential relevance of m6A RNA methylation in heart failure development. Methods and results We analysed m6A RNA methylation via next‐generation sequencing. We found that approximately one quarter of the transcripts in the healthy mouse and human heart exhibit m6A RNA methylation. During progression to heart failure we observed that changes in m6A RNA methylation exceed changes in gene expression both in mouse and human. RNAs with altered m6A RNA methylation were mainly linked to metabolic and regulatory pathways, while changes in RNA expression level mainly represented changes in structural plasticity. Mechanistically, we could link m6A RNA methylation to altered RNA translation and protein production. Interestingly, differentially methylated but not differentially expressed RNAs showed differential polysomal occupancy, indicating transcription‐independent modulation of translation. Furthermore, mice with a cardiomyocyte restricted knockout of the RNA demethylase Fto exhibited an impaired cardiac function compared to control mice. Conclusions We could show that m6A landscape is altered in heart hypertrophy and heart failure. m6A RNA methylation changes lead to changes in protein abundance, unconnected to mRNA levels. This uncovers a new transcription‐independent mechanisms of translation regulation. Therefore, our data suggest that modulation of epitranscriptomic processes such as m6A methylation might be an interesting target for therapeutic interventions.
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