Low RNA stability signifies increased post-transcriptional regulation of cell identity genes

Author:

Li Yanqiang123,Yi Yang4,Lv Jie3,Gao Xinlei123,Yu Yang12,Babu Sahana Suresh3,Bruno Ivone3,Zhao Dongyu123ORCID,Xia Bo3,Peng Weiqun5ORCID,Zhu Jun6,Chen Hong78,Zhang Lili123,Cao Qi4ORCID,Chen Kaifu123910ORCID

Affiliation:

1. Basic and Translational Research Division, Department of Cardiology, Boston Children's Hospital , Boston , MA 02115, USA

2. Department of Pediatrics, Harvard Medical School , Boston , MA 02115, USA

3. Houston Methodist Research Institute, The Methodist Hospital System , Houston , TX 77030, USA

4. Department of Urology, Robert H. Lurie Comprehensive Cancer Center, Feinberg School of Medicine, Northwestern University , Chicago , IL 60611, USA

5. Department of Physics, The George Washington University , Washington , DC 20052, USA

6. Systems Biology Center, National Heart Lung and Blood Institute , NIH, Bethesda , MD 20892 , USA

7. Vascular Biology Program, Boston Children's Hospital , Boston , MA 02115, USA

8. Department of Surgery, Harvard Medical School , Boston , MA 02115, USA

9. Broad Institute of MIT and Harvard , Boston , MA 02115, USA

10. Dana-Farber/Harvard Cancer Center , Boston , MA 02115, USA

Abstract

Abstract Cell identity genes are distinct from other genes with respect to the epigenetic mechanisms to activate their transcription, e.g. by super-enhancers and broad H3K4me3 domains. However, it remains unclear whether their post-transcriptional regulation is also unique. We performed a systematic analysis of transcriptome-wide RNA stability in nine cell types and found that unstable transcripts were enriched in cell identity-related pathways while stable transcripts were enriched in housekeeping pathways. Joint analyses of RNA stability and chromatin state revealed significant enrichment of super-enhancers and broad H3K4me3 domains at the gene loci of unstable transcripts. Intriguingly, the RNA m6A methyltransferase, METTL3, preferentially binds to chromatin at super-enhancers, broad H3K4me3 domains and their associated genes. METTL3 binding intensity is positively correlated with RNA m6A methylation and negatively correlated with RNA stability of cell identity genes, probably due to co-transcriptional m6A modifications promoting RNA decay. Nanopore direct RNA-sequencing showed that METTL3 knockdown has a stronger effect on RNA m6A and mRNA stability for cell identity genes. Our data suggest a run-and-brake model, where cell identity genes undergo both frequent transcription and fast RNA decay to achieve precise regulation of RNA expression.

Funder

National Institute of Health

U.S. Department of Defense

Prostate SPORE

Polsky Urologic Cancer Institute of the Robert H. Lurie Comprehensive Cancer Center of Northwestern University at Northwestern Memorial Hospital

Northwestern University NUseq facility

NIH

Publisher

Oxford University Press (OUP)

Subject

Genetics

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