Novel roles of an intragenic G-quadruplex in controlling microRNA expression and cardiac function

Author:

Zhu Min1,Gao Juan1,Lin Xian-Juan1,Gong Yun-Yun2,Qi Yan-Chao1,Ma Yuan-Liang1,Song Yuan-Xiu1,Tan Wei3,Li Fang-Yuan3,Ye Min4,Gong Jun5,Cui Qing-Hua6,Huang Zeng-Hui7,Zhang You-Yi1,Wang Xiu-Jie7ORCID,Lan Feng8,Wang Shi-Qiang2,Yuan Gu3,Feng Yue9,Xu Ming14ORCID

Affiliation:

1. Department of Cardiology, Institute of Vascular Medicine, NHC Key Laboratory of Cardiovascular Molecular Biology and RegulatoryPeptides, Key Laboratory of Molecular Cardiovascular Science, Ministry of Education, Peking University Third Hospital, Beijing 100191, China

2. State Key Laboratory of Biomembrane and Membrane Biotechnology, College of Engineering and College of Life Sciences, Peking University, Beijing 100871, China

3. Department of Chemical Biology, College of Chemistry, Peking University, Beijing 100871, China

4. State Key Laboratory of Natural and Biomimetic Drugs, Peking University, Beijing 100191, China

5. College of Life Sciences, Institute of Model Animal of Wuhan University, Wuhan 430072, China

6. Department of Biomedical Informatics, School of Basic Medical Sciences, Center for Noncoding RNA Medicine, Peking University, Beijing 100191, China

7. Key Laboratory of Genetic Network Biology, Institute of Genetics and Developmental Biology, Chinese Academy of Sciences, Beijing 100101, China

8. Beijing Lab for Cardiovascular Precision Medicine, Anzhen Hospital, Capital Medical University, Beijing 10029, China

9. Department of Pharmacology and Chemical Biology, Emory University School of Medicine, Atlanta, GA 30322, USA

Abstract

Abstract Simultaneous dysregulation of multiple microRNAs (miRs) affects various pathological pathways related to cardiac failure. In addition to being potential cardiac disease-specific markers, miR-23b/27b/24-1 were reported to be responsible for conferring cardiac pathophysiological processes. In this study, we identified a conserved guanine-rich RNA motif within the miR-23b/27b/24-1 cluster that can form an RNA G-quadruplex (rG4) in vitro and in cells. Disruption of this intragenic rG4 significantly increased the production of all three miRs. Conversely, a G4-binding ligand tetrandrine (TET) stabilized the rG4 and suppressed miRs production in human and rodent cardiomyocytes. Our further study showed that the rG4 prevented Drosha-DGCR8 binding and processing of the pri-miR, suppressing the biogenesis of all three miRs. Moreover, CRISPR/Cas9-mediated G4 deletion in the rat genome aberrantly elevated all three miRs in the heart in vivo, leading to cardiac contractile dysfunction. Importantly, loss of the G4 resulted in reduced targets for the aforementioned miRs critical for normal heart function and defects in the L-type Ca2+ channel-ryanodine receptor (LCC-RyR) coupling in cardiomyocytes. Our results reveal a novel mechanism for G4-dependent regulation of miR biogenesis, which is essential for maintaining normal heart function.

Funder

National Natural Science Foundation of China

National Key Research and Development Program of China

Beijing Municipal Science and Technology Commission

Publisher

Oxford University Press (OUP)

Subject

Genetics

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