CircARCN1 aggravates atherosclerosis by regulating HuR-mediated USP31 mRNA in macrophages

Author:

Pan Zhicheng1,Lv Jialan1,Zhao Liding1,Xing Kaidi1,Ye Runze1,Zhang Yuesheng1,Chen Siyuan1,Yang Peng1,Yu Hailong1,Lin Yangkai1,Li Ruobing1,Wang Dongfei1,Fang Juan2,Dong Yang1,Sheng Jianpeng3,Wang Xiaolin4,Shan Ge4ORCID,Zhang Shan15,Cheng Hongqiang67,Xu Qingbo1ORCID,Guo Xiaogang1ORCID

Affiliation:

1. Department of Cardiology, The First Affiliated Hospital, Zhejiang University School of Medicine , Hangzhou , China

2. Department of Cardiology, The Second Affiliated Hospital, Zhejiang University School of Medicine , Hangzhou , China

3. Zhejiang Province Key Laboratory of Pancreatic Diseases, The First Affiliated Hospital, Zhejiang University School of Medicine , Hangzhou , China

4. Department of Clinical Laboratory, The First Affiliated Hospital of USTC, The RNA Institute, School of Basic Medical Sciences, Division of Life Science and Medicine, University of Science and Technology of China (UTSC) , Hefei , China

5. Department of Biochemistry, Zhejiang University School of Medicine , Hangzhou , China

6. Department of Pathology and Pathophysiology, Zhejiang University School of Medicine , Hangzhou , China

7. Department of Cardiology, Sir Run Run Shaw Hospital, Zhejiang University School of Medicine , Hangzhou , China

Abstract

Abstract Aims Circular RNAs (circRNAs) are considered important regulators of biological processes, but their impact on atherosclerosis development, a key factor in coronary artery disease (CAD), has not been fully elucidated. We aimed to investigate their potential use in patients with CAD and the pathogenesis of atherosclerosis. Methods and results Patients with stable angina (SA) or acute coronary syndrome (ACS) and controls were selected for transcriptomic screening and quantification of circRNAs in blood cells. We stained carotid plaque samples for circRNAs and performed gain- and loss-of-function studies in vitro. Western blots, protein interaction analysis, and molecular approaches were used to perform the mechanistic study. ApoE−/− mouse models were employed in functional studies with adeno-associated virus-mediated genetic intervention. We demonstrated elevated circARCN1 expression in peripheral blood mononuclear cells from patients with SA or ACS, especially in those with ACS. Furthermore, higher circARCN1 levels were associated with a higher risk of developing SA and ACS. We also observed elevated expression of circARCN1 in carotid artery plaques. Further analysis indicated that circARCN1 was mainly expressed in monocytes and macrophages, which was also confirmed in atherosclerotic plaques. Our in vitro studies provided evidence that circARCN1 affected the interaction between HuR and ubiquitin-specific peptidase 31 (USP31) mRNA, resulting in attenuated USP31-mediated NF-κB activation. Interestingly, macrophage accumulation and inflammation in atherosclerotic plaques were markedly decreased when circARCN1 was knocked down with adeno-associated virus in macrophages of ApoE−/− mice, while circARCN1 overexpression in the model exacerbated atherosclerotic lesions. Conclusions Our findings provide solid evidence macrophagic-expressed circARCN1 plays a role in atherosclerosis development by regulating HuR-mediated USP31 mRNA stability and NF-κB activation, suggesting that circARCN1 may serve as a factor for atherosclerotic lesion formation.

Funder

National Natural Science Foundation of China

Key Research and Development Plan of Zhejiang Province

Publisher

Oxford University Press (OUP)

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