Identification of circular RNAs in cardiac hypertrophy and cardiac fibrosis

被引:14
|
作者
Chen, Yan [1 ]
Zhou, Junteng [1 ,2 ,3 ]
Wei, Zisong [1 ]
Cheng, Yue [4 ]
Tian, Geer [1 ]
Quan, Yue [1 ]
Kong, Qihang [1 ]
Wu, Wenchao [1 ]
Liu, Xiaojing [1 ,4 ]
机构
[1] Sichuan Univ, West China Hosp, Regenerat Med Res Ctr, Lab Cardiovasc Dis, Chengdu, Peoples R China
[2] Sichuan Univ, West China Hosp, Hlth Management Ctr, Chengdu, Peoples R China
[3] Sichuan Univ, West China Hosp, Lab Cardiovasc Dis, Chengdu, Peoples R China
[4] Sichuan Univ, West China Hosp, Dept Cardiol, Chengdu, Peoples R China
基金
中国国家自然科学基金;
关键词
cardiac hypertrophy; cardiac fibrosis; inflammation; circRNA; ceRNA; HEART; EXPRESSION; INHIBITION; MECHANISMS; MICRORNAS; LANDSCAPE; PROTECTS; MIRNAS; GROWTH;
D O I
10.3389/fphar.2022.940768
中图分类号
R9 [药学];
学科分类号
1007 ;
摘要
Cardiac hypertrophy initially serves as an adaptive response to physiological and pathological stimuli. Sustained hypertrophy progress to pathological cardiac hypertrophy, cardiac fibrosis and ultimately lead to heart failure, one of the leading medical causes of mortality worldwide. Intervention of pathological cardiac hypertrophy can effectively reduce the occurrence of heart failure. Abundant factors, such as adrenergic, angiotensin, and endothelin (ET-1) receptors, have been shown to participate in the regulation of pathological cardiac hypertrophy. Recently, an increasing number of studies have indicated that circRNA and circRNA-miRNA-mRNA network regulation is indispensable for the posttranscriptional regulation of mRNA in cardiac hypertrophy. In our study, the morphological, cardiac function and pathological changes during cardiac hypertrophy were investigated. RNA sequencing identified 93 circRNAs that were differentially expressed in the TAC_2w group, and 55 circRNAs in the TAC_4w group compared with the sham group. Gene ontology (GO) and Kyoto Encyclopedia of Genes and Genomes (KEGG) pathway analyses identified several significant pathways, including hypertrophic cardiomyopathy, extracellular matrix (ECM)-receptor interaction and focal adhesion. Coexpression analyses were performed for differentially expressed circRNAs and differentially expressed mRNAs. Based on gene set enrichment analysis (GSEA), 8 circRNAs (mmu-Nfkb1_0001, mmu-Smad4_0007, mmu-Hecw2_0009, mmu-Itgbl1_0002, mmu-Lrrc2_0005, mmu-Cpeb3_0007, mmu-Ryr2_0040, and mmu-Rtn4_0001) involved in cardiac hypertrophy and cardiac fibrosis were identified. We validated some key circRNAs by qPCR. The crucial coexpression of circRNA-mRNA and its interaction with miRNA showed the possible mechanism of circRNAs in the process of cardiac dysfunction. Our results may provide promising targets for the treatment of pathological cardiac hypertrophy and fibrosis.
引用
收藏
页数:20
相关论文
共 50 条
  • [41] Function and Therapeutic Potential of Noncoding RNAs in Cardiac Fibrosis
    Creemers, Esther E.
    van Rooij, Eva
    CIRCULATION RESEARCH, 2016, 118 (01) : 108 - 118
  • [42] Bone Morphogenetic Protein-4 Mediates Cardiac Hypertrophy, Apoptosis, and Fibrosis in Experimentally Pathological Cardiac Hypertrophy
    Sun, Bo
    Huo, Rong
    Sheng, Yue
    Li, Yue
    Xie, Xin
    Chen, Chang
    Liu, Hui-Bin
    Li, Na
    Li, Cheng-Bo
    Guo, Wen-Ting
    Zhu, Jiu-Xin
    Yang, Bao-Feng
    Dong, De-Li
    HYPERTENSION, 2013, 61 (02) : 352 - +
  • [43] Erratum to: Disruption of mindin exacerbates cardiac hypertrophy and fibrosis
    Zhou-Yan Bian
    Xiang Wei
    Shan Deng
    Qi-Zhu Tang
    Jinghua Feng
    Yan Zhang
    Chen Liu
    Ding-Sheng Jiang
    Ling Yan
    Lian-Feng Zhang
    Manyin Chen
    John Fassett
    Yingjie Chen
    You-Wen He
    Qinglin Yang
    Peter P. Liu
    Hongliang Li
    Journal of Molecular Medicine, 2017, 95 : 1251 - 1253
  • [44] Comparison of isoproterenol and dobutamine in the induction of cardiac hypertrophy and fibrosis
    Anderson, M.
    Moore, D.
    Larson, D. F.
    PERFUSION-UK, 2008, 23 (04): : 231 - 235
  • [45] Epigenetic Modifying Therapy for the Treatment of Cardiac Fibrosis and Hypertrophy
    Watson, C.
    Horgan, S.
    Neary, R.
    Collier, P.
    Tea, I
    Glezeva, N.
    Ledwidge, M.
    McDonald, K.
    Baugh, J.
    IRISH JOURNAL OF MEDICAL SCIENCE, 2014, 183 : S421 - S422
  • [46] Gene expression in fibroblasts and fibrosis - Involvement in cardiac hypertrophy
    Manabe, I
    Shindo, T
    Nagai, R
    CIRCULATION RESEARCH, 2002, 91 (12) : 1103 - 1113
  • [47] Biochanin A inhibits cardiac hypertrophy and fibrosis in vivo and in vitro
    Feng, Zhenyu
    Zhang, Ningning
    Bai, Jie
    Lin, Qiu-yue
    Xie, Yunpeng
    Xia, Yun-long
    BIOMEDICINE & PHARMACOTHERAPY, 2024, 170
  • [48] Analysis of long noncoding RNAs expression profiles in the human cardiac fibroblasts with cardiac fibrosis
    Han, Ziqiang
    Zhang, Xiaoman
    Liu, Chao
    Lu, Minjie
    Wang, Jizheng
    Nie, Yu
    Zhang, Hongju
    BIOCHEMICAL AND BIOPHYSICAL RESEARCH COMMUNICATIONS, 2023, 660 : 73 - 81
  • [49] Genome-wide Identification and Characterization of Cardiac Hypertrophy-related Long Noncoding RNAs in Mice
    Huang, Zhanpeng
    Wu, Gengze
    Yang, Jian-Hua
    Ding, Jian
    Chen, Jinghai
    Lin, Zhiqiang
    Drakos, Stavros G.
    Selzman, Craig H.
    Kyselovic, Jan
    Pu, William T.
    Qu, Liang-Hu
    Zeng, Chunyu
    Wang, Da-Zhi
    CIRCULATION RESEARCH, 2016, 119
  • [50] Rapid upregulation of CTGF in cardiac myocytes by hypertrophic stimuli: implication for cardiac fibrosis and hypertrophy
    Matsui, Y
    Sadoshima, J
    JOURNAL OF MOLECULAR AND CELLULAR CARDIOLOGY, 2004, 37 (02) : 477 - 481