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
  • [21] Non-coding RNAs in Physiological Cardiac Hypertrophy
    Wang, Lijun
    Wang, Jiaqi
    Li, Guoping
    Xiao, Junjie
    NON-CODING RNAS IN CARDIOVASCULAR DISEASES, 2020, 1229 : 149 - 161
  • [22] Non-coding RNAs and Pathological Cardiac Hypertrophy
    He, Jianfeng
    Luo, Yanhong
    Song, Junxia
    Tan, Tao
    Zhu, Hua
    NON-CODING RNAS IN CARDIOVASCULAR DISEASES, 2020, 1229 : 231 - 245
  • [23] Long non-coding RNAs and cardiac hypertrophy
    Zhang, L.
    Hamad, E. A.
    Vausort, M.
    Funakoshi, H.
    Feldman, A. M.
    Wagner, D. R.
    Devaux, Y.
    EUROPEAN HEART JOURNAL, 2014, 35 : 109 - 109
  • [24] Long non-coding RNAs in cardiac hypertrophy
    Sun, Jinghui
    Wang, Chenglong
    HEART FAILURE REVIEWS, 2020, 25 (06) : 1037 - 1045
  • [25] Gastrodin protects against cardiac hypertrophy and fibrosis
    Chunming Shu
    Changgui Chen
    Da-Ping Zhang
    Haipeng Guo
    Heng Zhou
    Jing Zong
    Zhouyan Bian
    Xuan Dong
    Jia Dai
    Yan Zhang
    Qizhu Tang
    Molecular and Cellular Biochemistry, 2012, 359 : 9 - 16
  • [26] Disruption of mindin exacerbates cardiac hypertrophy and fibrosis
    Bian, Zhou-Yan
    Wei, Xiang
    Deng, Shan
    Tang, Qi-Zhu
    Feng, Jinghua
    Zhang, Yan
    Liu, Chen
    Jiang, Ding-Sheng
    Yan, Ling
    Zhang, Lian-Feng
    Chen, Manyin
    Fassett, John
    Chen, Yingjie
    He, You-Wen
    Yang, Qinglin
    Liu, Peter P.
    Li, Hongliang
    JOURNAL OF MOLECULAR MEDICINE-JMM, 2012, 90 (08): : 895 - 910
  • [27] Gastrodin protects against cardiac hypertrophy and fibrosis
    Shu, Chunming
    Chen, Changgui
    Zhang, Da-Ping
    Guo, Haipeng
    Zhou, Heng
    Zong, Jing
    Bian, Zhouyan
    Dong, Xuan
    Dai, Jia
    Zhang, Yan
    Tang, Qizhu
    MOLECULAR AND CELLULAR BIOCHEMISTRY, 2012, 359 (1-2) : 9 - 16
  • [28] Myostatin does not regulate cardiac hypertrophy or fibrosis
    Cohn, Ronald D.
    Liang, Hsin-Yueh
    Shetty, Reena
    Abraham, Theodore
    Wagner, Kathryn R.
    NEUROMUSCULAR DISORDERS, 2007, 17 (04) : 290 - 296
  • [29] Overview of MicroRNAs in Cardiac Hypertrophy, Fibrosis, and Apoptosis
    Wang, Juan
    Liew, Oi Wah
    Richards, Arthur Mark
    Chen, Yei-Tsung
    INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES, 2016, 17 (05)
  • [30] Control of Cardiac Hypertrophy and Fibrosis by the Notch Pathway
    Nemir, Mohamed
    Metrich, Melanie
    Plaisance, Isabelle
    Lepore, Mario
    Berthonneche, Corinne
    Sarre, Alexandre
    Radtke, Freddy
    Pedrazzini, Thierry
    CIRCULATION, 2011, 124 (21)