Identification of Key Non-coding RNAs and Transcription Factors in Calcific Aortic Valve Disease

被引:4
|
作者
Guo, Shuai [1 ]
Zhang, Erli [1 ]
Zhang, Bin [1 ]
Liu, Qingrong [1 ]
Meng, Zhen [1 ]
Li, Ziang [1 ]
Wang, Can [1 ]
Gong, Zhaoting [1 ]
Wu, Yongjian [1 ]
机构
[1] Chinese Acad Med Sci & Peking Union Med Coll, Fuwai Hosp, Natl Ctr Cardiovasc Dis, Beijing, Peoples R China
来源
基金
中国国家自然科学基金;
关键词
calcific aortic valve disease; non-coding RNA; transcription factor; epigenetics; bioinformatics; INTERSTITIAL-CELLS; OSTEOBLAST DIFFERENTIATION; MATRIX METALLOPROTEINASES; EXPRESSION; STENOSIS; PROMOTES; PROGRESSION; MICE; CHONDROCYTES; PATHOGENESIS;
D O I
10.3389/fcvm.2022.826744
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
BackgroundCalcific aortic valve disease (CAVD) is one of the most frequently occurring valvular heart diseases among the aging population. Currently, there is no known pharmacological treatment available to delay or reverse CAVD progression. The regulation of gene expression could contribute to the initiation, progression, and treatment of CAVD. Non-coding RNAs (ncRNAs) and transcription factors play essential regulatory roles in gene expression in CAVD; thus, further research is urgently needed. Materials and MethodsThe gene-expression profiles of GSE51472 and GSE12644 were obtained from the Gene Expression Omnibus database, and differentially expressed genes (DEGs) were identified in each dataset. A protein-protein-interaction (PPI) network of DEGs was then constructed using the Search Tool for the Retrieval of Interacting Genes/Proteins database, and functional modules were analyzed with ClusterOne plugin in Cytoscape. Furthermore, Gene Ontology-functional annotation and Kyoto Encyclopedia of Genes and Genomes-pathway analysis were conducted for each functional module. Most crucially, ncRNAs and transcription factors acting on each functional module were separately identified using the RNAInter and TRRUST databases. The expression of predicted transcription factors and key genes was validated using GSE51472 and GSE12644. Furthermore, quantitative real-time PCR (qRT-PCR) experiments were performed to validate the differential expression of most promising candidates in human CAVD and control samples. ResultsAmong 552 DEGs, 383 were upregulated and 169 were downregulated. In the PPI network, 15 functional modules involving 182 genes and proteins were identified. After hypergeometric testing, 45 ncRNAs and 33 transcription factors were obtained. Among the predicted transcription factors, CIITA, HIF1A, JUN, POU2F2, and STAT6 were differentially expressed in both the training and validation sets. In addition, we found that key genes, namely, CD2, CD86, CXCL8, FCGR3B, GZMB, ITGB2, LY86, MMP9, PPBP, and TYROBP were also differentially expressed in both the training and validation sets. Among the most promising candidates, differential expressions of ETS1, JUN, NFKB1, RELA, SP1, STAT1, ANCR, and LOC101927497 were identified via qRT-PCR experiments. ConclusionIn this study, we identified functional modules with ncRNAs and transcription factors involved in CAVD pathogenesis. The current results suggest candidate molecules for further research on CAVD.
引用
收藏
页数:17
相关论文
共 50 条
  • [1] Progress on long non-coding RNAs in calcific aortic valve disease
    Shen, Yan
    Li, Jiahui
    Zhao, Zehao
    Chen, Xiaomin
    FRONTIERS IN CARDIOVASCULAR MEDICINE, 2025, 12
  • [2] Differential expression profiles and functional analysis of long non-coding RNAs in calcific aortic valve disease
    Guang-Yuan Song
    Xu-Nan Guo
    Jing Yao
    Zhi-Nan Lu
    Jia-Hong Xie
    Fang wu
    Jing He
    Zhao-Lin Fu
    Jie Han
    BMC Cardiovascular Disorders, 23
  • [3] Differential expression profiles and functional analysis of long non-coding RNAs in calcific aortic valve disease
    Song, Guang-Yuan
    Guo, Xu-Nan
    Yao, Jing
    Lu, Zhi-Nan
    Xie, Jia-Hong
    Wu, Fang
    He, Jing
    Fu, Zhao-Lin
    Han, Jie
    BMC CARDIOVASCULAR DISORDERS, 2023, 23 (01)
  • [4] Non-coding RNAs: key regulators of mammalian transcription
    Kugel, Jennifer F.
    Goodrich, James A.
    TRENDS IN BIOCHEMICAL SCIENCES, 2012, 37 (04) : 144 - 151
  • [5] Role of Long Non-Coding RNAs in the Regulation of the Notch Pathway: Implication for Calcific Aortic Valve Stenosis
    Hadji, Fayez
    Boulanger, M.
    Guauque-Olarte, Sandra
    Bouchareb, Rihab
    Bosse, Yohan
    Mathieu, Patrick
    CIRCULATION, 2014, 130
  • [6] Non-coding RNAs: key players in cardiac disease
    Kreutzer, Fabian Philipp
    Fiedler, Jan
    Thum, Thomas
    JOURNAL OF PHYSIOLOGY-LONDON, 2020, 598 (14): : 2995 - 3003
  • [7] Role of non-coding RNAs in thoracic aortic aneurysm associated with bicuspid aortic valve
    Bhattachariya, A.
    Cottrill, K. A.
    Du, L.
    Bjorck, H. M.
    Maleki, S.
    Franco-Cereceda, A.
    Chan, S. Y.
    Eriksson, P.
    CARDIOVASCULAR RESEARCH, 2016, 111 : S104 - S104
  • [8] Identification of key non-coding RNAs and transcription factors regulators and their potential drugs for steroid-induced femoral head necrosis
    Sheng, Zhai
    Xiaoping, Han
    Lu, Ding
    XiZhe, Wang
    Jie, Zhang
    Qing, Lv
    Yong, Cui
    GENOMICS, 2021, 113 (02) : 490 - 496
  • [9] Non-coding RNAs: The key detectors and regulators in cardiovascular disease
    Zhu, Linwen
    Li, Ni
    Sun, Lebo
    Zheng, Dawei
    Shao, Guofeng
    GENOMICS, 2021, 113 (01) : 1233 - 1246
  • [10] Identification and characterization of key long non-coding RNAs in the mouse cochlea
    Koffler-Brill, Tal
    Taiber, Shahar
    Anaya, Alejandro
    Bordeynik-Cohen, Mor
    Rosen, Einat
    Kolla, Likhitha
    Messika-Gold, Naama
    Elkon, Ran
    Kelley, Matthew W.
    Ulitsky, Igor
    Avraham, Karen B.
    RNA BIOLOGY, 2021, 18 (08) : 1160 - 1169