Epigenetic coordination of embryonic heart transcription by dynamically regulated long noncoding RNAs

被引:107
|
作者
Matkovich, Scot J. [1 ]
Edwards, John R. [1 ]
Grossenheider, Tiffani C. [1 ]
Strong, Cristina de Guzman [1 ]
Dorn, Gerald W., II [1 ]
机构
[1] Washington Univ, Sch Med, Dept Internal Med, Ctr Pharmacogen, St Louis, MO 63110 USA
基金
美国国家卫生研究院;
关键词
fetal heart; pressure overload; PROTEIN-SYNTHESIS; KAPPA-B; EXPRESSION; MICRORNAS; HYPERTROPHY; BRAVEHEART; SKELETAL;
D O I
10.1073/pnas.1410622111
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
The vast majority of mammalian DNA does not encode for proteins but instead is transcribed into noncoding (nc) RNAs having diverse regulatory functions. The poorly characterized subclass of long ncRNAs (IncRNAs) can epigenetically regulate protein-coding genes by interacting locally in cis or distally in trans. A few reports have implicated specific IncRNAs in cardiac development or failure, but precise details of IncRNAs expressed in hearts and how their expression may be altered during embryonic heart development or by adult heart disease is unknown. Using comprehensive quantitative RNA sequencing data from mouse hearts, livers, and skin cells, we identified 321 IncRNAs present in the heart, 117 of which exhibit a cardiac-enriched pattern of expression. By comparing IncRNA profiles of normal embryonic (similar to E14), normal adult, and hypertrophied adult hearts, we defined a distinct fetal IncRNA abundance signature that includes 157 IncRNAs differentially expressed compared with adults (fold-change >= 50%, false discovery rate = 0.02) and that was only poorly recapitulated in hypertrophied hearts (17 differentially expressed IncRNAs; 13 of these observed in embryonic hearts). Analysis of protein-coding mRNAs from the same samples identified 22 concordantly and 11 reciprocally regulated mRNAs within 10 kb of dynamically expressed IncRNAs, and reciprocal relationships of IncRNA and mRNA levels were validated for the Mccc1 and Relb genes using in vitro IncRNA knockdown in C2C12 cells. Network analysis suggested a central role for IncRNAs in modulating NF kappa B-and CREB1-regulated genes during embryonic heart growth and identified multiple mRNAs within these pathways that are also regulated, but independently of IncRNAs.
引用
收藏
页码:12264 / 12269
页数:6
相关论文
共 50 条
  • [21] Long noncoding RNAs are dynamically regulated during β-cell mass expansion in mouse pregnancy and control β-cell proliferation in vitro
    Sisino, Giorgia
    Zhou, Alex-Xianghua
    Dahr, Niklas
    Sabirsh, Alan
    Soundarapandian, Mangala M.
    Perera, Ranjan
    Larsson-Lekholm, Erik
    Magnone, Maria Chiara
    Althage, Magnus
    Tyrberg, Bjorn
    PLOS ONE, 2017, 12 (08):
  • [22] Fear extinction is regulated by the activity of long noncoding RNAs at the synapse
    Wei-Siang Liau
    Qiongyi Zhao
    Adekunle Bademosi
    Rachel S. Gormal
    Hao Gong
    Paul R. Marshall
    Ambika Periyakaruppiah
    Sachithrani U. Madugalle
    Esmi L. Zajaczkowski
    Laura J. Leighton
    Haobin Ren
    Mason Musgrove
    Joshua Davies
    Simone Rauch
    Chuan He
    Bryan C. Dickinson
    Xiang Li
    Wei Wei
    Frédéric A. Meunier
    Sandra M. Fernández-Moya
    Michael A. Kiebler
    Balakumar Srinivasan
    Sourav Banerjee
    Michael Clark
    Robert C. Spitale
    Timothy W. Bredy
    Nature Communications, 14
  • [23] Fear extinction is regulated by the activity of long noncoding RNAs at the synapse
    Liau, Wei-Siang
    Zhao, Qiongyi
    Bademosi, Adekunle
    Gormal, Rachel S.
    Gong, Hao
    Marshall, Paul R.
    Periyakaruppiah, Ambika
    Madugalle, Sachithrani U.
    Zajaczkowski, Esmi L.
    Leighton, Laura J.
    Ren, Haobin
    Musgrove, Mason
    Davies, Joshua
    Rauch, Simone
    He, Chuan
    Dickinson, Bryan C.
    Li, Xiang
    Wei, Wei
    Meunier, Frederic A.
    Fernandez-Moya, Sandra M.
    Kiebler, Michael A.
    Srinivasan, Balakumar
    Banerjee, Sourav
    Clark, Michael
    Spitale, Robert C.
    Bredy, Timothy W.
    NATURE COMMUNICATIONS, 2023, 14 (01)
  • [24] Long Noncoding RNAs Are Differentially Expressed in Heart Failure
    Robinson, Emma L.
    Haider, Syed
    Hei, Hillary
    Lee, Richard T.
    Foo, Roger S.
    CIRCULATION RESEARCH, 2012, 111 (04)
  • [25] Epigenetic modifications and long noncoding RNAs influence pancreas development and function
    Arnes, Luis
    Sussel, Lori
    TRENDS IN GENETICS, 2015, 31 (06) : 290 - 299
  • [26] Exploiting Long Noncoding RNAs as Pharmacological Targets to Modulate Epigenetic Diseases
    Prabhakar, Bindu
    Zhong, Xiao-bo
    Rasmussen, Theodore P.
    YALE JOURNAL OF BIOLOGY AND MEDICINE, 2017, 90 (01): : 73 - 86
  • [27] Functional evolutionary convergence of long noncoding RNAs involved in embryonic development
    Olazagoitia-Garmendia, Ane
    Senovilla-Ganzo, Rodrigo
    Garcia-Moreno, Fernando
    Castellanos-Rubio, Ainara
    COMMUNICATIONS BIOLOGY, 2023, 6 (01)
  • [28] Long noncoding RNAs in mouse embryonic stem cell pluripotency and differentiation
    Dinger, Marcel E.
    Amaral, Paulo P.
    Mercer, Tim R.
    Pang, Ken C.
    Bruce, Stephen J.
    Gardiner, Brooke B.
    Askarian-Amiri, Marjan E.
    Ru, Kelin
    Solda, Giulia
    Simons, Cas
    Sunkin, Susan M.
    Crowe, Mark L.
    Grimmond, Sean M.
    Perkins, Andrew C.
    Mattick, John S.
    GENOME RESEARCH, 2008, 18 (09) : 1433 - 1445
  • [29] Functional evolutionary convergence of long noncoding RNAs involved in embryonic development
    Ane Olazagoitia-Garmendia
    Rodrigo Senovilla-Ganzo
    Fernando García-Moreno
    Ainara Castellanos-Rubio
    Communications Biology, 6
  • [30] Strategies and technologies for exploring long noncoding RNAs in heart failure
    Zhang, Zhen
    Wan, Jingjing
    Liu, Xia
    Zhang, Weidong
    BIOMEDICINE & PHARMACOTHERAPY, 2020, 131