Integration of miRNA and mRNA expression profiles reveals microRNA-regulated networks during muscle wasting in cardiac cachexia

被引:0
|
作者
Leonardo N. Moraes
Geysson J. Fernandez
Ivan J. Vechetti-Júnior
Paula P. Freire
Rodrigo W. A. Souza
Rolando A. R. Villacis
Silvia R. Rogatto
Patricia P. Reis
Maeli Dal-Pai-Silva
Robson F. Carvalho
机构
[1] Institute of Biosciences,Department of Morphology
[2] São Paulo State University (UNESP),International Center for Research (CIPE)
[3] AC Camargo Cancer Center,Department of Genetics and Morphology
[4] Institute of Biological Sciences,Department of Clinical Genetics
[5] University of Brasília (UnB),Faculty of Medicine
[6] Vejle Hospital and Institute of Regional Health Research,undefined
[7] University of Southern Denmark,undefined
[8] São Paulo State University (UNESP),undefined
[9] Brazil,undefined
来源
关键词
D O I
暂无
中图分类号
学科分类号
摘要
Cardiac cachexia (CC) is a common complication of heart failure (HF) associated with muscle wasting and poor patient prognosis. Although different mechanisms have been proposed to explain muscle wasting during CC, its pathogenesis is still not understood. Here, we described an integrative analysis between miRNA and mRNA expression profiles of muscle wasting during CC. Global gene expression profiling identified 1,281 genes and 19 miRNAs differentially expressed in muscle wasting during CC. Several of these deregulated genes are known or putative targets of the altered miRNAs, including miR-29a-3p, miR-29b-3p, miR-210-5p, miR-214, and miR-489. Gene ontology analysis on integrative mRNA/miRNA expression profiling data revealed miRNA interactions affecting genes that regulate extra-cellular matrix (ECM) organization, proteasome protein degradation, citric acid cycle and respiratory electron transport. We further identified 11 miRNAs, including miR-29a-3p and miR-29b-3p, which target 21 transcripts encoding the collagen proteins related to ECM organization. Integrative miRNA and mRNA global expression data allowed us to identify miRNA target genes involved in skeletal muscle wasting in CC. Our functional experiments in C2C12 cells confirmed that miR-29b down-regulates collagen genes and contributes to muscle cell atrophy. Collectively, our results suggest that key ECM-associated miRNAs and their target genes may contribute to CC in HF.
引用
收藏
相关论文
共 17 条
  • [1] Integration of miRNA and mRNA expression profiles reveals microRNA-regulated networks during muscle wasting in cardiac cachexia
    Moraes, Leonardo N.
    Fernandez, Geysson J.
    Vechetti-Junior, Ivan J.
    Freire, Paula P.
    Souza, Rodrigo W. A.
    Villacis, Rolando A. R.
    Rogatto, Silvia R.
    Reis, Patricia P.
    Dal-Pai-Silva, Maeli
    Carvalho, Robson F.
    SCIENTIFIC REPORTS, 2017, 7
  • [2] The Pathway to Cancer Cachexia: MicroRNA-Regulated Networks in Muscle Wasting Based on Integrative Meta-Analysis
    Freire, Paula Paccielli
    Fernandez, Geysson Javier
    Cury, Sarah Santiloni
    de Moraes, Diogo
    Oliveira, Jakeline Santos
    de Oliveira, Grasieli
    Dal-Pai-Silva, Maeli
    dos Reis, Patricia Pintor
    Carvalho, Robson Francisco
    INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES, 2019, 20 (08)
  • [3] MicroRNA-mRNA Co-sequencing Identifies Transcriptional and Post-transcriptional Regulatory Networks Underlying Muscle Wasting in Cancer Cachexia
    Fernandez, Geysson Javier
    Ferreira, Juarez Henrique
    Vechetti Jr, Ivan Jose
    de Moraes, Leonardo Nazario
    Cury, Sarah Santiloni
    Freire, Paula Paccielli
    Gutierrez, Jayson
    Ferretti, Renato
    Dal-Pai-Silva, Maeli
    Rogatto, Silvia Regina
    Carvalho, Robson Francisco
    FRONTIERS IN GENETICS, 2020, 11
  • [4] Integration of BRCA1-mediated miRNA and mRNA profiles reveals microRNA regulation of TRAF2 and NFκB pathway
    Tanic, Miljana
    Zajac, Magdalena
    Gomez-Lopez, Gonzalo
    Benitez, Javier
    Martinez-Delgado, Beatriz
    BREAST CANCER RESEARCH AND TREATMENT, 2012, 134 (01) : 41 - 51
  • [5] Integration of BRCA1-mediated miRNA and mRNA profiles reveals microRNA regulation of TRAF2 and NFκB pathway
    Miljana Tanic
    Magdalena Zajac
    Gonzalo Gómez-López
    Javier Benítez
    Beatriz Martínez-Delgado
    Breast Cancer Research and Treatment, 2012, 134 : 41 - 51
  • [6] Comprehensive Analysis of miRNA and mRNA Expression Profiles during Muscle Development of the Longissimus Dorsi Muscle in Gannan Yaks and Jeryaks
    Guo, Dashan
    Wei, Yali
    Li, Xupeng
    Bai, Yanbin
    Liu, Zhanxin
    Li, Jingsheng
    Chen, Zongchang
    Shi, Bingang
    Zhang, Xiaolan
    Zhao, Zhidong
    Hu, Jiang
    Han, Xiangmin
    Wang, Jiqing
    Liu, Xiu
    Li, Shaobin
    Zhao, Fangfang
    GENES, 2023, 14 (12)
  • [7] Integration of high-throughput data of microRNA and mRNA expression profiles reveals novel insights into the mechanism of liver fibrosis
    Zhang, Yitong
    Liu, Jing
    Ma, Yanyun
    Wang, Jingjie
    Zhu, Jie
    Liu, Jie
    Zhang, Jun
    MOLECULAR MEDICINE REPORTS, 2019, 19 (01) : 115 - 124
  • [8] Analyses of MicroRNA and mRNA Expression Profiles Reveal the Crucial Interaction Networks and Pathways for Regulation of Chicken Breast Muscle Development
    Li, Yuanfang
    Chen, Yi
    Jin, Wenjiao
    Fu, Shouyi
    Li, Donghua
    Zhang, Yanhua
    Sun, Guirong
    Jiang, Ruirui
    Han, Ruili
    Li, Zhuanjian
    Kang, Xiangtao
    Li, Guoxi
    FRONTIERS IN GENETICS, 2019, 10
  • [9] Comprehensive Analysis of mRNA, lncRNA, circRNA, and miRNA Expression Profiles and Their ceRNA Networks in the Longissimus Dorsi Muscle of Cattle-Yak and Yak
    Huang, Chun
    Ge, Fei
    Ma, Xiaoming
    Dai, Rongfeng
    Dingkao, Renqing
    Zhaxi, Zhuoma
    Burenchao, Getu
    Bao, Pengjia
    Wu, Xiaoyun
    Guo, Xian
    Chu, Min
    Yan, Ping
    Liang, Chunnian
    FRONTIERS IN GENETICS, 2021, 12
  • [10] Integrated analysis of mRNA and miRNA expression profiles reveals muscle growth differences between fast- and slow-growing king ratsnakes (Elaphe carinata)
    Khan, Shaukat Ali
    He, Jun
    Deng, Shuaitao
    Zhang, Huijuan
    Liu, Guangxuan
    Li, Shikun
    Tang, Dong
    Zhang, Jihui
    Shu, Yilin
    Wu, Hailong
    COMPARATIVE BIOCHEMISTRY AND PHYSIOLOGY B-BIOCHEMISTRY & MOLECULAR BIOLOGY, 2020, 248