Changes in expression of the long non-coding RNA FMR4 associate with altered gene expression during differentiation of human neural precursor cells

被引:23
|
作者
Peschansky, Veronica J. [1 ,2 ]
Pastori, Chiara [1 ,2 ]
Zeier, Zane [1 ,2 ]
Motti, Dario [3 ]
Wentzel, Katya [1 ,2 ]
Velmeshev, Dmitry [1 ,2 ]
Magistri, Marco [1 ,2 ]
Bixby, John L. [3 ,4 ,5 ,6 ]
Lemmon, Vance P. [3 ,4 ,5 ]
Silva, Jose P. [1 ,2 ]
Wahlestedt, Claes [1 ,2 ]
机构
[1] Univ Miami, Miller Sch Med, Ctr Therapeut Innovat, Miami, FL 33136 USA
[2] Univ Miami, Miller Sch Med, Dept Psychiat & Behav, Miami, FL 33136 USA
[3] Univ Miami, Miami Project Cure Paralysis, Miami, FL 33136 USA
[4] Univ Miami, Miller Sch Med, Dept Neurol Surg, Miami, FL 33136 USA
[5] Univ Miami, Ctr Computat Sci, Miami, FL 33136 USA
[6] Univ Miami, Miller Sch Med, Dept Mol & Cellular Pharmacol, Miami, FL 33136 USA
来源
FRONTIERS IN GENETICS | 2015年 / 6卷
关键词
FRAGILE-X-SYNDROME; HISTONE MODIFICATIONS; PREMUTATION CARRIERS; REPEAT REGION; TRANSCRIPTION; LANDSCAPE; LOCALIZATION; RESOLUTION; MECHANISM; CANCER;
D O I
10.3389/fgene.2015.00263
中图分类号
Q3 [遗传学];
学科分类号
071007 ; 090102 ;
摘要
CGG repeat expansions in the Fragile X mental retardation 1 (FMR1) gene are responsible for a family of associated disorders characterized by either intellectual disability and autism Fragile X Syndrome (FXS), or adult-onset neurodegeneration Fragile X-associated Tremor/Ataxia Syndrome. However, the FMR1 locus is complex and encodes several long non-coding RNAs, whose expression is altered by repeat expansion mutations. The role of these IncRNAs is thus far unknown; therefore we investigated the functionality of FMR4, which we previously identified. "Full"-length expansions of the FMR1 triplet repeat cause silencing of both FMR1 and FMR4, thus we are interested in potential loss-of-function that may add to phenotypic manifestation of FXS. Since the two transcripts do not exhibit cis-regulation of one another, we examined the potential for FMR4 to regulate target genes at distal genomic loci using gene expression microarrays. We identified FMR4-responsive genes, including the methyl-CpG-binding domain protein 4 (MBD4). Furthermore, we found that in differentiating human neural precursor cells, FMR4 expression is developmentally regulated in opposition to expression of both FMR1 (which is expected to share a bidirectional promoter with FMR4) and MBD4. We therefore propose that FMR4's function is as a gene-regulatory IncRNA and that this transcript may function in normal development. Closer examination of FMR4 increases our understanding of the role of regulatory IncRNA and the consequences of FMR1 repeat expansions.
引用
收藏
页数:8
相关论文
共 50 条
  • [1] The long non-coding RNA FMR4 promotes proliferation of human neural precursor cells and epigenetic regulation of gene expression in trans
    Peschansky, Veronica J.
    Pastori, Chiara
    Zeier, Zane
    Wentzel, Katya
    Velmeshev, Dmitry
    Magistri, Marco
    Silva, Jose P.
    Wahlestedt, Claes
    MOLECULAR AND CELLULAR NEUROSCIENCE, 2016, 74 : 49 - 57
  • [2] Long non-coding RNA regulation of gene expression during differentiation
    Lopez-Pajares, Vanessa
    PFLUGERS ARCHIV-EUROPEAN JOURNAL OF PHYSIOLOGY, 2016, 468 (06): : 971 - 981
  • [3] Long non-coding RNA regulation of gene expression during differentiation
    Vanessa Lopez-Pajares
    Pflügers Archiv - European Journal of Physiology, 2016, 468 : 971 - 981
  • [4] Long non-coding RNA H19 regulates retinal gene expression during neural retina/photoreceptor differentiation of human mesenchymal stem cells
    Meng, F.
    Jiang, Z.
    Sun, J.
    Wong, N.
    Krause, T.
    Choh, V.
    Yip, S.
    Huang, C.
    MOLECULAR BIOLOGY OF THE CELL, 2023, 34 (02) : 173 - 174
  • [5] Long non-coding RNA expression in primary human monocytes
    Mirsafian, Hoda
    Manda, Srinivas Srikanth
    Mitchell, Christopher J.
    Sreenivasamurthy, Sreelakshmi
    Ripen, Adiratna Mat
    Bin Mohamad, Saharuddin
    Merican, Amir Feisal
    Pandey, Akhilesh
    GENOMICS, 2016, 108 (01) : 37 - 45
  • [6] Metformin Treatment Modulates Long Non-Coding RNA Isoforms Expression in Human Cells
    da Conceicao, Izabela Mamede C. A.
    Luscher-Dias, Thomaz
    Queiroz, Lucio R.
    de Melo, Ana Gabrielle B.
    Machado, Carlos Renato
    Gomes, Karina B.
    Souza, Renan P.
    Luizon, Marcelo R.
    Franco, Gloria R.
    NON-CODING RNA, 2022, 8 (05)
  • [7] Targeting long non-coding RNA to therapeutically upregulate gene expression
    Wahlestedt, Claes
    NATURE REVIEWS DRUG DISCOVERY, 2013, 12 (06) : 433 - 446
  • [8] Differential long non-coding RNA expression profiles in human oocytes and cumulus cells
    Julien Bouckenheimer
    Patricia Fauque
    Charles-Henri Lecellier
    Céline Bruno
    Thérèse Commes
    Jean-Marc Lemaître
    John De Vos
    Said Assou
    Scientific Reports, 8
  • [9] Differential long non-coding RNA expression profiles in human oocytes and cumulus cells
    Bouckenheimer, Julien
    Fauque, Patricia
    Lecellier, Charles-Henri
    Bruno, Celine
    Commes, Therese
    Lemaitre, Jean-Marc
    De Vos, John
    Assou, Said
    SCIENTIFIC REPORTS, 2018, 8
  • [10] Coding and long non-coding gene expression changes in the CNS traumatic injuries
    Xizi Wu
    Haichao Wei
    Jia Qian Wu
    Cellular and Molecular Life Sciences, 2022, 79