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Systematic Identification and Characterization of Regulatory Elements Derived from Human Endogenous Retroviruses

Overview
Journal PLoS Genet
Specialty Genetics
Date 2017 Jul 13
PMID 28700586
Citations 85
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Abstract

Human endogenous retroviruses (HERVs) and other long terminal repeat (LTR)-type retrotransposons (HERV/LTRs) have regulatory elements that possibly influence the transcription of host genes. We systematically identified and characterized these regulatory elements based on publicly available datasets of ChIP-Seq of 97 transcription factors (TFs) provided by ENCODE and Roadmap Epigenomics projects. We determined transcription factor-binding sites (TFBSs) using the ChIP-Seq datasets and identified TFBSs observed on HERV/LTR sequences (HERV-TFBSs). Overall, 794,972 HERV-TFBSs were identified. Subsequently, we identified "HERV/LTR-shared regulatory element (HSRE)," defined as a TF-binding motif in HERV-TFBSs, shared within a substantial fraction of a HERV/LTR type. HSREs could be an indication that the regulatory elements of HERV/LTRs are present before their insertions. We identified 2,201 HSREs, comprising specific associations of 354 HERV/LTRs and 84 TFs. Clustering analysis showed that HERV/LTRs can be grouped according to the TF binding patterns; HERV/LTR groups bounded to pluripotent TFs (e.g., SOX2, POU5F1, and NANOG), embryonic endoderm/mesendoderm TFs (e.g., GATA4/6, SOX17, and FOXA1/2), hematopoietic TFs (e.g., SPI1 (PU1), GATA1/2, and TAL1), and CTCF were identified. Regulatory elements of HERV/LTRs tended to locate nearby and/or interact three-dimensionally with the genes involved in immune responses, indicating that the regulatory elements play an important role in controlling the immune regulatory network. Further, we demonstrated subgroup-specific TF binding within LTR7, LTR5B, and LTR5_Hs, indicating that gains or losses of the regulatory elements occurred during genomic invasions of the HERV/LTRs. Finally, we constructed dbHERV-REs, an interactive database of HERV/LTR regulatory elements (http://herv-tfbs.com/). This study provides fundamental information in understanding the impact of HERV/LTRs on host transcription, and offers insights into the transcriptional modulation systems of HERV/LTRs and ancestral HERVs.

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References
1.
Mathelier A, Fornes O, Arenillas D, Chen C, Denay G, Lee J . JASPAR 2016: a major expansion and update of the open-access database of transcription factor binding profiles. Nucleic Acids Res. 2015; 44(D1):D110-5. PMC: 4702842. DOI: 10.1093/nar/gkv1176. View

2.
Lynch V, Nnamani M, Kapusta A, Brayer K, Plaza S, Mazur E . Ancient transposable elements transformed the uterine regulatory landscape and transcriptome during the evolution of mammalian pregnancy. Cell Rep. 2015; 10(4):551-61. PMC: 4447085. DOI: 10.1016/j.celrep.2014.12.052. View

3.
Wang J, Xie G, Singh M, Ghanbarian A, Rasko T, Szvetnik A . Primate-specific endogenous retrovirus-driven transcription defines naive-like stem cells. Nature. 2014; 516(7531):405-9. DOI: 10.1038/nature13804. View

4.
Hoffman M, Ernst J, Wilder S, Kundaje A, Harris R, Libbrecht M . Integrative annotation of chromatin elements from ENCODE data. Nucleic Acids Res. 2012; 41(2):827-41. PMC: 3553955. DOI: 10.1093/nar/gks1284. View

5.
Yu X, Zhu X, Pi W, Ling J, Ko L, Takeda Y . The long terminal repeat (LTR) of ERV-9 human endogenous retrovirus binds to NF-Y in the assembly of an active LTR enhancer complex NF-Y/MZF1/GATA-2. J Biol Chem. 2005; 280(42):35184-94. DOI: 10.1074/jbc.M508138200. View