Tethering of the Conserved piggyBac Transposase Fusion Protein CSB-PGBD3 to Chromosomal AP-1 Proteins Regulates Expression of Nearby Genes in Humans

被引:29
作者
Gray, Lucas T. [1 ]
Fong, Kimberly K. [1 ]
Pavelitz, Thomas [1 ]
Weiner, Alan M. [1 ]
机构
[1] Univ Washington, Sch Med, Dept Biochem, Seattle, WA 98195 USA
关键词
GROUP-B PROTEIN; FACTOR-BINDING SITES; COCKAYNE-SYNDROME; ACIDIC REGION; CHIP-SEQ; DNA; TRANSCRIPTION; REPAIR; JUN; CSB;
D O I
10.1371/journal.pgen.1002972
中图分类号
Q3 [遗传学];
学科分类号
071007 ; 090102 ;
摘要
The CSB-PGBD3 fusion protein arose more than 43 million years ago when a 2.5-kb piggyBac 3 (PGBD3) transposon inserted into intron 5 of the Cockayne syndrome Group B (CSB) gene in the common ancestor of all higher primates. As a result, full-length CSB is now coexpressed with an abundant CSB-PGBD3 fusion protein by alternative splicing of CSB exons 1-5 to the PGBD3 transposase. An internal deletion of the piggyBac transposase ORF also gave rise to 889 dispersed, 140-bp MER85 elements that were mobilized in trans by PGBD3 transposase. The CSB-PGBD3 fusion protein binds MER85s in vitro and induces a strong interferon-like innate antiviral immune response when expressed in CSB-null UVSS1KO cells. To explore the connection between DNA binding and gene expression changes induced by CSB-PGBD3, we investigated the genome-wide DNA binding profile of the fusion protein. CSB-PGBD3 binds to 363 MER85 elements in vivo, but these sites do not correlate with gene expression changes induced by the fusion protein. Instead, CSB-PGBD3 is enriched at AP-1, TEAD1, and CTCF motifs, presumably through protein-protein interactions with the cognate transcription factors; moreover, recruitment of CSB-PGBD3 to AP-1 and TEAD1 motifs correlates with nearby genes regulated by CSB-PGBD3 expression in UVSS1KO cells and downregulated by CSB rescue of mutant CS1AN cells. Consistent with these data, the N-terminal CSB domain of the CSB-PGBD3 fusion protein interacts with the AP-1 transcription factor c-Jun and with RNA polymerase II, and a chimeric CSB-LacI construct containing only the N-terminus of CSB upregulates many of the genes induced by CSB-PGBD3. We conclude that the CSB-PGBD3 fusion protein substantially reshapes the transcriptome in CS patient CS1AN and that continued expression of the CSB-PGBD3 fusion protein in the absence of functional CSB may affect the clinical presentation of CS patients by directly altering the transcriptional program.
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共 80 条
[1]  
Abramoff M.D., 2004, Biophotonics International, V11, P36
[2]   A Ubiquitin-Binding Domain in Cockayne Syndrome B Required for Transcription-Coupled Nucleotide Excision Repair [J].
Anindya, Roy ;
Mari, Pierre-Olivier ;
Kristensen, Ulrik ;
Kool, Hanneke ;
Giglia-Mari, Giuseppina ;
Mullenders, Leon H. ;
Fousteri, Maria ;
Vermeulen, Wim ;
Egly, Jean-Marc ;
Svejstrup, Jesper Q. .
MOLECULAR CELL, 2010, 38 (05) :637-648
[3]  
[Anonymous], J ROYAL STAT SOC B
[4]  
[Anonymous], REPEATMASKER OPEN 3
[5]   DISTINCT FACTORS WITH SP1 AND NF-A SPECIFICITIES BIND TO ADJACENT FUNCTIONAL ELEMENTS OF THE HUMAN U2 SNRNA GENE ENHANCER [J].
ARES, M ;
CHUNG, JS ;
GIGLIO, L ;
WEINER, AM .
GENES & DEVELOPMENT, 1987, 1 (08) :808-817
[6]   Chitooligosaccharide elicits acute inflammatory cytokine response through AP-1 pathway in human intestinal epithelial-like (Caco-2) cells [J].
Bahar, Bojlul ;
O'Doherty, John V. ;
Maher, Sam ;
McMorrow, Jason ;
Sweeney, Torres .
MOLECULAR IMMUNOLOGY, 2012, 51 (3-4) :283-291
[7]   The conserved Cockayne syndrome B-piggyBac fusion protein (CSB-PGBD3) affects DNA repair and induces both interferon-like and innate antiviral responses in CSB-null cells [J].
Baiey, Arnold D. ;
Gray, Lucas T. ;
Pavelitz, Thomas ;
Newman, John C. ;
Horibata, Katsuyoshi ;
Tanaka, Kiyoji ;
Weiner, Alan M. .
DNA REPAIR, 2012, 11 (05) :488-501
[8]  
Bailey T L, 1994, Proc Int Conf Intell Syst Mol Biol, V2, P28
[9]   MEME: discovering and analyzing DNA and protein sequence motifs [J].
Bailey, Timothy L. ;
Williams, Nadya ;
Misleh, Chris ;
Li, Wilfred W. .
NUCLEIC ACIDS RESEARCH, 2006, 34 :W369-W373
[10]   Human pso4 is a metnase (SETMAR)-binding partner that regulates metnase function in DNA repair [J].
Beck, Brian D. ;
Park, Su-Jung ;
Lee, Young-Ju ;
Roman, Yaritzabel ;
Hromas, Robert A. ;
Lee, Suk-Hee .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2008, 283 (14) :9023-9030