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Bardet, A. F.

Publications and source records attributed to Bardet, A. F..

2 recordsLinked to original sources

Focal DNA hypo-methylation in cancer is mediated by transcription factors binding

Aberrant DNA methylation has emerged as a hallmark of cancer cells and profiling their epigenetic landscape has widely been carried out in many types of cancer. However, the mechanisms underlying changes in DNA methylation remain elusive. Transcription factors, initially thought to be repressed from binding by DNA methylation, have recently emerged as potential drivers of DNA methylation patterns. Here we perform a rigorous bioinformatic analysis integrating the massive amount of data available from The Cancer Genome Atlas to identify transcription factors driving aberrant DNA methylation. We predict TFs known to be involved in cancer as well as novel candidates to drive hypo-methylated regions such as FOXA1 and GATA3 in breast cancer, FOXA1 and TWIST1 in prostate cancer and NFE2L2 in lung cancer. We also predict TFs that lead to hyper-methylated regions upon TF loss such as EGR1 in several cancer types. Finally, we validate experimentally that FOXA1 and GATA3 mediate hypo-methylated regions in breast cancer cells. Our work shows the importance of TFs as upstream regulators shaping DNA methylation patterns in cancer.

cancer biology↗

A BTB-DOMAIN TRANSCRIPTION FACTOR RECRUITS CHROMATIN REMODELERS AND A HISTONE CHAPERONE DURING THE EXIT FROM PLURIPOTENCY

Transcription factors (TFs) harboring a btb (Broad-Complex, Tramtrack and Bric a brac) domain play important roles in development and disease. They are thought to recruit transcriptional modulators to DNA through their btb domain. However, a systematic molecular understanding of this TF family is lacking. Here, we identify the zinc finger btb-TF Zbtb2 in a genetic screen for regulators of exit from pluripotency and dissect its mechanistic mode of action. We show that ZBTB2 binds the chromatin remodeler Ep400 to mediate downstream transcription. Independently, the btb domain directly interacts with the chromatin remodeller NuRD and the histone chaperone HiRA via the GATAD2A/B and UBN2 subunits, respectively. NuRD recruitment is a common feature of btb-TFs and we propose by phylogenetic analysis that this is an evolutionary ancient property. Binding to UBN2, in contrast, is specific to ZBTB2 and requires a C-terminal extension of the btb domain. This study therefore identifies a btb-domain TF that recruits chromatin modifiers and a histone chaperone during a developmental cell state transition, and defines unique and shared molecular functions of the btb-domain TF family.

molecular biology↗