Maintenance of meiotic crossover against reduced double-strand break formation in fission yeast lacking histone H2A.Z
GENE
Authors: Yamada, Takatomi; Yamada, Shintaro; Ding, Da-Qiao; Fujita, Yurika; Takaya, Emi; Hiraoka, Yasushi; Murakami, Hiroshi; Ohta, Kunihiro
Abstract
Meiotic crossover (CO) recombination initiates from programmed DNA double-strand breaks (DSBs) around hotspots, and results in reciprocal exchange of chromosome segments between homologous chromosomes (homologs). COs are crucial for most sexually-reproducing organisms because they promote accurate chromosome segregation and create genetic diversity. Therefore, faithful accomplishment of CO formation is ensured in many ways, but the bases of the regulation are not fully understood. Our previous study using fission yeast has revealed that mutants lacking the conserved histone H2A.Z are defective in DSB formation but maintain CO frequency at three loci tested. Here, we tested five additional sites to show that mutants lacking H2A.Z exhibit normal and increased CO frequency at two and three loci, respectively. Examining one of the CO-increased intervals in the mutant revealed that the CO upregulation is mediated at least partly at a recombination intermediate level. In addition, our genetic as well as genome-wide analyses implied a possibility that, even without H2A.Z, COs are maintained by weak and non-hotspot DSBs, which are processed preferentially as CO. These observations provide clues to further our understanding on CO control.
Estrogen induces dynamic ER alpha( )and RING1B recruitment to control gene and enhancer activities in luminal breast cancer
SCIENCE ADVANCES
Authors: Zhang, Yusheng; Chan, Ho Lam; Garcia-Martinez, Liliana; Karl, Daniel L.; Weich, Natalia; Slingerland, Joyce M.; Verdun, Ramiro E.; Morey, Lluis
Abstract
RING1B, a core Polycomb repressive complex 1 subunit, is a histone H2A ubiquitin ligase essential for development. RING1B is overexpressed in patients with luminal breast cancer (BC) and recruited to actively transcribed genes and enhancers co-occupied by the estrogen receptor alpha (ER alpha). Whether ER alpha-induced transcriptional programs are mediated by RING1B is not understood. We show that prolonged estrogen administration induces transcriptional output and chromatin landscape fluctuations. RING1B loss impairs full estrogen-mediated gene expression and chromatin accessibility for key BC transcription factors. These effects were mediated, in part, by RING1B enzymatic activity and nucleosome binding functions. RING1B is recruited in a cyclic manner to ER alpha, FOXA1, and GRHL2 cobound sites and regulates estrogen-induced enhancers and ER alpha recruitment. Last, ChIP exo revealed multiple binding events of these factors at single-nucleotide resolution, including RING1B occupancy approximately 10 base pairs around ER alpha bound sites. We propose RING1B as a key regulator of the dynamic, liganded-ER alpha transcriptional regulatory circuit in luminal BC.