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Kobakhidze, E.

Publications and source records attributed to Kobakhidze, E..

2 recordsLinked to original sources

ZNF512B associates with mitotic spindles, regulates metaphase exit and is crucial for stem cell differentiation

Zinc finger proteins are a large family of DNA-binding factors that play key roles in diverse cellular processes including gene regulation, RNA metabolism and cell cycle control. The zinc finger protein ZNF512B has recently been implicated in chromatin organization and transcriptional repression through its direct interaction with the nucleosome remodeling and deacetylase (NuRD) complex, its DNA-binding ability, and its association with the histone variant H2A.Z. Here, we uncover a previously unrecognized role for ZNF512B that is independent of both its zinc finger domains and NuRD association. We identify ZNF512B as a spindle-associated factor that regulates progression through mitosis, specifically controlling metaphase exit. ZNF512Bs N-terminal internal region, which contains 25 repeats of a six-residue motif predicted to form a {beta}-helix structure, is required and sufficient for its spindle interaction. Elevated ZNF512B levels result in a profound metaphase arrest that is ultimately lethal, a phenotype arising from the combined activity of its spindle-binding and chromatin-tethering functions. Conversely, ZNF512B depletion accelerates stem cell proliferation, impairs differentiation, and upregulates genes linked to cell cycle progression. Our findings position ZNF512B as a multifunctional protein that acts as a transcriptional repressor, a chromatin aggregator and a novel metaphase exit regulator through spindle fiber binding.

molecular biology↗

The BRD4-nucleosome interaction is enhanced modestly and non-selectively by histone acetylation

BRD4 regulates gene transcription in complex eukaryotes, in part through the binding of its tandem bromodomains to acetylated lysine residues found in histones and transcription factors. Despite pharmacological inhibition of these domains showing promise in preclinical studies, clinical trial data have been less encouraging so far. A stronger understanding of BRD4 biochemistry could provide a route to better outcomes. To advance on prior work, which has focused almost entirely on the binding of isolated bromodomains and acetylated peptides, we have sought the preferred nucleosomal binding partner of full-length BRD4. We demonstrate that BRD4 binds with sub-micromolar affinity to both unmodified nucleosomes and to DNA alone. In strong contrast to BRD4-peptide interactions, we also find that the affinity of BRD4 for nucleosomes is increased only 2-4-fold by histone acetylation and that this affinity has little dependence on the acetylation pattern. Despite this modest effect of acetylation, binding of BRD4 to acetyllysine in the nucleosome was more resistant to perturbation by mutation or small-molecule inhibition than BRD4-peptide interactions. Our work helps bridge the gap between cellular and prior in vitro work and provides clues to explain the in vivo chromatin occupancy profile of BRD4 and how it changes upon therapeutic inhibition. GRAPHICAL ABSTRACT O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=79 SRC="FIGDIR/small/656505v1_ufig1.gif" ALT="Figure 1"> View larger version (22K): org.highwire.dtl.DTLVardef@1aa532aorg.highwire.dtl.DTLVardef@13a154forg.highwire.dtl.DTLVardef@4d2039org.highwire.dtl.DTLVardef@17e8377_HPS_FORMAT_FIGEXP M_FIG C_FIG

biochemistry↗