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Kars, G.

Publications and source records attributed to Kars, G..

3 recordsLinked to original sources

Self-organization of Drosophila chromatin architecture in a cell-free system

Metazoan genomes are organized by folding of the nucleosome fiber into loops and domains that support long-range regulatory interactions. Although cohesin-mediated loop extrusion and architectural DNA-binding proteins are central to current models of genome organization, how these mechanisms integrate to generate higher-order structure remains incompletely understood. Early Drosophila melanogaster embryogenesis provides a unique window into the emergence of chromatin architecture, as rapid syncytial nuclear divisions occur largely in the absence of transcription. However, probing the mechanisms underlying this primordial folding in vivo is technically challenging. Here, we establish an in vitro system that reconstitutes complex chromatin using extracts from syncytial embryos. Nucleosome mapping and Micro-C analyses reveal that long-range interactions, including loops and topologically associating domains (TADs), emerge spontaneously from soluble extract components. While some structures resemble those observed in early embryos, others represent latent interaction potentials that are constrained in vivo. Focusing on the eve locus, we find that TAD formation is incompatible with a simple loop extrusion model and instead requires direct pairing of boundary elements mediated by the insulator protein Suppressor-of-hairy-wing Su(Hw). Together, our work demonstrates that key features of 3D genome organization can be reconstituted in a cell-free system and provides a tractable platform for mechanistic dissection of chromatin folding in Drosophila.

genomics↗

Reciprocal targeting of the unfolded protein response regulator Xbp1 and the Dom-A nucleosome remodeler in Drosophila

The DOM-A complex regulates cell growth and proliferation in Drosophila. Like the orthologous human P400 complex, DOM-A combines two epigenetic effectors: a SWR1-type histone exchange enzyme, Dom-A, and the Tip60 acetyltransferase. We found Xbp1, a conserved transcription regulator of the unfolded protein response (UPR), as tightly associated with immunopurified DOM-A and explored the functional implications of this interaction. We biochemically determined the Xbp1 DNA recognition motif in chromatin-reconstituted Drosophila genomes. Intersection of the chromatin binding profiles for Xbp1 and Dom-A in proliferating cells and reciprocal protein depletion studies revealed two distinct modes through which Xbp1 binds chromatin. Xbp1 recruits Dom-A to motif-bearing promoters of genes involved in the UPR, such as Xbp1, Hsc70-3 and Gp93, and activates their transcription. Xbp1 also localizes to hundreds of high-confidence Dom-A binding sites that lack Xbp1 recognition motifs. These interactions depend on Dom-A, pointing to a reverse targeting scenario. Upon depletion of Dom-A, Xbp1 protein levels, but not mRNA levels, are reduced. The Xbp1 may thus be stabilized upon binding to DOM-A. The complex interactions of Xbp1 and DOM-A in the genome bear potential to integrate signals from the UPR with the general, DOM-mediated regulation of cell growth and proliferation. Graphical abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=81 SRC="FIGDIR/small/682518v1_ufig1.gif" ALT="Figure 1"> View larger version (18K): org.highwire.dtl.DTLVardef@4b60eborg.highwire.dtl.DTLVardef@c7f2d0org.highwire.dtl.DTLVardef@1164265org.highwire.dtl.DTLVardef@612ddd_HPS_FORMAT_FIGEXP M_FIG C_FIG

molecular biology↗

The Tip60 acetylome is a hallmark of the proliferative state in Drosophila

The acetyltransferase KAT5/Tip60 is an epigenetic regulator of transcription and the DNA damage response. In Drosophila, Tip60 acetylates histones as part of the DOM-A complex, but it is unclear whether it has other substrates. In this work, we comprehensively studied the functions of Tip60 in a Drosophila proliferative cell model. Depletion of Tip60 arrests the cell cycle, but remaining viable cells resist mutagenic irradiation. The impaired proliferation is explained by reduced expression of critical cell cycle genes. Tip60 binds their transcription start sites and Tip60-dependent acetylation of the histone variant H2A.V correlates with transcription activity. A potentially synergistic pathway for cell cycle regulation involves the acetylation of proteins other than histones. The Tip60-dependent nuclear acetylome contains hundreds of proteins, many of which are involved in diverse aspects of cell growth and division, including replication, mitosis, gene expression, chromatin organization and ribosome biogenesis. We hypothesize that Tip60 coordinates the proliferative state through histone and non-histone effectors. Reversible acetylation of diverse effector proteins bears potential for fine-tuning energy-intensive processes in response to stresses or nutritional shortcomings. Our study portrays the DOM-A/TIP60 complex as a general promoter of cell proliferation.

molecular biology↗