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Degen, E. A.

Publications and source records attributed to Degen, E. A..

4 recordsLinked to original sources

A reaction-diffusion framework for de novo Polycomb spreading

Eukaryotic organisms rely on post-translational modifications to chromatin to maintain stable patterns of gene silencing. These modifications include trimethylation at histone H3 lysine 27 (H3K27me3), which is deposited by Polycomb Repressive Complex 2 (PRC2) and accumulates on the genome during embryogenesis. While this process underlies the proper specification of cell types, we lack the ability to quantitatively predict the de novo establishment of Polycomb states. The kinetics of H3K27 methylation is difficult to quantify in vivo, and further, the network of molecular interactions that influences Polycomb states is complex. Here, leveraging the Drosophila embryonic system, we measure H3K27me3 dynamics with ChIP-seq and extract the rate the modification spreads along chromatin in vivo. To provide a mechanistic explanation for this rate, we build a reaction-diffusion framework that models how PRC2 establishes states of gene silencing de novo. The reaction-diffusion system recapitulates experimental observations in wild-type and mutant embryos, and suggests that PRC2 can diffuse in 1D along chromatin at a rate enhanced by Polycomb Repressive Complex 1. Through this work, we define a minimal set of parameters that dictate in vivo Polycomb dynamics, and provide evidence that the early embryo creates a super-charged environment for epigenetic modification.

developmental biology↗

Lower-order methylation states underlie the maintenance and re-establishment of Polycomb modifications in Drosophila embryogenesis

Polycomb Group (PcG) proteins regulate the chromatin composition of an embryo by facilitating the mono, di, and tri-methylation of Histone H3 Lysine 27 (H3K27me1/2/3). For the zygote to inherit an H3K27 methylation blueprint from its mother, PcG-modified states established during oogenesis must persist through early embryogenesis until the onset of large-scale zygotic transcription (Zygotic Genome Activation, ZGA). However, questions have persisted regarding the relative contributions of two molecular mechanisms to the propagation of H3K27 methylation through early development: 1) allosteric regulation of the H3K27 methyltransferase Enhancer of Zeste (E(z)) by existing H3K27me2/3, and 2) nucleation of E(z) activity at chromatin by DNA binding factors. Here, we investigate how allostery and nucleation contribute to H3K27 methylation dynamics in early Drosophila embryogenesis by developing and experimentally validating a mathematical model. This model incorporates measurements of the nuclear concentration dynamics of E(z) and the Polycomb Response Element binding factor Pleiohomeotic (Pho), as well as the dilution of epigenetic modifications at DNA replication with the incorporation of histones to nascent chromatin. With stochastic simulations and in vivo experiments, we assert that allosteric regulation of E(z) maintains a PcG-imprint on maternal chromosomes in the form of lower-order H3K27 methylation states (H3K27me1/2), that de novo establishment of H3K27 methylation at paternal chromosomes relies on nucleation of E(z) activity by Pho, and that broad H3K27me3 domains at both maternal and paternal chromosomes are re-established at ZGA. This work provides a mechanistic explanation for the inheritance of Polycomb states in contexts of intense cellular proliferation.

developmental biology↗

Nucleation-dependent propagation of Polycomb modifications emerges during the Drosophila maternal to zygotic transition

During zygotic genome activation (ZGA) in Drosophila, broad domains of Polycomb-modified chromatin are rapidly established across the genome. Here, we investigate the spatial and temporal dynamics by which Polycomb group (PcG) histone modifications, H3K27me3 and H2Aub, emerge during early embryogenesis. Using ChIP-seq and live imaging of CRISPR-engineered GFP-tagged PcG components, we show that PRC2-dependent H3K27me3 accumulates adjacent to a subset of E(z)-bound prospective Polycomb Response Elements (PREs) beginning in nuclear cycle 14 (NC14), with patterns indicative of nucleation followed by spreading. Surprisingly, PRE-binding factors Pho, Combgap, and GAGA-factor are excluded from interphase nuclei prior to NC10 despite nuclear localization of E(z) throughout early interphases. Loss-of-function studies further demonstrate that GAGA-factor is largely dispensable for PcG domain establishment, whereas the pioneer factor Zelda is required for proper deposition of H3K27me3 and H2Aub at a subset of Polycomb domains. The role of Zelda at Polycomb domains is context-dependent; a subset of targets requires Zelda not for E(z) recruitment, but instead to license an E(z)-loaded PRE to deposit H3K27me3. Our findings support a model where licensing of PcG domains is an initial step in the regulatory processes governing Polycomb-regulated developmental genes. Impact StatementEpigenomics and quantitative imaging are used to investigate the re-establishment of histone modifications associated with the Polycomb group of epigenetic regulators during the Drosophila maternal-to-zygotic transition.

developmental biology↗

Bicoid-nucleosome competition sets a concentration threshold for transcription constrained by genome replication

Transcription factors (TFs) regulate gene expression despite constraints from chromatin structure and the cell cycle. Here we examine the concentration-dependent regulation of hunchback by the Bicoid morphogen through a combination of quantitative imaging, mathematical modeling and epigenomics in Drosophila embryos. By live imaging of MS2 reporters, we find that, following mitosis, the timing of transcriptional activation driven by the hunchback P2 (hb P2) enhancer directly reflects Bicoid concentration. We build a stochastic model that can explain in vivo onset time distributions by accounting for both the competition between Bicoid and nucleosomes at hb P2 and a negative influence of DNA replication on transcriptional elongation. Experimental modulation of nucleosome stability alters onset time distributions and the posterior boundary of hunchback expression. We conclude that TF-nucleosome competition is the molecular mechanism whereby the Bicoid morphogen gradient specifies the posterior boundary of hunchback expression.

developmental biology↗