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Impact of histone acetylation and methylation on gene expression during Drosophila embryogenesis
Stockholm University, Faculty of Science, Department of Molecular Biosciences, The Wenner-Gren Institute.ORCID iD: 0000-0001-6552-4460
2026 (English)Doctoral thesis, comprehensive summary (Other academic)
Abstract [en]

Developmental gene regulation depends on the coordinated action of transcription factors, chromatin regulators, and histone modifications that establish and maintain cell-type-specific transcriptional states. In this thesis, I investigate how activating and repressive chromatin factors shape lineage specification in Drosophila melanogaster embryogenesis, with a particular focus on the histone acetyltransferase CREB-binding protein (CBP) and Polycomb-mediated repression. Using genomic, genetic, and single-cell approaches, this work addresses how chromatin states are established during zygotic genome activation (ZGA), how CBP controls distinct steps of transcription, and how active and repressive histone modifications together define developmental trajectories.

The first paper examines the regulation of dorsoventral patterning genes. We demonstrated that RNA polymerase II is recruited to their promoters independently of whether the gene is expressed. Chromatin profiling revealed that H3K27ac closely correlates with gene and enhancer activity, while CBP occupancy at promoters remains invariant. These results identify promoter-proximal pausing as a central regulatory step in early developmental patterning and suggest that inactive CBP can remain associated with silent but poised promoters.

The second paper of the thesis dissects the catalytic and non-catalytic functions of CBP during ZGA. By combining catalytic inactivation and targeted protein degradation, we show that CBP has separable roles in transcriptional elongation and initiation. Its catalytic activity is required for pause release, whereas its non-catalytic activity supports pre-initiation complex stability and RNA polymerase II recruitment. CBP is dispensable for chromatin opening itself and therefore acts downstream of pioneer factors such as Zelda. 

The third paper addresses how CBP activity is regulated across the genome. We show that CBP activity enhances its own recruitment and affects transcription factor binding at regions pioneered by the transcription factor Zelda. Catalytic functions of CBP are shown to be crucial for proper expression of early patterning genes in the Drosophila embryo. Inactive CBP persists at a subset of paused promoters primed by the pioneer factor GAF, and may contribute to Polycomb-associated repression. Together, these results establish CBP as a transcription factor-dependent regulator whose catalytic and non-catalytic functions differently contribute to early development.

The final part of the thesis extends this analysis to later embryogenesis using single-cell nanoCUT&Tag to co-profile H3K27ac and H3K27me3 in individual nuclei. We suggest a new way for epigenetic potential visualization, and found genes where Polycomb repression and gene activity co-occur in one cell lineage. The data distinguishes between two repressive states: active Polycomb-mediated repression and passive chromatin inaccessibility. H3K27me3 associates with genes exposed to activation cues rather than with all silent developmental genes. We further corroborate this conclusion by showing preferential upregulation of lineage-matching genes when H3K27me3 was partially depleted in a mesoderm lineage. 

Together, the studies in this thesis show that developmental epigenetic regulation occurs by the controlled and context-dependent action of co-activators, co-repressors, and pioneer factors that together ensure lineage commitment and maintain robust boundaries between cell identities.

Place, publisher, year, edition, pages
Stockholm: Department of Molecular Biosciences, The Wenner-Gren Institute, Stockholm University , 2026. , p. 109
Keywords [en]
Epigenetics, gene regulation, CBP, Drosophila development, transcription factors, Polycomb, polymerase II pausing
National Category
Developmental Biology Genetics and Genomics Molecular Biology
Research subject
Molecular Bioscience
Identifiers
URN: urn:nbn:se:su:diva-255721ISBN: 978-91-8107-674-5 (print)ISBN: 978-91-8107-675-2 (electronic)OAI: oai:DiVA.org:su-255721DiVA, id: diva2:2061645
Public defence
2026-09-03, Vivi Täckholmsalen (Q-salen), NPQ-huset, Svante Arrhenius väg 20, Stockholm, 13:00 (English)
Opponent
Supervisors
Available from: 2026-06-10 Created: 2026-05-21 Last updated: 2026-06-02Bibliographically approved
List of papers
1. Tissue-specific RNA Polymerase II promoter-proximal pause release and burst kinetics in a Drosophila embryonic patterning network
Open this publication in new window or tab >>Tissue-specific RNA Polymerase II promoter-proximal pause release and burst kinetics in a Drosophila embryonic patterning network
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2024 (English)In: Genome Biology, ISSN 1465-6906, E-ISSN 1474-760X, Vol. 25, no 1, article id 2Article in journal (Refereed) Published
Abstract [en]

Background: Formation of tissue-specific transcriptional programs underlies multicellular development, including dorsoventral (DV) patterning of the Drosophila embryo. This involves interactions between transcriptional enhancers and promoters in a chromatin context, but how the chromatin landscape influences transcription is not fully understood.Results: Here we comprehensively resolve differential transcriptional and chromatin states during Drosophila DV patterning. We find that RNA Polymerase II pausing is established at DV promoters prior to zygotic genome activation (ZGA), that pausing persists irrespective of cell fate, but that release into productive elongation is tightly regulated and accompanied by tissue-specific P-TEFb recruitment. DV enhancers acquire distinct tissue-specific chromatin states through CBP-mediated histone acetylation that predict the transcriptional output of target genes, whereas promoter states are more tissue-invariant. Transcriptome-wide inference of burst kinetics in different cell types revealed that while DV genes are generally characterized by a high burst size, either burst size or frequency can differ between tissues.Conclusions: The data suggest that pausing is established by pioneer transcription factors prior to ZGA and that release from pausing is imparted by enhancer chromatin state to regulate bursting in a tissue-specific manner in the early embryo. Our results uncover how developmental patterning is orchestrated by tissue-specific bursts of transcription from Pol II primed promoters in response to enhancer regulatory cues.

National Category
Developmental Biology
Identifiers
urn:nbn:se:su:diva-225993 (URN)10.1186/s13059-023-03135-0 (DOI)001138146600004 ()38166964 (PubMedID)2-s2.0-85181252071 (Scopus ID)
Available from: 2024-01-31 Created: 2024-01-31 Last updated: 2026-05-21Bibliographically approved
2. Catalytic-dependent and independent functions of the histone acetyltransferase CBP promote pioneer-factor-mediated zygotic genome activation
Open this publication in new window or tab >>Catalytic-dependent and independent functions of the histone acetyltransferase CBP promote pioneer-factor-mediated zygotic genome activation
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2025 (English)In: Molecular Cell, ISSN 1097-2765, E-ISSN 1097-4164, Vol. 85, no 12, p. 2409-2424.e8Article in journal (Refereed) Published
Abstract [en]

Immediately after fertilization, the genome is transcriptionally quiescent. Maternally encoded pioneer factors reprogram the chromatin state and facilitate transcription of the zygotic genome. In Drosophila, transcription is initiated by the pioneer factor Zelda. While Zelda-occupied sites are enriched with histone acetylation, a post-translational mark associated with active cis-regulatory regions, the functional relationship between Zelda and histone acetylation remained unclear. We show that Zelda-mediated recruitment of the histone acetyltransferase CREB-binding protein (CBP) is essential for zygotic transcription. CBP catalytic activity is necessary for the release of RNA polymerase II (RNA Pol II) into elongation and for embryonic development. However, CBP also activates transcription independent of acetylation through RNA Pol II recruitment. Neither CBP-mediated acetylation nor CBP itself is required for the pioneering function of Zelda. Our data suggest that pioneer-factor-mediated recruitment of CBP is a conserved mechanism required to activate zygotic transcription but is separable from the function of pioneer factors in restructuring chromatin accessibility.

Keywords
Drosophila, histone acetyltransferase, pioneer factor, RNA polymerase, transcription, zygotic genome activation
National Category
Molecular Biology
Identifiers
urn:nbn:se:su:diva-245929 (URN)10.1016/j.molcel.2025.05.009 (DOI)001518825900013 ()40441155 (PubMedID)2-s2.0-105008210791 (Scopus ID)
Available from: 2025-08-25 Created: 2025-08-25 Last updated: 2026-05-21Bibliographically approved
3. Transcription factors determine CBP states and functions in the early Drosophila embryo
Open this publication in new window or tab >>Transcription factors determine CBP states and functions in the early Drosophila embryo
(English)Manuscript (preprint) (Other academic)
Abstract [en]

The histone acetyltransferase CBP/p300 is a central regulator of developmental gene expression, but how its catalytic activity is differentially controlled in vivo remains unclear. Here, using the Drosophila embryo, we show that CBP occupies two functionally distinct states defined by pioneer transcription factors. Zelda-bound enhancers promote catalytically active CBP, whereas GAGA-factor (GAF)-bound promoters maintain CBP in a tissue-specific inactive configuration. CBP catalytic activity, likely regulated through transcription factor interactions with the TAZ2 domain, enhances its own recruitment at enhancer regions and supports binding of key patterning transcription factors, including Dorsal and Caudal, without altering global chromatin accessibility. Loss of catalytic activity reduces transcription factor occupancy and disrupts expression of developmental genes, leading to patterning defects. In contrast, catalytically inactive CBP promotes RNA polymerase pausing and Polycomb-mediated repression by facilitating H3K27me3 accumulation and Polycomb complex recruitment. These findings demonstrate that transcription factor context governs CBP activity state, enabling CBP to integrate enhancer activation and promoter repression during zygotic genome activation.

National Category
Developmental Biology
Research subject
Molecular Biology; Developmental Biology
Identifiers
urn:nbn:se:su:diva-255805 (URN)
Available from: 2026-05-21 Created: 2026-05-21 Last updated: 2026-05-21
4. Single-cell chromatin landscapes visualize epigenetic barriers and reveal lineage-specific Polycomb-mediated repression
Open this publication in new window or tab >>Single-cell chromatin landscapes visualize epigenetic barriers and reveal lineage-specific Polycomb-mediated repression
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(English)Manuscript (preprint) (Other academic)
Abstract [en]

Understanding how chromatin state contributes to developmental trajectories remains central to deciphering cell specification and differentiation. Using dual-modality nano-CUT&Tag, we profiled two antagonistic histone modifications—active H3K27ac and repressive H3K27me3—in thousands of single cells from Drosophila embryos across early lineage diversification and terminal differentiation. Joint embedding of both marks enabled robust cell-type classification and revealed increasing epigenetic specificity over developmental time. We ordered cells by developmental age and epigenomic similarity, and defined an epigenetic potential metric that visualizes repressive chromatin barriers as landscapes that predict transcriptional activity. While many genes conform to a classical model in which expression resides in low-potential epigenetic valleys, a substantial subset shows co-occurrence of H3K27ac, H3K27me3, and transcription within the same cell lineage. This indicates that Polycomb-mediated H3K27me3 repression frequently acts within, rather than solely between, lineages. Consistently, tissue-specific E(z) knockdown demonstrates that partial loss of H3K27me3 predominantly de-represses lineage-matched genes rather than inducing fate conversion. Systematic analysis showed that H3K27me3 occurs in multiple distributional modes, ranging from ubiquitous to highly cell-type-specific deposition, co-occuring with accessible but silent gene promoters. These findings demonstrate that cell-type-specific deployment of H3K27ac and H3K27me3 sculpts epigenetic potential landscapes that shape developmental gene expression patterns.

National Category
Developmental Biology Cell and Molecular Biology
Identifiers
urn:nbn:se:su:diva-255768 (URN)
Available from: 2026-05-21 Created: 2026-05-21 Last updated: 2026-05-21

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