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Hoermanseder, E. B.

Publications and source records attributed to Hoermanseder, E. B..

2 recordsLinked to original sources

Digital Reprogramming Decodes Epigenetic Barriers of Cell Fate Changes

The fates of differentiated cells in our body can be induced to change by nuclear reprogramming. In this way, cells valuable for therapeutic purposes and disease modeling can be produced. However, the efficiency of this process is low, partly due to properties of somatic donor nuclei which stabilize their differentiated fate but also act as barriers reprogramming-associated cell fate changes. The identity of these reprogramming barriers is not fully understood. Here, we developed an artificial intelligence-based approach to model nuclear reprogramming and used it to identify the chromatin modification H3K27ac as an epigenetic barrier to reprogramming-induced cell fate changes. Using reprogramming by nuclear transfer (NT) to eggs of Xenopus laevis as a model system, we profiled chromatin modifications in differentiated cell types alongside gene expression patterns before and after reprogramming. Our model integrated the data and by leveraging model predictions, we find that genes resisting inactivation during reprogramming display chromatin modification barcodes. This revealed H3K27ac as a novel candidate barrier to NT reprogramming. Reducing H3K27ac levels using p300/CBP inhibitors before reprogramming led to an improved downregulation of genes linked to H3K27ac-modified enhancers after reprogramming. Importantly, these effects were accompanied by improved embryonic development of the resulting nuclear transfer embryos. In summary, our study identified H3K27ac as a safeguarding mechanism of cellular identities and as a reprogramming barrier during NT. Hence, the here-developed Digital Reprogramming" approach is capable of modelling and improving current cell-fate reprogramming strategies.

genomics↗

H3K4 methylation-promoted transcriptional memory ensures faithful zygotic genome activation and embryonic development

In the life of a vertebrate embryo, gene expression is initiated for the first time at zygotic genome activation (ZGA). Maternally expressed transcription factors present in the embryo are essential for this process. However, it is unknown if active chromatin modifications established in the gamete are propagated in the embryo as an epigenetic memory to support ZGA and embryonic development. Here, we provide evidence that in Xenopus laevis, H3K4 methylation provides an epigenetic memory of active chromatin states. We show that this is required for faithful zygotic genome activation and successful embryonic development. Chromatin configurations of promoters displaying high H3K4me3 intensity and breadth, alongside DNA hypomethylation and increased GC content, are propagated from the gametes to the embryo across multiple cell divisions and a transcriptionally quiescent phase in early development. We show that this transmission of H3K4 methylation is essential for precise zygotic genome activation and expression of key pioneer ZGA transcription factors Pou5f3.2 and Sox3. Finally, we demonstrate that the H3K4 methyltransferases Kmt2b and Cxxc1 ensure transcription-independent propagation of H3K4me3 and proper zygotic gene expression. In summary, our study establishes the role of H3K4 methylation in maintaining memory of active chromatin states in Xenopus embryos and reveals its importance for successful embryonic development.

developmental biology↗