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Klett, L. C.

Publications and source records attributed to Klett, L. C..

2 recordsLinked to original sources

Nucleosome repositioning in chronic lymphocytic leukaemia

The location of nucleosomes in the human genome determines the primary chromatin structure and regulates access to regulatory regions. However, genome-wide information on deregulated nucleosome occupancy and its implications in primary cancer cells is scarce. Here, we performed a systematic comparison of high-resolution nucleosome maps in peripheral-blood B-cells from patients with chronic lymphocytic leukaemia (CLL) and healthy individuals at single base pair resolution. Our investigation uncovered significant changes of both nucleosome positioning and packing in CLL. Globally, the spacing between nucleosomes (the nucleosome repeat length, NRL) was shortened in CLL. This effect was stronger in the more aggressive IGHV-unmutated than IGHV-mutated CLL subtype. Changes in nucleosome occupancy at specific sites were linked to active chromatin remodelling and reduced DNA methylation. Nucleosomes lost or gained in CLL in comparison with non-malignant B-cells marked differential binding of 3D chromatin organisers such as CTCF as well as immune response-related transcription factors, allowing delineating epigenetic mechanisms affected in CLL. Furthermore, patients could be better assigned to CLL subtypes according to nucleosome occupancy at cancer-specific sites than based on DNA methylation or gene expression. Thus, nucleosome positioning constitutes a novel readout to dissect molecular mechanisms of disease progression and to stratify patients. Furthermore, we anticipate that the global nucleosome positioning changes detected in our study, like the reduced NRL, can be exploited for liquid biopsy applications based on cell-free DNA to monitor disease progression.

genomics↗

Epigenetic signals that direct cell type specific interferon beta response in mouse cells

The antiviral response induced by type I interferon (IFN) via the JAK-STAT signaling cascade activates hundreds of IFN-stimulated genes (ISGs). While this response occurs essentially in all human and mouse tissues it varies between different cell types. However, the linkage between the underlying epigenetic features and the ISG pattern of a given cell is not well understood. We mapped ISGs, binding sites of the STAT1 and STAT2 transcription factors and chromatin features in three different mouse cell types (embryonic stem cells, neural progenitor cells and embryonic fibroblasts) before and after treatment with IFN{beta}. The analysis included gene expression, chromatin accessibility and histone H3 lysine modification by acetylation (ac) and mono-/tri-methylation (me1, me3). A large fraction of ISGs and STAT binding sites were cell type specific with promoter binding of a STAT1-STAT2 complex (STAT1/2) being a key driver of ISG induction. Furthermore, STAT1/2 binding to putative enhancers at intergenic and intronic sites induced ISG expression as inferred from a chromatin co-accessibility analysis. STAT1/2 binding was dependent on the chromatin context and positively correlated with pre-existing H3K4me1 and H3K27ac marks in an open chromatin state while the presence of H3K27me3 had an inhibitory effect. Thus, chromatin features present before stimulation represent an additional regulatory layer for the cell type specific antiviral response.

molecular biology↗