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Vainshtein, Y.

Publications and source records attributed to Vainshtein, Y..

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↗

Plasticity and lineage commitment of individual Th1 cells are determined by stable T-bet expression quantities

T helper 1 (Th1) cell identity is defined by the expression of the lineage-defining transcription factor T-bet. Here, we examine the influence of T-bet expression heterogeneity on subset plasticity by leveraging cell sorting of distinct in vivo-differentiated Th1 cells based on their quantitative expression of T-bet and interferon-{gamma}. Heterogeneous T-bet expression states were regulated by virus-induced type-I interferons and were stably maintained even after secondary viral infection. Exposed to Th2-polarizing conditions, the sorted subpopulations exhibited graded levels of plasticity: T-bet quantities were inversely correlated with the ability to express the Th2 lineage-specifying transcription factor GATA-3 and Th2 cytokines. Reprogramed Th1 cells acquired graded, but stable mixed Th1+2 phenotypes with a hybrid epigenetic landscape. Continuous presence of T-bet in differentiated Th1 cells was essential to ensure Th1 cell stability. Thus, innate cytokine signals regulate Th1 cell plasticity via an individual cell-intrinsic rheostat to enable T cell subset adaptation to subsequent challenges. HIGHLIGHTSO_LIType-I interferons triggered by infection determine T-bet expression states in Th1 cells C_LIO_LIT-bet and IFN-{gamma} expression states indicate the plasticity of individual Th1 cells C_LIO_LIIndividual T-bet expression states and plasticity persist after secondary infection C_LIO_LIReprogramming yields stable Th1+2 phenotypes and a mixed epigenetic landscape C_LI

immunology↗