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Abstract

<jats:p>Disruption of three-dimensional genome architecture is a major driver of cancer initiation and progression, frequently arising from genetic and epigenetic alterations at CTCF- and cohesin-bound chromatin anchors. These same chromatin loop anchors can also be occupied by the germ cell-specific CTCF paralog CTCFL (BORIS), which is aberrantly activated in multiple malignancies. Here, we show that in ovarian cancer cells, BORIS activation establishes a distinct transcriptional program that collapses following loss of BORIS chromatin binding and is accompanied by widespread changes in CTCF and cohesin occupancy, histone modifications, and chromatin accessibility. These BORIS-dependent transcriptional alterations occur in long-range genomic clusters, resulting in the coordinated activation or repression of neighboring genes, including hormonally regulated gene families. BORIS loss also increases topologically associating domain (TAD) insulation, strengthens A/B compartment segregation and chromatin loop interactions, and results in a more compact and constrained chromatin architecture. Together, our findings suggest that aberrant BORIS activation promotes transcriptional reprogramming by weakening CTCF-mediated chromatin insulation and relaxing three-dimensional genome organization in ovarian cancer.</jats:p>

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chromatin boris cancer ctcf activation

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