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Biology subjects

Zhan, Y. A.

Publications and source records attributed to Zhan, Y. A..

2 recordsLinked to original sources

Enhanced FLI1 accessibility mediates STAG2-mutant leukemogenesis

Chromatin architecture governs transcriptional output and cell identity; however, how its disruption promotes leukemic transformation remains incompletely understood. Here, we show that loss of the cohesin subunit STAG2 creates a hyper-accessible chromatin landscape that amplifies FLI1 activity and extends its binding to ectopic loci. Using multi-omic analyses in human AML samples, cell lines, and mouse models, we identify chromatin-dependent co-occupancy of FLI1 and Menin, accompanied by amplification of Menin occupancy at non-canonical loci beyond its HOXA/MEIS1 targets. Therapeutically, the aberrant expansion of Menin binding drives an altered response towards Revumenib and activates interferon response pathways, creating a therapeutic vulnerability to Menin inhibition. Functionally, STAG2/NPM1c co-mutation drives a stem cell-like immunophenotype and a fully penetrant leukemia in vivo. Collectively, these findings define a model in which cohesin loss rewires transcription factor occupancy to amplify oncogenic chromatin programs and expose context-specific therapeutic dependencies.

cancer biology↗

TAD hierarchy restricts poised LTR activation and loss of TAD hierarchy promotes LTR co-option in cancer

Transposable elements (TEs) are abundant in the human genome, and they provide the sources for genetic and functional diversity. The regulation of TEs expression and their functional consequences in physiological conditions and cancer development remain to be fully elucidated. Previous studies suggested TEs are repressed by DNA methylation and chromatin modifications. The effect of 3D chromatin topology on TE regulation remains elusive. Here, by integrating transcriptome and 3D genome architecture studies, we showed that haploinsufficient loss of NIPBL selectively activates alternative promoters at the long terminal repeats (LTRs) of the TE subclasses. This activation occurs through the reorganization of topologically associating domain (TAD) hierarchical structures and recruitment of proximal enhancers. These observations indicate that TAD hierarchy restricts transcriptional activation of LTRs that already possess open chromatin features. In cancer, perturbation of the hierarchical chromatin topology can lead to co-option of LTRs as functional alternative promoters in a context-dependent manner and drive aberrant transcriptional activation of novel oncogenes and other divergent transcripts. These data uncovered a new layer of regulatory mechanism of TE expression beyond DNA and chromatin modification in human genome. They also posit the TAD hierarchy dysregulation as a novel mechanism for alternative promoter-mediated oncogene activation and transcriptional diversity in cancer, which may be exploited therapeutically.

cancer biology↗