bioRxiv Science⌕ Search

Biology subjects

Galang, A. M. D.

Publications and source records attributed to Galang, A. M. D..

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↗

Growth directions and stiffness across cell layers determine whether tissues stay smooth or buckle

From smooth shapes to buckles, nature exhibits organs of various shapes and forms. How cells grow to produce smooth shaped leaves and sepals remain unclear. Here, we show that growth along the longitudinal axis during early developmental stages and comparable stiffness across both epidermal layers of Arabidopsis sepals are essential for smoothness, as seen in the wild type. We identified a mutant (as2-7D) with ectopic expression of ASYMMETRIC LEAVES 2 (AS2) on the outer epidermis. Our analysis reveals that ectopic AS2 expression causes the outer epidermis of as2-7D sepals to buckle during early stages of sepal development. We show that buckling of the outer epidermis occurs due to conflicting cell growth directions and unequal tissue stiffness across the epidermal layers. Overexpression of cyclin-dependent kinase (CDK) inhibitor Kip-related protein 1 (KRP1) in as2-7D restores sepal smoothness by aligning the growth directions of the outer epidermal cells along the longitudinal axis, while also increasing the overall stiffness of the outer epidermis. Furthermore, buckling is associated with the convergence of auxin efflux transporter protein PIN-FORMED 1 (PIN1) to generate outgrowth in the sepals at later stages, suggesting that buckling can initiate outgrowths. Our findings suggest that in addition to molecular cues influencing tissue mechanics, tissue mechanics can also modulate molecular signals, giving rise to well-defined shapes. One-Sentence SummaryThe asymmetric leaves 2-7D mutant sepals buckle due to discoordination of growth between the two epidermal layers.

developmental biology↗