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Biology subjects

Petros, G.

Publications and source records attributed to Petros, G..

2 recordsLinked to original sources

Aberrant chromatin looping by NUP98-HOXA9 is constrained by CTCF and facilitated by cohesin

The acute myeloid leukemia (AML) fusion protein NUP98-HOXA9 (NHA9) drives leukemogenesis by promoting aberrant chromatin loop formation through phase separation, yet the mechanisms underlying these interactions remain unclear. To address this, we dissect the interplay between NHA9 and individual loop extrusion factors using in situ Hi-C, CUT&RUN, RNA-seq, and Auxin-inducible degradation of CTCF or RAD21. CTCF was found to be dispensable for NHA9 loop formation, although CTCF binding constrained a subset of loops that emerged only upon CTCF depletion. In contrast, cohesin played a distance-dependent role where short-range NHA9 loops formed independently of RAD21, while long-range loops were strongly cohesin-dependent. Despite this requirement, RAD21 showed minimal enrichment at NHA9 loop anchors, indicating that NHA9 does not function as a canonical cohesin barrier. Instead, these findings support a non-canonical model in which cohesin transiently facilitates interactions between distal NHA9-bound loci, which are subsequently stabilized through NHA9 phase separation. Together, this work reveals a distinct mechanism of oncogenic chromatin looping in which NUP98-HOXA9 cooperates with canonical loop extrusion machinery to reprogram genome architecture in AML.

Molecular Biology↗

Stress-induced loss of CTCF reveals an alternative, promoter-based mode of cohesin looping

Cells continually face environmental stressors that challenge homeostasis, yet how three-dimensional (3D) chromatin structure contributes to these stress responses remains unclear under hyperosmotic conditions. To investigate this, we map 3D chromatin structure, its molecular drivers, and transcriptional outcomes during sorbitol-induced hyperosmotic stress. Within 1 hour of sorbitol treatment, pre-existing loops and domains collapse, while several hundred de novo sorbitol-induced loops emerge. These loops are punctate, longer-range, and transient. 3D chromatin structure largely returns to baseline conditions by 24 hours. Loop reorganization is consistent across cell types and hyperosmotic stimuli. Sorbitol-induced loops require cohesin but not CTCF, and anchors are enriched at active promoters harboring GC-rich transcription factor motifs. Genes at these anchors show delayed activation following loop formation, consistent with loops acting upstream of transcription. Together, hyperosmotic stress triggers rapid, reversible, CTCF-independent chromatin reorganization that correlates with transcriptional adaptation.

genomics↗