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Bracken, A. P.

Publications and source records attributed to Bracken, A. P..

2 recordsLinked to original sources

Specific cPRC1 complexes are co-opted to mediate oncogenic gene repression in diffuse midline glioma

Diffuse midline glioma (DMG) is a fatal childhood brain tumour characterised primarily by mutant histone H3 (H3K27M). H3K27M causes a global reduction in Polycomb Repressive Complex 2 (PRC2)-mediated H3K27me3 by inhibiting PRC2 enzymatic activity. Paradoxically, PRC2 is essential in DMG tumour cells where residual complex activity is required for oncogenic gene repression, although the molecular mechanisms acting downstream of PRC2 in this context are poorly understood. Here, weve discovered this oncogenic gene repression is mediated by specific canonical PRC1 (cPRC1) formations. By combining CRISPR screening, biochemical and chromatin mapping approaches with functional perturbations we show that cPRC1 complexes containing CBX4 and PCGF4 drive oncogenic gene repression downstream of H3K27me3 in DMG cells. Remarkably, the altered H3K27me3 modification landscape characteristic of these tumours rewires the distribution of cPRC1 complexes on chromatin. CBX4 and PCGF4 containing cPRC1 accumulate at sites of H3K27me3 while other cPRC1 formations are displaced. Despite accounting for <5% of cPRC1 complexes in DMG, CBX4/PCGF4-containing complexes predominate as gene repressors. Our findings link the altered distribution of H3K27me3 with imbalanced cPRC1 function, promoting oncogenic gene repression in DMG cells, revealing new disease mechanisms and highlighting potential therapeutic opportunities in this incurable childhood brain tumour.

cancer biology↗

Dominant negative and directional dysregulation of Polycomb function in EZH2-mutant human growth disorders

Heterozygous missense mutations in EZH2 cause Weaver syndrome (WS), a developmental disorder characterized by intellectual disability and overgrowth. EZH2 encodes the enzymatic subunit of Polycomb Repressive Complex 2 (PRC2), which mediates mono-, di-, and tri-methylation of histone H3 lysine residue 27 (H3K27me1/2/3). Although the functional characterization of most WS-associated EZH2 variants is lacking, they are presumed loss of function. However, the dearth of reported early truncating mutations in EZH2 led us to hypothesise that a dominant negative mutational mechanism may underlie the development of WS. To test this, we performed a detailed structural analysis of all known WS-associated EZH2 variants, which provided initial support that they are dominant negative. Next, we isogenically modelled 10 representative WS-associated EZH2 variants in embryonic stem cells and showed they induce global reductions in H3K27me2 and H3K27me3 with concomitant global increases in H3K27me1, H3K27ac, and chromatin decompaction. Importantly, the reductions in H3K27me2/3 methylation revealed a pattern of dominant-negative interference to PRC2 activity. Comparative analysis of a gain-of-function EZH2 variant causing growth restriction highlighted the reciprocal nature of the chromatin changes in these opposing growth syndromes. Our findings detail the molecular effects of developmental-syndrome-associated EZH2 variants in cells and implicate imbalanced landscapes of H3K27 modification in their pathology.

genetics↗