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Toma, M. M.

Publications and source records attributed to Toma, M. M..

3 recordsLinked to original sources

DNMT1-Mediated Epigenetic Reprogramming Drives KMT2A Amplifications and Rearrangements

MLL/KMT2A amplifications and rearrangements are prevalent in infant, adult, and therapy-induced leukemia; however, the molecular contributors controlling these alterations remain elusive. Here, we reveal that rapid CTCF degradation generates local genome structure alterations at KMT2A and copy gains and rearrangements. We then established a conserved, coordinated interplay between DNA and histone methylation pathways that control CTCF occupancy, and in turn, KMT2A locus stability. For example, DNMT1 overexpression promotes increased H3K9 methylation, reduced CTCF occupancy, and causes KMT2A alterations. However, DNMT1 inhibition suppresses these events and KMT2A alterations caused by topoisomerase II inhibition. Locus-specific epigenome targeting demonstrated that DNA or H3K9 methylation promotes KMT2A copy gains and rearrangement, whereas targeted TET activity suppresses these events upon methylation perturbation or doxorubicin treatment. These findings identify a conserved, coordinated DNA-histone methylation axis governing KMT2A amplifications and rearrangement susceptibility, revealing biomarkers and therapeutic targets to predict and intercept these events in cancer.

cancer biology↗

Selective Sensitivity of Ph-like B-ALL to BRG1 Inhibition Reveals a Novel Targeted Therapy Strategy

Despite therapeutic advances, high-risk subtypes of B-cell acute lymphoblastic leukemia (B-ALL) such as Philadelphia chromosome-like (Ph-like) and KMT2A-rearranged (KMT2A-R) remain a formidable clinical challenge. BRG1 (gene name SMARCA4), the ATPase subunit of the SWI/SNF chromatin-remodeling complex, has been extensively studied in solid tumors, where inactivating mutations are linked to aggressive disease and poor prognosis. Although BRG1 is known to be essential for early B cell development, its role in B-ALL remains poorly understood. Therefore, we investigated the therapeutic relevance of BRG1 in high-risk B-ALL. Meta-analysis of gene expression data revealed that BRG1-inactivating mutations are exceedingly rare (0.35%) in B-ALL, suggesting that intact BRG1 function may be critical for leukemogenesis. Subtype-specific analyses revealed that elevated BRG1 expression is associated with significantly shorter overall survival in children with Ph-like B-ALL, while the opposite trend was observed in KMT2A-R B-ALL. We confirmed higher BRG1 expressions in Ph-like compared to KMT2A-R B-ALL via gene expression analysis, RT-PCR, and Western blotting. The pharmacologic inhibition of BRG1 using two selective inhibitors, BRM014 and FHD-286, revealed marked sensitivity in Ph-like B-ALL cell lines, whereas KMT2A-R B-ALL was resistant. Mechanistically, we found that BRG1 inhibition results in cell cycle arrest via downregulation of cell cycle regulators (CCND3, CDK4, CDK6, E2F1, and MYC) and upregulation of the cell cycle inhibitor CDKN1B (p27). Importantly, treatment with FHD-286 significantly prolonged the survival of NSG mice engrafted with Ph-like B-ALL cells. Taken together, these findings establish BRG1 as a critical, subtype-specific dependency in Ph-like B-ALL and demonstrate that its pharmacologic inhibition effectively suppresses leukemic cell proliferation through induction of cell cycle arrest. The pronounced in vitro sensitivity and improved in vivo survival upon BRG1 inhibition provide compelling preclinical evidence for its therapeutic targeting. These results support the advancement of BRG1-directed strategies as a viable treatment approach for patients with Ph-like B-ALL, with the potential to improve outcomes in this high-risk population. HighlightsO_LIHigher levels of BRG1 correlate to poor clinical outcomes in Ph-like but KMT2A-R B-ALL C_LIO_LIInhibition of BRG1 induces cell cycle arrest in Ph-like cells in vitro and extends the survival of mice in pre-clinical in vivo studies C_LI Graphical Abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=200 SRC="FIGDIR/small/661805v1_ufig1.gif" ALT="Figure 1"> View larger version (56K): org.highwire.dtl.DTLVardef@1b0a6cforg.highwire.dtl.DTLVardef@977257org.highwire.dtl.DTLVardef@d3bf7forg.highwire.dtl.DTLVardef@1c12d52_HPS_FORMAT_FIGEXP M_FIG C_FIG

cancer biology↗

DNA polymerase theta-mediated DNA repair is a functional dependency and therapeutic vulnerability in DNMT3A deficient leukemia cells

Myeloid malignancies carrying somatic DNMT3A mutations (DNMT3Amut) may be refractory to standard therapy. DNMT3Amut leukemia cells accumulate toxic DNA double strand breaks (DSBs) and stalled replication forks, rendering them dependent on DNA damage response (DDR). We report here that DNA polymerase theta (Pol{theta}), a key element in DSB repair by end-joining (TMEJ) and in fork restarting, is essential for survival and proliferation of DNMT3Amut leukemia cells. Pol{theta} is overexpressed in DNMT3Amut leukemia cells due to abrogation of PARP1 PARylation-dependent UBE2O E3 ligase-mediated ubiquitination and proteasomal degradation of Pol{theta}. In addition, PARP1-mediated recruitment of the SMARCAD1-MSH2/MSH3 repressive complex to DSBs was diminished in DNMT3Amut leukemia cells which facilitated loading of Pol{theta} on DNA damage and promoting TMEJ and replication fork restart. Pol{theta} inhibitors enhanced the anti-leukemic effects of standard drugs such as FLT3 kinase inhibitor quizartinib, cytarabine +/- doxorubicin, and etoposide in vitro and in mice with DNMT3Amut leukemia. Altogether, Pol{theta} is an attractive target in DNMT3Amut hematological malignancies.

cancer biology↗