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Biology subjects

Fol, L.

Publications and source records attributed to Fol, L..

2 recordsLinked to original sources

DNMT/G9a Complex Inhibition Uncovers Epigenetic Vulnerabilities and Induces IFN-Response in Acute Myeloid Leukemia

Epigenetic dysregulation is a hallmark of Acute Myeloid Leukemia (AML), with mutations in DNA Methyltransferases (e.g., DNMT3A) being frequent and promising therapeutic targets. DNMTs form complexes with Histone Methyltransferases (HMTs), driving gene silencing loop via chromatin methylation crosstalk. However, potential connections between this DNMTs/HMTs cooperative activity and oncogenic requirements across the AML mutational spectrum remain poorly understood. Here, we demonstrate that AMLs carrying DNMT3A and Nucleophosmin (NPM1) mutations exhibit a specific epigenetic vulnerability toward a complex formed by DNMTs and G9a, a specific histone H3 Lysine 9 Methyltransferase (H3K9-HMT). Dual inhibition of DNMT/G9a restores differentiation, reduces tumor growth, and spares healthy progenitors compared to standard hypomethylating agents. Mechanistically, DNMT/G9a regulates NPM1 stability, inhibits HOXA9/MEIS1 activity, and triggers interferons (IFN) response via viral mimicry pathways by modulating hypermethylated retrotransposons. Collectively, our data unravel specific epigenetic vulnerabilities within the complex AML mutational landscape and provide a compelling rationale for the design of personalized epigenetic therapies with enhanced efficacy and safer clinical outcomes.

cancer biology↗

ANP32E drives vulnerability to ATR inhibitors by inducing R-loops-dependent Transcription Replication Conflicts in Triple Negative Breast Cancer

Oncogene-induced replicative stress (RS) plays a central role in tumor progression, leading to genomic instability by eliciting transcription replication conflicts (TRCs), which represent the major source of R-loops, that ultimately favors the onset of the DNA damage response (DDR). We investigated the pathogenic contribution of chromatin factors in increasing TRCs and R-loop frequencies in cancer. We found that in breast cancer patients the concomitant upregulation of MYC and the H2A.Z-specific chaperone ANP32E correlated with an increase genome instability. Genome-wide profiling revealed that the ANP32E-dependent increases turnover of H2A.Z altered RNApol II processivity, leading to accumulation of long R-loops at TRCs. We showed that ANP32E upregulation increases TRCs and activates an ATR-dependent DDR, which predispose cancer cells to R-loop-mediated genomic fragility. By exploiting the vulnerability of ANP32E-expressing cancer cells to ATR inhibitors, we found that tumors relied on this DDR pathway, whose inhibition halted their pro-metastatic capacity.

cancer biology↗