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Biology subjects

Hyka, R.

Publications and source records attributed to Hyka, R..

2 recordsLinked to original sources

Exploiting an Epigenetic Resistance Mechanism to PI3 Kinase Inhibition in Leukemic Stem Cells

Acquired non-genetic resistance mechanisms to existing therapies contribute to poor outcomes for acute myeloid leukemia (AML) patients, and inability to target leukemic stem cells (LSCs) can lead to relapse. To overcome these challenges, we tested whether LSCs have dependencies on PI3 kinase (PI3K). We found that LSCs are susceptible to isoform-selective targeting of PI3K and are particularly dependent on the P110 alpha isoform of PI3K. We discovered that PI3K inactivation leads to dynamic changes in EZH2/PRC2 function in leukemic cells, and we uncovered downregulation of EZH2 protein levels as a resistance mechanism in response to PI3K inhibition. We found that PI3K inhibition in AML cells can lead to compensatory upregulation of EZH1, and that EZH1 knockdown can sensitize AML cells to PI3K inhibition. We leveraged this resistance mechanism by combining a PI3K inhibitor with an EZH1/2 dual inhibitor, which successfully overcomes the acquired resistance and leads to sustained targeting of AML cells ex vivo and in murine AML and PDX models in vivo. This study identifies a promising novel therapeutic regimen for targeting LSCs in AML.

cancer biology↗

TTLL4 glutamyltransferase is a therapeutic target for NPM1-mutated acute myeloid leukemia

NPM1-mutated acute myeloid leukemia (AML) is defined by aberrant cytoplasmic localization of the mutant NPM1c protein, and therapeutic strategies targeting this specific disease remain limited. Here, we identify TTLL4, a mono-glutamate glutamyltransferase, as a selective vulnerability in NPM1c AML. TTLL4 catalyzes post-translational hyper-glutamylation of NPM1c at E126, stabilizes its cytoplasmic localization and promotes a differentiation block in leukemic cells. Multiple genetic TTLL4 inactivation approaches in human NPM1c-mutant cell lines reduce NPM1c glutamylation, trigger myeloid differentiation, and impair proliferation. Transcriptomic analyses show that TTLL4 knockdown pheno-copies NPM1c degradation and aligns with KMT2A and XPO1-targeted gene expression programs. Furthermore, Ttll4 knockout significantly prolonged survival in an NPM1c/NRAS-driven mouse AML model and promoted differentiation. We identify a small molecule, EN7, that selectively inhibits TTLL4 and recapitulates these phenotypes in NPM1c+ cells. These findings identify glutamylation as a new axis of leukemic regulation and highlight TTLL4 as a druggable epigenetic regulator in NPM1c AML.

cancer biology↗