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Inhibiting WEE1 Selectively Kills Histone H3K36me3-Deficient Cancers by dNTP Starvation
Sophia X Pfister1, Enni Markkanen2, Yanyan Jiang1
1CRUK MRC Oxford Institute for Radiation Oncology, Department of Oncology, University of Oxford, Oxford OX3 7DQ, UK.
Abstract:
Histone H3K36 trimethylation (H3K36me3) is frequently lost in multiple cancer types, identifying it as an important therapeutic target. Here we identify a synthetic lethal interaction in which H3K36me3-deficient cancers are acutely sensitive to WEE1 inhibition. We show that RRM2, a ribonucleotide reductase subunit, is the target of this synthetic lethal interaction. RRM2 is regulated by two pathways here: first, H3K36me3 facilitates RRM2 expression through transcription initiation factor recruitment; second, WEE1 inhibition degrades RRM2 through untimely CDK activation. Therefore, WEE1 inhibition in H3K36me3-deficient cells results in RRM2 reduction, critical dNTP depletion, S-phase arrest, and apoptosis. Accordingly, this synthetic lethality is suppressed by increasing RRM2 expression or inhibiting RRM2 degradation. Finally, we demonstrate that WEE1 inhibitor AZD1775 regresses H3K36me3-deficient tumor xenografts.
Insights
Loss of Histone H3K36 trimethylation (H3K36me3) in cancers creates a vulnerability. H3K36me3-deficient tumors are sensitive to WEE1 inhibition, targeting RRM2 for cancer therapy.
Area of Science:
- Cancer Biology
- Epigenetics
- Molecular Oncology
Background:
- Histone H3K36 trimethylation (H3K36me3) loss is common in various cancers, presenting a potential therapeutic target.
- Understanding the molecular mechanisms driving cancer progression and identifying novel vulnerabilities is crucial for developing effective treatments.
Purpose of the Study:
- To identify synthetic lethal interactions in cancers with H3K36me3 deficiency.
- To elucidate the role of WEE1 inhibition and RRM2 in this synthetic lethality.
- To evaluate the therapeutic potential of WEE1 inhibitors in preclinical cancer models.
Main Methods:
- Investigated the synthetic lethal interaction between H3K36me3 deficiency and WEE1 inhibition.
- Utilized molecular biology techniques to study RRM2 regulation by H3K36me3 and WEE1.
- Assessed the impact of WEE1 inhibition on RRM2 levels, dNTP pools, cell cycle progression, and apoptosis.
- Tested the efficacy of WEE1 inhibitor AZD1775 in H3K36me3-deficient tumor xenografts.
Main Results:
- H3K36me3-deficient cancers exhibit acute sensitivity to WEE1 inhibition.
- WEE1 inhibition leads to RRM2 degradation via premature CDK activation, causing dNTP depletion and S-phase arrest.
- This synthetic lethality is dependent on RRM2 levels and can be rescued by increasing RRM2 expression or inhibiting its degradation.
- WEE1 inhibitor AZD1775 demonstrated tumor regression in H3K36me3-deficient xenografts.
Conclusions:
- WEE1 inhibition represents a promising synthetic lethal strategy for treating H3K36me3-deficient cancers.
- Targeting RRM2 degradation through WEE1 inhibition offers a novel therapeutic approach.
- AZD1775 shows preclinical efficacy, supporting its clinical investigation for relevant cancer types.
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