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USP22 is a novel vulnerability regulating MEIS1 protein abundance and gene transcription in KMT2Ar acute leukemia
Sarah Bröchtel1, Constanze Schneider2, Marius Müller1
1University Hospital Frankfurt, Frankfurt, Germany.
Abstract:
Patients with acute leukemias harboring translocations involving gene lysine methyltransferase 2A (KMT2A) have a poor prognosis due to chemotherapy resistance with rapid relapse following standard treatments. The resulting KMT2A fusion proteins dysregulate gene expression, leading to an upregulation of leukemogenic transcription factors such as HOXA9 and MEIS1, which drives leukemic transformation. Although Menin inhibitors are proving to be promising new therapeutics for patients with KMT2A-rearranged (KMT2Ar) acute leukemia, resistance mechanisms have already been described and new therapeutic approaches for this patient subgroup must be identified. Here, a genome-wide CRISPR/Cas9 screen in a KMT2Ar B-cell acute lymphoblastic leukemia (ALL) cell line identified the deubiquitinase USP22 as a novel regulator of MEIS1 protein stability. USP22 is a member of the Spt-Ada-Gcn5 acetyltransferase (SAGA) multiprotein complex, which has crucial functions in shaping the chromatin landscape and modulating transcription. Genetic depletion of USP22 impaired cellular growth and proliferation in KMT2Ar acute leukemia models. Chromatin immunoprecipitation revealed cooperative binding between USP22 and MEIS1 at critical oncogenic target genes suggesting that USP22 safeguards leukemogenic transcription by protecting MEIS1 from proteasomal degradation. Genetic or chemical inhibition of USP22 led to polyubiquitination of MEIS1 resulting in proteasomal degradation and downregulation of the expression of target genes. Our study identifies USP22 as a novel regulator of MEIS1 protein stability, that could potentially be exploited as a therapeutic target in the future in KMT2Ar leukemias.
Insights
USP22 stabilizes MEIS1 protein in KMT2A-rearranged leukemias, promoting cancer growth. Inhibiting USP22 degrades MEIS1, offering a potential new therapy for acute leukemia patients resistant to current treatments.
Area of Science:
- Hematology
- Molecular Biology
- Cancer Research
Background:
- Acute leukemias with KMT2A translocations have poor prognosis and chemotherapy resistance.
- KMT2A fusions upregulate HOXA9 and MEIS1, driving leukemic transformation.
- Emerging Menin inhibitors show promise, but resistance necessitates new therapeutic targets.
Purpose of the Study:
- Identify novel therapeutic targets for KMT2A-rearranged (KMT2Ar) acute leukemia.
- Investigate the role of USP22 in regulating MEIS1 protein stability.
- Explore USP22 as a potential therapeutic target in KMT2Ar leukemias.
Main Methods:
- Genome-wide CRISPR/Cas9 screen in KMT2Ar B-cell acute lymphoblastic leukemia (ALL) cell line.
- Genetic depletion of USP22 and assessment of cellular growth and proliferation.
- Chromatin immunoprecipitation to analyze USP22 and MEIS1 binding.
- Inhibition of USP22 (genetic or chemical) to observe MEIS1 polyubiquitination and degradation.
Main Results:
- USP22 identified as a novel regulator of MEIS1 protein stability.
- USP22 depletion impairs growth and proliferation in KMT2Ar leukemia models.
- USP22 protects MEIS1 from proteasomal degradation, maintaining leukemogenic transcription.
- USP22 inhibition leads to MEIS1 degradation and downregulation of target genes.
Conclusions:
- USP22 is a key regulator of MEIS1 stability in KMT2Ar leukemias.
- Targeting USP22 could be a viable therapeutic strategy for KMT2Ar acute leukemias.
- USP22 inhibition offers a potential new approach to overcome chemotherapy resistance in these patients.
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