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Inhibition of GATA2 in prostate cancer by a clinically available small molecule
Salma Kaochar1,2,3, Aleksandra Rusin3, Christopher Foley1,3
1Department of Medicine, Baylor College of Medicine, Houston, Texas, USA.
Abstract:
Castration-resistant prostate cancer (CRPC) remains highly lethal and in need of novel, actionable therapeutic targets. The pioneer factor GATA2 is a significant prostate cancer (PC) driver and is linked to poor prognosis. GATA2 directly promotes androgen receptor (AR) gene expression (both full-length and splice-variant) and facilitates AR binding to chromatin, recruitment of coregulators, and target gene transcription. Unfortunately, there is no clinically applicable GATA2 inhibitor available at the moment. Using a bioinformatics algorithm, we screened in silico 2650 clinically relevant drugs for a potential GATA2 inhibitor. Validation studies used cytotoxicity and proliferation assays, global gene expression analysis, RT-qPCR, reporter assay, reverse phase protein array analysis (RPPA), and immunoblotting. We examined target engagement via cellular thermal shift assay (CETSA), ChIP-qPCR, and GATA2 DNA-binding assay. We identified the vasodilator dilazep as a potential GATA2 inhibitor and confirmed on-target activity via CETSA. Dilazep exerted anticancer activity across a broad panel of GATA2-dependent PC cell lines in vitro and in a PDX model in vivo. Dilazep inhibited GATA2 recruitment to chromatin and suppressed the cell-cycle program, transcriptional programs driven by GATA2, AR, and c-MYC, and the expression of several oncogenic drivers, including AR, c-MYC, FOXM1, CENPF, EZH2, UBE2C, and RRM2, as well as of several mediators of metastasis, DNA damage repair, and stemness. In conclusion, we provide, via an extensive compendium of methodologies, proof-of-principle that a small molecule can inhibit GATA2 function and suppress its downstream AR, c-MYC, and other PC-driving effectors. We propose GATA2 as a therapeutic target in CRPC.
Insights
Researchers identified dilazep as a novel inhibitor of GATA2, a key driver in castration-resistant prostate cancer (CRPC). This finding offers a potential new therapeutic strategy for treating lethal prostate cancer by targeting GATA2 and its downstream effectors.
Area of Science:
- Oncology
- Molecular Biology
- Drug Discovery
Background:
- Castration-resistant prostate cancer (CRPC) is a lethal disease with limited therapeutic options.
- GATA2 is a critical driver of prostate cancer (PC) progression and is associated with poor prognosis.
- Targeting GATA2 presents a promising strategy for novel CRPC therapies, but no inhibitors are currently clinically available.
Purpose of the Study:
- To identify and validate a clinically relevant small molecule inhibitor of GATA2.
- To investigate the therapeutic potential of a GATA2 inhibitor in preclinical models of prostate cancer.
- To elucidate the molecular mechanisms by which GATA2 inhibition impacts prostate cancer progression.
Main Methods:
- In silico screening of 2650 drugs to identify potential GATA2 inhibitors.
- In vitro validation using cytotoxicity, proliferation assays, gene expression analysis, and protein-level analysis (RPPA, immunoblotting).
- In vivo validation in patient-derived xenograft (PDX) models and target engagement studies (CETSA, ChIP-qPCR).
Main Results:
- Dilazep was identified as a GATA2 inhibitor with confirmed on-target activity via CETSA.
- Dilazep demonstrated significant anticancer activity in GATA2-dependent PC cell lines and a PDX model.
- Dilazep suppressed GATA2 recruitment to chromatin, cell-cycle progression, and expression of key oncogenic drivers (AR, c-MYC, FOXM1).
Conclusions:
- Dilazep effectively inhibits GATA2 function and suppresses downstream AR, c-MYC, and other prostate cancer-driving pathways.
- This study provides proof-of-principle for targeting GATA2 with small molecules in CRPC.
- GATA2 is proposed as a viable therapeutic target for castration-resistant prostate cancer.
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