Gene expression-based discovery of atovaquone as a STAT3 inhibitor and anticancer agent
Michael Xiang1, Haesook Kim2, Vincent T Ho1,3
1Department of Medical Oncology and.
Abstract:
The oncogenic transcription factor signal transducer and activator of transcription 3 (STAT3) is frequently activated inappropriately in a wide range of hematological and solid cancers, but clinically available therapies targeting STAT3 are lacking. Using a computational strategy to identify compounds opposing the gene expression signature of STAT3, we discovered atovaquone (Mepron), an antimicrobial approved by the US Food and Drug Administration, to be a potent STAT3 inhibitor. We show that, at drug concentrations routinely achieved clinically in human plasma, atovaquone inhibits STAT3 phosphorylation, the expression of STAT3 target genes, and the viability of STAT3-dependent hematological cancer cells. These effects were also observed with atovaquone treatment of primary blasts isolated from patients with acute myelogenous leukemia or acute lymphocytic leukemia. Atovaquone is not a kinase inhibitor but instead rapidly and specifically downregulates cell-surface expression of glycoprotein 130, which is required for STAT3 activation in multiple contexts. The administration of oral atovaquone to mice inhibited tumor growth and prolonged survival in a murine model of multiple myeloma. Finally, in patients with acute myelogenous leukemia treated with hematopoietic stem cell transplantation, extended use of atovaquone for Pneumocystis prophylaxis was associated with improved relapse-free survival. These findings establish atovaquone as a novel, clinically accessible STAT3 inhibitor with evidence of anticancer efficacy in both animal models and humans.
Insights
Atovaquone, an existing drug, effectively inhibits signal transducer and activator of transcription 3 (STAT3) in cancer cells. This discovery offers a new, clinically accessible therapeutic strategy for STAT3-driven cancers.
Area of Science:
- Oncology
- Pharmacology
- Molecular Biology
Background:
- Signal transducer and activator of transcription 3 (STAT3) is a key oncogenic factor in numerous cancers.
- Targeting STAT3 is a promising strategy, but effective therapies are limited.
- Existing treatments for STAT3-driven cancers are lacking.
Purpose of the Study:
- To identify novel STAT3 inhibitors using a computational approach.
- To evaluate the efficacy of atovaquone as a STAT3 inhibitor in preclinical cancer models.
- To explore the therapeutic potential of atovaquone in hematological malignancies.
Main Methods:
- Computational screening to identify compounds targeting STAT3 gene expression.
- In vitro assays to assess atovaquone's effect on STAT3 phosphorylation and target gene expression.
- In vivo studies using murine models of multiple myeloma.
- Analysis of clinical data from acute myelogenous leukemia patients.
Main Results:
- Atovaquone identified as a potent STAT3 inhibitor, effective at clinically relevant concentrations.
- Atovaquone reduced STAT3 phosphorylation, target gene expression, and viability in cancer cells, including primary patient samples.
- Atovaquone demonstrated anticancer efficacy in a murine multiple myeloma model.
- Clinical data suggested improved outcomes in AML patients receiving atovaquone.
Conclusions:
- Atovaquone is a novel, clinically accessible STAT3 inhibitor.
- Atovaquone exhibits anticancer activity in preclinical models and shows promise in human studies.
- Atovaquone represents a potential new therapeutic agent for STAT3-dependent cancers.
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