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Published on: January 12, 2020
MYC and HSF1 Cooperate to Drive Sensitivity to Polo-like Kinase 1 Inhibitor Volasertib in High-grade Serous Ovarian
Imade Williams1, Matthew O'Malley1,2, Haddie DeHart1,2
1Medical Sciences Program, Indiana University School of Medicine, Bloomington, Indiana.
Abstract:
Ovarian cancer is a deadly gynecologic disease with frequent recurrence. Current treatments for patients include platinum-based therapy regimens with PARP inhibitors specific for homologous recombination–deficient high-grade serous ovarian cancers (HGSOC). Despite initial effectiveness, patients inevitably develop disease progression as tumor cells acquire resistance. Toward the development of new therapeutic avenues, we describe a gene amplification involving both heat shock factor 1 (HSF1) and MYC, wherein these two genes are co-amplified in more than 30% of patients with HGSOC. We further found that HSF1 and MYC transcriptional activities were highly correlated with human HGSOC tumors and cell lines, suggesting that they may cooperate in the disease. CUT&RUN sequencing for HSF1 and MYC revealed overlapping HSF1 and MYC binding throughout the genome. Moreover, the binding peaks of both transcription factors in HGSOC cells were nearly identical, and a protein–protein interaction between HSF1 and MYC was detected, supporting molecular cooperation. Supporting a functional cooperation of these two transcription factors, the growth of HGSOC cells with the co-amplification was dependent on both HSF1 and MYC. To identify a therapeutic target that could take advantage of this unique HSF1 and MYC dependency, polo-like kinase 1 (PLK1) was correlated with HSF1 and MYC in HGSOC specimens. Targeting PLK1 with volasertib revealed a greater than 200-fold increased potency in HSF1–MYC co-amplified HGSOC cells compared with those with wild-type HSF1 and MYC copy numbers. Although the success of volasertib and other PLK1 inhibitors in clinical trials has been modest, the current study suggests that targeting PLK1 using a precision medicine approach based on HSF1–MYC co-amplification as a biomarker in HGSOC would improve therapy response and patient outcomes.
Significance:
We show that HSF1 and MYC genes are co-amplified in more than 30% of HGSOC and demonstrate that HSF1 and MYC functionally cooperate to drive the growth of HGSOC cells. This work provides the foundation for HSF1 and MYC co-amplification as a biomarker for treatment efficacy of the polo-like kinase 1 inhibitor volasertib in HGSOC.
Insights
Heat shock factor 1 (HSF1) and MYC gene co-amplification drives high-grade serous ovarian cancer (HGSOC) growth. Targeting polo-like kinase 1 (PLK1) with volasertib shows promise for HGSOC patients with this specific gene amplification.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- High-grade serous ovarian cancer (HGSOC) frequently recurs despite platinum-based therapies and PARP inhibitors.
- Tumor cells often develop resistance to current treatments, necessitating novel therapeutic strategies.
Purpose of the Study:
- To investigate the role of heat shock factor 1 (HSF1) and MYC gene co-amplification in HGSOC.
- To identify potential therapeutic targets and biomarkers for HGSOC treatment.
Main Methods:
- Analysis of HSF1 and MYC gene co-amplification in HGSOC patient samples.
- CUT&RUN sequencing to assess HSF1 and MYC binding patterns.
- Protein-protein interaction assays to confirm HSF1 and MYC cooperation.
- Evaluation of polo-like kinase 1 (PLK1) inhibition using volasertib in HGSOC cell lines.
Main Results:
- HSF1 and MYC genes are co-amplified in over 30% of HGSOC cases.
- HSF1 and MYC exhibit overlapping genomic binding and protein-protein interactions, cooperating to drive tumor growth.
- HGSOC cells with HSF1–MYC co-amplification are highly dependent on both factors for growth.
- Targeting PLK1 with volasertib demonstrated significantly increased potency in HSF1–MYC co-amplified HGSOC cells.
Conclusions:
- HSF1 and MYC co-amplification is a key driver in a subset of HGSOC.
- HSF1–MYC co-amplification serves as a predictive biomarker for PLK1 inhibitor efficacy.
- Precision medicine targeting PLK1 based on HSF1–MYC co-amplification status could improve HGSOC treatment outcomes.
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