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Updated: Oct 16, 2025

Mapping the Structure-Function Relationships of Disordered Oncogenic Transcription Factors Using Transcriptomic Analysis
Published on: June 27, 2020
Hyperthermia Selectively Destabilizes Oncogenic Fusion Proteins
Yasen Maimaitiyiming1,2,3, Qian Qian Wang1,3, Chang Yang1,3
1Department of Hematology of First Affiliated Hospital, and Department of Public Health, Zhejiang University School of Medicine, Hangzhou, China.
Abstract:
The PML/RARα fusion protein is the oncogenic driver in acute promyelocytic leukemia (APL). Although most APL cases are cured by PML/RARα-targeting therapy, relapse and resistance can occur due to drug-resistant mutations. Here we report that thermal stress destabilizes the PML/RARα protein, including clinically identified drug-resistant mutants. AML1/ETO and TEL/AML1 oncofusions show similar heat shock susceptibility. Mechanistically, mild hyperthermia stimulates aggregation of PML/RARα in complex with nuclear receptor corepressors leading to ubiquitin-mediated degradation via the SIAH2 E3 ligase. Hyperthermia and arsenic therapy destabilize PML/RARα via distinct mechanisms and are synergistic in primary patient samples and in vivo, including three refractory APL cases. Collectively, our results suggest that by taking advantage of a biophysical vulnerability of PML/RARα, thermal therapy may improve prognosis in drug-resistant or otherwise refractory APL. These findings serve as a paradigm for therapeutic targeting of fusion oncoprotein-associated cancers by hyperthermia.
Significance:
Hyperthermia destabilizes oncofusion proteins including PML/RARα and acts synergistically with standard arsenic therapy in relapsed and refractory APL. The results open up the possibility that heat shock sensitivity may be an easily targetable vulnerability of oncofusion-driven cancers.See related commentary by Wu et al., p. 300.
Insights
Thermal stress destabilizes the PML/RARα fusion protein, a key driver in acute promyelocytic leukemia (APL). This heat sensitivity offers a new therapeutic strategy, particularly for drug-resistant APL cases.
Area of Science:
- Oncology
- Molecular Biology
- Biophysics
Background:
- Acute promyelocytic leukemia (APL) is driven by the PML/RARα fusion protein.
- Standard therapies targeting PML/RARα are effective but can lead to relapse and drug resistance.
- Drug-resistant mutations in PML/RARα pose a significant clinical challenge.
Purpose of the Study:
- To investigate the effect of thermal stress on the PML/RARα fusion protein, including drug-resistant mutants.
- To elucidate the mechanism by which hyperthermia affects PML/RARα.
- To explore the synergistic potential of hyperthermia with existing APL therapies.
Main Methods:
- Treatment of cells and patient samples with mild hyperthermia.
- Analysis of protein stability, aggregation, and degradation pathways (ubiquitination, SIAH2 E3 ligase).
- In vivo studies in mouse models and testing in refractory APL patient samples.
Main Results:
- Thermal stress destabilizes PML/RARα, including drug-resistant variants, and other oncofusions like AML1/ETO and TEL/AML1.
- Mild hyperthermia induces PML/RARα aggregation with corepressors, leading to degradation via SIAH2.
- Hyperthermia and arsenic therapy exhibit distinct mechanisms and synergistic effects in APL treatment, including refractory cases.
Conclusions:
- Hyperthermia destabilizes oncofusion proteins, offering a therapeutic vulnerability.
- Hyperthermia synergizes with arsenic therapy in APL, improving outcomes in relapsed and refractory disease.
- Targeting heat shock sensitivity of oncofusion proteins presents a novel strategy for cancer therapy.
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