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Published on: May 18, 2020
HSP90 empowers evolution of resistance to hormonal therapy in human breast cancer models
Luke Whitesell1, Sandro Santagata2, Marc L Mendillo3
1Whitehead Institute for Biomedical Research, Cambridge, MA 02142; lindquist_admin@wi.mit.edu whitesell@wi.mit.edu.
Abstract:
The efficacy of hormonal therapies for advanced estrogen receptor-positive breast cancers is limited by the nearly inevitable development of acquired resistance. Efforts to block the emergence of resistance have met with limited success, largely because the mechanisms underlying it are so varied and complex. Here, we investigate a new strategy aimed at the very processes by which cancers evolve resistance. From yeast to vertebrates, heat shock protein 90 (HSP90) plays a unique role among molecular chaperones by promoting the evolution of heritable new traits. It does so by regulating the folding of a diverse portfolio of metastable client proteins, many of which mediate adaptive responses that allow organisms to adapt and thrive in the face of diverse challenges, including those posed by drugs. Guided by our previous work in pathogenic fungi, in which very modest HSP90 inhibition impairs resistance to mechanistically diverse antifungals, we examined the effect of similarly modest HSP90 inhibition on the emergence of resistance to antiestrogens in breast cancer models. Even though this degree of inhibition fell below the threshold for proteotoxic activation of the heat-shock response and had no overt anticancer activity on its own, it dramatically impaired the emergence of resistance to hormone antagonists both in cell culture and in mice. Our findings strongly support the clinical testing of combined hormone antagonist-low-level HSP90 inhibitor regimens in the treatment of metastatic estrogen receptor-positive breast cancer. At a broader level, they also provide promising proof of principle for a generalizable strategy to combat the pervasive problem of rapidly emerging resistance to molecularly targeted therapeutics.
Insights
Low-level inhibition of heat shock protein 90 (HSP90) dramatically impaired resistance to hormone antagonists in breast cancer models. This strategy shows promise for treating metastatic estrogen receptor-positive breast cancer.
Area of Science:
- Molecular biology
- Oncology
- Drug resistance
Background:
- Hormonal therapies are limited by acquired resistance in advanced estrogen receptor-positive breast cancer.
- Mechanisms of resistance are complex and varied, hindering efforts to block its emergence.
- Heat shock protein 90 (HSP90) regulates client proteins involved in adaptive responses to challenges like drugs.
Purpose of the Study:
- To investigate a novel strategy targeting cancer evolution of resistance.
- To examine the effect of modest HSP90 inhibition on antiestrogen resistance in breast cancer models.
Main Methods:
- Investigated the role of HSP90 in promoting heritable traits and adaptive responses.
- Applied modest HSP90 inhibition, below proteotoxic levels, to breast cancer cell cultures and mouse models.
- Assessed the emergence of resistance to hormone antagonists under HSP90 inhibition.
Main Results:
- Modest HSP90 inhibition significantly impaired the emergence of resistance to hormone antagonists.
- This effect was observed in both cell culture and in vivo mouse models.
- HSP90 inhibition at this level had no overt anticancer activity independently.
Conclusions:
- Combined hormone antagonist and low-level HSP90 inhibitor regimens warrant clinical testing for metastatic estrogen receptor-positive breast cancer.
- This approach provides proof of principle for a generalizable strategy against resistance to targeted therapeutics.
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