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Malachite Green Assay for the Discovery of Heat-Shock Protein 90 Inhibitors
Published on: January 20, 2023
Targeting Heat-Shock Protein 90 (HSP90) as a Complementary Strategy to Immune Checkpoint Blockade for Cancer Therapy
David A Proia1, Gunnar F Kaufmann2
1Synta Pharmaceuticals Corporation, Lexington, Massachusetts. dproia@syntapharma.com.
Abstract:
The demonstration that immune checkpoint blockade can meaningfully improve outcomes for cancer patients has revolutionized the field of immuno-oncology. New biologic agents targeting specific checkpoints have shown remarkable durability in terms of patient response and, importantly, exhibit clinical activity across a range of human malignancies, including many that have traditionally proven refractory to other immunotherapies. In this rapidly evolving area, a key consideration relates to the identification of novel combinatorial strategies that exploit existing or investigational cancer therapies in order to optimize patient outcomes and the proportion of individuals able to derive benefit from this approach. In this regard, heat-shock protein 90 (HSP90) represents an important emerging target for cancer therapy because its inactivation results in the simultaneous blockade of multiple signaling pathways and can sensitize tumor cells to other anticancer agents. Within the context of immunology, HSP90 plays a dual regulatory role, with its functional inhibition resulting in both immunosuppressive and immunostimulatory effects. In this Cancer Immunology at the Crossroads overview, the anticancer activity profile of targeted HSP90 inhibitors is discussed along with their paradoxical roles in immunology. Overall, we explore the rationale for combining the modalities of HSP90 inhibition and immune checkpoint blockade in order to augment the antitumor immune response in cancer.
Insights
Combining heat-shock protein 90 (HSP90) inhibitors with immune checkpoint blockade may improve cancer patient outcomes. This strategy aims to enhance antitumor immune responses by targeting HSP90's dual role in cancer immunology.
Area of Science:
- Oncology
- Immunology
- Cancer Therapy
Background:
- Immune checkpoint blockade has revolutionized cancer treatment, improving outcomes for many patients.
- Novel biologic agents targeting specific checkpoints show durable responses across various malignancies, including refractory cancers.
Purpose of the Study:
- To explore novel combinatorial strategies for optimizing cancer patient outcomes.
- To investigate heat-shock protein 90 (HSP90) as an emerging target for cancer therapy.
- To discuss the rationale for combining HSP90 inhibition with immune checkpoint blockade.
Main Methods:
- Review of the anticancer activity of targeted HSP90 inhibitors.
- Analysis of the dual regulatory role of HSP90 in cancer immunology (immunosuppressive and immunostimulatory effects).
Main Results:
- HSP90 inactivation simultaneously blocks multiple signaling pathways, sensitizing tumor cells to other anticancer agents.
- HSP90 inhibition exhibits paradoxical effects in immunology, with both immunosuppressive and immunostimulatory roles.
Conclusions:
- Combining HSP90 inhibition with immune checkpoint blockade is a promising strategy to augment antitumor immune responses.
- This approach holds potential for improving patient outcomes and expanding the proportion of individuals benefiting from immunotherapy.
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