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Ex Vivo Treatment Response of Primary Tumors and/or Associated Metastases for Preclinical and Clinical Development of Therapeutics
Published on: October 2, 2014
Single-Cell Transcriptomic Profiling Reveals Dual Antitumor and Adaptive Resistance Mechanisms of a Novel HSP90
Shahana M V1,2, Anjitha R1,2, Bibha Choudhary2
1Center for Doctoral Studies, Manipal Academy of Higher Education, Manipal 576104, India.
Abstract:
Heat shock protein 90 (HSP90) is a molecular chaperone essential for maintaining the stability of many oncogenic client proteins. Although several HSP90 inhibitors (HSP90i) have entered clinical trials, their use has been limited by toxicity and resistance, underscoring the need for improved therapeutic strategies. In this study, we assessed the therapeutic potential of a new HSP90i, SP11, in T-cell acute lymphoblastic leukemia (T-ALL) in vitro and in the DLA mouse model in vivo, using single-cell transcriptomic profiling. Single-cell RNA sequencing showed that SP11 treatment reduces key oncogenic drivers, including MYC, BCL2, and stemness-related genes, consistent with impaired leukemic survival programs. In the DLA mouse model, SP11-mediated HSP90 inhibition was associated with alterations in the tumor microenvironment, including increased immune cell representation and enrichment of cytokine- and antigen-presentation-related transcriptional pathways. Despite these antitumor effects, a distinct subpopulation of cells continued to express or re-express MYC and BCL2, suggesting the development of early adaptive resistance. Consistent with these findings, an SP11-resistant MOLT4 cell line maintained high levels of MYC and BCL2 at both the transcript and protein levels, maintained CD44 expression, and exhibited altered inflammatory cytokine signaling. Functional studies confirmed that pharmacological inhibition of BCL2 notably increased SP11 sensitivity, supporting a rational combination strategy. Collectively, our results show that SP11 may exert both tumor-intrinsic and immune-modulating effects and reveal transcriptionally defined adaptive cellular states linked to resistance. This study provides mechanistic in sights into responses to HSP90 inhibition and supports combination approaches for improving therapeutic outcomes in T-ALL.
Insights
A new heat shock protein 90 inhibitor, SP11, shows promise against T-cell acute lymphoblastic leukemia (T-ALL) by targeting oncogenic drivers and modulating the immune system. However, resistance can develop, suggesting combination therapies, like with BCL2 inhibitors, may improve outcomes.
Area of Science:
- Oncology
- Molecular Biology
- Immunology
Background:
- Heat shock protein 90 (HSP90) is crucial for stabilizing oncogenic proteins.
- Current HSP90 inhibitors face challenges with toxicity and resistance.
- Novel therapeutic strategies for T-cell acute lymphoblastic leukemia (T-ALL) are needed.
Purpose of the Study:
- To evaluate the therapeutic potential of a novel HSP90 inhibitor, SP11, in T-ALL.
- To investigate the mechanisms of SP11 action and resistance using single-cell transcriptomics.
- To explore combination strategies to overcome resistance.
Main Methods:
- In vitro and in vivo studies of SP11 in T-ALL models.
- Single-cell RNA sequencing to profile gene expression changes.
- Analysis of tumor microenvironment alterations.
- Pharmacological inhibition of BCL2 to assess combination therapy.
Main Results:
- SP11 reduced key oncogenic drivers (MYC, BCL2) and stemness genes in T-ALL.
- SP11 modulated the tumor microenvironment, increasing immune cell representation.
- Adaptive resistance emerged, characterized by sustained MYC/BCL2 expression.
- BCL2 inhibition sensitized resistant cells to SP11.
Conclusions:
- SP11 exhibits both direct anti-leukemic and immune-modulating effects.
- Transcriptional profiling reveals adaptive resistance mechanisms.
- Combination therapy, particularly with BCL2 inhibitors, holds potential for T-ALL treatment.
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