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Data-Driven Computational Modeling Identifies Determinants of Glioblastoma Response to SHP2 Inhibition
Evan K Day1,2, Qing Zhong3, Benjamin Purow3
1Department of Chemical Engineering, University of Virginia, Charlottesville, Virginia.
Abstract:
Oncogenic protein tyrosine phosphatases have long been viewed as drug targets of interest, and recently developed allosteric inhibitors of SH2 domain-containing phosphatase-2 (SHP2) have entered clinical trials. However, the ability of phosphatases to regulate many targets directly or indirectly and to both promote and antagonize oncogenic signaling may make the efficacy of phosphatase inhibition challenging to predict. Here we explore the consequences of antagonizing SHP2 in glioblastoma, a recalcitrant cancer where SHP2 has been proposed as a useful drug target. Measuring protein phosphorylation and expression in glioblastoma cells across 40 signaling pathway nodes in response to different drugs and for different oxygen tensions revealed that SHP2 antagonism has network-level, context-dependent signaling consequences that affect cell phenotypes (e.g., cell death) in unanticipated ways. To map specific signaling consequences of SHP2 antagonism to phenotypes of interest, a data-driven computational model was constructed based on the paired signaling and phenotype data. Model predictions aided in identifying three signaling processes with implications for treating glioblastoma with SHP2 inhibitors. These included PTEN-dependent DNA damage repair in response to SHP2 inhibition, AKT-mediated bypass resistance in response to chronic SHP2 inhibition, and SHP2 control of hypoxia-inducible factor expression through multiple MAPKs. Model-generated hypotheses were validated in multiple glioblastoma cell lines, in mouse tumor xenografts, and through analysis of The Cancer Genome Atlas data. Collectively, these results suggest that in glioblastoma, SHP2 inhibitors antagonize some signaling processes more effectively than existing kinase inhibitors but can also limit the efficacy of other drugs when used in combination. SIGNIFICANCE: These findings demonstrate that allosteric SHP2 inhibitors have multivariate and context-dependent effects in glioblastoma that may make them useful components of some combination therapies, but not others.
Insights
Targeting SHP2 (SH2 domain-containing phosphatase-2) in glioblastoma shows complex effects. SHP2 inhibitors can be effective in some combinations but may hinder others, requiring careful therapeutic strategy.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- Oncogenic protein tyrosine phosphatases, including SHP2 (SH2 domain-containing phosphatase-2), are recognized drug targets.
- Allosteric SHP2 inhibitors are in clinical trials, but their efficacy is complex due to phosphatases' regulatory roles.
- Glioblastoma is a challenging cancer where SHP2 has been proposed as a therapeutic target.
Purpose of the Study:
- To investigate the context-dependent signaling consequences of antagonizing SHP2 in glioblastoma.
- To develop a computational model linking SHP2 inhibition to cellular phenotypes.
- To identify specific signaling pathways affected by SHP2 antagonism relevant to glioblastoma treatment.
Main Methods:
- Measured protein phosphorylation and expression across 40 signaling nodes in glioblastoma cells under various conditions.
- Developed a data-driven computational model integrating signaling and phenotype data.
- Validated model-generated hypotheses in cell lines, mouse xenografts, and The Cancer Genome Atlas data.
Main Results:
- SHP2 antagonism resulted in network-level, context-dependent signaling effects influencing cell phenotypes like death.
- Identified PTEN-dependent DNA damage repair, AKT-mediated bypass resistance, and SHP2 control of hypoxia-inducible factor as key processes.
- SHP2 inhibitors showed differential efficacy compared to kinase inhibitors and affected combination therapy outcomes.
Conclusions:
- Allosteric SHP2 inhibitors exhibit multivariate and context-dependent effects in glioblastoma.
- SHP2 inhibitors may be beneficial in specific combination therapies but detrimental in others.
- Understanding these complex interactions is crucial for optimizing glioblastoma treatment strategies.
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