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Molecularly Defined Subsets of Ewing Sarcoma Tumors Differ in Their Responses to IGF1R and WEE1 Inhibition
Upendra Kumar Soni1,2, Yuhua Wang1,2, Ram Naresh Pandey1,2
1Division of Developmental Biology, Cincinnati Children's Hospital Medical Center, Cincinnati, Ohio.
Purpose:
Targeted cancer therapeutics have not significantly benefited patients with Ewing sarcoma with metastatic or relapsed disease. Understanding the molecular underpinnings of drug resistance can lead to biomarker-driven treatment selection.
Experimental Design:
Receptor tyrosine kinase (RTK) pathway activation was analyzed in tumor cells derived from a panel of Ewing sarcoma tumors, including primary and metastatic tumors from the same patient. Phospho-RTK arrays, Western blots, and IHC were used. Protein localization and the levels of key markers were determined using immunofluorescence. DNA damage tolerance was measured through PCNA ubiquitination levels and the DNA fiber assay. Effects of pharmacologic inhibition were assessed in vitro and key results validated in vivo using patient-derived xenografts.
Results:
Ewing sarcoma tumors fell into two groups. In one, IGF1R was predominantly nuclear (nIGF1R), DNA damage tolerance pathway was upregulated, and cells had low replication stress and RRM2B levels and high levels of WEE1 and RAD21. These tumors were relatively insensitive to IGF1R inhibition. The second group had high replication stress and RRM2B, low levels of WEE1 and RAD21, membrane-associated IGF1R (mIGF1R) signaling, and sensitivity to IGF1R or WEE1-targeted inhibitors. Moreover, the matched primary and metastatic tumors differed in IGF1R localization, levels of replication stress, and inhibitor sensitivity. In all instances, combined IGF1R and WEE1 inhibition led to tumor regression.
Conclusions:
IGF1R signaling mechanisms and replication stress levels can vary among Ewing sarcoma tumors (including in the same patient), influencing the effects of IGF1R and WEE1 treatment. These findings make the case for using biopsy-derived predictive biomarkers at multiple stages of Ewing sarcoma disease management.
Insights
Ewing sarcoma tumors show varied resistance to targeted therapies. Identifying specific molecular markers, like IGF1R and WEE1, can guide effective treatment selection for better patient outcomes.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Therapeutics
Background:
- Targeted cancer therapies have limited efficacy in metastatic or relapsed Ewing sarcoma.
- Understanding drug resistance mechanisms is crucial for developing effective treatment strategies.
Purpose of the Study:
- To investigate receptor tyrosine kinase (RTK) pathway activation in Ewing sarcoma.
- To identify biomarkers for predicting response to IGF1R and WEE1 inhibitors.
- To explore therapeutic strategies for overcoming drug resistance in Ewing sarcoma.
Main Methods:
- Analysis of RTK pathway activation using phospho-RTK arrays, Western blots, and IHC.
- Determination of protein localization and marker levels via immunofluorescence.
- Assessment of DNA damage tolerance and effects of pharmacologic inhibition in vitro and in vivo.
Main Results:
- Ewing sarcoma tumors were classified into two groups based on IGF1R localization and DNA damage tolerance pathways.
- One group with nuclear IGF1R (nIGF1R) showed resistance to IGF1R inhibition, while the other with membrane-associated IGF1R (mIGF1R) was sensitive.
- Matched primary and metastatic tumors exhibited differences in IGF1R localization, replication stress, and inhibitor sensitivity.
- Combined inhibition of IGF1R and WEE1 resulted in tumor regression.
Conclusions:
- IGF1R signaling and replication stress levels vary in Ewing sarcoma, impacting treatment response.
- Biomarker-driven treatment selection based on biopsy analysis is recommended for Ewing sarcoma management.
- Combined IGF1R and WEE1 inhibition shows promise for treating Ewing sarcoma.
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