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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
Inhibition of HSP90 in Driver Oncogene-Defined Lung Adenocarcinoma Cell Lines: Key Proteins Underpinning Therapeutic
Ángela Marrugal1, Irene Ferrer1,2, Álvaro Quintanal-Villalonga3
1H12O-CNIO Lung Cancer Clinical Research Unit, Instituto de Investigación Hospital 12 de Octubre & Centro Nacional de Investigaciones Oncológicas (CNIO), 28029 Madrid, Spain.
Abstract:
The use of 90 kDa heat shock protein (HSP90) inhibition as a therapy in lung adenocarcinoma remains limited due to moderate drug efficacy, the emergence of drug resistance, and early tumor recurrence. The main objective of this research is to maximize treatment efficacy in lung adenocarcinoma by identifying key proteins underlying HSP90 inhibition according to molecular background, and to search for potential biomarkers of response to this therapeutic strategy. Inhibition of the HSP90 chaperone was evaluated in different lung adenocarcinoma cell lines representing the most relevant molecular alterations (EGFR mutations, KRAS mutations, or EML4-ALK translocation) and wild-type genes found in each tumor subtype. The proteomic technique iTRAQ was used to identify proteomic profiles and determine which biological pathways are involved in the response to HSP90 inhibition in lung adenocarcinoma. We corroborated the greater efficacy of HSP90 inhibition in EGFR mutated or EML4-ALK translocated cell lines. We identified proteins specifically and significantly deregulated after HSP90 inhibition for each molecular alteration. Two proteins, ADI1 and RRP1, showed independently deregulated molecular patterns. Functional annotation of the altered proteins suggested that apoptosis was the only pathway affected by HSP90 inhibition across all molecular subgroups. The expression of ADI1 and RRP1 could be used to monitor the correct inhibition of HSP90 in lung adenocarcinoma. In addition, proteins such as ASS1, ITCH, or UBE2L3 involved in pathways related to the inhibition of a particular molecular background could be used as potential response biomarkers, thereby improving the efficacy of this therapeutic approach to combat lung adenocarcinoma.
Insights
HSP90 inhibition shows promise for lung adenocarcinoma, especially in EGFR or ALK-altered tumors. Identifying key proteins like ADI1 and RRP1 can improve treatment monitoring and efficacy for this cancer.
Area of Science:
- Oncology
- Molecular Biology
- Proteomics
Background:
- Heat shock protein 90 (HSP90) inhibition therapy for lung adenocarcinoma faces challenges including limited efficacy, drug resistance, and tumor recurrence.
- Understanding the molecular basis of response is crucial for optimizing HSP90-targeted treatments.
Purpose of the Study:
- To identify key proteins affected by HSP90 inhibition based on specific molecular alterations in lung adenocarcinoma.
- To discover potential biomarkers for predicting response to HSP90 inhibition therapy.
Main Methods:
- Evaluated HSP90 inhibition in lung adenocarcinoma cell lines with EGFR mutations, KRAS mutations, or EML4-ALK translocations.
- Utilized iTRAQ proteomic analysis to identify protein expression profiles and affected biological pathways.
- Correlated proteomic changes with specific molecular subtypes and treatment response.
Main Results:
- HSP90 inhibition was more effective in lung adenocarcinoma cell lines with EGFR mutations or EML4-ALK translocations.
- Identified specific proteins (ADI1, RRP1) deregulated by HSP90 inhibition across all molecular subgroups, with apoptosis as a common affected pathway.
- Identified potential response biomarkers (ASS1, ITCH, UBE2L3) linked to specific molecular backgrounds.
Conclusions:
- ADI1 and RRP1 expression can serve as indicators for effective HSP90 inhibition in lung adenocarcinoma.
- Targeted biomarkers can enhance the efficacy of HSP90 inhibition therapy by personalizing treatment strategies for lung adenocarcinoma patients.
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