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Toeprinting Analysis of Translation Initiation Complex Formation on Mammalian mRNAs
Published on: May 10, 2018
Regulation of eIF4F Translation Initiation Complex by the Peptidyl Prolyl Isomerase FKBP7 in Taxane-resistant
Marine F Garrido1,2,3, Nicolas J-P Martin1,2,3, Matthieu Bertrand1,2,3
1Prostate Cancer Group, INSERM UMR981, Villejuif, France.
Purpose:
Targeted therapies that use the signaling pathways involved in prostate cancer are required to overcome chemoresistance and improve treatment outcomes for men. Molecular chaperones play a key role in the regulation of protein homeostasis and are potential targets for overcoming chemoresistance.Experimental Design: We established 4 chemoresistant prostate cancer cell lines and used image-based high-content siRNA functional screening, based on gene-expression signature, to explore mechanisms of chemoresistance and identify new potential targets with potential roles in taxane resistance. The functional role of a new target was assessed by in vitro and in vivo silencing, and mass spectrometry analysis was used to identify its downstream effectors.
Results:
We identified FKBP7, a prolyl-peptidyl isomerase overexpressed in docetaxel-resistant and in cabazitaxel-resistant prostate cancer cells. This is the first study to characterize the function of human FKBP7 and explore its role in cancer. We discovered that FKBP7 was upregulated in human prostate cancers and its expression correlated with the recurrence observed in patients receiving docetaxel. FKBP7 silencing showed that FKBP7 is required to maintain the growth of chemoresistant cell lines and chemoresistant tumors in mice. Mass spectrometry analysis revealed that FKBP7 interacts with eIF4G, a component of the eIF4F translation initiation complex, to mediate the survival of chemoresistant cells. Using small-molecule inhibitors of eIF4A, the RNA helicase component of eIF4F, we were able to kill docetaxel- and cabazitaxel-resistant cells.
Conclusions:
Targeting FKBP7 or the eIF4G-containing eIF4F translation initiation complex could be novel therapeutic strategies to eradicate taxane-resistant prostate cancer cells.
Insights
Targeting FKBP7, a protein overexpressed in resistant prostate cancers, may overcome chemoresistance. Inhibiting FKBP7 or the eIF4F complex can kill resistant cancer cells, offering new therapeutic strategies.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- Prostate cancer treatment faces challenges with chemoresistance.
- Molecular chaperones are crucial for protein homeostasis and chemoresistance.
- Targeting signaling pathways is key to overcoming resistance.
Purpose of the Study:
- Identify novel therapeutic targets for chemoresistant prostate cancer.
- Investigate mechanisms of taxane resistance in prostate cancer.
- Explore the role of molecular chaperones in treatment resistance.
Main Methods:
- Established chemoresistant prostate cancer cell lines.
- Utilized high-content siRNA functional screening.
- Performed in vitro and in vivo silencing studies.
- Conducted mass spectrometry to identify downstream effectors.
Main Results:
- Identified FKBP7 (prolyl-peptidyl isomerase) as overexpressed in docetaxel- and cabazitaxel-resistant prostate cancer cells.
- FKBP7 expression correlated with docetaxel recurrence in patients.
- FKBP7 silencing inhibited chemoresistant cell and tumor growth.
- FKBP7 interacts with eIF4G to promote chemoresistant cell survival.
- Small-molecule inhibitors of eIF4A eradicated resistant cells.
Conclusions:
- FKBP7 is a potential therapeutic target for taxane-resistant prostate cancer.
- Targeting the eIF4G-containing eIF4F translation initiation complex offers a novel strategy.
- These approaches may eradicate resistant prostate cancer cells effectively.
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