Oligonucleotides blocking glucosylceramide synthase expression selectively reverse drug resistance in cancer cells
Yong-Yu Liu1, Tie Yan Han, Jing Yuan Yu
1John Wayne Cancer Institute at Saint John's Health Center, Santa Monica, CA, USA. yong@jwci.org
Abstract:
High glucosylceramide synthase (GCS) activity is one factor contributing to multidrug resistance (MDR) in breast cancer. Enforced GCS overexpression has been shown to disrupt ceramide-induced apoptosis and to confer resistance to doxorubicin. To examine whether GCS is a target for cancer therapy, we have designed and tested the effects of antisense oligodeoxyribonucleotides (ODNs) to GCS on gene expression and chemosensitivity in multidrug-resistant cancer cells. Here, we demonstrate that antisense GCS (asGCS) ODN-7 blocked cellular GCS expression and selectively increased the cytotoxicity of anticancer agents. Pretreatment with asGCS ODN-7 increased doxorubicin sensitivity by 17-fold in MCF-7-AdrR (doxorubicin-resistant) breast cancer cells and by 10-fold in A2780-AD (doxorubicin-resistant) ovarian cancer cells. In MCF-7 drug-sensitive breast cancer cells, asGCS ODN-7 only increased doxorubicin sensitivity by 3-fold, and it did not influence doxorubicin cytotoxicity in normal human mammary epithelial cells. asGCS ODN-7 was shown to be more efficient in reversing drug resistance than either the GCS chemical inhibitor d-threo-1-phenyl-2-decanoylamino-3-morpholino-1-propanol or the P-glycoprotein blocking agents verapamil and cyclosporin A. Experiments defining drug transport and lipid metabolism parameters showed that asGCS ODN-7 overcomes drug resistance mainly by enhancing drug uptake and ceramide-induced apoptosis. This study demonstrates that a 20-mer asGCS oligonucleotide effectively reverses MDR in human cancer cells.
Insights
Antisense GCS (asGCS) ODN-7 effectively reverses multidrug resistance (MDR) in cancer cells by blocking glucosylceramide synthase (GCS) expression. This enhances sensitivity to chemotherapy, particularly doxorubicin, by improving drug uptake and promoting apoptosis.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- High glucosylceramide synthase (GCS) activity contributes to multidrug resistance (MDR) in breast cancer.
- GCS overexpression disrupts apoptosis and confers resistance to chemotherapy agents like doxorubicin.
Purpose of the Study:
- To investigate glucosylceramide synthase (GCS) as a therapeutic target for reversing multidrug resistance (MDR).
- To evaluate the efficacy of antisense oligodeoxyribonucleotides (ODNs) targeting GCS in enhancing chemosensitivity in resistant cancer cells.
Main Methods:
- Designed and tested antisense GCS (asGCS) ODN-7 in multidrug-resistant (MDR) breast and ovarian cancer cell lines.
- Assessed the impact of asGCS ODN-7 on GCS gene expression, cytotoxicity of anticancer agents, drug transport, and lipid metabolism.
Main Results:
- asGCS ODN-7 significantly blocked GCS expression and selectively increased the cytotoxicity of anticancer agents.
- Pretreatment with asGCS ODN-7 enhanced doxorubicin sensitivity by 17-fold in resistant breast cancer cells and 10-fold in resistant ovarian cancer cells.
- asGCS ODN-7 was more effective than chemical inhibitors or P-glycoprotein blockers in reversing drug resistance, primarily by enhancing drug uptake and ceramide-induced apoptosis.
Conclusions:
- Antisense GCS (asGCS) ODN-7 is a potent therapeutic strategy for overcoming multidrug resistance (MDR) in human cancers.
- Targeting GCS with asGCS ODN-7 offers a promising approach to improve the efficacy of chemotherapy by restoring sensitivity to anticancer drugs.
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