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Published on: January 7, 2019
Small interfering RNA against BCR-ABL transcripts sensitize mutated T315I cells to nilotinib
Michael Koldehoff1, Lambros Kordelas, Dietrich W Beelen
1Department of Bone Marrow Transplantation, West German Cancer Center, University Hospital of Duisburg-Essen, Hufelandstr. 55 45122 Essen, Germany. michael.koldehoff@uk-essen.de
Background:
Selective inhibition of the BCR-ABL tyrosine kinase by RNA interference has been demonstrated in leukemic cells. We, therefore, evaluated specific BCR-ABL small interfering RNA silencing in BCR-ABL-positive cell lines, including those resistant to imatinib and particularly those with the T315I mutation.
Design And Methods:
The factor-independent 32Dp210 BCR-ABL oligoclonal cell lines and human imatinib-resistant BCR-ABL-positive cells from patients with leukemic disorders were investigated. The effects of BCR-ABL small interfering RNA or the combination of BCR-ABL small interfering RNA with imatinib and nilotinib were compared with those of the ABL inhibitors imatinib and nilotinib.
Results:
Co-administration of BCR-ABL small interfering RNA with imatinib or nilotinib dramatically reduced BCR-ABL expression in wild-type and mutated BCR-ABL cells and increased the lethal capacity. BCR-ABL small interfering RNA significantly induced apoptosis and inhibited proliferation in wild-type (P<0.0001) and mutated cells (H396P, T315I, P<0.0001) versus controls. Co-treatment with BCR-ABL small interfering RNA and imatinib or nilotinib resulted in increased inhibition of proliferation and induction of apoptosis in T315I cells as compared to imatinib or nilotinib alone (P<0.0001). Furthermore, the combination of BCR-ABL small interfering RNA with imatinib or nilotinib significantly (P<0.01) reversed multidrug resistance-1 gene-dependent resistance of mutated cells. In T315I cells BCR-ABL small interfering RNA with nilotinib had powerful effects on cell cycle distribution.
Conclusions:
Our data suggest that silencing by BCR-ABL small interfering RNA combined with imatinib or nilotinib may be associated with an additive antileukemic activity against tyrosine kinase inhibitor-sensitive and resistant BCR-ABL cells, and might be an alternative approach to overcome BCR-ABL mutations.
Insights
Small interfering RNA (siRNA) targeting BCR-ABL, combined with imatinib or nilotinib, effectively reduces BCR-ABL expression and induces cell death in leukemia. This combination therapy shows promise for overcoming resistance, including the challenging T315I mutation.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Selective inhibition of BCR-ABL tyrosine kinase via RNA interference is effective in leukemic cells.
- This study evaluates BCR-ABL small interfering RNA (siRNA) in imatinib-resistant cell lines, including those with the T315I mutation.
Purpose of the Study:
- To assess the efficacy of BCR-ABL siRNA in combination with imatinib and nilotinib against BCR-ABL-positive leukemia cells.
- To determine if this combination can overcome resistance, particularly the T315I mutation.
Main Methods:
- Utilized factor-independent 32Dp210 BCR-ABL oligoclonal cell lines and patient-derived imatinib-resistant cells.
- Compared BCR-ABL siRNA alone, in combination with imatinib/nilotinib, versus imatinib/nilotinib alone.
Main Results:
- Combination therapy significantly reduced BCR-ABL expression and increased cell lethality in both wild-type and mutated cells.
- BCR-ABL siRNA induced apoptosis and inhibited proliferation in mutated cells (including T315I) more effectively than monotherapy.
- The combination reversed multidrug resistance-1 gene-dependent resistance and impacted cell cycle distribution in T315I cells.
Conclusions:
- BCR-ABL siRNA combined with imatinib or nilotinib demonstrates additive antileukemic activity.
- This combination approach offers a potential strategy to overcome resistance mediated by BCR-ABL mutations.
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