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In vivo RNA interference-mediated ablation of MDR1 P-glycoprotein
Andrea Pichler1, Noam Zelcer, Julie L Prior
1Molecular Imaging Center, Mallinckrodt Institute of Radiology, Washington University School of Medicine, St. Louis, Missouri 63110, USA.
Abstract:
Multidrug resistance (MDR) remains a major obstacle to successful chemotherapeutic treatment of cancer and can be caused by overexpression of P-glycoprotein, the MDR1 gene product. To further validate a knockdown approach for circumventing MDR, we developed a P-glycoprotein inhibition strategy using short hairpin RNA interference (shRNAi) and now show efficacy and target specificity in vivo. Two of eight tested shRNAi constructs targeted against human MDR1 mRNA inhibited expression of P-glycoprotein by >90%, whereas control shRNAi had no effect. Ablation of P-glycoprotein in cells stably transduced with retroviral-mediated shRNAi was documented by Western blot and functionally confirmed by increased sensitivity of MDR1-transfected cells toward the cytotoxic drugs vincristine, paclitaxel, and doxorubicin as well as by transport of (99m)Tc-Sestamibi. shRNAi-mediated down-regulation of P-glycoprotein transport activity both in cultured cells and in tumor implants in living animals could be followed by direct noninvasive bioluminescence imaging using the Renilla luciferase fluorophore, coelenterazine, a known P-glycoprotein transport substrate. Furthermore, after somatic gene transfer by hydrodynamic infusion of a MDR1-Firefly luciferase (MDR1-FLuc) fusion construct into mouse liver, the effect of shRNAi delivered in vivo on P-glycoprotein-FLuc protein levels was documented with bioluminescence imaging using d-luciferin. ShRNAi against MDR1 reduced bioluminescence output of the P-glycoprotein-FLuc reporter 4-fold in vivo compared with mice treated with control or scrambled shRNAi. Targeted down-regulation of a somatically transferred P-glycoprotein-eGFP fusion reporter also was observed using fluorescence microscopy. Our results show that shRNAi effectively inhibited MDR1 expression and function in cultured cells, tumor implants and mammalian liver, documenting the feasibility of a knockdown approach to reversing MDR in vivo.
Insights
Short hairpin RNA interference effectively inhibits P-glycoprotein, reversing multidrug resistance (MDR) in cancer. This knockdown approach shows promise for in vivo cancer therapy by restoring drug sensitivity and enabling noninvasive monitoring.
Area of Science:
- Molecular Biology
- Cancer Research
- Gene Therapy
Background:
- Multidrug resistance (MDR) is a significant challenge in cancer chemotherapy, often caused by P-glycoprotein (P-gp) overexpression.
- P-glycoprotein, encoded by the MDR1 gene, actively effluxes chemotherapy drugs, reducing treatment efficacy.
Purpose of the Study:
- To validate a short hairpin RNA interference (shRNAi) strategy for inhibiting P-glycoprotein and overcoming MDR in vivo.
- To demonstrate the efficacy and target specificity of shRNAi against MDR1 in various biological models.
Main Methods:
- Developed and tested multiple shRNAi constructs targeting human MDR1 mRNA.
- Assessed P-gp inhibition via Western blot and functional assays, including drug sensitivity and substrate transport.
- Utilized bioluminescence imaging (BLI) with Renilla luciferase and Firefly luciferase reporters for noninvasive monitoring of P-gp activity in vitro, in tumor implants, and in mouse liver.
- Employed fluorescence microscopy to track P-gp-eGFP reporter down-regulation.
Main Results:
- Two shRNAi constructs achieved >90% inhibition of P-glycoprotein expression.
- shRNAi treatment restored sensitivity to cytotoxic drugs (vincristine, paclitaxel, doxorubicin) and normalized (99m)Tc-Sestamibi transport.
- Noninvasive BLI successfully monitored shRNAi-mediated P-gp activity reduction in cultured cells, tumor implants, and mouse liver.
- In vivo studies showed a 4-fold reduction in P-glycoprotein-Firefly luciferase reporter activity following shRNAi treatment.
Conclusions:
- shRNAi is an effective strategy for inhibiting MDR1 expression and P-glycoprotein function.
- This knockdown approach demonstrates feasibility for reversing multidrug resistance in vivo across various tissues.
- The study validates shRNAi as a potential therapeutic strategy for overcoming chemotherapy resistance in cancer.
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