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Updated: Aug 7, 2026

Bacterial Delivery of RNAi Effectors: Transkingdom RNAi
Published on: August 18, 2010
MDR1/P-glycoprotein (ABCB1) as target for RNA interference-mediated reversal of multidrug resistance
1Charité Campus Mitte, Institute of Pathology, Schumannstr. 20/21, D-10117 Berlin, Germany. hermann.lage@charite.de
Abstract:
Resistance of tumor cells to multiple structurally unrelated cytotoxic drugs, multidrug resistance (MDR), is the major limitation to the successful chemotherapeutic treatment of disseminated neoplasms. The "classical" MDR phenotype is the result from decreased cellular drug accumulation mediated by the adenosine triphosphate binding cassette (ABC)-transporter MDR1/P-glycoprotein (MDR1/P-gp, ABCB1) encoded by the human MDR1 gene. Inhibition of the drug extrusion activity of MDR1/P-gp by low-molecular weight pharmacologically active compounds as a method to reverse MDR in patients suffering on malignant diseases has been studied capaciously, but the clinical results have generally been disappointing. Thus, experimental therapeutic strategies to reverse MDR are under extensive investigation. These strategies included gene therapeutic approaches with antisense oligonucleotides (ODNs), ribozymes, or DNAzymes and, most recently, the application of the RNA interference (RNAi) technology. RNAi is a physiological double stranded RNA-triggered mechanism resulting in gene-silencing in a sequence-specific manner. Transient RNAi can be attained by application of small interferring RNAs (siRNAs), whereas a stable RNAi-mediated gene-silencing can be achieved by transfection of mammalian cells with short hairpin RNA (shRNA) encoding expression cassettes localized on plasmid or viral vectors. Transient and stable RNAi strategies were applied to overcome MDR1/P-gp-mediated MDR in different in vitro models derived from various neoplastic tissue and will be come up for discussion.
Insights
Multidrug resistance (MDR) in cancer is a major challenge. RNA interference (RNAi) strategies, using small interfering RNAs (siRNAs) or short hairpin RNAs (shRNAs), show promise in overcoming MDR by targeting MDR1/P-glycoprotein.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- Multidrug resistance (MDR) in cancer limits chemotherapy efficacy.
- The MDR phenotype is often mediated by the MDR1 gene, encoding P-glycoprotein (P-gp), which actively extrudes drugs from cells.
- Previous attempts to reverse MDR using small molecules have yielded disappointing clinical results.
Purpose of the Study:
- To investigate the potential of RNA interference (RNAi) as a therapeutic strategy to overcome MDR.
- To explore both transient and stable RNAi approaches for targeting MDR1/P-gp.
Main Methods:
- Application of RNA interference (RNAi) technology, a gene-silencing mechanism triggered by double-stranded RNA.
- Utilizing small interfering RNAs (siRNAs) for transient gene silencing.
- Employing short hairpin RNA (shRNA) delivered via plasmid or viral vectors for stable gene silencing in mammalian cells.
- Testing these strategies in various in vitro cancer models.
Main Results:
- RNA interference effectively silences the MDR1 gene in a sequence-specific manner.
- Both transient (siRNA) and stable (shRNA) RNAi strategies were successfully applied.
- Demonstrated efficacy in overcoming MDR1/P-gp-mediated multidrug resistance in diverse cancer cell lines.
Conclusions:
- RNA interference represents a promising experimental therapeutic strategy to reverse MDR.
- Targeting MDR1/P-glycoprotein with RNAi offers a novel approach to enhance chemotherapy effectiveness.
- Further investigation into RNAi-based therapies is warranted for clinical application in cancer treatment.
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