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Updated: Aug 13, 2026

Bacterial Delivery of RNAi Effectors: Transkingdom RNAi
Published on: August 18, 2010
Anaerobic bacteria as a gene delivery system that is controlled by the tumor microenvironment
M J Lemmon1, P van Zijl, M E Fox
1Mayer Cancer Biology Research Laboratory, Department of Radiation Oncology, Stanford University School of Medicine, CA 94305, USA.
Abstract:
A fundamental obstacle in gene therapy for cancer treatment is the specific delivery of an anticancer gene product to a solid tumor. Although several strategies exist to control gene expression once a vector is directly introduced into a tumor, as yet no systemic delivery system exists that specifically targets solid tumors. Nonpathogenic, obligate anaerobic bacteria of the genus Clostridium have been used experimentally as anticancer agents because of their selective growth in the hypoxic regions of solid tumors after systemic application. In this report we further describe a novel approach to cancer gene therapy in which genetically engineered clostridia are used as tumor-specific vectors for the delivery of antitumor genes. We have introduced into a strain of C. beijerinckii the gene for an E. coli nitroreductase known to activate the nontoxic prodrug CB 1954 to a toxic anticancer drug. Nitroreductase produced by these clostridia enhanced the killing of tumor cells in vitro by CB 1954, by a factor of 22. To demonstrate the specificity of this approach for tumor targeting, we intravenously injected the inactive spore form of C. beijerinckii, which upon transition to a reproductive state will express the E. coli nitroreductase gene. Nitroreductase activity was detectable in 10 of 10 tumors during the first 5 days after intravenous injection of inactive clostridial spores, indicating a rapid transition from spore to reproductive state. Tumors harboring clostridial spores which did not possess the E. coli nitroreductase gene were devoid of nitroreductase activity. Most importantly, E. coli nitroreductase protein was not found in a large survey of normal mouse tissues following intravenous injection of nitroreductase containing clostridia, strongly suggesting that obligate anaerobic bacteria such as clostridia can be utilized as highly specific gene delivery vectors for cancer therapy.
Insights
Genetically engineered Clostridium bacteria deliver anticancer genes specifically to solid tumors. These bacteria activate a prodrug, significantly enhancing tumor cell killing with minimal impact on healthy tissues.
Area of Science:
- Oncology
- Microbiology
- Gene Therapy
Background:
- Targeted delivery of anticancer gene products to solid tumors remains a significant challenge in gene therapy.
- Existing strategies often focus on controlling gene expression post-introduction, lacking systemic tumor-specific delivery systems.
Purpose of the Study:
- To develop and evaluate a novel cancer gene therapy approach using genetically engineered Clostridium bacteria as tumor-specific vectors.
- To assess the efficacy and specificity of Clostridium-mediated delivery of an anticancer gene.
Main Methods:
- Engineered a strain of Clostridium beijerinckii to express E. coli nitroreductase, an enzyme that activates the prodrug CB 1954.
- Administered inactive Clostridium spores intravenously and monitored for nitroreductase activity in tumors and normal tissues.
- Assessed the enhancement of tumor cell killing by CB 1954 in the presence of nitroreductase-expressing Clostridia.
Main Results:
- Nitroreductase production by engineered Clostridia enhanced tumor cell killing by CB 1954 by a factor of 22 in vitro.
- Nitroreductase activity was detected in 10 out of 10 tumors within 5 days of intravenous injection of inactive clostridial spores.
- No significant nitroreductase protein was found in normal mouse tissues, indicating high tumor specificity.
Conclusions:
- Genetically engineered Clostridium bacteria serve as effective and specific vectors for delivering antitumor genes to solid tumors.
- This approach offers a promising strategy for targeted cancer gene therapy, leveraging the anaerobic nature of Clostridia for tumor localization.
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