Cancer Research and Treatments · Journal article
mBio · August 10, 2026
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This is a preclinical genetic engineering study demonstrating that deletion of the spiC gene in attenuated Salmonella Typhimurium VNP20009 preserved tumor regression while improving safety in murine NF2-related schwannoma models. The work establishes rationally designed bacterial strains (AST101 and AST101-ΔspiC) with defined genetic backgrounds for further mechanistic investigation, but lacks quantified efficacy data, human translation, or comparative outcome metrics needed to assess clinical potential.
Preclinical genetic characterization and murine tumor model study. Murine models bearing NF2-related schwannoma (NF2-SWN) tumors; setting and eligibility criteria not specified.. Intervention: Attenuated Salmonella Typhimurium strains: VNP20009-ΔspiC, AST101, and AST101-ΔspiC (with targeted deletions of spiC and/or sipB genes). Compared with: PBS (phosphate-buffered saline) control; VNP20009 parental strain implicitly compared.
Deletion of SPI-2 gene spiC preserved robust tumor regression in NF2-SWN murine models while improving safety and reducing systemic toxicity Mutation of SPI-1 gene sipB partially reduced tumor control, suggesting bacterial invasion alone does not fully account for antitumor activity Both AST101 and AST101-ΔspiC strains significantly suppressed tumor growth compared to PBS in syngeneic NF2-SWN mouse model
Deletion of SPI-2 gene spiC preserved robust tumor regression in NF2-SWN murine models while improving safety and reducing systemic toxicity VNP20009-ΔspiC provides markedly improved safety profile while retaining antitumor efficacy
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Preclinical murine model study of engineered bacterial strains with no human data, efficacy endpoints, or quantified effect sizes reported.
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ABSTRACT Recent advances in systems biology and immunotherapy have spurred the use of bacteria as therapeutic vehicles for cancer treatment. Currently, Bacillus Calmette–Guérin remains the only FDA-approved bacterial strain for high-risk, non–muscle-invasive bladder cancer. Although safety concerns have been raised, attenuated Salmonella Typhimurium strains such as VNP20009 have advanced to clinical trials targeting fast-growing human tumors. Notably, this strain induces robust immunological control of slow-growing tumors such as NF2-related schwannomatosis (NF2-SWN) in preclinical murine models. Here, we genetically characterize VNP20009 with the goal of constructing genetically defined attenuated strains that retain its promising therapeutic features while improving safety. Specifically, we investigated the contribution of the Salmonella pathogenicity island I (SPI-1) and SPI-2 type III secretion systems to antitumor efficacy and biosafety. Mutation of the SPI-1 gene sipB, a key structural component required for SPI-1 type III secretion system function, partially reduced tumor control in NF2-SWN murine schwannoma models, suggesting that bacterial invasion alone does not fully account for antitumor activity. In contrast, deletion of the SPI-2 gene spiC, a key effector required for intracellular survival, preserved robust tumor regression in NF2-SWN murine schwannoma models while improving safety and reducing systemic toxicity. To create a genetically defined and tractable platform, we generated two attenuated strains—AST101 and AST101-Δ spiC —which retain key mutations present in VNP20009 but lack ill-characterized background mutations. In the syngeneic NF2-SWN mouse schwannoma model, both strains significantly suppressed tumor growth compared to PBS. Collectively, these findings support the development of rationally engineered Salmonella Typhimurium strains with enhanced safety and preserved antitumor efficacy. IMPORTANCE Given long-standing safety concerns surrounding the therapeutic use of live bacteria, we constructed a ΔspiC mutant of VNP20009 and demonstrated that it provides a markedly improved safety profile while retaining antitumor efficacy in NF2-related schwannomatosis mouse schwannoma models. In addition, we created two genetically defined Salmonella Typhimurium strains, AST01 and AST01-ΔspiC, which incorporate the key-targeted mutations found in VNP20009 and VNP20009-ΔspiC, respectively. These engineered strains offer a well-defined genetic background, enabling precise investigation of the bacterial traits responsible for Salmonella Typhimurium-mediated tumor control and thus further improvement of attenuated strains optimized for bacteriotherapy of neoplasms.
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