Engineered probiotics for tumor-targeted combination chemoimmunotherapy

Achieving tumor-specific delivery and sustained activation of both cytotoxic and immune-modulating agents remains a critical challenge in chemoimmunotherapy. Here, a bacterial platform was engineered to combine enzyme/prodrug chemotherapy with immunotherapy, in which tumor-homing Escherichia coli Nissle 1917 expressed cytosine deaminase to convert the prodrug 5-fluorocytosine into the cytotoxic drug 5-fluorouracil and concurrently produced an IL-15 superagonist and a PD-L1 blocking nanobody in tumors. This platform demonstrated potent antitumor effects in murine MC38 and B16-F10 solid tumor models. Mechanistic analyses showed that bacterial enzyme/prodrug therapy alone elicited both immune activation and compensatory immunosuppressive responses, whereas inclusion of IL-15 superagonist and PD-L1 blockade enhanced activation of antigen-presenting cells, T cells, and natural killer cells and attenuated immunosuppressive pathways. Abscopal and rechallenge experiments indicated that this bacterial chemoimmunotherapy strategy induces systemic antitumor immunity and durable immune memory. In summary, our approach integrates enzyme/prodrug therapy and immunotherapy into a single bacterial delivery system, overcoming key limitations of conventional therapies by providing a rationally designed framework for spatially controlled chemoimmunotherapy.

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Publication Details

Journal
Science Translational Medicine
Published
2026-09-16
DOI
https://doi.org/10.1126/scitranslmed.ady2289
Primary Topic
Cancer Research and Treatments
Type
article
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article

Engineered probiotics for tumor-targeted combination chemoimmunotherapy

Kenia de los Santos-Alexis, Zaofeng Yang, Fangda Li, Jongwon Im et al.
Science Translational Medicine
Cancer Research and Treatments
article

Engineered probiotics for tumor-targeted combination chemoimmunotherapy

Kenia de los Santos-Alexis, Zaofeng Yang, Fangda Li, Jongwon Im, Noah Chen, Tal Danino, Dylan L. Mariuzza, Nicholas Arpaia, Edward R. Ballister, Olivia R. Ringham
article en

Abstract

Achieving tumor-specific delivery and sustained activation of both cytotoxic and immune-modulating agents remains a critical challenge in chemoimmunotherapy. Here, a bacterial platform was engineered to combine enzyme/prodrug chemotherapy with immunotherapy, in which tumor-homing Escherichia coli Nissle 1917 expressed cytosine deaminase to convert the prodrug 5-fluorocytosine into the cytotoxic drug 5-fluorouracil and concurrently produced an IL-15 superagonist and a PD-L1 blocking nanobody in tumors. This platform demonstrated potent antitumor effects in murine MC38 and B16-F10 solid tumor models. Mechanistic analyses showed that bacterial enzyme/prodrug therapy alone elicited both immune activation and compensatory immunosuppressive responses, whereas inclusion of IL-15 superagonist and PD-L1 blockade enhanced activation of antigen-presenting cells, T cells, and natural killer cells and attenuated immunosuppressive pathways. Abscopal and rechallenge experiments indicated that this bacterial chemoimmunotherapy strategy induces systemic antitumor immunity and durable immune memory. In summary, our approach integrates enzyme/prodrug therapy and immunotherapy into a single bacterial delivery system, overcoming key limitations of conventional therapies by providing a rationally designed framework for spatially controlled chemoimmunotherapy.

Science Translational MedicineVol. 18(867)
Columbia University Irving Medical Center (US), Columbia University (US)
Openalex Percentile: Top 16%
Cancer Research and Treatments
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