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Design of combination therapy for engineered bacterial therapeutics in non-small cell lung cancer
Dhruba Deb1, Yangfan Wu1, Courtney Coker1
1Department of Biomedical Engineering, Columbia University, New York, NY, 10027, USA.
Abstract:
Synthetic biology enables the engineering of bacteria to safely deliver potent payloads to tumors for effective anti-cancer therapies. However, a central challenge for translation is determining ideal bacterial therapy candidates for specific cancers and integrating them with other drug treatment strategies to maximize efficacy. To address this, we designed a screening and evaluation pipeline for characterization of bacterial therapies in lung cancer models. We screened 10 engineered bacterial toxins across 6 non-small cell lung cancer patient-derived cell lines and identified theta toxin as a promising therapeutic candidate. Using a bacteria-spheroid co-culture system (BSCC), analysis of differentially expressed transcripts and gene set enrichment revealed significant changes in at least 10 signaling pathways with bacteria-producing theta toxin. We assessed combinatorial treatment of small molecule pharmaceutical inhibitors targeting 5 signaling molecules and of 2 chemotherapy drugs along with bacterially-produced theta toxin and showed improved dose-dependent response. This combination strategy was further tested and confirmed, with AKT signaling as an example, in a mouse model of lung cancer. In summary, we developed a pipeline to rapidly characterize bacterial therapies and integrate them with current targeted therapies for lung cancer.
Insights
Synthetic biology offers engineered bacteria for targeted cancer therapies. Researchers developed a pipeline to identify theta toxin as a promising lung cancer treatment and combine it with existing drugs for enhanced efficacy.
Area of Science:
- Synthetic biology and oncology
- Bacterial therapeutics
- Cancer drug development
Background:
- Engineered bacteria can deliver therapeutic payloads to tumors.
- Identifying optimal bacterial candidates and combination strategies for specific cancers remains a challenge.
Purpose of the Study:
- To develop and validate a screening pipeline for bacterial therapies in lung cancer.
- To identify promising bacterial toxins and evaluate their combination with existing treatments.
Main Methods:
- Screening of 10 engineered bacterial toxins against 6 non-small cell lung cancer cell lines.
- Utilizing a bacteria-spheroid co-culture system (BSCC) for transcriptomic analysis.
- Assessing combinatorial treatments with small molecule inhibitors and chemotherapy drugs.
Main Results:
- Theta toxin identified as a potent therapeutic candidate.
- Bacterial theta toxin significantly altered 10+ signaling pathways in lung cancer cells.
- Combinatorial therapy demonstrated improved dose-dependent responses in vitro and in a mouse model.
Conclusions:
- A novel pipeline facilitates rapid characterization of bacterial therapies.
- Combination strategies with bacterially-produced theta toxin show potential for enhancing lung cancer treatment.
- This approach integrates synthetic biology with targeted therapies for improved anti-cancer efficacy.
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