Main Session
Sep 29
PQA 07 - Head and Neck Cancer, Lung Cancer/Thoracic Malignancies, and Nursing and Supportive Care

3616 - <i>Clostridium Butyricum</i>-Derived Butyrate Enhances Radiotherapy Efficacy in NSCLC via the GPR109A-FOXO1-FAO Metabolic Axis

03:45pm - 05:00pm ET
Poster Hall - Exhibit Hall A
Screen: 26
POSTER

Presenter(s)

Shijie Shang, MD - Shandong Cancer Hospital Affiliated to Shandong First Medical University, Jinan, Shandong

S. Shang1, X. Li1, S. Ma2, Z. Zhai2, X. Liang3, S. Yin2, R. Ding2, X. Hu4, G. Sha2, J. Yu5, Q. Song2, and D. Chen1; 1Department of Radiation Oncology and Shandong Provincial Key Laboratory of Radiation Oncology, Shandong Cancer Hospital and Institute, Shandong First Medical University and Shandong Academy of Medical Sciences, Jinan, China, 2Department of Radiation Oncology and Shandong Provincial Key Laboratory of Radiation Oncology, Shandong Cancer Hospital and Institute, Shandong First Medical University and Shandong Academy of Medical Sciences,, Jinan, China, 3Shandong Cancer Hospital and Institute, Shandong First Medical University and Shandong Academy of Medical Sciences, Jinan, China, 4Department of Radiation Oncology, Shandong Cancer Hospital and Institute, Shandong First Medical University and Shandong Academy of Medical Sciences, Jinan, China, 5Department of Radiation Oncology and Shandong Provincial Key Laboratory of Precision Oncology, Shandong Cancer Hospital and Institute, Shandong First Medical University and Shandong Academy of Medical Sciences, Jinan, China

Purpose/Objective(s): Radioresistance limits radiotherapy (RT) efficacy in non-small cell lung cancer (NSCLC). Emerging evidence suggests that gut microbiota influence tumor responses to therapy, yet their role in RT sensitivity remains unclear. We investigated whether the butyrate-producing bacterium Clostridium butyricum enhances RT response in NSCLC and explored the underlying mechanisms.

Materials/Methods: Metagenomic sequencing compared gut microbiota between NSCLC patients with and without RT response. Orthotopic and subcutaneous mouse models with antibiotic-mediated microbiota depletion and fecal microbiota transplantation were used to assess microbiota-dependent radiosensitivity. Metabolomic analysis identified key metabolites. The effects of Clostridium butyricum and butyrate on NSCLC radiosensitivity were evaluated in NSCLC cell lines and mouse models with irradiation. Proliferation, apoptosis, and DNA damage were analyzed. RNA sequencing was performed to evaluate the underlying mechanism.

Results: Microbiota depletion impaired, whereas fecal microbiota transplantation restored, RT efficacy in NSCLC mouse models. Metagenomic analysis revealed enrichment of Clostridium butyricum in RT responders, which was confirmed in mouse models. Clostridium butyricum enhanced RT efficacy in orthotopic and subcutaneous tumors and increased radiosensitivity of NSCLC cell lines by suppressing proliferation and promoting apoptosis. Metabolomics identified butyrate as the key mediator enhancing RT response in vivo and in vitro through gut-lung axis. Mechanistically, butyrate activated GPR109A-FOXO1 signaling and suppressed fatty acid oxidation (FAO), leading to metabolic reprogramming and increased radiosensitivity.

Conclusion: Clostridium butyricum-derived butyrate enhances radiosensitivity in NSCLC via the gut-lung GPR109A-FOXO1-FAO axis. Supplementation of butyrate-producing bacteria represents a potential strategy to overcome radioresistance in NSCLC.