Glutathione S‐transferase omega class 1 (GSTO1)‐associated large extracellular vesicles are involved in tumor‐associated macrophage‐mediated cisplatin resistance in bladder cancer

Author:

Pan Yi‐Cheng12ORCID,Chu Pei‐Yi2,Lin Ching‐Chan3,Hsieh Ching‐Yun3,Hsu Wei‐Yu2,Shyur Lie‐Fen1456,Yang Juan‐Cheng27,Chang Wei‐Chao8ORCID,Wu Yang‐Chang12910ORCID

Affiliation:

1. Ph.D. Program for Cancer Biology and Drug Discovery China Medical University and Academia Sinica Taichung Taiwan

2. Chinese Medicine Research and Development Center China Medical University Hospital Taichung Taiwan

3. Division of Hematology and Oncology, Department of Internal Medicine China Medical University, Hospital, China Medical University Taichung Taiwan

4. Agricultural Biotechnology Research Center Academia Sinica Taipei Taiwan

5. Graduate Institute of Integrated Medicine China Medical University Taichung Taiwan

6. Ph.D. Program in Translational Medicine, College of Medicine Kaohsiung Medical University Taiwan

7. Sex Hormone Research Center, Department of Obstetrics and Gynecology, Center for Molecular Medicine China Medical University Hospital Taichung Taiwan

8. Center for Molecular Medicine China Medical University Hospital, China Medical University Taichung Taiwan

9. Institute of Integrated Medicine, College of Chinese Medicine China Medical University Taichung Taiwan

10. Department of Medical Laboratory Science and Biotechnology, College of Medical and Health Science Asia University Taichung Taiwan

Abstract

Bladder cancer poses a significant challenge to chemotherapy due to its resistance to cisplatin, especially at advanced stages. Understanding the mechanisms behind cisplatin resistance is crucial for improving cancer therapy. The enzyme glutathione S‐transferase omega class 1 (GSTO1) is known to be involved in cisplatin resistance in colon cancer. This study focused on its role in cisplatin resistance in bladder cancer. Our analysis of protein expression in bladder cancer cells stimulated by secretions from tumor‐associated macrophages (TAMs) showed a significant increase in GSTO1. This prompted further investigation into the role of GSTO1 in bladder cancer. We found a strong correlation between GSTO1 expression and cisplatin resistance. Mechanistically, GSTO1 triggered the release of large extracellular vesicles (EVs) that promoted cisplatin efflux, thereby reducing cisplatin–DNA adduct formation and enhancing cisplatin resistance. Inhibition of EV release effectively counteracted the cisplatin resistance associated with GSTO1. In conclusion, GSTO1‐mediated EV release may contribute to cisplatin resistance caused by TAMs in bladder cancer. Strategies to target GSTO1 could potentially improve the efficacy of cisplatin in treating bladder cancer.

Funder

National Science and Technology Council

China Medical University

China Medical University Hospital

Publisher

Wiley

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