Targeting Glucose Metabolism in Bladder Cancer: Therapeutic Implications of 2-Deoxy-D-glucose

Bladder cancer is characterized by metabolic reprogramming, and enhanced glycolysis contributes to tumor progression and therapeutic resistance. Because the anticancer activity of 2-deoxy-D-glucose (2-DG) has been reported in several malignancies, this study evaluated the antiproliferative and metabolism-modulating effects of 2-DG and their association with oxidative stress-related signaling in bladder cancer models. Human bladder cancer cell lines were examined using MTT assays, hexokinase (HK) activity assays, ATP measurements, DCF-DA-based reactive oxygen species (ROS) analysis, and Western blotting. RT112 and 253J cells were selected for mechanistic analyses, and the antitumor efficacy of 2-DG was further evaluated in xenograft models. Treatment with 2-DG reduced the metabolic activity of all five bladder cancer cell lines in a concentration-dependent manner and was associated with decreased HK activity and intracellular ATP levels. Increased ROS-sensitive fluorescence was accompanied by upregulation of TXNIP and BAX and downregulation of AKT and BCL-2, indicating a shift toward a pro-apoptotic pattern of apoptosis-related protein expression. In vivo, systemic administration of 2-DG significantly suppressed xenograft tumor growth without apparent body weight loss or histological abnormalities in the liver or kidneys. These findings suggest that 2-DG suppresses bladder cancer growth in association with metabolic disruption, increased ROS-sensitive fluorescence, TXNIP/AKT-related changes, and modulation of BAX/BCL-2 expression. However, additional studies are required to clarify the underlying mechanisms and further evaluate its safety profile.

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Journal
Current Issues in Molecular Biology
Published
2026-09-25
DOI
https://doi.org/10.3390/cimb48100993
Primary Topic
Cancer, Hypoxia, and Metabolism
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article
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article

Targeting Glucose Metabolism in Bladder Cancer: Therapeutic Implications of 2-Deoxy-D-glucose

Yoichiro Tohi, Kazuya Akimitsu, Rikiya Taoka, Yuki Matsuoka et al.
Current Issues in Molecular Biology
Cancer, Hypoxia, and Metabolism
article

Targeting Glucose Metabolism in Bladder Cancer: Therapeutic Implications of 2-Deoxy-D-glucose

Yoichiro Tohi, Kazuya Akimitsu, Rikiya Taoka, Yuki Matsuoka, Ken Izumori, Dage Liu, Akram Hossain, Mikio Sugimoto, Hirohito Naito, Xia Zhang
article en

Abstract

Bladder cancer is characterized by metabolic reprogramming, and enhanced glycolysis contributes to tumor progression and therapeutic resistance. Because the anticancer activity of 2-deoxy-D-glucose (2-DG) has been reported in several malignancies, this study evaluated the antiproliferative and metabolism-modulating effects of 2-DG and their association with oxidative stress-related signaling in bladder cancer models. Human bladder cancer cell lines were examined using MTT assays, hexokinase (HK) activity assays, ATP measurements, DCF-DA-based reactive oxygen species (ROS) analysis, and Western blotting. RT112 and 253J cells were selected for mechanistic analyses, and the antitumor efficacy of 2-DG was further evaluated in xenograft models. Treatment with 2-DG reduced the metabolic activity of all five bladder cancer cell lines in a concentration-dependent manner and was associated with decreased HK activity and intracellular ATP levels. Increased ROS-sensitive fluorescence was accompanied by upregulation of TXNIP and BAX and downregulation of AKT and BCL-2, indicating a shift toward a pro-apoptotic pattern of apoptosis-related protein expression. In vivo, systemic administration of 2-DG significantly suppressed xenograft tumor growth without apparent body weight loss or histological abnormalities in the liver or kidneys. These findings suggest that 2-DG suppresses bladder cancer growth in association with metabolic disruption, increased ROS-sensitive fluorescence, TXNIP/AKT-related changes, and modulation of BAX/BCL-2 expression. However, additional studies are required to clarify the underlying mechanisms and further evaluate its safety profile.

Current Issues in Molecular BiologyVol. 48(10)
Kagawa University (JP)
Good health and well-being
Openalex Percentile: Top 16%
Cancer, Hypoxia, and Metabolism
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