Boosting Energy Deprivation by Synchronous Interventions of Glycolysis and Oxidative Phosphorylation for Bioenergetic Therapy Synergetic with Chemodynamic/Photothermal Therapy

Author:

Wei Xiangjun12,Han Renlu12ORCID,Gao Yun12,Song Pengxin12,Guo Zhen12,Hou Yafei3,Yu Jiancheng24,Tang Keqi14

Affiliation:

1. Institute of Mass Spectrometry School of Materials Science & Chemical Engineering Ningbo University Ningbo 315211 China

2. Zhejiang Engineering Research Center of Advanced Mass Spectrometry and Clinical Application Zhenhai Institute of Mass Spectrometry Ningbo 315211 China

3. Department of Microelectronics Science and Engineering School of Physical Science and Technology Ningbo University Ningbo 315211 China

4. Faculty of Electrical Engineering and Computer Science Ningbo University Ningbo 315211 China

Abstract

AbstractBioenergetic therapy is emerging as a promising therapeutic approach. However, its therapeutic effectiveness is restricted by metabolic plasticity, as tumor cells switch metabolic phenotypes between glycolysis and oxidative phosphorylation (OXPHOS) to compensate for energy. Herein, Metformin (MET) and BAY‐876 (BAY) co‐loaded CuFe2O4 (CF) nanoplatform (CFMB) is developed to boost energy deprivation by synchronous interventions of glycolysis and OXPHOS for bioenergetic therapy synergetic with chemodynamic/photothermal therapy (CDT/PTT). The MET can simultaneously restrain glycolysis and OXPHOS by inhibiting hexokinase 2 (HK2) activity and damaging mitochondrial function to deprive energy, respectively. Besides, BAY blocks glucose uptake by inhibiting glucose transporter 1 (GLUT1) expression, further potentiating the glycolysis repression and thus achieving much more depletion of tumorigenic energy sources. Interestingly, the upregulated antioxidant glutathione (GSH) in cancer cells triggers CFMB degradation to release Cu+/Fe2+ catalyzing tumor‐overexpressed H2O2 to hydroxyl radical (∙OH), both impairing OXPHOS and achieving GSH‐depletion amplified CDT. Furthermore, upon near‐infrared (NIR) light irradiation, CFMB has a photothermal conversion capacity to kill cancer cells for PTT and improve ∙OH production for enhanced CDT. In vivo experiments have manifested that CFMB remarkably suppressed tumor growth in mice without systemic toxicity. This study provides a new therapeutic modality paradigm to boost bioenergetic‐related therapies.

Funder

National Natural Science Foundation of China

Key Research and Development Program of Zhejiang Province

Natural Science Foundation of Zhejiang Province

K. C. Wong Magna Fund in Ningbo University

Science and Technology Innovation 2025 Major Project of Ningbo

National Key Research and Development Program of China

Publisher

Wiley

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