An Ellagic Acid Coordinated Copper‐Based Nanoplatform for Efficiently Overcoming Cancer Chemoresistance by Cuproptosis and Synergistic Inhibition of Cancer Cell Stemness

Author:

Lu Shuaijun1ORCID,Tian Hailong2,Li Bowen2,Li Lei3,Jiang Hao1,Gao Yajie1,Zheng Lin1,Huang Canhua12,Zhou Yuping1,Du Zhongyan45,Xu Jia16

Affiliation:

1. The First Affiliated Hospital of Ningbo University Ningbo 315020 China

2. State Key Laboratory of Biotherapy and Cancer Center West China Hospital West China School of Basic Medical Sciences & Forensic Medicine Collaborative Innovation Center for Biotherapy Sichuan University Chengdu 610041 China

3. School of Basic Medical Sciences Chengdu University of Traditional Chinese Medicine Chengdu 611137 China

4. School of Basic Medical Sciences Zhejiang Chinese Medical University Hangzhou 310053 China

5. Key Laboratory of Blood‐stasis‐toxin Syndrome of Zhejiang Province Hangzhou 310053 China

6. Department of Physiology and Pharmacology Health Science Center Ningbo University Ningbo Zhejiang 315211 China

Abstract

AbstractDrug resistance is one of the leading causes of treatment failure in current cancer chemotherapy. In addition to the classical drug efflux transporter‐mediated chemoresistance, cancer cells with stemness features play a crucial role in escaping the maximum impact of chemotherapy. To sensitize cancer chemotherapy, in a novel approach, the hedgehog pathway inhibitor ellagic acid (EA) is coordinated with Cu2+ to develop nanoscale metal–organic frameworks (EA‐Cu), which are then loaded with doxorubicin (DOX) and modified with targeted chondroitin sulfate (CS) to form the CS/E‐C@DOX nanoplatform (CS/NPs). Notably, EA inhibits stemness maintenance by suppressing the hedgehog pathway, while Cu2+ further decreases stemness features of tumor cells by disrupting mitochondrial metabolism, effectively enhancing DOX‐mediated chemotherapy. Meanwhile, EA can act synergistically with Cu2+ to cause mitochondrial dysfunction and cuproptosis, which effectively decreases ATP levels and subsequently suppresses the activity of P‐glycoprotein (P‐gp), thus reducing drug efflux and sensitizing DOX‐mediated chemotherapy. Additionally, the attached CS endows CS/NPs with specific tumor targeting properties, whereas EA‐Cu endows this nanoplatform with pH/glutathione (GSH) dual‐responsive release behavior. Taken together, CS/NPs exhibited excellent antitumor effects by inducing cuproptosis and significantly inhibiting cancer cell stemness, which has great potential for overcoming cancer chemoresistance.

Funder

National Natural Science Foundation of China

West China Hospital, Sichuan University

Natural Science Foundation of Ningbo Municipality

Basic and Applied Basic Research Foundation of Guangdong Province

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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