Homomultivalent Polymeric Nanotraps Disturb Lipid Metabolism Homeostasis and Tune Pyroptosis in Cancer

Author:

Zhou Jie1,Ji Jiecheng1,Li Xue1,Zhang Yuxin1,Gu Lei1,Zheng Xiuli1,Li Yunkun1,He Jinhan1,Yang Cheng2,Xiao Kai1,Gong Qiyong134,Gu Zhongwei1,Luo Kui13ORCID

Affiliation:

1. Department of Radiology and Department of Pharmacy Huaxi MR Research Center (HMRRC) Laboratory of Stem Cell Biology and Laboratory of Precision Cancer Therapeutics Precision Medicine Research Center Frontiers Science Center for Disease‐Related Molecular Network State Key Laboratory of Biotherapy West China Hospital Sichuan University Chengdu 610041 China

2. Key Laboratory of Green Chemistry & Technology College of Chemistry State Key Laboratory of Biotherapy West China Hospital Sichuan University Chengdu 610064 China

3. Functional and Molecular Imaging Key Laboratory of Sichuan Province and Research Unit of Psychoradiology Chinese Academy of Medical Sciences Chengdu 610041 China

4. Department of Radiology West China Xiamen Hospital of Sichuan University Xiamen 361000 China

Abstract

AbstractGenetic manipulations and pharmaceutical interventions to disturb lipid metabolism homeostasis have emerged as an attractive approach for the management of cancer. However, the research on the utilization of bioactive materials to modulate lipid metabolism homeostasis remains constrained. In this study, heptakis (2,3,6‐tri‐O‐methyl)‐β‐cyclodextrin (TMCD) is utilized to fabricate homomultivalent polymeric nanotraps, and surprisingly, its unprecedented ability to perturb lipid metabolism homeostasis and induce pyroptosis in tumor cells is found. Through modulation of the density of TMCD arrayed on the polymers, one top‐performing nanotrap, PTMCD4, exhibits the most powerful cholesterol‐trapping and depletion capacity, thus achieving prominent cytotoxicity toward different types of tumor cells and encouraging antitumor effects in vivo. The interactions between PTMCD4 and biomembranes of tumor cells effectively enable the reduction of cellular phosphatidylcholine and cholesterol levels, thus provoking damage to the biomembrane integrity and perturbation of lipid metabolism homeostasis. Additionally, the interplays between PTMCD4 and lysosomes also induce lysosomal stress, activate the nucleotide‐binding oligomerization domain‐like receptor protein 3 inflammasomes, and subsequently trigger tumor cell pyroptosis. To sum up, this study first introduces dendronized bioactive polymers to manipulate lipid metabolism and has shed light on another innovative insight for cancer therapy.

Funder

National Natural Science Foundation of China

West China Hospital, Sichuan University

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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