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  2. Reprogramming Macrophage Function via Cholesterol Modulation and Redox Signaling Using a Multifunctional Nanoplatform for Postoperative Breast Cancer Management

Reprogramming Macrophage Function via Cholesterol Modulation and Redox Signaling Using a Multifunctional Nanoplatform for Postoperative Breast Cancer Management

  • ACS Nano. 2025 Sep 16;19(36):32444-32459. doi: 10.1021/acsnano.5c08767.
Xuemei Zeng 1 Shumin Tang 1 Guosheng Hu 1 Yonghong Pang 1 Sihuang Lin 2 Shijie Shangguan 3 Shuangqian Yan 3 Xinglin Ruan 4 Liling Zheng 2
Affiliations

Affiliations

  • 1 Key Laboratory of Microbial Pathogenesis and Interventions of Fujian Province University, Biomedical Research Center of South China, Biomedical Research Center of South China, College of Life Sciences, Fujian Normal University, 1 Keji Road, Fuzhou 350117, PR China.
  • 2 First Hospital of Quanzhou Affiliated to Fujian Medical University, 250 East Street, Quanzhou, Fujian 362000, China.
  • 3 Strait Institute of Flexible Electronics (SIFE, Future Technologies), Fujian Key Laboratory of Flexible Electronics, Fujian Normal University and Strait Laboratory of Flexible Electronics (SLoFE), Fuzhou 350117, China.
  • 4 Department of Neurology, Fujian Medical University Union Hospital, 29 Xinquan Road Gulou District, Fuzhou 350001, China.
Abstract

Postoperative recurrence and Infection remain major obstacles to effective breast Cancer recovery, often driven by cholesterol-mediated macrophage dysfunction. Here, we report the development of CuMPmC, a multifunctional nanoplatform constructed through copper-dopamine chelation and self-polymerization, functionalized with mannose for selective targeting of M2-like macrophages, and loaded with Cholesterol oxidase (ChOx). CuMPmC depletes macrophage membrane Cholesterol via ChOx-mediated oxidation, enhancing plasma membrane fluidity and thereby promoting macrophage chemotaxis. Simultaneously, ChOx-generated H2O2 drives copper-mediated Fenton-like reactions to generate moderate Reactive Oxygen Species, while depleting glutathione within the tumor microenvironment. This dual action polarizes macrophages toward a proinflammatory M1 phenotype, enhancing clearance of tumor cells and pathogens. Copper ions further potentiate ChOx enzymatic activity and stimulate angiogenesis. In vitro and in vivo analyses, including transcriptomic profiling, demonstrate that CuMPmC enhances macrophage migration and phagocytic capacity through coordinated Cholesterol modulation and ROS-driven signaling. Treatment with CuMPmC reduced postoperative tumor recurrence and Infection in murine models. These findings highlight the pivotal role of Cholesterol metabolism in reprogramming macrophage function and offer a promising immunotherapeutic strategy for postoperative breast Cancer management.

Keywords

cholesterol metabolism; macrophage phagocytosis; nanozyme; postoperative tumor recurrence; postoperative wound healing.

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