Yan Shuangqian, Xue Panpan, Sun Ying, Bai Tingjie, Shao Sijie, Zeng Xuemei
Key Laboratory of Microbial Pathogenesis and Interventions of Fujian Province University, Biomedical Research Center of South China, College of Life Sciences, Fujian Normal University, 1 Keji Road, Fuzhou, 350117, P. R. China.
The Straits Institute of Flexible Electronics (SIFE, Future Technologies), Straits Laboratory of Flexible Electronics (SLoFE) Fujian Normal University, Fuzhou, Fujian, 350117, P. R. China.
Adv Sci (Weinh). 2025 Jan;12(3):e2409967. doi: 10.1002/advs.202409967. Epub 2024 Nov 28.
The dysregulated cholesterol metabolism in breast cancer cells drives malignancy, invasion, and metastasis, emphasizing the significance of reducing abnormal cholesterol accumulation for effective cancer treatment and metastasis inhibition. Despite its promise, cholesterol oxidase (ChOx) encounters challenge due to limited catalytic efficiency and susceptibility to harsh conditions. To overcome these hurdles, biocompatible nanoplatforms (Cu-HPB/C) tailored for efficient cholesterol depletion are introduced. Cu-doped hollow Prussian blue (Cu-HPB) acts as a carrier, shelter, and enhancer for ChOx, bolstering tumor-targeting ability, stability, and enzymatic activity. Tumor-responsive released Cu notably augments ChOx activity, facilitating cholesterol depletion and disrupting lipid rafts, thereby impeding cell invasion and migration. Additionally, HO generated from the oxidase reaction enhances Cu-HPB's chemo dynamic therapeutic efficacy. Transcriptomic analysis validates Cu-HPB/C's impact on cholesterol homeostasis and reveals cell death mechanisms including oxidative stress, ferroptosis, cuproptosis, and apoptosis. Demonstrating therapeutic efficacy in both 4T1 tumor subcutaneous and metastasis mouse models, the study presents a direct and effective strategy for tumor therapy and metastasis inhibition through enhanced cholesterol depletion.
乳腺癌细胞中胆固醇代谢失调会推动恶性肿瘤的发展、侵袭和转移,这凸显了减少异常胆固醇积累对于有效癌症治疗和抑制转移的重要性。尽管胆固醇氧化酶(ChOx)前景广阔,但由于催化效率有限且易受恶劣条件影响,它面临着挑战。为克服这些障碍,引入了专门用于有效消耗胆固醇的生物相容性纳米平台(Cu-HPB/C)。铜掺杂的中空普鲁士蓝(Cu-HPB)作为ChOx的载体、保护体和增强剂,增强了肿瘤靶向能力、稳定性和酶活性。肿瘤响应释放的铜显著增强了ChOx活性,促进胆固醇消耗并破坏脂筏,从而阻碍细胞侵袭和迁移。此外,氧化酶反应产生的羟基自由基增强了Cu-HPB的化学动力学治疗效果。转录组分析验证了Cu-HPB/C对胆固醇稳态的影响,并揭示了包括氧化应激、铁死亡、铜死亡和凋亡在内的细胞死亡机制。该研究在4T1肿瘤皮下和转移小鼠模型中均显示出治疗效果,提出了一种通过增强胆固醇消耗来进行肿瘤治疗和抑制转移的直接有效策略。