Ma Yandong, Deng Yakui, Xue Wei, Ji Xin, Li Min-Hui
Chimie ParisTech, PSL University, CNRS, Institut de Recherche de Chimie Paris, UMR8247, 75005 Paris, France.
Key Laboratory of Biomaterials of Guangdong Higher Education Institutes, Engineering Technology Research Center of Drug Carrier of Guangdong, Department of Biomedical Engineering, Jinan University, Guangzhou 510632, China.
J Am Chem Soc. 2025 Jul 30;147(30):26557-26572. doi: 10.1021/jacs.5c06533. Epub 2025 Jul 17.
The intracellular balance between nicotinamide adenine dinucleotide and its reduced form (NAD/NADH) is essential for cell metabolism. The NAD/NADH redox imbalance strategy using NADH-oxidase-mimic nanozymes has emerged as an attractive antitumor strategy. Here, we develop a photocatalytic metal-free nanozyme that is a polymer vesicle (polymersome) self-assembled from PEG-block-poly(amino acid) functionalized by photocatalytic moieties with aggregation-induced emission (AIE). To enhance biocompatibility and tumor-targetability, the vesicle is coated with a folate-modified red-blood-cell membrane (FA-RBC) to get biomimetic AIE polymersome nanozyme (BV). Unlike conventional photocatalysts, BV can achieve the cyclical photocatalytic process for NADH-NAD conversion without O or additional electron acceptors. A new mechanism is proposed in which adjacent excited triplet molecules in the AIE assembly play the role of electron acceptors for complete NADH-NAD conversion and catalyst turnover. This O-independent photocatalysis is appealing in anticancer treatment since the tumor has a hypoxic microenvironment. and investigations demonstrate BV induces a severe NAD/NADH imbalance under hypoxia to lead to inhibition of oxidative phosphorylation and glycolysis, which triggers the energy crisis in 4T1 cancer cells and in the 4T1 tumor of a subcutaneous xenograft model. This work presents a novel approach of cancer therapy through the photocatalytic impairment of tumor energy metabolism by metal-free nanozyme.
烟酰胺腺嘌呤二核苷酸与其还原形式(NAD/NADH)之间的细胞内平衡对于细胞代谢至关重要。利用模拟NADH氧化酶的纳米酶的NAD/NADH氧化还原失衡策略已成为一种有吸引力的抗肿瘤策略。在此,我们开发了一种无金属光催化纳米酶,它是一种由具有聚集诱导发光(AIE)的光催化部分功能化的PEG-嵌段-聚(氨基酸)自组装而成的聚合物囊泡(聚合物体)。为了提高生物相容性和肿瘤靶向性,该囊泡用叶酸修饰的红细胞膜(FA-RBC)包被,以获得仿生AIE聚合物体纳米酶(BV)。与传统光催化剂不同,BV可以在没有氧气或额外电子受体的情况下实现NADH-NAD转化的循环光催化过程。我们提出了一种新机制,其中AIE组装体中相邻的激发三重态分子充当电子受体以实现完全的NADH-NAD转化和催化剂周转。这种不依赖氧气的光催化在抗癌治疗中很有吸引力,因为肿瘤具有缺氧微环境。研究表明,BV在缺氧条件下会导致严重的NAD/NADH失衡,从而抑制氧化磷酸化和糖酵解,进而引发4T1癌细胞和皮下异种移植模型的4T1肿瘤中的能量危机。这项工作通过无金属纳米酶对肿瘤能量代谢的光催化损伤提出了一种新的癌症治疗方法。