纳米载体
化学
细胞生物学
重编程
免疫系统
巨噬细胞极化
癌细胞
细胞内
癌症研究
细胞
癌症免疫疗法
细胞凋亡
细胞毒性
免疫疗法
获得性免疫系统
细胞溶解
肿瘤微环境
T细胞
纳米医学
细胞膜
免疫检查点
细胞生长
先天免疫系统
巨噬细胞
生物物理学
微泡
基因沉默
生物
间质细胞
RNA干扰
传出细胞增多
癌症
作者
X I Cheng,Junming Dong,Pramath Jain,Shuheng Qin,Yufei Miao,Kai Liu,Maria Lucia Veronica Theja,Christopher J. Butch,Yiqing Wang,Lucas A. Lane
出处
期刊:Small
[Wiley]
日期:2025-12-31
卷期号:22 (10): e10436-e10436
标识
DOI:10.1002/smll.202510436
摘要
Nanomedicine aims to develop nanocarriers that provide strong cell selectivity and efficient intracellular delivery. Additionally, therapeutic strategies are expanding to include metabolic pathways to trigger apoptosis and reduce tumor growth, especially in cases resistant to conventional chemotherapy. Here, we have created nanocarriers with hybrid-biomimetic coatings that, upon ultrasound activation, release encapsulated copper-based metal-organic frameworks (MOFs) and COP1 gene knockout Cas9 ribonucleoproteins (RNPs). This hybrid-membrane coating, which combines tumor and immune cell membranes with perfluorocarbons, enhances tumor-to-normal cell uptake and allows for controlled release and cytolytic entry of the nanocarrier contents. We observe that the RNPs efficiently knockout the COP1 gene, thereby arresting the cancer cell cycle in the G0/G1 phase and promoting mitochondrial respiration over anaerobic glycolysis. This increased respiration makes cancer cells more susceptible to cuproptosis triggered by the MOFs and decreases tumor lactate levels, preventing lactate-driven M2 polarization of tumor-infiltrating macrophages. Furthermore, the nanocarriers' cellular selectivity leaves macrophages unharmed. These effects enable infiltrating macrophages to retain an anticancer M1 polarization and continue to foster a more active immune response. The combination of tumor-specific genetic metabolic reprogramming and enhanced cuproptosis activity, along with increased immune activity, results in significant tumor growth suppression and improved survival rates.
科研通智能强力驱动
Strongly Powered by AbleSci AI