Li Wenling, Xin Huan, Gao Wenjuan, Yuan Pengjun, Ni Feixue, Ma Jingyi, Sun Jingrui, Xiao Jianmin, Tian Geng, Liu Lu, Zhang Guilong
School of Pharmacy, Shandong Technology Innovation Center of Molecular Targeting and Intelligent Diagnosis and Treatment, Binzhou Medical University, Yantai, 264003, P.R. China.
J Nanobiotechnology. 2024 Feb 19;22(1):73. doi: 10.1186/s12951-024-02343-5.
The formation of blood vessel system under a relatively higher Cu ion level is an indispensable precondition for tumor proliferation and migration, which was assisted in forming the tumor immune microenvironment. Herein, a copper ions nano-reaper (LMDFP) is rationally designed not only for chelating copper ions in tumors, but also for combination with photothermal therapy (PTT) to improve antitumor efficiency. Under 808 nm laser irradiation, the fabricated nano-reaper converts light energy into thermal energy to kill tumor cells and promotes the release of D-penicillamine (DPA) in LMDFP. Photothermal properties of LMDFP can cause tumor ablation in situ, which further induces immunogenic cell death (ICD) to promote systematic antitumor immunity. The released DPA exerts an anti-angiogenesis effect on the tumor through chelating copper ions, and inhibits the expression of programmed death ligand 1 (PD-L1), which synergizes with PTT to enhance antitumor immunity and inhibit tumor metastasis. Meanwhile, the nanoplatform can emit near-infrared-IIb (NIR-IIb) fluorescence under 980 nm excitation, which can be used to track the nano-reaper and determine the optimal time point for PTT. Thus, the fabricated nano-reaper shows powerful potential in inhibiting tumor growth and metastasis, and holds great promise for the application of copper nanochelator in precise tumor treatment.
在相对较高的铜离子水平下形成血管系统是肿瘤增殖和迁移不可或缺的前提条件,这有助于形成肿瘤免疫微环境。在此,合理设计了一种铜离子纳米收割机(LMDFP),它不仅用于螯合肿瘤中的铜离子,还用于与光热疗法(PTT)联合以提高抗肿瘤效率。在808 nm激光照射下,制备的纳米收割机将光能转化为热能以杀死肿瘤细胞,并促进LMDFP中D - 青霉胺(DPA)的释放。LMDFP的光热特性可原位引起肿瘤消融,进而诱导免疫原性细胞死亡(ICD)以促进全身性抗肿瘤免疫。释放的DPA通过螯合铜离子对肿瘤发挥抗血管生成作用,并抑制程序性死亡配体1(PD - L1)的表达,这与PTT协同增强抗肿瘤免疫并抑制肿瘤转移。同时,该纳米平台在980 nm激发下可发射近红外-IIb(NIR-IIb)荧光,可用于追踪纳米收割机并确定PTT的最佳时间点。因此,制备的纳米收割机在抑制肿瘤生长和转移方面显示出强大的潜力,并且在铜纳米螯合剂用于精确肿瘤治疗的应用中具有巨大前景。