Cancer Research Center, School of Medicine, Xiamen University, Xiamen, 36100, P. R. China.
Key Laboratory of Design and Assembly of Functional Nanostructures, Fujian Institute of Research on the Structure of Matter, Chinese Academy of Science, Fuzhou, 350007, P. R. China.
Adv Healthc Mater. 2023 Mar;12(8):e2202418. doi: 10.1002/adhm.202202418. Epub 2022 Dec 12.
The hypoxic character of tumors and the poor targeting ability of photosensitizers often limit the efficacy of photodynamic therapy (PDT). In recent years, the discovery of metal nanoenzymes and nanocarriers has improved PDT. Thereby, to improve the effective utilization of photosensitizers and oxygen (O ) in tumors, herein, a nanosystem (LS-HB@HvCeO -NRP1 mAb, LHCN1) is reported, in which a hollow virus-like cerium oxide (HvCeO ) is surface-decorated with tumor-targeting neuropilin-1 monoclonal antibody (NRP1 mAb), and loaded with a photosensitizer (chlorin e6-C-15-ethyl ester, LS-HB). In vitro and in vivo experiments demonstrate that LHCN1 can efficiently accumulate within the tumor sites via the targeting guidance of NRP1 mAb and is then rapidly endocytosed into cells. Furthermore, HvCeO with catalase-mimetic activity can decompose the endogenous hydrogen peroxide (H O ) to promote O via the valence transformation between Ce and Ce , relieving tumor hypoxia and improving the PDT efficacy. Upon near-infrared laser irradiation, LS-HB produces large amounts of cytotoxic reactive oxygen species. Moreover, LHCN1 is used in fluorescence/photoacoustic multimodal imaging for in vivo drug localization, and its use in PDT evidently helps inhibit tumor growth with no apparent toxicity to normal tissues. Thus, LHCN1 may provide a promising strategy for precise tumor-specific diagnosis and treatment.
肿瘤的缺氧特性和光敏剂的靶向能力差常常限制光动力疗法(PDT)的疗效。近年来,金属纳米酶和纳米载体的发现提高了 PDT 的效果。因此,为了提高光敏剂和肿瘤内氧气(O )的有效利用,本文报道了一种纳米系统(LS-HB@HvCeO-NRP1 mAb,LHCN1),其中肿瘤靶向神经纤毛蛋白-1 单克隆抗体(NRP1 mAb)表面修饰有空腔病毒样氧化铈(HvCeO ),并负载光敏剂(氯代叶绿酸 e6-C-15-乙酯,LS-HB)。体外和体内实验表明,LHCN1 可以通过 NRP1 mAb 的靶向指导在肿瘤部位高效聚集,并被迅速内吞进入细胞。此外,具有过氧化氢酶模拟活性的 HvCeO 可以通过 Ce 和 Ce 之间的价态转化分解内源性过氧化氢(H O ),从而促进 O 的产生,缓解肿瘤缺氧,提高 PDT 的疗效。在近红外激光照射下,LS-HB 产生大量细胞毒性活性氧。此外,LHCN1 用于荧光/光声多模态成像以进行体内药物定位,其在 PDT 中的应用明显有助于抑制肿瘤生长,而对正常组织无明显毒性。因此,LHCN1 可能为精确的肿瘤特异性诊断和治疗提供了一种有前途的策略。