Department of Orthopaedic Surgery, Zhongshan Hospital, Fudan University, Shanghai, 200032, PR China; Cancer Center, Zhongshan Hospital, Fudan University, Shanghai, 200032, PR China.
Materdicine Lab, School of Life Sciences, Shanghai University, Shanghai, 200444, PR China.
Biomaterials. 2021 Aug;275:120917. doi: 10.1016/j.biomaterials.2021.120917. Epub 2021 Jun 18.
Metastatic tumors present great challenges in diagnosis and treatment. Herein, a proof-of-concept theranostic nanoplatform composed of an Au nanoparticle core and a double-shell of metal-organic framework (MOF) and mesoporous silica (MS) is developed for combating spinal metastasis of lung cancer in an orthotopic model. Two drugs, Alpelisib (BYL719) as an inhibitor and cisplatin as a chemotherapeutic drug, are separately loaded into the double-shell with high loading content. A targeting peptide called dYNH and indocyanine green (ICG) are conjugated onto the outmost MS layer for specifically targeting metastatic tumor cells and enhancing photothermal effect. The resultant Au@MOF@MS-ICG -dYNH-PAA (AMMD) shows enhanced cellular uptake on tumor cells and accumulation at metastatic spinal tumors, as evidenced by fluorescent and photoacoustic imaging. Benefiting from this ultra-high affinity to tumor cells and the photothermal effect of ICG, the dual-drug-loaded AMMD (BCAMMD) modified with ICG exhibits superior therapeutic efficacy on spinal tumors. More importantly, bone destruction, which frequently occurs in bone-related tumors, is effectively suppressed by BYL719 in BCAMMD. Hence, by rationally integrating multiple functions, including excellent targeting ability, dual-drug loading, photothermal therapy, and photoacoustic imaging, the developed all-in-one theranostic nanoplatform provides a useful paradigm of employing nanomedicine to treat metastatic spinal tumors efficiently.
转移性肿瘤在诊断和治疗方面存在巨大挑战。在此,开发了一种由金纳米颗粒核和金属-有机框架(MOF)和介孔硅(MS)双壳组成的概念验证治疗性纳米平台,用于在原位模型中对抗肺癌脊柱转移。两种药物,阿培利司(BYL719)作为抑制剂和顺铂作为化疗药物,分别以高载药量装载到双壳中。一种称为 dYNH 的靶向肽和吲哚菁绿(ICG)被共轭到最外层的 MS 层上,用于特异性靶向转移性肿瘤细胞并增强光热效应。所得的 Au@MOF@MS-ICG-dYNH-PAA(AMMD)在肿瘤细胞上表现出增强的细胞摄取和在转移性脊柱肿瘤中的积累,这可以通过荧光和光声成像来证明。受益于这种对肿瘤细胞的超高亲和力和 ICG 的光热效应,用 ICG 修饰的双载药 AMMD(BCAMMD)在脊柱肿瘤上表现出优异的治疗效果。更重要的是,BYL719 在 BCAMMD 中有效抑制了骨相关肿瘤中经常发生的骨破坏。因此,通过合理整合多种功能,包括优异的靶向能力、双药物负载、光热治疗和光声成像,开发的一体化治疗性纳米平台为利用纳米医学有效治疗转移性脊柱肿瘤提供了一个有用的范例。