Henan Provincial People's Hospital & Zhengzhou University People's Hospital, Zhengzhou 450003, P. R. China.
Henan Key Laboratory of Neurological Imaging, Zhengzhou University, Zhengzhou 450003, P. R. China.
ACS Appl Mater Interfaces. 2020 Jun 17;12(24):26880-26892. doi: 10.1021/acsami.0c03873. Epub 2020 Jun 4.
Glioblastoma is one of the most lethal cancers and needs effective therapeutics. The development of coordination-driven metal-organic nanoassemblies, which can cross the blood-brain barrier (BBB) and blood-brain tumor barrier (BBTB) and have multiple desired functions, may provide a promising solution to this issue. Here, we report an assembled nanoplatform based on RGD peptide-modified bisulfite-zinc-dipicolylamine-Arg-Gly-Asp (Bis(DPA-Zn)-RGD) and ultrasmall Au-ICG nanoparticles. Attributed to its positive charges and neovascular targeting properties, Bis(DPA-Zn)-RGD can be selectively delivered to the tumor site, and then assembled in situ into large nanoclusters with subsequently administered Au-ICG nanoparticles. Au nanoparticles with ultrasmall size (∼7 nm) can successfully cross the BBB. The obtained nanoclusters exhibit strong near-infrared-red (NIR) absorption and an enhanced tumor retention effect, enabling precise orthotopic fluorescence/photoacoustic imaging. With the aid of image guidance, the photothermal effect of the nanoclusters is observed to suppress tumor progression with the inhibition efficiency reaching up to 93.9%. Meanwhile, no photothermal damage can be found for normal brain tissues. These results, herein, suggest a feasible nanotheranostic agent with the ability to overcome the BBB and BBTB for imaging and therapy of orthotopic brain tumors.
胶质母细胞瘤是最致命的癌症之一,需要有效的治疗方法。开发基于 RGD 肽修饰的亚硫酸氢盐-锌-二吡啶甲胺-精氨酸-甘氨酸-天冬氨酸(Bis(DPA-Zn)-RGD)和超小的 Au-ICG 纳米粒子的配位驱动的金属有机纳米组装体,可能为解决这个问题提供一个有前途的解决方案。在这里,我们报告了一种基于 RGD 肽修饰的 Bis(DPA-Zn)-RGD 和超小的 Au-ICG 纳米粒子组装的纳米平台。由于其正电荷和新血管靶向特性,Bis(DPA-Zn)-RGD 可以选择性地递送到肿瘤部位,然后与随后给予的 Au-ICG 纳米粒子原位组装成大纳米簇。具有超小尺寸(约 7nm)的 Au 纳米粒子可以成功穿过血脑屏障。所得纳米簇表现出强烈的近红外(NIR)吸收和增强的肿瘤保留效果,实现了精确的原位荧光/光声成像。在图像引导的帮助下,观察到纳米簇的光热效应抑制了肿瘤的进展,抑制效率高达 93.9%。同时,正常脑组织没有光热损伤。这些结果表明,该纳米载体具有克服血脑屏障和血脑肿瘤屏障的能力,可用于原位脑肿瘤的成像和治疗。