Cancer Institution, The Affiliated Hospital of Qingdao University, Qingdao 266061, China.
Jiangsu Key Laboratory of Drug Screening, China Pharmaceutical University, Nanjing 210009, China.
ACS Appl Mater Interfaces. 2020 Oct 21;12(42):47197-47207. doi: 10.1021/acsami.0c10888. Epub 2020 Oct 12.
To enhance affinity to their hosts, many organisms have evolved to be spiky. This strategy has been inspiring in many fields, but in drug delivery, the feasibility has not yet been extensively explored due to the lack of suitable nanocarriers. Herein, viruslike mesoporous FeSe hedgehogs with exceptional photothermal and catalytic performances have been tailored and explored for synergistic tumor therapy. The viruslike topology makes these hedgehogs highly prone to be internalized by cells. By uploading doxorubicin (Dox) into the hollow spikes and encapsulating the hedgehogs with photothermal-meltable gelatin, controlled surface morphology transition from quasi-spherical to spiky and accompanied Dox release have been achieved, with the assistance of the strong photothermal effect of FeSe hedgehogs. These integrated features allow specific and controlled drug delivery, leading to synergistic tumor suppression and immunogenic tumor cell death. These results provide new insights into the tailoring of drug carriers relying on their intrinsic physical features.
为了增强与宿主的亲和力,许多生物体已经进化成多刺的形态。这种策略在许多领域都具有启发意义,但由于缺乏合适的纳米载体,在药物输送领域,其可行性尚未得到广泛探索。在此,我们设计并研究了具有优异的光热和催化性能的类病毒介孔 FeSe 刺猬纳米载体,用于协同肿瘤治疗。类病毒拓扑结构使这些刺猬纳米载体非常容易被细胞内化。通过将阿霉素(Dox)载入中空刺中,并用光热可融化明胶包裹刺猬,在 FeSe 刺猬强烈的光热效应的辅助下,实现了从准球形到多刺形态的可控表面形貌转变,并伴随 Dox 的释放。这些综合特性允许进行特异性和可控的药物输送,从而实现协同的肿瘤抑制和免疫原性肿瘤细胞死亡。这些结果为依赖于药物载体固有物理特性的药物载体设计提供了新的见解。