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Inlaying Radiosensitizer onto the Polypeptide Shell of Drug-Loaded Ferritin for Imaging and Combinational Chemo-Radiotherapy

机译:在载药的铁蛋白多肽壳上镶嵌放射增敏剂以进行成像和联合化学放疗

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摘要

>Rationale: Ferritin with unique hollow cavity is an emerging protein-based nanoplatform for anticancer-drug delivery, but the in vivo chemotherapeutic effectiveness is still unsatisfactory with such a monotherapy modality, which is urgently in need of improvement.>Methods: Here a novel ferritin nanotheranostic with anticancer-drug doxorubicin encapsulated into its hollow interior and nanoradiosensitizer bismuth sulfide nanocrystals inlayed onto its polypeptide shell was synthesized for combinational therapeutic benefits. The formation mechanism of bismuth sulfide nanocrystals based on ferritin has been analyzed. The in vitro and in vivo treatment effects were carried out on HeLa cancer cells and tumor-bearing mice, respectively. The biocompatibility and excretion of the ferritin nanotheranostic have also been evaluated to guarantee their biosafety.>Results: The polypeptide shell of ferritin provides nucleation sites for the bismuth sulfide nanocrystals through coordination interaction, and simultaneously inhibits the further growth of bismuth sulfide nanocrystals, rendering the bismuth sulfide nanocrystals like rivets inlaying onto the polypeptide firmly, which can not only strengthen the architectural stability of ferritin to prevent drug burst leakage during systemic circulation, but also act as excellent computed tomography contrast agents and nanoradiosensitizers for in vivo imaging-guided cancer combinational treatments.>Conclusions: The design concept of inlaying bismuth sulfide nanocrystals onto the polypeptide shell of doxorubicin-encapsulated ferritin significantly inhibits the tumor growth and simultaneously further broadens the application of ferritin in nanomedicine.
机译:>原理:具有独特空腔的铁蛋白是一种新兴的基于蛋白质的纳米平台,可用于抗癌药物的输送,但是这种单一疗法的体内化学治疗效果仍不理想,迫切需要改进。 >方法:此处合成了一种新型铁蛋白纳米热敏材料,其中将抗癌药阿霉素包封在其空心内部,并在其多肽壳上镶嵌了纳米放射增敏剂硫化铋纳米晶体,以实现综合治疗效果。分析了基于铁蛋白的硫化铋纳米晶体的形成机理。分别在HeLa癌细胞和荷瘤小鼠上进行了体外和体内治疗效果。 >结果:铁蛋白的多肽壳通过配位相互作用为硫化铋纳米晶体提供了成核位点,同时抑制了铁蛋白纳米晶的生物相容性和排泄,以保证其生物安全性。硫化铋纳米晶体,使铆钉等硫化铋纳米晶体牢固地镶嵌在多肽上,不仅可以增强铁蛋白的结构稳定性,防止全身循环中的药物爆裂渗漏,而且还可以作为体内出色的计算机断层扫描造影剂和纳米放射增敏剂影像学指导的癌症联合治疗。>结论:将硫化铋纳米晶体镶嵌在阿霉素包被的铁蛋白的多肽壳上的设计概念显着抑制了肿瘤的生长,同时进一步拓宽了铁蛋白在纳米医学中的应用。

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