用于 CT/MR 成像和光热-化学动力协同疗法的可生物降解聚(氨基酸)-铋纳米吸热剂

Fengfeng Xiao, Yongkang Liu, Yanhong Su, Xu He, Ligong Lu, Meixiao Zhan, Liewei Wen*, Yunlu Dai* and Bing Liu*, 
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引用次数: 0

摘要

根据多模态成像技术明确划分肿瘤病灶,并精确指导微创治疗,是彻底切除肿瘤(尤其是早期微小肿瘤病灶)的关键。然而,单模成像技术难以准确观察肿瘤区域,单一的治疗策略也很难彻底切除肿瘤。在这项研究中,我们制备了一种含有聚天冬氨酸的可生物降解两亲聚合物。它与 Bi3+ 和超小型 Fe3O4 进一步自组装形成了多功能纳米复合物(Bi/Fe3O4@P3),可作为 CT/MRI 双成像造影剂并增强光热/化学动力协同治疗。此外,为了提高光热效应,热应力还能提高细胞内 H2O2 的水平,从而促进 Bi3+/Fe2+ 与 H2O2 之间的 Fenton 反应,提高化学动力疗法(CDT)的疗效。特别是,Bi/Fe3O4@P3 会通过 Bi3+ 与 GSH 的配位,同时消耗细胞内丰富的 GSH,进一步增强 PTT/CDT 的协同杀瘤功效。因此,我们的研究有望为微小肿瘤的治疗提供一种前景广阔的纳米治疗剂和潜在的综合治疗策略。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Biodegradable Poly(amino acid)–Bismuth Nanotheranostic Agents for CT/MR Imaging and Photothermal–Chemodynamic Synergistic Therapy

Biodegradable Poly(amino acid)–Bismuth Nanotheranostic Agents for CT/MR Imaging and Photothermal–Chemodynamic Synergistic Therapy

Clearly delineating the tumor foci based on multimodal imaging techniques and precisely guiding the minimally invasive therapy are pivotal to completely remove tumors, especially for early micro-tumor lesions. Nevertheless, single-mode imaging techniques are difficult to accurately visualize the tumor region, and the mono-therapeutic strategy is hardly a complete removal of the tumor. In this study, we prepare a biodegradable amphiphilic polymer containing poly(aspartic acid). It is further self-assembled with Bi3+ and ultrasmall Fe3O4 to form a multifunctional nanocomplex (Bi/Fe3O4@P3), which served as a CT/MRI dual-imaging contrast agent and enhanced the photothermal/chemodynamic synergistic therapy. In addition, to enhance the photothermal efficiency, the thermal stress also elevated the level of intracellular H2O2, which would facilitate the Fenton reaction between Bi3+/Fe2+ and H2O2 and improve the chemodynamic therapy (CDT) efficacy. Particularly, Bi/Fe3O4@P3 would concurrently deplete the abundant intracellular GSH through the coordination of Bi3+ with GSH to further potentiate the PTT/CDT synergistic tumoricidal efficacy. Therefore, our study was expected to provide a promising theranostic nano-agent and potential comprehensive therapeutic strategy for microtumors.

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