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原位激活光热纳米平台用于按需递送 NO 气体和增强结直肠癌治疗。

In situ-activated photothermal nanoplatform for on-demand NO gas delivery and enhanced colorectal cancer treatment.

机构信息

State Key Laboratory of Separation Membranes and Membrane Processes, School of Materials Science and Engineering, Tiangong University, Tianjin 300387, China.

School of Biotechnology, Badr University in Cairo, Badr City, Cairo 11829, Egypt.

出版信息

J Control Release. 2023 Jul;359:69-84. doi: 10.1016/j.jconrel.2023.05.034. Epub 2023 Jun 1.

Abstract

The naturally evolved and intestinal pathogenic Fusobacterium nucleatum (Fn)-induced drug resistance profoundly impaired the efficacy of chemotherapy against colorectal cancer (CRC). Alternative treatment modalities against Fn-associated CRC are desperately needed. Herein, we engineer an in situ-activated anti-tumor and antibacterial nanoplatform (CuO/BNN6@MSN-Dex) to allow photoacoustic (PA) imaging-guided photothermal and NO gas combinatorial therapy for enhanced Fn-associated CRC treatment. The nanoplatform is constructed by loading cuprous oxide (CuO) and nitric oxide (NO) donor (BNN6) into dextran-decorated mesoporous silica nanoparticles (MSN), which is finally surface-functionalized with dextran via dynamic boronate linkage. CuO can be sulfuretted in situ by endogenous hydrogen sulfide overexpressed in CRC to produce copper sulfide with remarkable PA and photothermal properties, enabling the generation of NO from BNN6 under 808 nm laser irradiation, which is eventually triggered to release by multiple biological cues in the tumor microenvironment. CuO/BNN6@MSN-Dex exhibits superior biocompatibility, as well as HS-triggered near-infrared-controlled antibacterial and anti-tumor performance in vitro and in vivo via photothermal and NO gas combination therapy. Furthermore, CuO/BNN6@MSN-Dex provokes systemic immune responses, thereby promoting anti-tumor efficacy. This study provides a conbinational strategy to effectively inhibit tumors and intratumor pathogens for enhanced CRC treatment.

摘要

天然进化和肠道致病性梭杆菌(Fn)诱导的耐药性极大地影响了结直肠癌(CRC)化疗的疗效。迫切需要针对 Fn 相关 CRC 的替代治疗方法。在此,我们设计了一种原位激活的抗肿瘤和抗菌纳米平台(CuO/BNN6@MSN-Dex),以允许光声(PA)成像引导光热和 NO 气体联合治疗,以增强 Fn 相关 CRC 的治疗效果。该纳米平台是通过将氧化亚铜(CuO)和一氧化氮(NO)供体(BNN6)加载到葡聚糖修饰的介孔硅纳米颗粒(MSN)中构建的,最后通过动态硼酸酯键合用葡聚糖对其表面进行功能化。CuO 可以被 CRC 中过表达的内源性硫化氢原位硫化,生成具有显著 PA 和光热性能的硫化铜,从而在 808nm 激光照射下使 BNN6 产生 NO,最终通过肿瘤微环境中的多种生物学信号触发其释放。CuO/BNN6@MSN-Dex 表现出优异的生物相容性,以及通过光热和 NO 气体联合治疗在体外和体内具有 HS 触发的近红外控制的抗菌和抗肿瘤性能。此外,CuO/BNN6@MSN-Dex 引发全身免疫反应,从而提高抗肿瘤疗效。本研究为增强 CRC 治疗提供了一种有效的抑制肿瘤和肿瘤内病原体的联合策略。

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