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一种具有耗氧能力的自激活纳米囊泡,可实现高效缺氧响应的化学-热癌症治疗。

A self-activating nanovesicle with oxygen-depleting capability for efficient hypoxia-responsive chemo-thermo cancer therapy.

机构信息

State Key Laboratory of High Performance Ceramics and Superfine Microstructures, Shanghai Institute of Ceramics, Chinese Academy of Sciences, Shanghai, 200050, PR China; Center of Materials Science and Optoelectronics Engineering, University of Chinese Academy of Sciences, Beijing, 100049, PR China.

State Key Laboratory of High Performance Ceramics and Superfine Microstructures, Shanghai Institute of Ceramics, Chinese Academy of Sciences, Shanghai, 200050, PR China.

出版信息

Biomaterials. 2021 Feb;269:120533. doi: 10.1016/j.biomaterials.2020.120533. Epub 2020 Nov 18.

Abstract

Hypoxia-activated prodrugs (HAPs) promise to mitigate side effects of conventional chemotherapy and to enable precise medication treatment. One challenge facing HAPs-based chemotherapy is prodrug failure in normoxic tumor region. However, current strategies to enhance tumor hypoxia rely on delivery of oxygen-consuming agents and external stimulation, which can impede the optimal application of HAPs. Herein, a novel self-activating nanovesicle, TH-302@BR-Chitosan NPs, is constructed by assembling bilirubin-chitosan conjugate (named as BR-Chitosan) with a HAP, TH-302. It is interesting to find that the BR-Chitosan shows the inherent oxygen-depleting performance, especially in the presence of over expressed HO in tumor area, during which the BR-Chitosan can facily transform into biliverdin-chitosan (BV-Chitosan) and subsequently result in the disassembly of nanovesicles to release and activate the prodrug. Thus, this in situ strengthening hypoxia level of tumor can greatly promote the chemotherapy efficacy of HAPs. Moreover, as the oxidation derivatives of BR-Chitosan, BV-Chitosan exhibits intense absorbance at the range from long wavelength of visible region to near-infrared region, which can be acted as an effective photothermal agent for photothermal therapy (PTT). This biodegradable and self-activating nanovesicle with concise formulation demonstrates greatly enhanced synergistic therapeutic outcome in the activatable chemo-thermo combined therapy, showing much promising in future clinical transformation.

摘要

缺氧激活前药(HAPs)有望减轻传统化疗的副作用,并实现精确的药物治疗。基于 HAPs 的化疗面临的一个挑战是在正常氧肿瘤区域前药失效。然而,目前增强肿瘤缺氧的策略依赖于耗氧剂的传递和外部刺激,这可能会阻碍 HAPs 的最佳应用。在此,通过将胆红素-壳聚糖缀合物(命名为 BR-Chitosan)与 HAP、TH-302 组装,构建了一种新型自激活纳米囊泡 TH-302@BR-Chitosan NPs。有趣的是,发现 BR-Chitosan 具有内在的耗氧性能,特别是在肿瘤区域中过表达 HO 的情况下,在此期间,BR-Chitosan 可以很容易地转化为胆绿素-壳聚糖(BV-Chitosan),从而导致纳米囊泡解体,释放并激活前药。因此,这种原位增强的肿瘤缺氧水平可以极大地促进 HAPs 的化疗效果。此外,作为 BR-Chitosan 的氧化衍生物,BV-Chitosan 在从可见光长波长到近红外区域的范围内表现出强烈的吸收,可作为光热治疗(PTT)的有效光热剂。这种具有简洁配方的可生物降解和自激活纳米囊泡在可激活的化疗-热联合治疗中表现出大大增强的协同治疗效果,在未来的临床转化中显示出很大的前景。

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