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Biodegradable Metal Complex-Gated Organosilica for Dually Enhanced Chemodynamic Therapy through GSH Depletions and NIR Light-Triggered Photothermal Effects

机译:可生物降解金属络合物门控有机硅通过 GSH 耗竭和 NIR 光触发光热效应进行双重增强化学动力学治疗

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摘要

Hollow silica spheres have been widely studied for drug delivery because of their excellent biosecurity and high porosity. However, difficulties with degradation in the tumor microenvironment (TME) and premature leaking during drug delivery limit their clinical applications. To alleviate these problems, herein, hollow organosilica spheres (HOS) were initially prepared using a “selective etching strategy” and loaded with a photothermal drug: new indocyanine green (IR820). Then, the Cu2+–tannic acid complex (Cu-TA) was deposited on the surface of the HOS, and a new nanoplatform named HOS@IR820@Cu-TA (HICT) was finally obtained. The deposition of Cu-TA can gate the pores of HOS completely to prevent the leakage of IR820 and significantly enhance the loading capacity of HOS. Once in the mildly acidic TME, the HOS and outer Cu-TA decompose quickly in response, resulting in the release of Cu2+ and IR820. The released Cu2+ can react with the endogenous glutathione (GSH) to consume it and produce Cu+, leading to the enhanced production of highly toxic ·OH through a Fenton-like reaction due to the overexpressed H2O2 in the TME. Meanwhile, the ·OH generation was remarkably enhanced by the NIR light-responsive photothermal effect of IR820. These collective properties of HICT enable it to be a smart nanomedicine for dually enhanced chemodynamic therapy through GSH depletions and NIR light-triggered photothermal effects.
机译:空心二氧化硅球因其出色的生物安全性和高孔隙率而被广泛研究用于药物递送。然而,肿瘤微环境 (TME) 降解困难和药物递送过程中的过早渗漏限制了它们的临床应用。为了缓解这些问题,本文最初使用“选择性蚀刻策略”制备空心有机硅球 (HOS),并加载了光热药物:新的吲哚菁绿 (IR820)。然后,Cu2+-单宁酸络合物 (Cu-TA) 沉积在 HOS 表面,最终获得名为 HOS@IR820@Cu-TA (HICT) 的新纳米平台。Cu-TA 的沉积可以完全浇口 HOS 的孔隙,防止 IR820 的泄漏,并显着提高 HOS 的负载能力。一旦进入弱酸性 TME,HOS 和外部 Cu-TA 就会响应迅速分解,导致 Cu2+ 和 IR820 的释放。释放的 Cu2+ 可以与内源性谷胱甘肽 (GSH) 反应并产生 Cu+,导致剧毒 ·OH 通过 Fenton 样反应,这是由于 TME 中过表达的 H2O2 所致。同时, ·IR820 的 NIR 光响应光热效应显着增强了 OH 的产生。HICT 的这些集体特性使其成为一种智能纳米药物,通过 GSH 消耗和 NIR 光触发的光热效应进行双重增强化疗动力学治疗。

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