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NIR-Driven Water Splitting H-2 Production Nanoplatform for H-2-Mediated Cascade-Amplifying Synergetic Cancer Therapy

机译:H-2介导的级联扩增协同癌症治疗的NIR驱动的水分解H-2生产纳米片

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As a newly emerging treatment strategy for many diseases, hydrogen therapy has attracted a lot of attention because of its excellent biosafety. However, the high diffusivity and low solubility of hydrogen make it difficult to accumulate in local lesions. Herein, we develop a H-2 self-generation nanoplatform by in situ water splitting driven by near-infrared (NIR) laser. In this work, core-shell nanoparticles (CSNPs) of NaGdF4:Yb,Tm/g-C3N4/Cu3P (UCC) nanocomposites as core encapsulated with zeolitic imidazolate framework-8 (ZIF-8) modified with folic acid as shell are designed and synthesized. Due to the acid-responsive ZIF-8 shell, enhanced permeability and retention (EPR) effect, and folate receptor-mediated endocytosis, CSNPs are selectively captured by tumor cells. Upon 980 nm laser irradiation, CSNPs exhibit a high production capacity of H-2 and active oxygen species (ROS), as well as an appropriate photothermal conversion temperature. Furthermore, rising temperature increases the Fenton reaction rate of Cu(I) with H2O2 and strengthens the curative effect of chemodynamic therapy (CDT). The excess glutathione (GSH) in tumor microenvironment (TME) can deplete positive holes produced in the valence band of g-C3N4 in the g-C3N4/Cu3P Z-scheme heterojunction. GSH also can reduce Cu(II) to Cu(I), ensuring a continuous Fenton reaction. Thus, a NIR-driven H-2 production nanoplatform is constructed for H-2-mediated cascade-amplifying multimodal synergetic therapy.
机译:作为许多疾病的新出现治疗策略,由于其优异的生物安全,氢气治疗引起了很多关注。然而,氢的高扩散性和低溶解度使得难以在局部病变中积聚。在此,我们通过近红外(NIR)激光器驱动的原位水分解来开发H-2自发电纳米片。在该作品中,设计了与作为壳体改性的沸石酰亚胺的核心包封的核心,纳米核复合材料的核 - 壳纳米颗粒(CSNP),作为壳体改性的叶酸修饰的核心。合成。由于酸性响应性ZIF-8壳,增强渗透性和保留(EPR)效应,以及叶酸受体介导的内吞作用,肿瘤细胞选择性地捕获CSNP。在980nm激光辐照上,CSNPS表现出H-2和活性氧物质(ROS)的高生产能力,以及适当的光热转化温度。此外,上升温度会使Cu(I)的芬顿反应速率与H 2 O 2增加,并加强了化学动力治疗(CDT)的疗效。肿瘤微环境(TME)中的多余谷胱甘肽(GSH)可以在G-C3N4 / CU3P Z-方案异质结中耗尽在G-C3N4的价带中产生的正孔。 GSH还可以减少Cu(II)至Cu(I),确保连续的芬顿反应。因此,对于H-2介导的级联扩增多式联合式疗法构建了NIR驱动的H-2生产纳米型形成。

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