A tetrasulfide bond-bridged mesoporous organosilica-based nanoplatform for triple-enhanced chemodynamic therapy combined with chemotherapy and H2S therapy†

IF 6.1 3区 医学 Q1 MATERIALS SCIENCE, BIOMATERIALS
Mingzhe Liu, Hui Xu, FangFang Zhou, Xiyu Gong, Songwen Tan and Yongju He
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Abstract

The high glutathione (GSH) concentration and insufficient H2O2 content in tumor cells strongly constrict the efficacy of Fenton reaction-based chemodynamic therapy (CDT). Despite numerous efforts, it still remains a formidable challenge for achieving satisfactory efficacy using CDT alone. Herein, an intelligent tetrasulfide bond-bridged mesoporous organosilica-based nanoplatform that integrates GSH-depletion, H2S generation, self-supplied H2O2, co-delivery of doxorubicin (DOX) and Fenton reagent Fe2+ is presented for synergistic triple-enhanced CDT/chemotherapy/H2S therapy. Because the tetrasulfide bond is sensitive to GSH, the nanoplatform can effectively consume GSH, leading to ROS accumulation and H2S generation in the GSH-overexpressed tumor microenvironment. Meanwhile, tetrasulfide bond-induced GSH-depletion triggers the degradation of nanoparticles and the release of DOX and Fe2+. Immediately, Fe2+ catalyzes endogenous H2O2 to highly toxic hydroxyl radicals (˙OH) for CDT, and H2S induces mitochondria injury and causes energy deficiency. Of note, H2S can also decrease the decomposition of H2O2 to augment CDT by downregulating catalase. DOX elicits chemotherapy and promotes H2O2 production to provide a sufficient substrate for enhanced CDT. Importantly, the GSH depletion significantly weakens the scavenging effect on the produced ˙OH, guaranteeing the enhanced and highly efficient CDT. Based on the synergistic effect of triple-augmented CDT, H2S therapy and DOX-mediated chemotherapy, the treatment with this nanoplatform gives rise to a superior antitumor outcome.

Abstract Image

一种四硫键桥接的介孔有机硅基纳米平台,用于化疗和H2S治疗的三重增强化学动力学治疗。
肿瘤细胞中谷胱甘肽(GSH)浓度高和H2O2含量不足严重限制了基于芬顿反应的化学动力学治疗(CDT)的疗效。尽管做出了许多努力,但要想单独使用CDT达到令人满意的疗效,它仍然是一个巨大的挑战。本文提出了一种基于四硫键桥联介孔有机硅的智能纳米平台,该平台集成了GSH耗竭、H2S生成、自供H2O2、阿霉素(DOX)和芬顿试剂Fe2+的共递送,用于协同三重增强CDT/化疗/H2S治疗。由于四硫键对GSH敏感,因此纳米平台可以有效消耗GSH,导致GSH过表达的肿瘤微环境中ROS积累和H2S产生。同时,四硫键诱导的GSH耗竭触发了纳米颗粒的降解以及DOX和Fe2+的释放。Fe2+立即将内源性H2O2催化为CDT的高毒性羟基自由基(*OH),H2S诱导线粒体损伤并导致能量缺乏。值得注意的是,H2S还可以通过下调过氧化氢酶来减少H2O2的分解以增加CDT。DOX引发化疗并促进H2O2的产生,为增强CDT提供足够的底物。重要的是,GSH的耗竭显著削弱了对产生的*OH的清除作用,保证了CDT的增强和高效。基于三重增强CDT、H2S治疗和DOX介导的化疗的协同作用,该纳米平台的治疗产生了优越的抗肿瘤效果。
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来源期刊
Journal of Materials Chemistry B
Journal of Materials Chemistry B MATERIALS SCIENCE, BIOMATERIALS-
CiteScore
11.50
自引率
4.30%
发文量
866
期刊介绍: Journal of Materials Chemistry A, B & C cover high quality studies across all fields of materials chemistry. The journals focus on those theoretical or experimental studies that report new understanding, applications, properties and synthesis of materials. Journal of Materials Chemistry A, B & C are separated by the intended application of the material studied. Broadly, applications in energy and sustainability are of interest to Journal of Materials Chemistry A, applications in biology and medicine are of interest to Journal of Materials Chemistry B, and applications in optical, magnetic and electronic devices are of interest to Journal of Materials Chemistry C.Journal of Materials Chemistry B is a Transformative Journal and Plan S compliant. Example topic areas within the scope of Journal of Materials Chemistry B are listed below. This list is neither exhaustive nor exclusive: Antifouling coatings Biocompatible materials Bioelectronics Bioimaging Biomimetics Biomineralisation Bionics Biosensors Diagnostics Drug delivery Gene delivery Immunobiology Nanomedicine Regenerative medicine & Tissue engineering Scaffolds Soft robotics Stem cells Therapeutic devices
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