A self-assembled copper-artemisinin nanoprodrug as an efficient reactive oxygen species amplified cascade system for cancer treatment†

IF 6.1 3区 医学 Q1 MATERIALS SCIENCE, BIOMATERIALS Journal of Materials Chemistry B Pub Date : 2024-08-23 DOI:10.1039/D4TB01237B
Xueyu Zhu, Chenyang Bi, Wei Cao, Shuangshuang Li, Chuting Yuan, Pengping Xu, Dongdong Wang, Qianwang Chen and Lei Zhang
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Abstract

Chemodynamic therapy (CDT) is a tumor-specific intervention methodology, which is based on the upregulation of reactive oxygen species (ROS) content by triggering the Fenton or Fenton-like reaction within the tumor microenvironment (TME). However, there are still challenges in achieving high-efficiency CDT on account of both the limited intracellular hydrogen peroxide (H2O2) and delivery efficiency of Fenton metal ions. Copper-based nanotherapeutic systems have attracted extensive attention and have been widely applied in the construction of nanotherapeutic systems and multimodal synergistic therapy. Herein, we propose a strategy to synergize chemotherapy drugs that upregulate intracellular ROS content with chemodynamic therapy and construct an artemisinin-copper nanoprodrug for proof-of-concept. With the proposed biomimetic self-assembly strategy, we successfully construct an injectable nanoprodrug with suitable size distribution and high drug loading content (68.1 wt%) through the self-assembly of amphiphilic artemisinin prodrug and copper ions. After reaching the TME, both Cu2+ ions and free AH drugs can be released from AHCu nanoprodrugs. Subsequently, the disassembled Cu2+ ions are converted into Cu+ ions by consuming the intracellular GSH. The generated Cu+ ions serve as a highly efficient Fenton-like reagent for robust ROS generation from both AH and tumor-over-produced H2O2. Results show that the nanoprodrug can realize the cascade amplification of ROS generation via artemisinin delivery and subsequent in situ Fenton-like reaction and a high tumor inhibition rate of 62.48% in vivo. This work provides a promising strategy for the design and development of an efficient nanoprodrug for tumor-specific treatment.

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一种自组装的铜-青蒿素纳米药物,作为治疗癌症的高效活性氧放大级联系统。
化学动力疗法(CDT)是一种肿瘤特异性干预方法,其基础是通过触发肿瘤微环境(TME)中的芬顿或芬顿类反应来上调活性氧(ROS)含量。然而,由于细胞内过氧化氢(H2O2)和芬顿金属离子的传递效率有限,实现高效 CDT 仍面临挑战。铜基纳米治疗系统已引起广泛关注,并被广泛应用于纳米治疗系统的构建和多模式协同治疗。在此,我们提出了上调细胞内 ROS 含量的化疗药物与化学动力学疗法的协同策略,并构建了青蒿素-铜纳米药物进行概念验证。利用所提出的仿生自组装策略,我们通过两亲性青蒿素原药和铜离子的自组装,成功地构建了一种具有合适粒度分布和高载药量(68.1 wt%)的可注射纳米药物。到达 TME 后,Cu2+ 离子和游离的 AH 药物都能从 AHCu 纳米药物中释放出来。随后,分解的 Cu2+ 离子通过消耗细胞内的 GSH 转化为 Cu+ 离子。生成的 Cu+ 离子可作为一种高效的 Fenton 类试剂,从 AH 和肿瘤产生的 H2O2 中产生大量 ROS。结果表明,该纳米药物可通过青蒿素递送和随后的原位 Fenton 类反应实现 ROS 生成的级联放大,体内抑瘤率高达 62.48%。这项工作为设计和开发用于肿瘤特异性治疗的高效纳米药物提供了一种可行的策略。
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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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