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树状大分子/金属-酚纳米复合物包载氧化铜用于靶向磁共振成像以及通过调节肿瘤微环境增强铁死亡/铜死亡/化学动力学治疗

Dendrimer/metal-phenolic nanocomplexes encapsulating CuO for targeted magnetic resonance imaging and enhanced ferroptosis/cuproptosis/chemodynamic therapy by regulating the tumor microenvironment.

机构信息

State Key Laboratory for Modification of Chemical Fibers and Polymer Materials, Shanghai Engineering Research Center of Nano-Biomaterials and Regenerative Medicine, College of Biological Science and Medical Engineering, Donghua University, Shanghai 201620, PR China; College of Chemistry and Chemical Engineering, Donghua University, Shanghai 201620, PR China.

Department of Radiology, Shanghai Songjiang District Central Hospital, Shanghai 201620, PR China.

出版信息

Acta Biomater. 2024 Jul 15;183:252-263. doi: 10.1016/j.actbio.2024.05.035. Epub 2024 May 25.

Abstract

The combination of ferroptosis, cuproptosis, and chemodynamic therapy (CDT) would be a potential strategy for tumor diagnosis and enhanced treatment. However, the therapeutic effect was severely limited by the lack of specific delivery of catalytic ions and the low Fenton reaction efficiency in tumor microenvironment (TME) with excess glutathione, limited acidity and insufficient endogenous hydrogen peroxide. In this work, p-carboxybenzenesulfonamide (BS), a carbonic anhydrase IX (CA IX) inhibitor, was modified on the surface of generation-5 poly(amidoamine) dendrimer to load copper peroxide nanoparticles, which were complexed with iron (Fe)-tannic acid (TF) networks for targeted magnetic resonance (MR) imaging and enhanced ferroptosis/cuproptosis/CDT by regulating TME. The formed CuO@G5-BS/TF nanocomplexes with an average size of 39.4 nm could be specifically accumulated at tumor site and effectively internalized by metastatic 4T1 cells via the specific interaction between BS and CA IX over-expressed on tumor cells. Meanwhile, the inhibition of CA IX activity could not only decrease the intracellular pH to accelerate Fe/Cu release, HO self-supply and Fenton reaction, but also suppress tumor metastasis by alleviating the extracellular acidity in TME. Moreover, the reduction of Fe/Cu by intracellular glutathione (GSH) could further amplify ROS generation and enhance CDT efficacy, and the GSH depletion could in turn inhibit GPX-4 mediated antioxidant reaction to induce ferroptosis, resulting in effective therapeutic efficacy. In vivo experimental results demonstrated that CuO@G5-BS/TF could provide better tumor MR imaging, effectively inhibit the growth and metastasis of 4T1 breast tumors, and be metabolized without significant systemic toxicity. Thus, CuO@G5-BS/TF nanocomplexes provided a new approach for targeted MR imaging and enhanced ferroptosis/cuproptosis/CDT of triple-negative breast cancer. STATEMENT OF SIGNIFICANCE: Taking the advantage of dendrimer and metal-phenolic system, stable CuO@G5-BS/TF nanocomplexes with an average size of 39.4 nm were synthesized to efficiently load Fe and CuO nanoparticles for TNBC treatment and MR imaging. CuO@G5-BS/TF nanocomplexes could target tumor cells overexpressing CAIX via the specific binding with BS, and the inhibition of CAIX activity could not only decrease the intracellular pH to accelerate Fe/Cu release, HO self-supply and Fenton reaction, but also suppress tumor metastasis by alleviating the extracellular acidity. The reduction of Fe/Cu by intracellular GSH could further amplify ·OH generation, and the GSH depletion could in turn inhibit GPX-4 mediated antioxidant reaction to induce ferroptosis, resulting in effective therapeutic efficacy by enhanced ferroptosis/cuproptosis/CDT via tumor microenvironment regulation.

摘要

铁死亡、铜死亡和化学动力学治疗(CDT)的联合将是肿瘤诊断和增强治疗的潜在策略。然而,由于催化离子的特异性传递不足以及肿瘤微环境(TME)中谷胱甘肽过量、酸度有限和内源性过氧化氢不足,Fenton 反应效率低下,治疗效果受到严重限制。在这项工作中,对羧基苯磺酰胺(BS),一种碳酸酐酶 IX(CA IX)抑制剂,被修饰在第 5 代聚(酰胺-胺)树枝状大分子的表面,以负载过氧氧化铜纳米颗粒,其与铁(Fe)-鞣酸(TF)网络复合用于靶向磁共振(MR)成像,并通过调节 TME 增强铁死亡/铜死亡/CDT。形成的平均尺寸为 39.4nm 的 CuO@G5-BS/TF 纳米复合物可以特异性地在肿瘤部位积累,并通过 BS 与肿瘤细胞过度表达的 CA IX 之间的特异性相互作用,有效地被转移性 4T1 细胞内化。同时,CA IX 活性的抑制不仅可以降低细胞内 pH 值,加速 Fe/Cu 释放、HO 自供和 Fenton 反应,还可以通过减轻 TME 中的细胞外酸度来抑制肿瘤转移。此外,细胞内谷胱甘肽(GSH)对 Fe/Cu 的还原可以进一步放大 ROS 的产生,增强 CDT 的疗效,而 GSH 的耗竭又可以抑制 GPX-4 介导的抗氧化反应,诱导铁死亡,从而产生有效的治疗效果。体内实验结果表明,CuO@G5-BS/TF 可以提供更好的肿瘤 MR 成像,有效抑制 4T1 乳腺癌的生长和转移,且代谢无明显全身毒性。因此,CuO@G5-BS/TF 纳米复合物为三阴性乳腺癌的靶向 MR 成像和增强铁死亡/铜死亡/CDT 提供了一种新方法。

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