NMPA Key Laboratory for Technology Research and Evaluation of Drug Products and Key Laboratory of Chemical Biology (Ministry of Education), Department of Pharmaceutics, School of Pharmaceutical Sciences, Cheeloo College of Medicine, Shandong University, Jinan 250012, China.
Department of Chemical Engineering, University of Washington, Seattle, Washington 98195, United States.
ACS Nano. 2023 Dec 26;17(24):24883-24900. doi: 10.1021/acsnano.3c05898. Epub 2023 Oct 26.
Surgical resection is the first-line therapy for breast cancer. However, residual tumor cells and the highly immunosuppressive tumor microenvironment (TME) continue to have a serious impact on tumor recurrence and metastasis postresection. Implantation of an hydrogel system postresection has shown to be an effective treatment with great clinical potential. Herein, an injectable zwitterionic hydrogel system was developed for local drug delivery with enhanced immune activation and prevention of tumor recurrence. Driven by electrostatic interactions, poly(sulfobetaine methacrylate) (PSBMA) self-assembles into a hydrogel in saline, achieving low protein adsorption and tunable biodegradability. The chemotherapy drug doxorubicin (DOX) was loaded into copper peroxide nanoparticles (CuO/DOX), which were coated with macrophage membranes to form tumor-targeting nanoparticles (M/CuO/DOX). Next, M/CuO/DOX and the stimulator of interferon genes (STING) agonist 2',3'-cGAMP were coloaded into PSBMA hydrogel (Gel@M/CuO/DOX/STING). The hydrophilic STING agonist was first released by diffusion from hydrogel to activate the STING pathway and upregulate interferon (IFN) signaling related genes, remodeling the immunosuppressive TME. Then, M/CuO/DOX targeted the residual tumor cells, combining with DOX-induced DNA damage, immunogenic tumor cell death, and copper death. Hence, this work combines chemodynamic therapy with STING pathway activation in TME, encouraging residual tumor cell death, promoting the maturation of dendritic cells, enhancing tumor-specific CD8 T cell infiltration, and preventing postoperative recurrence and metastasis.
手术切除是乳腺癌的一线治疗方法。然而,残留的肿瘤细胞和高度免疫抑制的肿瘤微环境(TME)仍然对术后肿瘤复发和转移有严重影响。切除后植入水凝胶系统已被证明是一种具有巨大临床潜力的有效治疗方法。本文开发了一种可注射的两性离子水凝胶系统,用于局部药物输送,具有增强的免疫激活和预防肿瘤复发的作用。在静电相互作用的驱动下,聚(磺酸甜菜碱甲基丙烯酸酯)(PSBMA)在盐水中自组装成水凝胶,实现了低蛋白吸附和可调节的生物降解性。化疗药物阿霉素(DOX)被装载到过氧化铜纳米粒子(CuO/DOX)中,并用巨噬细胞膜包裹形成肿瘤靶向纳米粒子(M/CuO/DOX)。然后,M/CuO/DOX 和干扰素基因刺激物(STING)激动剂 2',3'-cGAMP 共装载到 PSBMA 水凝胶中(Gel@M/CuO/DOX/STING)。亲水性 STING 激动剂首先通过扩散从水凝胶中释放出来,激活 STING 途径并上调干扰素(IFN)信号相关基因,重塑免疫抑制的 TME。然后,M/CuO/DOX 靶向残留的肿瘤细胞,与 DOX 诱导的 DNA 损伤、免疫原性肿瘤细胞死亡和铜死亡相结合。因此,这项工作将化学动力学疗法与 TME 中的 STING 途径激活相结合,鼓励残留肿瘤细胞死亡,促进树突状细胞成熟,增强肿瘤特异性 CD8 T 细胞浸润,预防术后复发和转移。