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, China; College of Chemistry and Chemical Engineering, Donghua University, Shanghai 201620, China.
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, China.
Acta Biomater. 2023 Jul 1;164:474-486. doi: 10.1016/j.actbio.2023.04.003. Epub 2023 Apr 10.
Theranostic nanoplatforms for combination tumor therapy have gained lots of attention recently due to the optimized therapeutic efficiency and simultaneous diagnosis performance. Herein, a novel tumor microenvironment (TME)-responsive core-shell tecto dendrimer (CSTD) was assembled by phenylboronic acid- and mannose-modified poly(amidoamine) dendrimers via the phenylboronic ester bonds that are responsive to low pH and reactive oxygen species (ROS), and efficiently loaded with copper ions and chemotherapeutic drug disulfiram (DSF) for tumor-targeted magnetic resonance (MR) imaging and cuproptosis-promoted chemo-chemodynamic therapy. The formed CSTD-Cu(II)@DSF could be specifically taken up by MCF-7 breast cancer cells, accumulated to the tumor model after circulation, and released drugs in response to the weakly acidic TME with overexpressed ROS. The enriched intracellular Cu(II) ions could induce the oligomerization of lipoylated proteins and proteotoxic stress for cuproptosis, and lipid peroxidation for chemodynamic therapy as well. Moreover, the CSTD-Cu(II)@DSF could cause the dysfunction of mitochondria and arrest the cell cycle at the G2/M phase, leading to enhanced DSF-mediated cell apoptosis. As a result, CSTD-Cu(II)@DSF could effectively inhibit the growth of MCF-7 tumors by a combination therapy strategy integrating chemotherapy with cuproptosis and chemodynamic therapy. Lastly, the CSTD-Cu(II)@DSF also displays Cu(II)-associated r relaxivity, allowing for T-weighted real-time MR imaging of tumors in vivo. The developed tumor-targeted and TME-responsive CSTD-based nanomedicine formulation may be developed for accurate diagnosis and synergistic treatment of other cancer types. STATEMENT OF SIGNIFICANCE: Constructing an effective nanoplatform for the combination of therapeutic effects and real-time tumor imaging remains a challenge. In this study, we reported for the first time an all-in-one tumor-targeted and tumor microenvironment (TME) responsive nanoplatform based on core-shell tecto dendrimer (CSTD) for the cuproptosis-promoted chemo-chemodynamic therapy and enhanced MR imaging. The efficient loading, selective tumor-targeting, and TME-responsive release of Cu(II) and disulfiram could enhance the intracellular accumulation of drugs, induce cuproptosis of cancer cells, and amplify the synergistic chemo-chemodynamic therapeutic effect, resulting in enhanced MR imaging and accelerated tumor eradication. This study sheds new light on the development of theranostic nanoplatforms for early accurate diagnosis and effective treatment of cancers.
治疗诊断一体化纳米平台因其优化的治疗效果和同时诊断性能而受到广泛关注。在此,通过苯硼酸酯键将苯硼酸和甘露糖修饰的聚酰胺胺树枝状大分子组装成新型肿瘤微环境(TME)响应的核壳结构的树枝状大分子(CSTD),该键对低 pH 值和活性氧(ROS)具有响应性,并高效负载铜离子和化疗药物双硫仑(DSF),用于肿瘤靶向磁共振(MR)成像和铜死亡促进的化疗-化学动力学治疗。形成的 CSTD-Cu(II)@DSF 可以被 MCF-7 乳腺癌细胞特异性摄取,在循环后积累到肿瘤模型中,并响应富含 ROS 的弱酸性 TME 释放药物。细胞内富集的 Cu(II) 离子可以诱导脂酰化蛋白的寡聚化和毒性蛋白应激引起铜死亡,并诱导脂质过氧化引起化学动力学治疗。此外,CSTD-Cu(II)@DSF 可以导致线粒体功能障碍和细胞周期停滞在 G2/M 期,导致增强的 DSF 介导的细胞凋亡。结果,CSTD-Cu(II)@DSF 通过化疗与铜死亡和化学动力学治疗相结合的联合治疗策略,有效地抑制 MCF-7 肿瘤的生长。最后,CSTD-Cu(II)@DSF 还显示出与 Cu(II) 相关的 r 弛豫率,允许体内实时 T 加权磁共振成像肿瘤。开发的基于肿瘤靶向和 TME 响应的 CSTD 的纳米药物制剂可用于其他癌症类型的准确诊断和协同治疗。
构建治疗效果和实时肿瘤成像相结合的有效纳米平台仍然是一个挑战。在这项研究中,我们首次报道了一种基于核壳结构的树枝状大分子(CSTD)的用于铜死亡促进的化疗-化学动力学治疗和增强磁共振成像的一体化肿瘤靶向和肿瘤微环境(TME)响应的纳米平台。Cu(II)和双硫仑的高效负载、选择性肿瘤靶向和 TME 响应释放可以增强药物的细胞内积累,诱导癌细胞铜死亡,并放大协同化疗-化学动力学治疗效果,从而增强磁共振成像和加速肿瘤消除。本研究为开发用于早期准确诊断和有效治疗癌症的治疗诊断一体化纳米平台提供了新的思路。