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红细胞-癌细胞杂化膜包覆的还原敏感性纳米颗粒用于增强乳腺癌的化疗疗效。

Erythrocyte-cancer hybrid membrane-coated reduction-sensitive nanoparticles for enhancing chemotherapy efficacy in breast cancer.

机构信息

Translational Nanobiomaterials and Imaging (TNI) Group, Department of Radiology, Leiden University Medical Center, 2333 ZA Leiden, the Netherlands.

Translational Nanobiomaterials and Imaging (TNI) Group, Department of Radiology, Leiden University Medical Center, 2333 ZA Leiden, the Netherlands; Postgraduate Program in Health Science, Federal University of Rio Grande do Norte (UFRN), Natal 59064-720, Brazil; Cancer and Inflammation Research Laboratory (LAICI), Postgraduate Program in Functional and Structural Biology, Department of Morphology, Federal University of Rio Grande do Norte (UFRN), Natal 59064-720, Brazil.

出版信息

Biomater Adv. 2023 Aug;151:213456. doi: 10.1016/j.bioadv.2023.213456. Epub 2023 May 9.

Abstract

Cell-membrane-coated biomimetic nanoparticles (NPs) have attracted great attention due to their prolonged circulation time, immune escape mechanisms and homotypic targeting properties. Biomimetic nanosystems from different types of cell -membranes (CMs) can perform increasingly complex tasks in dynamic biological environments thanks to specific proteins and other properties inherited from the source cells. Herein, we coated doxorubicin (DOX)-loaded reduction-sensitive chitosan (CS) NPs with 4T1 cancer cell -membranes (CCMs), red blood cell -membranes (RBCMs) and hybrid erythrocyte-cancer membranes (RBC-4T1CMs) to enhance the delivery of DOX to breast cancer cells. The physicochemical properties (size, zeta potential and morphology) of the resulting RBC@DOX/CS-NPs, 4T1@DOX/CS-NPs and RBC-4T1@DOX/CS-NPs, as well as their cytotoxic effect and cellular NP uptake in vitro were thoroughly characterized. The anti-cancer therapeutic efficacy of the NPs was evaluated using the orthotopic 4T1 breast cancer model in vivo. The experimental results showed that DOX/CS-NPs had a DOX-loading capacity of 71.76 ± 0.87 %, and that coating of DOX/CS-NPs with 4T1CM significantly increased the NP uptake and cytotoxic effect in breast cancer cells. Interestingly, by optimizing the ratio of RBCMs:4T1CMs, it was possible to increase the homotypic targeting properties towards breast cancer cells. Moreover, in vivo tumor studies showed that compared to control DOX/CS-NPs and free DOX, both 4T1@DOX/CS-NPs and RBC@DOX/CS-NPs significantly inhibited tumor growth and metastasis. However, the effect of 4T1@DOX/CS-NPs was more prominent. Moreover, CM-coating reduced the uptake of NPs by macrophages and led to rapid clearance from the liver and lungs in vivo, compared to control NPs. Our results suggest that specific self-recognition to source cells resulting in homotypic targeting increased the uptake and the cytotoxic capacity of 4T1@DOX/CS-NPs by breast cancer cells in vitro and in vivo. In conclusion, tumor-disguised CM-coated DOX/CS-NPs exhibited tumor homotypic targeting and anti-cancer properties, and were superior over targeting with RBC-CM or RBC-4T1 hybrid membranes, suggesting that the presence of 4T1-CM is critical for treatment outcome.

摘要

细胞膜包覆仿生纳米粒子(NPs)由于其延长的循环时间、免疫逃逸机制和同型靶向特性而受到广泛关注。得益于源自源细胞的特定蛋白质和其他特性,来自不同类型细胞膜(CMs)的仿生纳米系统能够在动态生物环境中执行越来越复杂的任务。在此,我们用载阿霉素(DOX)的还原敏感壳聚糖(CS) NPs 包覆了乳腺癌细胞细胞膜(CCMs)、红细胞细胞膜(RBCMs)和杂交红细胞-癌细胞膜(RBC-4T1CMs),以增强 DOX 向乳腺癌细胞的递送。所得 RBC@DOX/CS-NPs、4T1@DOX/CS-NPs 和 RBC-4T1@DOX/CS-NPs 的理化性质(粒径、Zeta 电位和形态)以及它们的体外细胞毒性和细胞内 NP 摄取均进行了详细表征。通过体内原位 4T1 乳腺癌模型评估了 NPs 的抗癌治疗效果。实验结果表明,DOX/CS-NPs 的 DOX 载药量为 71.76±0.87%,而用 4T1CM 包覆 DOX/CS-NPs 可显著提高乳腺癌细胞对 NP 的摄取和细胞毒性作用。有趣的是,通过优化 RBCMs:4T1CMs 的比例,可以增加对乳腺癌细胞的同型靶向特性。此外,体内肿瘤研究表明,与对照 DOX/CS-NPs 和游离 DOX 相比,4T1@DOX/CS-NPs 和 RBC@DOX/CS-NPs 均能显著抑制肿瘤生长和转移。然而,4T1@DOX/CS-NPs 的效果更为显著。此外,与对照 NPs 相比,CM 包覆可减少 NPs 在巨噬细胞中的摄取,并导致其在体内肝脏和肺部的快速清除。我们的研究结果表明,源自源细胞的特异性自我识别导致的同型靶向作用增加了 4T1@DOX/CS-NPs 在体外和体内对乳腺癌细胞的摄取和细胞毒性。综上所述,伪装肿瘤的 CM 包覆 DOX/CS-NPs 表现出肿瘤同型靶向和抗癌特性,并且优于 RBC-CM 或 RBC-4T1 杂交膜靶向,这表明 4T1-CM 的存在对治疗效果至关重要。

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