人参皂苷 Rg3 PLGA 纳米颗粒包覆肿瘤微囊的生物启发可提高化疗疗效并减轻毒性

IF 5.7 3区 医学 Q1 MATERIALS SCIENCE, BIOMATERIALS
Shulei Zhang, Bo Zheng, Yiqi Wei, Yuhao Liu, Lan Yang, Yujiao Qiu, Jing Su and Mingfeng Qiu
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引用次数: 0

摘要

乳腺癌是一种普遍影响女性的恶性肿瘤,需要采用包括化疗、放疗和外科手术在内的多种治疗方法。然而,作为乳腺癌治疗的基石,多柔比星(DOX)作为单一疗法的疗效有限,而且对心脏毒性的担忧也一直存在。人参皂苷 Rg3 是人参中的一种传统中药化合物,具有多种药理特性,包括心血管保护、免疫调节和抗癌作用。人参皂苷 Rg3 与化疗药物联合使用时,被认为是一种有希望提高癌症治疗效果的候选药物。然而,Rg3 固有的挑战,如水溶性差和口服生物利用度低等,需要创新的解决方案。在此,我们将 Rg3 封装在 PLGA 纳米颗粒(Rg3-PLGA)中,并在其上包覆由肿瘤细胞衍生的微囊(TMVs)制成的膜,从而开发出 Rg3-PLGA@TMVs 纳米颗粒。Rg3-PLGA@TMVs 显示出一系列有利的优势,包括控释、长期储存稳定性、高载药效率以及体外激活树突状细胞的显著能力。CD86+CD80+树突状细胞的增加以及吞噬活性和酸性磷酸酶水平的降低都证明了这种活化能力。当与 DOX 结合使用时,Rg3-PLGA@TMVs 的协同效应能显著抑制 4T1 肿瘤的生长,并促进肿瘤小鼠抗肿瘤免疫力的发展。最值得注意的是,这种给药系统能有效减轻 DOX 的毒副作用,尤其是对心脏的影响。总之,Rg3-PLGA@TMVs 为提高 DOX 的疗效同时减轻其相关毒副作用提供了一种新的策略,在乳腺癌的联合化疗和免疫治疗中展现了巨大的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Bioinspired ginsenoside Rg3 PLGA nanoparticles coated with tumor-derived microvesicles to improve chemotherapy efficacy and alleviate toxicity†

Bioinspired ginsenoside Rg3 PLGA nanoparticles coated with tumor-derived microvesicles to improve chemotherapy efficacy and alleviate toxicity†

Breast cancer, a pervasive malignancy affecting women, demands a diverse treatment approach including chemotherapy, radiotherapy, and surgical interventions. However, the effectiveness of doxorubicin (DOX), a cornerstone in breast cancer therapy, is limited when used as a monotherapy, and concerns about cardiotoxicity persist. Ginsenoside Rg3, a classic compound of traditional Chinese medicine found in Panax ginseng C. A. Mey., possesses diverse pharmacological properties, including cardiovascular protection, immune modulation, and anticancer effects. Ginsenoside Rg3 is considered a promising candidate for enhancing cancer treatment when combined with chemotherapy agents. Nevertheless, the intrinsic challenges of Rg3, such as its poor water solubility and low oral bioavailability, necessitate innovative solutions. Herein, we developed Rg3-PLGA@TMVs by encapsulating Rg3 within PLGA nanoparticles (Rg3-PLGA) and coating them with membranes derived from tumor cell-derived microvesicles (TMVs). Rg3-PLGA@TMVs displayed an array of favorable advantages, including controlled release, prolonged storage stability, high drug loading efficiency and a remarkable ability to activate dendritic cells in vitro. This activation is evident through the augmentation of CD86+CD80+ dendritic cells, along with a reduction in phagocytic activity and acid phosphatase levels. When combined with DOX, the synergistic effect of Rg3-PLGA@TMVs significantly inhibits 4T1 tumor growth and fosters the development of antitumor immunity in tumor-bearing mice. Most notably, this delivery system effectively mitigates the toxic side effects of DOX, particularly those affecting the heart. Overall, Rg3-PLGA@TMVs provide a novel strategy to enhance the efficacy of DOX while simultaneously mitigating its associated toxicities and demonstrate promising potential for the combined chemo-immunotherapy of breast cancer.

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来源期刊
Biomaterials Science
Biomaterials Science MATERIALS SCIENCE, BIOMATERIALS-
CiteScore
11.50
自引率
4.50%
发文量
556
期刊介绍: Biomaterials Science is an international high impact journal exploring the science of biomaterials and their translation towards clinical use. Its scope encompasses new concepts in biomaterials design, studies into the interaction of biomaterials with the body, and the use of materials to answer fundamental biological questions.
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