用于米托蒽醌和铜离子联合给药的 pH 响应型电荷逆转智能纳米颗粒,可增强乳腺癌化学-化学动力联合疗法。

IF 6.6 2区 医学 Q1 NANOSCIENCE & NANOTECHNOLOGY International Journal of Nanomedicine Pub Date : 2024-11-07 eCollection Date: 2024-01-01 DOI:10.2147/IJN.S479125
Tao Tan, Weiyi Chang, Tian Long Wang, Wei Chen, Xiaobing Chen, Chunmiao Yang, Dongsheng Yang
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引用次数: 0

摘要

目的:纳米粒子在乳腺癌肿瘤中的输送能力差、穿透力有限,这仍然是有效抗癌治疗面临的基本挑战。本研究旨在设计一种具有高效肿瘤靶向性和穿透能力的纳米平台,以实现有效的乳腺癌治疗:方法:合理设计了一种pH敏感的米托蒽醌(MTO)和铜离子负载纳米系统,该系统由环状CRGDfK和r9肽(TPRN-CM)功能化,用于化疗-化学动力学联合治疗。TPRN-CM在血液循环中处于静止状态,纳米粒子表面的CRGDfK肽提高了其对肿瘤的靶向性。然后,TPRN-CM 在酸性肿瘤微环境中结构发生变化,r9 肽暴露出来,使表面电荷反转,从而促进其在肿瘤中的深层渗透,有利于癌细胞的内化。结果表明,TPRN-CM 具有显著的药物释放能力,在体内和体外均有抗肿瘤作用,并对纳米平台的生物安全性进行了评估:结果:TPRN-CM 在血清中具有显著的负载 MTO 和 Cu2+ 的能力和良好的稳定性。它能实现 pH 响应性电荷反转、MTO 和 Cu2+ 释放,并能在谷胱甘肽(GSH)和 H2O2 的存在下进一步产生有毒的羟自由基。体外实验表明,这种纳米平台能显著抑制增殖、迁移、侵袭活动和三维肿瘤球的生长。体内实验表明,合理设计的TPRN-CM能有效地输送到乳腺癌肿瘤,并能深入肿瘤内部,从而明显减少肿瘤生长和抑制肺转移,且无明显副作用:结论:所构建的TPRN-CM纳米平台集肿瘤靶向、肿瘤穿透、药物响应释放和化疗-化学动力学联合治疗于一体,为提高乳腺癌的疗效提供了一种智能给药策略。
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pH-Responsive Charge-Reversal Smart Nanoparticles for Co-Delivery of Mitoxantrone and Copper Ions to Enhance Breast Cancer Chemo-Chemodynamic Combination Therapy.

Purpose: The poor delivery and limited penetration of nanoparticles into breast cancer tumors remain essential challenges for effective anticancer therapy. This study aimed to design a promising nanoplatform with efficient tumor targeting and penetration capability for effective breast cancer therapy.

Methods: A pH-sensitive mitoxantrone (MTO) and copper ion-loaded nanosystem functionalized with cyclic CRGDfK and r9 peptide (TPRN-CM) was rationally designed for chemo-chemodynamic combination therapy. TPRN-CM would be quiescent in blood circulation with the CRGDfK peptide on the surface of the nanoparticle to improve its targeting to the tumor. Then, the structure of TPRN-CM changes in the acidic tumor microenvironment, and the r9 peptide can be exposed to make a surface charge reversal to promote deep penetration in the tumor and facilitate their internalization by cancer cells, which was characterized using transmission electron microscopy, dynamic light scattering, flame atomic absorption, etc. The drug release behavior, anti-tumor effects in vivo and in vitro, and the biosafety of the nanoplatform were evaluated.

Results: TPRN-CM exhibited remarkable capability to load MTO and Cu2+ with good stability in serum. It can achieve pH-responsive charge reversal, MTO, and Cu2+ release, and can further generate toxic hydroxyl radicals in the presence of glutathione (GSH) and H2O2. In vitro experiments demonstrated that this nanoplatform significantly inhibited proliferation, migration, invasion activities and 3D-tumorsphere growth. In vivo experiments suggested that rationally designed TPRN-CM can be effectively delivered to breast cancer tumors with deep tumor penetration, thereby resulting in a notable reduction in tumor growth and suppression of lung metastasis without causing any apparent side effects.

Conclusion: The constructed TPRN-CM nanoplatform integrated tumor targeting, tumor penetration, drug-responsive release, and chemo-chemodynamic combination therapy, thereby providing an intelligent drug delivery strategy to improve the efficacy of breast cancer treatment.

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来源期刊
International Journal of Nanomedicine
International Journal of Nanomedicine NANOSCIENCE & NANOTECHNOLOGY-PHARMACOLOGY & PHARMACY
CiteScore
14.40
自引率
3.80%
发文量
511
审稿时长
1.4 months
期刊介绍: The International Journal of Nanomedicine is a globally recognized journal that focuses on the applications of nanotechnology in the biomedical field. It is a peer-reviewed and open-access publication that covers diverse aspects of this rapidly evolving research area. With its strong emphasis on the clinical potential of nanoparticles in disease diagnostics, prevention, and treatment, the journal aims to showcase cutting-edge research and development in the field. Starting from now, the International Journal of Nanomedicine will not accept meta-analyses for publication.
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