State Key Laboratory of Medicinal Chemical Biology, College of Pharmacy and KLMDASR of Tianjin, Nankai University, Tongyan Road, Haihe Education Park, Tianjin 300350, China.
Department of Orthopedics, The Second Affiliated Hospital of Nanchang University, Nanchang, Jiangxi Province, 330006, China.
ACS Appl Mater Interfaces. 2022 Aug 24;14(33):38048-38055. doi: 10.1021/acsami.2c05750. Epub 2022 Aug 11.
With the rapid development of nanotechnology, researchers have designed a variety of intelligent nanodelivery systems to enhance tumor targeting of anticancer drugs. However, increased tumor accumulation does not indicate deeper penetration in the tumor tissue, without which the tumor cells in the core area cannot be sufficiently killed. Herein, we develop a size-controllable nanoparticle system for deep-penetrating cancer therapy, which will be programmably disassembled with the decrease of the pH from the normal tissue to the tumor microenvironment and to the intracellular area. The integrated nanoparticle is composed of a gold nanoparticle (GNP, ∼30 nm) and a tetrahedral DNA nanostructure (TDN, ∼25 nm) loaded with doxorubicin (DOX). Initially, the nanoparticles maintain a larger size (∼100 nm) to accumulate in the tumor through the enhanced permeability and retention effect. At a pH of about 6.5 at the tumor microenvironment, with the linkage of DNA sequences converting into a triplex structure, the TDNs detach from the GNP and penetrate deeply into the tumor interstitium and then are internalized into the cells. Finally, in acidic lysosomes with pH 5.0, the TDNs release DOX by forming an i-motif structure. This nanosmart delivery system thus shows effective deep penetration into the tumor core with good antitumor efficacy and satisfactory biocompatibility and provides new insights into the development of intelligent nanosystems for anti-cancer treatment.
随着纳米技术的飞速发展,研究人员设计了各种智能纳米递药系统,以增强抗癌药物对肿瘤的靶向性。然而,肿瘤的蓄积增加并不意味着在肿瘤组织中有更深的渗透,没有这种渗透,核心区域的肿瘤细胞就不能被充分杀死。在此,我们开发了一种可控制粒径的纳米粒子系统,用于深度渗透癌症治疗,该系统将随着从正常组织到肿瘤微环境再到细胞内区域 pH 值的降低而进行可编程的拆卸。该整合纳米粒子由金纳米粒子(GNP,约 30nm)和负载阿霉素(DOX)的四面体形 DNA 纳米结构(TDN,约 25nm)组成。最初,纳米粒子通过增强的通透性和保留效应保持较大的尺寸(约 100nm)以在肿瘤中积累。在肿瘤微环境的 pH 值约为 6.5 时,随着 DNA 序列的连接转化为三链结构,TDN 从 GNP 上脱离并深入穿透肿瘤间质,然后被内吞进入细胞。最后,在 pH 值为 5.0 的酸性溶酶体中,TDN 通过形成 i-motif 结构释放 DOX。因此,这种纳米智能递药系统能够有效地深入肿瘤核心,具有良好的抗肿瘤疗效和令人满意的生物相容性,为抗癌治疗的智能纳米系统的发展提供了新的思路。