Lin Ying, Li Chen, Liu An, Zhen Xu, Gao Jiangang, Wu Wei, Cai Weibo, Jiang Xiqun
Anhui Laboratory of Functional Coordinated Complexes for Materials Chemistry and Application, College of Biological and Chemical Engineering, Anhui Polytechnic University, Wuhu 241000, P. R. China.
MOE Key Laboratory of High Performance Polymer Materials and Technology, and Department of Polymer Science & Engineering, College of Chemistry & Chemical Engineering, Nanjing University, Nanjing, 210093, P. R. China.
Biomater Sci. 2021 Feb 23;9(4):1363-1373. doi: 10.1039/d0bm01815e.
Tumor microenvironment responsive and self-monitored multimodal synergistic theranostic strategies can significantly improve therapeutic efficacy by overcoming biological barriers. Herein, we report a type of smart fluorescent hyaluronic acid nanogel that can respond to the reducing microenvironment and activate tumor targeting with light-traceable monitoring in cancer therapy. First, the derivative of hyaluronic acid (HA) with a vinyl group and cystamine bisacrylamide were used to synthesize bioreducible HA based nanogels via copolymerization in aqueous medium. Then, multifunctional mHA-gold cluster (mHA-GC) hybrid nanogels were successfully prepared by the in situ reduction of gold salt in the HA nanogels. The HA matrix turns the nanogels into a capsule for effective drug loading with excellent colloidal stability. Interestingly, the reducing tumor microenvironment dramatically enhanced the fluorescence signal of gold clusters in the hybrid nanogels. The highly selective cancer cell uptake and efficient intratumoral accumulation of the hybrid nanogels were demonstrated by fluorescence tracking of these nanogels. Responsive disassembly of the hybrid nanogels and drug release were triggered by excess glutathione presence in cancer cells. Moreover, in vivo and in vitro tumor suppression assays revealed that the doxorubicin-loaded hybrid nanogels exhibited significantly superior tumor cell inhibition abilities compared to free DOX. Overall, the mHA-GC hybrid nanogels emerge as a promising theranostic nanoplatform for the targeted delivery and controlled release of antitumor drugs with light-traceable monitoring in cancer treatment.
肿瘤微环境响应性和自我监测的多模态协同诊疗策略能够通过克服生物屏障显著提高治疗效果。在此,我们报道了一种智能荧光透明质酸纳米凝胶,其能够响应还原微环境,并在癌症治疗中通过光可追踪监测激活肿瘤靶向。首先,使用带有乙烯基的透明质酸(HA)衍生物和胱胺双丙烯酰胺在水介质中通过共聚反应合成基于生物可还原HA的纳米凝胶。然后,通过在HA纳米凝胶中原位还原金盐成功制备了多功能mHA-金簇(mHA-GC)杂化纳米凝胶。HA基质将纳米凝胶转变为用于有效载药的胶囊,具有出色的胶体稳定性。有趣的是,还原型肿瘤微环境显著增强了杂化纳米凝胶中金簇的荧光信号。通过对这些纳米凝胶的荧光追踪证实了杂化纳米凝胶对癌细胞的高度选择性摄取和在肿瘤内的有效蓄积。癌细胞中过量谷胱甘肽的存在触发了杂化纳米凝胶的响应性解离和药物释放。此外,体内和体外肿瘤抑制试验表明,与游离阿霉素相比,载有阿霉素的杂化纳米凝胶表现出显著更优的肿瘤细胞抑制能力。总体而言,mHA-GC杂化纳米凝胶成为一种有前景的诊疗纳米平台,可用于在癌症治疗中进行光可追踪监测的抗肿瘤药物靶向递送和控释。