Fei Yang, Li Menghuan, Li Yanan, Wang Xuan, Xue Chencheng, Wu Zuosu, Xu Jiaying, Xiazeng Zilu, Cai Kai-Yong, Luo Zhong
School of Life Science, Chongqing University, Chongqing 400044, P. R. China.
Nanoscale. 2020 Aug 14;12(30):16102-16112. doi: 10.1039/d0nr03978k. Epub 2020 Jul 29.
Biomacromolecule therapeutic systems are intrinsically susceptible to degradation and denaturation. Nanoformulations are promising delivery vehicles for therapeutic biomacromolecules (antibodies, genes and so on). However, their applications in these areas still face many challenges including in vivo stability, premature leakage and accurate tumor recognition. In this study, a generally applicable new strategy for tumor-targeted delivery of biomacromolecules was developed through the hierarchical integration of degradable large-pore dendritic mesoporous silica nanoparticles (dMSNs) and cyclodextrin-modified polyamidoamine (PAMAM-CD) dendrimers. The orifice rim of the dMSNs was modified with ROS-responsive nitrophenyl-benzyl-carbonate (NBC) groups while disulfide-bonded azido ligands were subsequently grafted onto the inner channel walls via heterogeneous functionalization. The PAMAM-CD was then interred into the dendritic pores via click reactions and supramolecularly loaded with archetypal hydrophobic small-molecule anticancer model drug (SN-38) and therapeutic model gene (Bcl-2 siRNA), after which dMSNs were eventually coated with a 4T1 cancer cell membrane (CCM). Experimental evidence demonstrated that the synthesized nanocarriers could efficiently deliver therapeutic cargos to target cancer cells and release them in the tumor cytosol in a cascade-responsive manner. This biomimetic nanoplatform presents a novel strategy to efficiently deliver biomolecular therapeutics in a tumor-targeted manner.
生物大分子治疗系统本质上易受降解和变性影响。纳米制剂是治疗性生物大分子(抗体、基因等)有前景的递送载体。然而,它们在这些领域的应用仍面临许多挑战,包括体内稳定性、过早泄漏和准确的肿瘤识别。在本研究中,通过可降解的大孔树枝状介孔二氧化硅纳米颗粒(dMSNs)和环糊精修饰的聚酰胺胺(PAMAM-CD)树枝状大分子的分层整合,开发了一种普遍适用的生物大分子肿瘤靶向递送新策略。dMSNs的孔边缘用ROS响应性硝基苯基碳酸苄酯(NBC)基团修饰,随后通过非均相功能化将二硫键连接的叠氮配体接枝到内通道壁上。然后通过点击反应将PAMAM-CD引入树枝状孔隙,并超分子负载原型疏水性小分子抗癌模型药物(SN-38)和治疗模型基因(Bcl-2 siRNA),之后最终用4T1癌细胞膜(CCM)包被dMSNs。实验证据表明,合成的纳米载体可以有效地将治疗性货物递送至靶癌细胞,并以级联响应方式在肿瘤细胞质中释放它们。这种仿生纳米平台提出了一种以肿瘤靶向方式有效递送生物分子治疗剂的新策略。