Key Laboratory of Pesticide and Chemical Biology (CCNU), Ministry of Education, College of Chemistry, Central China Normal University, Wuhan, 430079, P. R. China.
School of Chemistry, University College Dublin, Dublin 4, Ireland.
Angew Chem Int Ed Engl. 2021 Nov 8;60(46):24443-24449. doi: 10.1002/anie.202110273. Epub 2021 Oct 12.
Inspired by the nuclear pore complex (NPC), herein we have established a biomimetic high-flux protein delivery system via the ingenious introduction of pillar[5]arene-based host-guest system into one side of artificial hour-glass shaped nanochannel. With a transport flux of 660 lysozymes per minute, the system provides efficient high-flux protein transport at a rate which is significantly higher than that of an unmodified nanochannel and conventional bilateral symmetrical modified nanochannels. In view of these promising results, the use of artificial nanochannel to improve protein transport not only presents a new potential chemical model for biological research and better understanding of protein transport behavior in the living systems, but also provides a high-flux protein transporter device, which may have applications in the design of protein drug release systems, protein separation systems and microfluidics in the near future.
受核孔复合物(NPC)的启发,本文通过巧妙地将基于[5]轮烷的主客体体系引入到人工沙漏形纳米通道的一侧,构建了一种仿生高通量蛋白质传递系统。该系统的转运通量为每分钟 660 个溶菌酶,以明显高于未经修饰的纳米通道和传统双边对称修饰纳米通道的速率提供了高效的高通量蛋白质传输。鉴于这些有前景的结果,使用人工纳米通道来改善蛋白质传输不仅为生物研究提供了一个新的潜在化学模型,有助于更好地理解蛋白质在活系统中的传输行为,而且还提供了一种高通量蛋白质转运器装置,可在不久的将来应用于设计蛋白质药物释放系统、蛋白质分离系统和微流控系统。