Ruan Xianghui, Yang Yajie, Liu Weixu, Ma Xujiao, Zhang Cheng, Meng Qinghao, Wang Zeyu, Cui Fengchao, Feng Jiahui, Cai Fuli, Yuan Ye, Zhu Guangshan
Key Laboratory of Polyoxometalate and Reticular Material Chemistry of Ministry of Education, Northeast Normal University, Renmin Avenue, Changchun 130024, China.
ACS Cent Sci. 2021 Oct 27;7(10):1698-1706. doi: 10.1021/acscentsci.1c00941. Epub 2021 Sep 20.
Mechanically interlocked molecules (MIMs) with discrete molecular components linked through a mechanical bond in space can be harnessed for the operation of molecular switches and machines, which shows huge potential to imitate the dynamic response of natural enzymes. In this work, rotaxane compounds were adopted as building monomers for the synthesis of a crown-ether ring mechanically intercalated covalence organic framework (COF). This incorporation of MIMs into open architecture implemented large amplitude motions, whose wheel slid along the axle in response to external stimulation. After impregnation with Zn ions, the relative locations of two zinc active sites (crown-ether coordinated Zn(II) and bipyridine coordinated Zn(II)) are endowed with great flexibility to fit the conformational transformation of an organophosphorus agent during the hydrolytic process. Notably, the resulting self-adaptive binuclear zinc center in a crown-ether-threaded COF network is endowed with a record catalytic ability, with a rate over 85.5 μM min for organophosphorus degradation. The strategy of synthesis for porous artificial enzymes through the introduction of mechanically bound crown ether will enable significant breakthroughs and new synthetic concepts for the development of advanced biomimetic catalysts.
具有通过空间中的机械键连接的离散分子成分的机械互锁分子(MIM)可用于分子开关和机器的操作,这显示出模仿天然酶动态响应的巨大潜力。在这项工作中,采用轮烷化合物作为构建单体来合成冠醚环机械插层的共价有机框架(COF)。将MIM纳入开放结构实现了大幅度运动,其轮响应外部刺激沿轴滑动。用锌离子浸渍后,两个锌活性位点(冠醚配位的Zn(II)和联吡啶配位的Zn(II))的相对位置具有很大的灵活性,以适应水解过程中有机磷试剂的构象转变。值得注意的是,在冠醚穿线的COF网络中形成的自适应双核锌中心具有创纪录的催化能力,有机磷降解速率超过85.5 μM min。通过引入机械结合的冠醚来合成多孔人工酶的策略将为先进仿生催化剂的开发带来重大突破和新的合成概念。