Melville Laboratory for Polymer Synthesis, Department of Chemistry, University of Cambridge, Lensfield Road, Cambridge CB2 1EW, UK.
Nat Chem. 2013 May;5(5):376-82. doi: 10.1038/nchem.1618. Epub 2013 Apr 7.
Inner-phase chemical reactions of guest molecules encapsulated in a macromolecular cavity give fundamental insight into the relative stabilization of transition states by the surrounding walls of the host, thereby modelling the situation of substrates in enzymatic binding pockets. Although in solution several examples of inner-phase reactions are known, the use of cucurbiturils as macrocyclic hosts and bicyclic azoalkanes as guests has now enabled a systematic mass spectrometric investigation of inner-phase reactions in the gas phase, where typically the supply of thermal energy results in dissociation of the supramolecular host-guest assembly. The results reveal a sensitive interplay in which attractive and repulsive van der Waals interactions between the differently sized hosts and guests need to be balanced with a constrictive binding to allow thermally activated chemical reactions to compete with dissociation. The results are important for the understanding of supramolecular reactivity and have implications for catalysis.
主体分子腔内的客体分子的内相化学反应为深入了解主体壁对过渡态的相对稳定作用提供了基本认识,从而模拟了酶结合口袋中底物的情况。尽管在溶液中已经知道了几个内相反应的例子,但现在使用葫芦脲作为大环主体和双环偶氮烷作为客体,已经能够在气相中对内相反应进行系统的质谱研究,其中通常是通过供应热能导致超分子主体-客体组装的解离。研究结果揭示了一种敏感的相互作用,其中不同大小的主体和客体之间的吸引力和排斥力范德华相互作用需要与约束结合相平衡,以允许热激活化学反应与解离竞争。这些结果对于理解超分子反应性很重要,并对催化有影响。