Kassem Salma, Lee Alan T L, Leigh David A, Markevicius Augustinas, Tetlow Daniel J, Toriumi Naoyuki
Department of Chemistry, University of Manchester Oxford Road Manchester M13 9PL UK
Chem Sci. 2020 Dec 10;12(6):2065-2070. doi: 10.1039/d0sc05906d.
Peptides attached to a cysteine hydrazide 'transporter module' are transported selectively in either direction between two chemically similar sites on a molecular platform, enabled by the discovery of new operating methods for a molecular transporter that functions through ratcheting. Substrate repositioning is achieved using a small-molecule robotic arm controlled by a protonation-mediated rotary switch and attachment/release dynamic covalent chemistry. A polar solvent mixtures were found to favour to isomerization of the doubly-protonated switch, transporting cargo in one direction (arbitrarily defined as 'forward') in up to 85% yield, while polar solvent mixtures were unexpectedly found to favour to isomerization enabling transport in the reverse ('backward') direction in >98% yield. Transport of the substrates proceeded in a matter of hours (compared to 6 days even for simple cargoes with the original system) without the peptides at any time dissociating from the machine nor exchanging with others in the bulk. Under the new operating conditions, key intermediates of the switch are sufficiently stabilized within the macrocycle formed between switch, arm, substrate and platform that they can be identified and structurally characterized by H NMR. The size of the peptide cargo has no significant effect on the rate or efficiency of transport in either direction. The new operating conditions allow detailed physical organic chemistry of the ratcheted transport mechanism to be uncovered, improve efficiency, and enable the transport of more complex cargoes than was previously possible.
附着在半胱氨酸酰肼“转运模块”上的肽段,在分子平台上两个化学性质相似的位点之间选择性地双向转运。这是通过发现一种通过棘轮作用起作用的分子转运体的新操作方法实现的。底物重新定位是利用由质子化介导的旋转开关和连接/释放动态共价化学控制的小分子机械臂来实现的。发现极性溶剂混合物有利于双质子化开关的异构化,以高达85%的产率在一个方向(任意定义为“正向”)运输货物,而意外地发现极性溶剂混合物有利于异构化,以>98%的产率在反向(“反向”)方向运输。底物的转运在数小时内完成(相比之下,即使是使用原始系统运输简单货物也需要6天),在此过程中肽段不会随时从机器上解离,也不会与大量的其他肽段交换。在新的操作条件下,开关的关键中间体在开关、机械臂、底物和平台之间形成的大环内得到充分稳定,以至于可以通过1H NMR对其进行鉴定和结构表征。肽类货物的大小对双向运输的速率或效率没有显著影响。新的操作条件使得能够揭示棘轮运输机制的详细物理有机化学,提高效率,并能够运输比以前更复杂的货物。