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具有更快穿梭速率而非解组装速率的螺旋-棒主体-客体配合物。

Helix-rod host-guest complexes with shuttling rates much faster than disassembly.

机构信息

Beijing National Laboratory for Molecular Sciences, CAS Key Laboratory of Photochemistry, Institute of Chemistry, Chinese Academy of Sciences, Beijing, 100190, China.

出版信息

Science. 2011 Mar 4;331(6021):1172-5. doi: 10.1126/science.1200143.

Abstract

Dynamic assembly is a powerful fabrication method of complex, functionally diverse molecular architectures, but its use in synthetic nanomachines has been hampered by the difficulty of avoiding reversible attachments that result in the premature breaking apart of loosely held moving parts. We show that molecular motion can be controlled in dynamically assembled systems through segregation of the disassembly process and internal translation to time scales that differ by four orders of magnitude. Helical molecular tapes were designed to slowly wind around rod-like guests and then to rapidly slide along them. The winding process requires helix unfolding and refolding, as well as a strict match between helix length and anchor points on the rods. This modular design and dynamic assembly open up promising capabilities in molecular machinery.

摘要

动态组装是一种强大的复杂、功能多样的分子结构制造方法,但由于难以避免导致松散连接的活动部件过早分离的可逆连接,其在合成纳米机器中的应用受到了阻碍。我们表明,可以通过将拆卸过程分离并进行内部平移来控制动态组装系统中的分子运动,从而使时间尺度相差四个数量级。设计了螺旋分子带,使其缓慢缠绕在棒状客体周围,然后快速沿其滑动。缠绕过程需要螺旋展开和重新折叠,以及螺旋长度与棒上的锚点之间的严格匹配。这种模块化设计和动态组装为分子机械开辟了广阔的应用前景。

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