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打结问题:有序的分子缠结。

Knotting matters: orderly molecular entanglements.

机构信息

Department of Chemistry, The University of Manchester, Manchester, UK.

School of Chemistry and Molecular Engineering, East China Normal University, 3663 N Zhongshan Road, Shanghai, China.

出版信息

Chem Soc Rev. 2022 Sep 20;51(18):7779-7809. doi: 10.1039/d2cs00323f.

Abstract

Entangling strands in a well-ordered manner can produce useful effects, from shoelaces and fishing nets to brown paper packages tied up with strings. At the nanoscale, non-crystalline polymer chains of sufficient length and flexibility randomly form tangled mixtures containing open knots of different sizes, shapes and complexity. However, discrete molecular knots of precise topology can also be obtained by controlling the number, sequence and stereochemistry of strand crossings: orderly molecular entanglements. During the last decade, substantial progress in the nascent field of molecular nanotopology has been made, with general synthetic strategies and new knotting motifs introduced, along with insights into the properties and functions of ordered tangle sequences. Conformational restrictions imparted by knotting can induce allostery, strong and selective anion binding, catalytic activity, lead to effective chiral expression across length scales, binding modes in conformations efficacious for drug delivery, and facilitate mechanical function at the molecular level. As complex molecular topologies become increasingly synthetically accessible they have the potential to play a significant role in molecular and materials design strategies. We highlight particular examples of molecular knots to illustrate why these are a few of our favourite things.

摘要

以有序的方式缠绕线绳可以产生有用的效果,从鞋带和渔网到用绳子捆扎的棕色纸袋。在纳米尺度上,具有足够长度和柔韧性的非晶态聚合物链随机形成缠结混合物,其中包含不同大小、形状和复杂度的开结。然而,通过控制链交叉的数量、序列和立体化学,可以获得离散的精确拓扑分子结:有序的分子缠结。在分子纳米拓扑学这一新兴领域,过去十年取得了实质性的进展,引入了一般的合成策略和新的打结模式,并深入了解有序缠结序列的性质和功能。打结赋予的构象限制可以诱导变构、强而选择性的阴离子结合、催化活性,导致在长度尺度上有效表达手性,在对药物传递有效的构象中具有结合模式,并促进分子水平的机械功能。随着复杂的分子拓扑结构越来越容易合成,它们有可能在分子和材料设计策略中发挥重要作用。我们突出了一些分子结的特定例子来说明为什么它们是我们的最爱。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/63fc/9486172/12b8c3fb0c4d/d2cs00323f-f1.jpg

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