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分子钳:概念与应用。

Molecular tweezers: concepts and applications.

机构信息

Faculté de Pharmacie, Université de Montréal, Montréal, QC, Canada.

出版信息

Chemphyschem. 2011 Apr 18;12(6):1043-51. doi: 10.1002/cphc.201001050. Epub 2011 Mar 25.

Abstract

Taken to the molecular level, the concept of "tweezers" opens a rich and fascinating field at the convergence of molecular recognition, biomimetic chemistry and nanomachines. Composed of a spacer bridging two interaction sites, the behaviour of molecular tweezers is strongly influenced by the flexibility of their spacer. Operating through an "induced-fit" recognition mechanism, flexible molecular tweezers select the conformation(s) most appropriate for substrate binding. Their adaptability allows them to be used in a variety of binding modes and they have found applications in chirality signalling. Rigid spacers, on the contrary, display a limited number of binding states, which lead to selective and strong substrate binding following a "lock and key" model. Exquisite selectivity may be expressed with substrates as varied as C(60) , nanotubes and natural cofactors, and applications to molecular electronics and enzyme inhibition are emerging. At the crossroad between flexible and rigid spacers, stimulus-responsive molecular tweezers controlled by ionic, redox or light triggers belong to the realm of molecular machines, and, applied to molecular tweezing, open doors to the selective binding, transport and release of their cargo. Applications to controlled drug delivery are already appearing. The past 30 years have seen the birth of molecular tweezers; the next many years to come will surely see them blooming in exciting applications.

摘要

从分子水平上看,“分子钳”的概念在分子识别、仿生化学和纳米机器的交汇点上开辟了一个丰富而迷人的领域。分子钳由连接两个相互作用位点的间隔物组成,其行为强烈受到间隔物柔韧性的影响。通过“诱导契合”识别机制,柔性分子钳选择最适合底物结合的构象。它们的适应性允许它们用于各种结合模式,并且已经在手性信号传递中得到了应用。相反,刚性间隔物显示出有限数量的结合状态,这导致遵循“锁钥”模型的选择性和强底物结合。通过与 C(60)、纳米管和天然辅因子等各种底物结合,可以表达出极好的选择性,并且正在出现应用于分子电子学和酶抑制的应用。在柔性和刚性间隔物的交叉点上,受离子、氧化还原或光触发控制的刺激响应分子钳属于分子机器的领域,并且,将其应用于分子钳,为选择性结合、运输和释放其货物开辟了大门。已出现应用于控制药物输送的实例。过去 30 年见证了分子钳的诞生;未来许多年肯定会看到它们在令人兴奋的应用中绽放。

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