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Dynamic Devices. Shape Switching and Substrate Binding in Ion-Controlled Nanomechanical Molecular Tweezers

Petitjean, Anne and Khoury, Richard G. and Kyritsakas, Nathalie and Lehn, Jean-Marie (2004) Dynamic Devices. Shape Switching and Substrate Binding in Ion-Controlled Nanomechanical Molecular Tweezers. Journal of the American Chemical Society, 126 (21). pp. 6637-6647. ISSN 0002-7863. doi:10.1021/ja031915r. https://resolver.caltech.edu/CaltechAUTHORS:20170419-093148705

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Abstract

As examples of supramolecular devices performing chemical (ionic, molecular) control of binding events and models of related natural systems, two molecular conformational switches are described, which display cation-controlled nanomechanical motion coupled to substrate binding and release. The substrate binding relies on donor/acceptor interactions, provided by intercalation between planar sites located at the extremities of the switching units, whereas cation complexation is responsible for conformational regulation. The terpyridine py-py-py-based receptor is activated toward substrate binding upon complexation of a zinc(II) cation and operates in a two-state process. The replacement of the central pyridine by a 4,6-disubstituted pyridimine as in py-pym-py induces a state reversal and yields a new receptor which binds a substrate in the absence of cation, and releases it when copper(I) is introduced, following a three-step process. These systems represent effector-triggered supramolecular switching devices leading toward multistate nanomechanical chemical systems. These two systems illustrate the use of simple conformational switches in the binding site and allosteric regulation of substrate affinity.


Item Type:Article
Related URLs:
URLURL TypeDescription
http://dx.doi.org/10.1021/ja031915rDOIArticle
http://pubs.acs.org/doi/abs/10.1021/ja031915rPublisherArticle
http://pubs.acs.org/doi/suppl/10.1021/ja031915rPublisherSupporting Information
Additional Information:© 2004 American Chemical Society. Received 23 December 2003. Published online 5 May 2004. Published in print 1 June 2004. A.P. acknowledges the support of the French Ministère de l'Éducation et de la Recherche by a predoctoral fellowship and is indebted to Dr. T. Balaban for generously supplying the 2,3,6,7-tetrakis(dodecyloxy)anthracene (TDOA) used in this study. R.G.K. is grateful to the french government for a postdoctoral Chateaubriand fellowship.
Funders:
Funding AgencyGrant Number
Ministère de l'Éducation et de la RechercheUNSPECIFIED
Chateaubriand FellowshipUNSPECIFIED
Issue or Number:21
DOI:10.1021/ja031915r
Record Number:CaltechAUTHORS:20170419-093148705
Persistent URL:https://resolver.caltech.edu/CaltechAUTHORS:20170419-093148705
Official Citation:Dynamic Devices. Shape Switching and Substrate Binding in Ion-Controlled Nanomechanical Molecular Tweezers Anne Petitjean, Richard G. Khoury, Nathalie Kyritsakas, and Jean-Marie Lehn Journal of the American Chemical Society 2004 126 (21), 6637-6647 DOI: 10.1021/ja031915r
Usage Policy:No commercial reproduction, distribution, display or performance rights in this work are provided.
ID Code:76667
Collection:CaltechAUTHORS
Deposited By: Ruth Sustaita
Deposited On:19 Apr 2017 16:46
Last Modified:15 Nov 2021 17:01

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