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Investigation of a Catenane with a Responsive Noncovalent Network: Mimicking Long-Range Responses in Proteins.


ABSTRACT: We report a functional synthetic model for studying the noncovalent networks (NCNs) required for complex protein functions. The model [2]-catenane is self-assembled from dipeptide building blocks and contains an extensive network of hydrogen bonds and aromatic interactions. Perturbations to the catenane cause compensating changes in the NCNs structure and dynamics, resulting in long-distance changes reminiscent of a protein. Key findings include the notion that NCNs require regions of negative cooperativity, or "frustrated" noncovalent interactions, as a source of potential energy for driving the response. We refer to this potential energy as latent free energy and describe a mechanistic and energetic model for responsive systems.

SUBMITTER: Chung MK 

PROVIDER: S-EPMC5553285 | biostudies-literature | 2016 Oct

REPOSITORIES: biostudies-literature

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Investigation of a Catenane with a Responsive Noncovalent Network: Mimicking Long-Range Responses in Proteins.

Chung Mee-Kyung MK   White Peter S PS   Lee Stephen J SJ   Gagné Michel R MR   Waters Marcey L ML  

Journal of the American Chemical Society 20160929 40


We report a functional synthetic model for studying the noncovalent networks (NCNs) required for complex protein functions. The model [2]-catenane is self-assembled from dipeptide building blocks and contains an extensive network of hydrogen bonds and aromatic interactions. Perturbations to the catenane cause compensating changes in the NCNs structure and dynamics, resulting in long-distance changes reminiscent of a protein. Key findings include the notion that NCNs require regions of negative c  ...[more]

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