Molecular Dynamics Investigations Suggest a Non-specific Recognition Strategy of 14-3-3σ Protein by Tweezer: Implication for the Inhibition Mechanism
The supramolecular complex formed between protein and designed molecule has become one of the most efficient ways to modify protein functions. As one of the more well-studied model systems, 14-3-3 family proteins play an important role in regulating intracellular signaling pathways via protein-prote...
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doaj-48c71940e359417c98bb5f7e419da9252020-11-24T20:46:35ZengFrontiers Media S.A.Frontiers in Chemistry2296-26462019-04-01710.3389/fchem.2019.00237457956Molecular Dynamics Investigations Suggest a Non-specific Recognition Strategy of 14-3-3σ Protein by Tweezer: Implication for the Inhibition MechanismMingsong ShiDingguo XuThe supramolecular complex formed between protein and designed molecule has become one of the most efficient ways to modify protein functions. As one of the more well-studied model systems, 14-3-3 family proteins play an important role in regulating intracellular signaling pathways via protein-protein interactions. In this work, we selected 14-3-3σ as the target protein. Molecular dynamics simulations and binding free energy calculations were applied to identify the possible binding sites and understand its recognition ability of the supramolecular inhibitor, the tweezer molecule (CLR01). On the basis of our simulation, major interactions between lysine residues and CLR01 come from the van der Waals interactions between the long alkyl chain of lysine and the cavity formed by the norbornadiene and benzene rings of the inhibitor. Apart from K214, which was found to be crystallized with this inhibitor, other lysine sites have also shown their abilities to form inclusion complexes with the inhibitor. Such non-specific recognition features of CLR01 against 14-3-3σ can be used in the modification of protein functions via supramolecular chemistry.https://www.frontiersin.org/article/10.3389/fchem.2019.00237/fullmolecular dynamicsprotein-protein interaction14-3-3σsupramoleculartweezerCLR01 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Mingsong Shi Dingguo Xu |
spellingShingle |
Mingsong Shi Dingguo Xu Molecular Dynamics Investigations Suggest a Non-specific Recognition Strategy of 14-3-3σ Protein by Tweezer: Implication for the Inhibition Mechanism Frontiers in Chemistry molecular dynamics protein-protein interaction 14-3-3σ supramolecular tweezer CLR01 |
author_facet |
Mingsong Shi Dingguo Xu |
author_sort |
Mingsong Shi |
title |
Molecular Dynamics Investigations Suggest a Non-specific Recognition Strategy of 14-3-3σ Protein by Tweezer: Implication for the Inhibition Mechanism |
title_short |
Molecular Dynamics Investigations Suggest a Non-specific Recognition Strategy of 14-3-3σ Protein by Tweezer: Implication for the Inhibition Mechanism |
title_full |
Molecular Dynamics Investigations Suggest a Non-specific Recognition Strategy of 14-3-3σ Protein by Tweezer: Implication for the Inhibition Mechanism |
title_fullStr |
Molecular Dynamics Investigations Suggest a Non-specific Recognition Strategy of 14-3-3σ Protein by Tweezer: Implication for the Inhibition Mechanism |
title_full_unstemmed |
Molecular Dynamics Investigations Suggest a Non-specific Recognition Strategy of 14-3-3σ Protein by Tweezer: Implication for the Inhibition Mechanism |
title_sort |
molecular dynamics investigations suggest a non-specific recognition strategy of 14-3-3σ protein by tweezer: implication for the inhibition mechanism |
publisher |
Frontiers Media S.A. |
series |
Frontiers in Chemistry |
issn |
2296-2646 |
publishDate |
2019-04-01 |
description |
The supramolecular complex formed between protein and designed molecule has become one of the most efficient ways to modify protein functions. As one of the more well-studied model systems, 14-3-3 family proteins play an important role in regulating intracellular signaling pathways via protein-protein interactions. In this work, we selected 14-3-3σ as the target protein. Molecular dynamics simulations and binding free energy calculations were applied to identify the possible binding sites and understand its recognition ability of the supramolecular inhibitor, the tweezer molecule (CLR01). On the basis of our simulation, major interactions between lysine residues and CLR01 come from the van der Waals interactions between the long alkyl chain of lysine and the cavity formed by the norbornadiene and benzene rings of the inhibitor. Apart from K214, which was found to be crystallized with this inhibitor, other lysine sites have also shown their abilities to form inclusion complexes with the inhibitor. Such non-specific recognition features of CLR01 against 14-3-3σ can be used in the modification of protein functions via supramolecular chemistry. |
topic |
molecular dynamics protein-protein interaction 14-3-3σ supramolecular tweezer CLR01 |
url |
https://www.frontiersin.org/article/10.3389/fchem.2019.00237/full |
work_keys_str_mv |
AT mingsongshi moleculardynamicsinvestigationssuggestanonspecificrecognitionstrategyof1433sproteinbytweezerimplicationfortheinhibitionmechanism AT dingguoxu moleculardynamicsinvestigationssuggestanonspecificrecognitionstrategyof1433sproteinbytweezerimplicationfortheinhibitionmechanism |
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1716812263145340928 |