scholarly journals Multi-Timescale Conformational Dynamics of the SH3 Domain of CD2-Associated Protein using NMR Spectroscopy and Accelerated Molecular Dynamics

2012 ◽  
Vol 124 (25) ◽  
pp. 6207-6210 ◽  
Author(s):  
Loïc Salmon ◽  
Levi Pierce ◽  
Alexander Grimm ◽  
Jose-Luis Ortega Roldan ◽  
Luca Mollica ◽  
...  
2012 ◽  
Vol 51 (25) ◽  
pp. 6103-6106 ◽  
Author(s):  
Loïc Salmon ◽  
Levi Pierce ◽  
Alexander Grimm ◽  
Jose‐Luis Ortega Roldan ◽  
Luca Mollica ◽  
...  

2020 ◽  
Vol 22 (37) ◽  
pp. 21238-21250
Author(s):  
Jianzhong Chen ◽  
Wei Wang ◽  
Laixue Pang ◽  
Weiliang Zhu

The conformational transformation of two switches caused by mutations induces different free energy profiles of H-Ras.


2020 ◽  
Author(s):  
Francesco Oliva ◽  
Jose C. Flores-Canales ◽  
Stefano Pieraccini ◽  
Carlo F. Morelli ◽  
Maurizio Sironi ◽  
...  

Abstractγ-glutamyltransferase (GGT) is an enzyme that uses γ-glutamyl compounds as substrate and catalyzes their transfer into a water molecule or an acceptor substrate with varied physiological-function in bacteria, plants and animals. Crystal structures of GGT are known for different species and in different states of the chemical reaction; however, structural dynamics of the substrate binding to the catalytic site of GGT is unknown. Here, we modeled Escherichia Coli GGT’s glutamine binding by using a swarm of accelerated molecular dynamics (aMD) simulations. Characterization of multiple binding events identified three structural binding motifs composed of polar residues in the binding pocket that govern glutamine binding into the active site. Simulated open and closed conformations of a lid-loop protecting the binding cavity suggests its role as a gating element by allowing or blocking substrates entry into the binding pocket. Partially open states of the lid-loop are accessible within thermal fluctuations, while the estimated free energy cost of a complete open state is 2.4 kcal/mol. Our results suggest that both specific electrostatic interactions and GGT conformational dynamics dictate the molecular recognition of substrate-GGT complexes.


2019 ◽  
Vol 476 (17) ◽  
pp. 2449-2462
Author(s):  
Jan Ludwiczak ◽  
Ewa Szczęsna ◽  
Antônio Marinho da Silva Neto ◽  
Piotr Cieplak ◽  
Andrzej A. Kasprzak ◽  
...  

Abstract Minus-end directed, non-processive kinesin-14 Ncd is a dimeric protein with C-terminally located motor domains (heads). Generation of the power-stroke by Ncd consists of a lever-like rotation of a long superhelical ‘stalk’ segment while one of the kinesin's heads is bound to the microtubule. The last ∼30 amino acids of Ncd head play a crucial but still poorly understood role in this process. Here, we used accelerated molecular dynamics simulations to explore the conformational dynamics of several systems built upon two crystal structures of Ncd, the asymmetrical T436S mutant in pre-stroke/post-stroke conformations of two partner subunits and the symmetrical wild-type protein in pre-stroke conformation of both subunits. The results revealed a new conformational state forming following the inward motion of the subunits and stabilized with several hydrogen bonds to residues located on the border or within the C-terminal linker, i.e. a modeled extension of the C-terminus by residues 675–683. Forming of this new, compact Ncd conformation critically depends on the length of the C-terminus extending to at least residue 681. Moreover, the associative motion leading to the compact conformation is accompanied by a partial lateral rotation of the stalk. We propose that the stable compact conformation of Ncd may represent an initial state of the working stroke.


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