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Insights into Correlated Motions and Long-Range Interactions in CheY Derived from Molecular Dynamics Simulations

Authors :
Knaggs, Michael H.
Salsbury, Freddie R.
Edgell, Marshall Hall
Fetrow, Jacquelyn S.
Source :
Biophysical Journal; March 2007, Vol. 92 Issue: 6 p2062-2079, 18p
Publication Year :
2007

Abstract

CheY is a response regulator protein involved in bacterial chemotaxis. Much is known about its active and inactive conformations, but little is known about the mechanisms underlying long-range interactions or correlated motions. To investigate these events, molecular dynamics simulations were performed on the unphosphorylated, inactive structure from Salmonella typhimurium and the CheY−BeF3− active mimic structure (with BeF3− removed) from Escherichia coli. Simulations utilized both sequences in each conformation to discriminate sequence- and structure-specific behavior. The previously identified conformational differences between the inactive and active conformations of the strand-4-helix-4 loop, which are present in these simulations, arise from the structural, and not the sequence, differences. The simulations identify previously unreported structure-specific flexibility features in this loop and sequence-specific flexibility features in other regions of the protein. Both structure- and sequence-specific long-range interactions are observed in the active and inactive ensembles. In the inactive ensemble, two distinct mechanisms based on Thr-87 or Ile-95 rotameric forms, are observed for the previously identified g+ and g− rotamer sampling by Tyr-106. These molecular dynamics simulations have thus identified both sequence- and structure-specific differences in flexibility, long-range interactions, and rotameric form of key residues. Potential biological consequences of differential flexibility and long-range correlated motion are discussed.

Details

Language :
English
ISSN :
00063495 and 15420086
Volume :
92
Issue :
6
Database :
Supplemental Index
Journal :
Biophysical Journal
Publication Type :
Periodical
Accession number :
ejs17939951
Full Text :
https://doi.org/10.1529/biophysj.106.081950