-
Something wrong with this record ?
Exploring the binding pathways of the 14-3-3ζ protein: Structural and free-energy profiles revealed by Hamiltonian replica exchange molecular dynamics with distancefield distance restraints
G. Nagy, C. Oostenbrink, J. Hritz,
Language English Country United States
Document type Journal Article
NLK
Directory of Open Access Journals
from 2006
Free Medical Journals
from 2006
Public Library of Science (PLoS)
from 2006
PubMed Central
from 2006
Europe PubMed Central
from 2006
ProQuest Central
from 2006-12-01
Open Access Digital Library
from 2006-01-01
Open Access Digital Library
from 2006-01-01
Open Access Digital Library
from 2006-10-01
Medline Complete (EBSCOhost)
from 2008-01-01
Nursing & Allied Health Database (ProQuest)
from 2006-12-01
Health & Medicine (ProQuest)
from 2006-12-01
Public Health Database (ProQuest)
from 2006-12-01
ROAD: Directory of Open Access Scholarly Resources
from 2006
- MeSH
- Phosphorylation MeSH
- Protein Conformation * MeSH
- Models, Molecular * MeSH
- 14-3-3 Proteins metabolism MeSH
- Molecular Dynamics Simulation * MeSH
- Protein Binding MeSH
- Binding Sites MeSH
- Publication type
- Journal Article MeSH
The 14-3-3 protein family performs regulatory functions in eukaryotic organisms by binding to a large number of phosphorylated protein partners. Whilst the binding mode of the phosphopeptides within the primary 14-3-3 binding site is well established based on the crystal structures of their complexes, little is known about the binding process itself. We present a computational study of the process by which phosphopeptides bind to the 14-3-3ζ protein. Applying a novel scheme combining Hamiltonian replica exchange molecular dynamics and distancefield restraints allowed us to map and compare the most likely phosphopeptide-binding pathways to the 14-3-3ζ protein. The most important structural changes to the protein and peptides involved in the binding process were identified. In order to bind phosphopeptides to the primary interaction site, the 14-3-3ζ adopted a newly found wide-opened conformation. Based on our findings we additionally propose a secondary interaction site on the inner surface of the 14-3-3ζ dimer, and a direct interference on the binding process by the flexible C-terminal tail. A minimalistic model was designed to allow for the efficient calculation of absolute binding affinities. Binding affinities calculated from the potential of mean force along the binding pathway are in line with the available experimental estimates for two of the studied systems.
References provided by Crossref.org
- 000
- 00000naa a2200000 a 4500
- 001
- bmc17030677
- 003
- CZ-PrNML
- 005
- 20171025122721.0
- 007
- ta
- 008
- 171025s2017 xxu f 000 0|eng||
- 009
- AR
- 024 7_
- $a 10.1371/journal.pone.0180633 $2 doi
- 035 __
- $a (PubMed)28727767
- 040 __
- $a ABA008 $b cze $d ABA008 $e AACR2
- 041 0_
- $a eng
- 044 __
- $a xxu
- 100 1_
- $a Nagy, Gabor $u CEITEC-MU, Masaryk University, Brno, Czech Republic.
- 245 10
- $a Exploring the binding pathways of the 14-3-3ζ protein: Structural and free-energy profiles revealed by Hamiltonian replica exchange molecular dynamics with distancefield distance restraints / $c G. Nagy, C. Oostenbrink, J. Hritz,
- 520 9_
- $a The 14-3-3 protein family performs regulatory functions in eukaryotic organisms by binding to a large number of phosphorylated protein partners. Whilst the binding mode of the phosphopeptides within the primary 14-3-3 binding site is well established based on the crystal structures of their complexes, little is known about the binding process itself. We present a computational study of the process by which phosphopeptides bind to the 14-3-3ζ protein. Applying a novel scheme combining Hamiltonian replica exchange molecular dynamics and distancefield restraints allowed us to map and compare the most likely phosphopeptide-binding pathways to the 14-3-3ζ protein. The most important structural changes to the protein and peptides involved in the binding process were identified. In order to bind phosphopeptides to the primary interaction site, the 14-3-3ζ adopted a newly found wide-opened conformation. Based on our findings we additionally propose a secondary interaction site on the inner surface of the 14-3-3ζ dimer, and a direct interference on the binding process by the flexible C-terminal tail. A minimalistic model was designed to allow for the efficient calculation of absolute binding affinities. Binding affinities calculated from the potential of mean force along the binding pathway are in line with the available experimental estimates for two of the studied systems.
- 650 _2
- $a proteiny 14-3-3 $x metabolismus $7 D048948
- 650 _2
- $a vazebná místa $7 D001665
- 650 12
- $a molekulární modely $7 D008958
- 650 12
- $a simulace molekulární dynamiky $7 D056004
- 650 _2
- $a fosforylace $7 D010766
- 650 _2
- $a vazba proteinů $7 D011485
- 650 12
- $a konformace proteinů $7 D011487
- 655 _2
- $a časopisecké články $7 D016428
- 700 1_
- $a Oostenbrink, Chris $u Institute for Molecular Modeling and Simulation, University of Natural Resources and Life Sciences, Vienna, Austria.
- 700 1_
- $a Hritz, Jozef $u CEITEC-MU, Masaryk University, Brno, Czech Republic.
- 773 0_
- $w MED00180950 $t PloS one $x 1932-6203 $g Roč. 12, č. 7 (2017), s. e0180633
- 856 41
- $u https://pubmed.ncbi.nlm.nih.gov/28727767 $y Pubmed
- 910 __
- $a ABA008 $b sig $c sign $y a $z 0
- 990 __
- $a 20171025 $b ABA008
- 991 __
- $a 20171025122803 $b ABA008
- 999 __
- $a ok $b bmc $g 1254270 $s 991704
- BAS __
- $a 3
- BAS __
- $a PreBMC
- BMC __
- $a 2017 $b 12 $c 7 $d e0180633 $e 20170720 $i 1932-6203 $m PLoS One $n PLoS One $x MED00180950
- LZP __
- $a Pubmed-20171025