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Probing the Flexibility of Large Conformational Changes in Protein Structures through Local Perturbations

Overview of attention for article published in PLoS Computational Biology, April 2009
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Title
Probing the Flexibility of Large Conformational Changes in Protein Structures through Local Perturbations
Published in
PLoS Computational Biology, April 2009
DOI 10.1371/journal.pcbi.1000343
Pubmed ID
Authors

Bosco K. Ho, David A. Agard

Abstract

Protein conformational changes and dynamic behavior are fundamental for such processes as catalysis, regulation, and substrate recognition. Although protein dynamics have been successfully explored in computer simulation, there is an intermediate-scale of motions that has proven difficult to simulate - the motion of individual segments or domains that move independently of the body the protein. Here, we introduce a molecular-dynamics perturbation method, the Rotamerically Induced Perturbation (RIP), which can generate large, coherent motions of structural elements in picoseconds by applying large torsional perturbations to individual sidechains. Despite the large-scale motions, secondary structure elements remain intact without the need for applying backbone positional restraints. Owing to its computational efficiency, RIP can be applied to every residue in a protein, producing a global map of deformability. This map is remarkably sparse, with the dominant sites of deformation generally found on the protein surface. The global map can be used to identify loops and helices that are less tightly bound to the protein and thus are likely sites of dynamic modulation that may have important functional consequences. Additionally, they identify individual residues that have the potential to drive large-scale coherent conformational change. Applying RIP to two well-studied proteins, Dihdydrofolate Reductase and Triosephosphate Isomerase, which possess functionally-relevant mobile loops that fluctuate on the microsecond/millisecond timescale, the RIP deformation map identifies and recapitulates the flexibility of these elements. In contrast, the RIP deformation map of alpha-lytic protease, a kinetically stable protein, results in a map with no significant deformations. In the N-terminal domain of HSP90, the RIP deformation map clearly identifies the ligand-binding lid as a highly flexible region capable of large conformational changes. In the Estrogen Receptor ligand-binding domain, the RIP deformation map is quite sparse except for one large conformational change involving Helix-12, which is the structural element that allosterically links ligand binding to receptor activation. RIP analysis has the potential to discover sites of functional conformational changes and the linchpin residues critical in determining these conformational states.

Mendeley readers

Mendeley readers

The data shown below were compiled from readership statistics for 141 Mendeley readers of this research output. Click here to see the associated Mendeley record.

Geographical breakdown

Country Count As %
United States 8 6%
Germany 3 2%
France 2 1%
Brazil 2 1%
Norway 2 1%
Portugal 1 <1%
Turkey 1 <1%
Czechia 1 <1%
Sweden 1 <1%
Other 2 1%
Unknown 118 84%

Demographic breakdown

Readers by professional status Count As %
Researcher 49 35%
Student > Ph. D. Student 40 28%
Student > Master 8 6%
Professor 8 6%
Student > Bachelor 7 5%
Other 19 13%
Unknown 10 7%
Readers by discipline Count As %
Agricultural and Biological Sciences 55 39%
Chemistry 32 23%
Biochemistry, Genetics and Molecular Biology 16 11%
Engineering 8 6%
Computer Science 7 5%
Other 10 7%
Unknown 13 9%