Evaluation of unrestrained replica-exchange simulations using dynamic walkers in temperature space for protein structure refinement.
basic_science · Level V
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- Record sourced from PubMed, PMID 24848767.
- Also identified by DOI 10.1371/journal.pone.0096638 and PMC identifier 4029997.
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Abstract
A central problem of computational structural biology is the refinement of modeled protein structures taken from either comparative modeling or knowledge-based methods. Simulations are commonly used to achieve higher resolution of the structures at the all-atom level, yet methodologies that consistently yield accurate results remain elusive. In this work, we provide an assessment of an adaptive temperature-based replica exchange simulation method where the temperature clients dynamically walk in temperature space to enrich their population and exchanges near steep energetic barriers. This approach is compared to earlier work of applying the conventional method of static temperature clients to refine a dataset of conformational decoys. Our results show that, while an adaptive method has many theoretical advantages over a static distribution of client temperatures, only limited improvement was gained from this strategy in excursions of the downhill refinement regime leading to an increase in the fraction of native contacts. To illustrate the sampling differences between the two simulation methods, energy landscapes are presented along with their temperature client profiles.
Medical subject headings
- Computational Biology
- Molecular Dynamics Simulation
- Proteins