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A population-based evolutionary algorithm for sampling minima in the protein energy surface

Published: 04 October 2012 Publication History

Abstract

Obtaining a structural characterization of the biologically active (native) state of a protein is a long standing problem in computational biology. The high dimensionality of the conformational space and ruggedness of the associated energy surface are key challenges to algorithms in search of an ensemble of low-energy decoy conformations relevant for the native state. As the native structure does not often correspond to the global minimum energy, diversity is key. We present a memetic evolutionary algorithm to sample a diverse ensemble of conformations that represent low-energy local minima in the protein energy surface. Conformations in the algorithm are members of an evolving population. The molecular fragment replacement technique is employed to obtain children from parent conformations. A greedy search maps a child conformation to its nearest local minimum. Resulting minima and parent conformations are merged and truncated back to the initial population size based on potential energies. Results show that the additional minimization is key to obtaining a diverse ensemble of decoys, circumvent premature convergence to sub-optimal regions in the conformational space, and approach the native structure with IRMSDs comparable to state-of-the-art decoy sampling methods.

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  • (2013)Informatics-driven Protein-protein DockingProceedings of the International Conference on Bioinformatics, Computational Biology and Biomedical Informatics10.1145/2506583.2506709(771-778)Online publication date: 22-Sep-2013
  • (2013)Multi-Objective Stochastic Search for Sampling Local Minima in the Protein Energy SurfaceProceedings of the International Conference on Bioinformatics, Computational Biology and Biomedical Informatics10.1145/2506583.2506590(430-439)Online publication date: 22-Sep-2013
  1. A population-based evolutionary algorithm for sampling minima in the protein energy surface

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    Published In

    cover image Guide Proceedings
    BIBMW '12: Proceedings of the 2012 IEEE International Conference on Bioinformatics and Biomedicine Workshops (BIBMW)
    October 2012
    976 pages
    ISBN:9781467327466

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    IEEE Computer Society

    United States

    Publication History

    Published: 04 October 2012

    Author Tags

    1. evolutionary computation
    2. greedy local search
    3. local minima
    4. molecular fragment replacement
    5. near-native conformations
    6. protein native state

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    Cited By

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    • (2013)Informatics-driven Protein-protein DockingProceedings of the International Conference on Bioinformatics, Computational Biology and Biomedical Informatics10.1145/2506583.2506709(771-778)Online publication date: 22-Sep-2013
    • (2013)Multi-Objective Stochastic Search for Sampling Local Minima in the Protein Energy SurfaceProceedings of the International Conference on Bioinformatics, Computational Biology and Biomedical Informatics10.1145/2506583.2506590(430-439)Online publication date: 22-Sep-2013

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