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Energetic Frustrations in Protein Folding at Residue Resolution: A Homologous Simulation Study of Im9 Proteins

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  • Yunxiang Sun
  • Dengming Ming

Abstract

Energetic frustration is becoming an important topic for understanding the mechanisms of protein folding, which is a long-standing big biological problem usually investigated by the free energy landscape theory. Despite the significant advances in probing the effects of folding frustrations on the overall features of protein folding pathways and folding intermediates, detailed characterizations of folding frustrations at an atomic or residue level are still lacking. In addition, how and to what extent folding frustrations interact with protein topology in determining folding mechanisms remains unclear. In this paper, we tried to understand energetic frustrations in the context of protein topology structures or native-contact networks by comparing the energetic frustrations of five homologous Im9 alpha-helix proteins that share very similar topology structures but have a single hydrophilic-to-hydrophobic mutual mutation. The folding simulations were performed using a coarse-grained Gō-like model, while non-native hydrophobic interactions were introduced as energetic frustrations using a Lennard-Jones potential function. Energetic frustrations were then examined at residue level based on φ-value analyses of the transition state ensemble structures and mapped back to native-contact networks. Our calculations show that energetic frustrations have highly heterogeneous influences on the folding of the four helices of the examined structures depending on the local environment of the frustration centers. Also, the closer the introduced frustration is to the center of the native-contact network, the larger the changes in the protein folding. Our findings add a new dimension to the understanding of protein folding the topology determination in that energetic frustrations works closely with native-contact networks to affect the protein folding.

Suggested Citation

  • Yunxiang Sun & Dengming Ming, 2014. "Energetic Frustrations in Protein Folding at Residue Resolution: A Homologous Simulation Study of Im9 Proteins," PLOS ONE, Public Library of Science, vol. 9(1), pages 1-11, January.
  • Handle: RePEc:plo:pone00:0087719
    DOI: 10.1371/journal.pone.0087719
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    References listed on IDEAS

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    1. Michele Vendruscolo & Emanuele Paci & Christopher M. Dobson & Martin Karplus, 2001. "Three key residues form a critical contact network in a protein folding transition state," Nature, Nature, vol. 409(6820), pages 641-645, February.
    2. Beth G. Wensley & Sarah Batey & Fleur A. C. Bone & Zheng Ming Chan & Nuala R. Tumelty & Annette Steward & Lee Gyan Kwa & Alessandro Borgia & Jane Clarke, 2010. "Experimental evidence for a frustrated energy landscape in a three-helix-bundle protein family," Nature, Nature, vol. 463(7281), pages 685-688, February.
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